/[MITgcm]/MITgcm/verification/seaice_itd/results/output.lipscomb07.txt
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Annotation of /MITgcm/verification/seaice_itd/results/output.lipscomb07.txt

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Revision 1.3 - (hide annotations) (download)
Tue May 5 15:30:37 2015 UTC (9 years, 1 month ago) by mlosch
Branch: MAIN
CVS Tags: checkpoint65r, checkpoint65s, checkpoint65p, checkpoint65q, checkpoint65n, checkpoint65o, checkpoint65m
Changes since 1.2: +209 -188 lines
File MIME type: text/plain
the changed computation of deltaC affects results at the truncation
level: updated

1 mlosch 1.1 (PID.TID 0000.0001)
2     (PID.TID 0000.0001) // ======================================================
3     (PID.TID 0000.0001) // MITgcm UV
4     (PID.TID 0000.0001) // =========
5     (PID.TID 0000.0001) // ======================================================
6     (PID.TID 0000.0001) // execution environment starting up...
7     (PID.TID 0000.0001)
8 mlosch 1.3 (PID.TID 0000.0001) // MITgcmUV version: checkpoint65l
9     (PID.TID 0000.0001) // Build user: mlosch
10 jmc 1.2 (PID.TID 0000.0001) // Build host: baudelaire
11 mlosch 1.3 (PID.TID 0000.0001) // Build date: Tue May 5 08:12:58 EDT 2015
12 mlosch 1.1 (PID.TID 0000.0001)
13     (PID.TID 0000.0001) // =======================================================
14     (PID.TID 0000.0001) // Execution Environment parameter file "eedata"
15     (PID.TID 0000.0001) // =======================================================
16     (PID.TID 0000.0001) ># Example "eedata" file
17     (PID.TID 0000.0001) ># Lines beginning "#" are comments
18     (PID.TID 0000.0001) ># nTx - No. threads per process in X
19     (PID.TID 0000.0001) ># nTy - No. threads per process in Y
20     (PID.TID 0000.0001) > &EEPARMS
21     (PID.TID 0000.0001) > nTx=1,
22     (PID.TID 0000.0001) > nTy=1,
23     (PID.TID 0000.0001) > /
24     (PID.TID 0000.0001) ># Note: Some systems use & as the namelist terminator (as shown here).
25     (PID.TID 0000.0001) ># Other systems use a / character.
26     (PID.TID 0000.0001)
27     (PID.TID 0000.0001) // =======================================================
28     (PID.TID 0000.0001) // Computational Grid Specification ( see files "SIZE.h" )
29     (PID.TID 0000.0001) // ( and "eedata" )
30     (PID.TID 0000.0001) // =======================================================
31     (PID.TID 0000.0001) nPx = 1 ; /* No. processes in X */
32     (PID.TID 0000.0001) nPy = 1 ; /* No. processes in Y */
33     (PID.TID 0000.0001) nSx = 2 ; /* No. tiles in X per process */
34     (PID.TID 0000.0001) nSy = 2 ; /* No. tiles in Y per process */
35     (PID.TID 0000.0001) sNx = 40 ; /* Tile size in X */
36     (PID.TID 0000.0001) sNy = 21 ; /* Tile size in Y */
37     (PID.TID 0000.0001) OLx = 3 ; /* Tile overlap distance in X */
38     (PID.TID 0000.0001) OLy = 3 ; /* Tile overlap distance in Y */
39     (PID.TID 0000.0001) nTx = 1 ; /* No. threads in X per process */
40     (PID.TID 0000.0001) nTy = 1 ; /* No. threads in Y per process */
41     (PID.TID 0000.0001) Nr = 1 ; /* No. levels in the vertical */
42     (PID.TID 0000.0001) Nx = 80 ; /* Total domain size in X ( = nPx*nSx*sNx ) */
43     (PID.TID 0000.0001) Ny = 42 ; /* Total domain size in Y ( = nPy*nSy*sNy ) */
44     (PID.TID 0000.0001) nTiles = 4 ; /* Total no. tiles per process ( = nSx*nSy ) */
45     (PID.TID 0000.0001) nProcs = 1 ; /* Total no. processes ( = nPx*nPy ) */
46     (PID.TID 0000.0001) nThreads = 1 ; /* Total no. threads per process ( = nTx*nTy ) */
47     (PID.TID 0000.0001) usingMPI = F ; /* Flag used to control whether MPI is in use */
48     (PID.TID 0000.0001) /* note: To execute a program with MPI calls */
49     (PID.TID 0000.0001) /* it must be launched appropriately e.g */
50     (PID.TID 0000.0001) /* "mpirun -np 64 ......" */
51     (PID.TID 0000.0001) useCoupler= F ;/* Flag used to control communications with */
52     (PID.TID 0000.0001) /* other model components, through a coupler */
53     (PID.TID 0000.0001) debugMode = F ; /* print debug msg. (sequence of S/R calls) */
54     (PID.TID 0000.0001) printMapIncludesZeros= F ; /* print zeros in Std.Output maps */
55     (PID.TID 0000.0001) maxLengthPrt1D= 65 /* maxLength of 1D array printed to StdOut */
56     (PID.TID 0000.0001)
57     (PID.TID 0000.0001) // ======================================================
58     (PID.TID 0000.0001) // Mapping of tiles to threads
59     (PID.TID 0000.0001) // ======================================================
60     (PID.TID 0000.0001) // -o- Thread 1, tiles ( 1: 2, 1: 2)
61     (PID.TID 0000.0001)
62     (PID.TID 0000.0001) // ======================================================
63     (PID.TID 0000.0001) // Tile <-> Tile connectvity table
64     (PID.TID 0000.0001) // ======================================================
65     (PID.TID 0000.0001) // Tile number: 000001 (process no. = 000000)
66     (PID.TID 0000.0001) // WEST: Tile = 000002, Process = 000000, Comm = put
67     (PID.TID 0000.0001) // bi = 000002, bj = 000001
68     (PID.TID 0000.0001) // EAST: Tile = 000002, Process = 000000, Comm = put
69     (PID.TID 0000.0001) // bi = 000002, bj = 000001
70     (PID.TID 0000.0001) // SOUTH: Tile = 000003, Process = 000000, Comm = put
71     (PID.TID 0000.0001) // bi = 000001, bj = 000002
72     (PID.TID 0000.0001) // NORTH: Tile = 000003, Process = 000000, Comm = put
73     (PID.TID 0000.0001) // bi = 000001, bj = 000002
74     (PID.TID 0000.0001) // Tile number: 000002 (process no. = 000000)
75     (PID.TID 0000.0001) // WEST: Tile = 000001, Process = 000000, Comm = put
76     (PID.TID 0000.0001) // bi = 000001, bj = 000001
77     (PID.TID 0000.0001) // EAST: Tile = 000001, Process = 000000, Comm = put
78     (PID.TID 0000.0001) // bi = 000001, bj = 000001
79     (PID.TID 0000.0001) // SOUTH: Tile = 000004, Process = 000000, Comm = put
80     (PID.TID 0000.0001) // bi = 000002, bj = 000002
81     (PID.TID 0000.0001) // NORTH: Tile = 000004, Process = 000000, Comm = put
82     (PID.TID 0000.0001) // bi = 000002, bj = 000002
83     (PID.TID 0000.0001) // Tile number: 000003 (process no. = 000000)
84     (PID.TID 0000.0001) // WEST: Tile = 000004, Process = 000000, Comm = put
85     (PID.TID 0000.0001) // bi = 000002, bj = 000002
86     (PID.TID 0000.0001) // EAST: Tile = 000004, Process = 000000, Comm = put
87     (PID.TID 0000.0001) // bi = 000002, bj = 000002
88     (PID.TID 0000.0001) // SOUTH: Tile = 000001, Process = 000000, Comm = put
89     (PID.TID 0000.0001) // bi = 000001, bj = 000001
90     (PID.TID 0000.0001) // NORTH: Tile = 000001, Process = 000000, Comm = put
91     (PID.TID 0000.0001) // bi = 000001, bj = 000001
92     (PID.TID 0000.0001) // Tile number: 000004 (process no. = 000000)
93     (PID.TID 0000.0001) // WEST: Tile = 000003, Process = 000000, Comm = put
94     (PID.TID 0000.0001) // bi = 000001, bj = 000002
95     (PID.TID 0000.0001) // EAST: Tile = 000003, Process = 000000, Comm = put
96     (PID.TID 0000.0001) // bi = 000001, bj = 000002
97     (PID.TID 0000.0001) // SOUTH: Tile = 000002, Process = 000000, Comm = put
98     (PID.TID 0000.0001) // bi = 000002, bj = 000001
99     (PID.TID 0000.0001) // NORTH: Tile = 000002, Process = 000000, Comm = put
100     (PID.TID 0000.0001) // bi = 000002, bj = 000001
101     (PID.TID 0000.0001)
102     (PID.TID 0000.0001) INI_PARMS: opening model parameter file "data"
103     (PID.TID 0000.0001) OPEN_COPY_DATA_FILE: opening file data
104     (PID.TID 0000.0001) // =======================================================
105     (PID.TID 0000.0001) // Parameter file "data"
106     (PID.TID 0000.0001) // =======================================================
107     (PID.TID 0000.0001) ># ====================
108     (PID.TID 0000.0001) ># | Model parameters |
109     (PID.TID 0000.0001) ># ====================
110     (PID.TID 0000.0001) >#
111     (PID.TID 0000.0001) > &PARM01
112     (PID.TID 0000.0001) > tRef= -1.62,
113     (PID.TID 0000.0001) > sRef= 30.,
114     (PID.TID 0000.0001) > no_slip_sides=.FALSE.,
115     (PID.TID 0000.0001) > no_slip_bottom=.TRUE.,
116     (PID.TID 0000.0001) >#bottomDragLinear=1.E-3,
117     (PID.TID 0000.0001) > bottomDragQuadratic=5.E-3,
118     (PID.TID 0000.0001) > viscAr=3.E-2,
119     (PID.TID 0000.0001) > viscAh=3.E+2,
120     (PID.TID 0000.0001) > HeatCapacity_Cp = 3986.,
121     (PID.TID 0000.0001) > rhoNil = 1030.,
122     (PID.TID 0000.0001) > rhoConstFresh = 1000.,
123     (PID.TID 0000.0001) > eosType='LINEAR',
124     (PID.TID 0000.0001) > tAlpha=2.E-4,
125     (PID.TID 0000.0001) > sBeta= 0.,
126     (PID.TID 0000.0001) > staggerTimeStep=.TRUE.,
127     (PID.TID 0000.0001) > saltStepping=.FALSE.,
128 jmc 1.2 (PID.TID 0000.0001) >#tempStepping=.FALSE.,
129     (PID.TID 0000.0001) > tempAdvection=.FALSE.,
130 mlosch 1.1 (PID.TID 0000.0001) > momStepping=.FALSE.,
131 jmc 1.2 (PID.TID 0000.0001) >#f0=1.e-4,
132 mlosch 1.1 (PID.TID 0000.0001) > f0=0.e-4,
133     (PID.TID 0000.0001) > beta=0.,
134     (PID.TID 0000.0001) > useJamartWetPoints=.TRUE.,
135     (PID.TID 0000.0001) > rigidLid=.FALSE.,
136     (PID.TID 0000.0001) > implicitFreeSurface=.TRUE.,
137     (PID.TID 0000.0001) >#exactConserv=.TRUE.,
138     (PID.TID 0000.0001) > convertFW2Salt=-1,
139     (PID.TID 0000.0001) > readBinaryPrec=64,
140     (PID.TID 0000.0001) > writeBinaryPrec=64,
141     (PID.TID 0000.0001) >#globalFiles=.TRUE.,
142     (PID.TID 0000.0001) > useSingleCpuIO=.TRUE.,
143     (PID.TID 0000.0001) >#debugLevel=4,
144     (PID.TID 0000.0001) > /
145     (PID.TID 0000.0001) >
146     (PID.TID 0000.0001) ># Elliptic solver parameters
147     (PID.TID 0000.0001) > &PARM02
148     (PID.TID 0000.0001) > cg2dMaxIters=500,
149     (PID.TID 0000.0001) > cg2dTargetResidual=1.E-12,
150     (PID.TID 0000.0001) > /
151     (PID.TID 0000.0001) >
152     (PID.TID 0000.0001) ># Time stepping parameters
153     (PID.TID 0000.0001) > &PARM03
154     (PID.TID 0000.0001) > startTime=0.0,
155     (PID.TID 0000.0001) >#endTime=432000.,
156     (PID.TID 0000.0001) > deltaT=1800.0,
157     (PID.TID 0000.0001) > abEps=0.1,
158     (PID.TID 0000.0001) > forcing_In_AB = .FALSE.,
159     (PID.TID 0000.0001) > pChkptFreq=3600000.,
160 jmc 1.2 (PID.TID 0000.0001) > dumpFreq = 864000.,
161 mlosch 1.1 (PID.TID 0000.0001) > monitorSelect=2,
162     (PID.TID 0000.0001) > nTimeSteps=12,
163 jmc 1.2 (PID.TID 0000.0001) > monitorFreq=21600.,
164 mlosch 1.1 (PID.TID 0000.0001) > /
165     (PID.TID 0000.0001) >
166     (PID.TID 0000.0001) ># Gridding parameters
167     (PID.TID 0000.0001) > &PARM04
168     (PID.TID 0000.0001) > usingCartesianGrid=.TRUE.,
169     (PID.TID 0000.0001) > delX=80*5.E3,
170     (PID.TID 0000.0001) > delY=42*5.E3,
171     (PID.TID 0000.0001) > ygOrigin=-110.E3,
172     (PID.TID 0000.0001) >#delR= 20., 30., 50.,
173     (PID.TID 0000.0001) > delR= 10.,
174     (PID.TID 0000.0001) > /
175     (PID.TID 0000.0001) >
176     (PID.TID 0000.0001) ># Input datasets
177     (PID.TID 0000.0001) > &PARM05
178     (PID.TID 0000.0001) > bathyFile = 'bathy_3c.bin',
179     (PID.TID 0000.0001) > uVelInitFile = 'uVel_3c0.bin',
180     (PID.TID 0000.0001) > vVelInitFile = 'vVel_3c0.bin',
181     (PID.TID 0000.0001) > pSurfInitFile = 'eta_3c0.bin',
182     (PID.TID 0000.0001) >#uVelInitFile = 'uVel_3c1.bin',
183     (PID.TID 0000.0001) >#vVelInitFile = 'vVel_3c1.bin',
184     (PID.TID 0000.0001) >#pSurfInitFile = 'eta_3c1.bin',
185     (PID.TID 0000.0001) >#bathyFile = 'channel.bin',
186     (PID.TID 0000.0001) >#uVelInitFile = 'const+40.bin',
187     (PID.TID 0000.0001) >#vVelInitFile = 'const-10.bin',
188     (PID.TID 0000.0001) > /
189     (PID.TID 0000.0001)
190     (PID.TID 0000.0001) INI_PARMS ; starts to read PARM01
191     (PID.TID 0000.0001) INI_PARMS ; read PARM01 : OK
192     (PID.TID 0000.0001) INI_PARMS ; starts to read PARM02
193     (PID.TID 0000.0001) INI_PARMS ; read PARM02 : OK
194     (PID.TID 0000.0001) INI_PARMS ; starts to read PARM03
195     (PID.TID 0000.0001) INI_PARMS ; read PARM03 : OK
196     (PID.TID 0000.0001) INI_PARMS ; starts to read PARM04
197     (PID.TID 0000.0001) INI_PARMS ; read PARM04 : OK
198     (PID.TID 0000.0001) INI_PARMS ; starts to read PARM05
199     (PID.TID 0000.0001) INI_PARMS ; read PARM05 : OK
200     (PID.TID 0000.0001) INI_PARMS: finished reading file "data"
201     (PID.TID 0000.0001) PACKAGES_BOOT: opening data.pkg
202     (PID.TID 0000.0001) OPEN_COPY_DATA_FILE: opening file data.pkg
203     (PID.TID 0000.0001) // =======================================================
204     (PID.TID 0000.0001) // Parameter file "data.pkg"
205     (PID.TID 0000.0001) // =======================================================
206     (PID.TID 0000.0001) ># Packages
207     (PID.TID 0000.0001) > &PACKAGES
208     (PID.TID 0000.0001) > useEXF = .TRUE.,
209     (PID.TID 0000.0001) > useSEAICE = .TRUE.,
210     (PID.TID 0000.0001) ># useThSIce = .TRUE.,
211     (PID.TID 0000.0001) > useDiagnostics=.TRUE.,
212     (PID.TID 0000.0001) > /
213     (PID.TID 0000.0001)
214     (PID.TID 0000.0001) PACKAGES_BOOT: finished reading data.pkg
215     (PID.TID 0000.0001) PACKAGES_BOOT: On/Off package Summary
216     -------- pkgs with a standard "usePKG" On/Off switch in "data.pkg": --------
217     pkg/cal compiled and used ( useCAL = T )
218     pkg/exf compiled and used ( useEXF = T )
219     pkg/seaice compiled and used ( useSEAICE = T )
220     pkg/diagnostics compiled and used ( useDiagnostics = T )
221     -------- pkgs without standard "usePKG" On/Off switch in "data.pkg": --------
222 jmc 1.2 pkg/generic_advdiff compiled and used ( useGAD = T )
223 mlosch 1.1 pkg/mom_common compiled but not used ( momStepping = F )
224     pkg/mom_vecinv compiled but not used ( +vectorInvariantMomentum = F )
225     pkg/mom_fluxform compiled but not used ( & not vectorInvariantMom = F )
226     pkg/monitor compiled and used ( monitorFreq > 0. = T )
227     pkg/debug compiled but not used ( debugMode = F )
228     pkg/rw compiled and used
229     pkg/mdsio compiled and used
230     (PID.TID 0000.0001) PACKAGES_BOOT: End of package Summary
231     (PID.TID 0000.0001)
232     (PID.TID 0000.0001) CAL_READPARMS: opening data.cal
233     (PID.TID 0000.0001) OPEN_COPY_DATA_FILE: opening file data.cal
234     (PID.TID 0000.0001) // =======================================================
235     (PID.TID 0000.0001) // Parameter file "data.cal"
236     (PID.TID 0000.0001) // =======================================================
237     (PID.TID 0000.0001) >#
238     (PID.TID 0000.0001) ># *******************
239     (PID.TID 0000.0001) ># Calendar Parameters
240     (PID.TID 0000.0001) ># *******************
241     (PID.TID 0000.0001) > &CAL_NML
242     (PID.TID 0000.0001) > TheCalendar='gregorian',
243     (PID.TID 0000.0001) ># TheCalendar='model',
244     (PID.TID 0000.0001) > startDate_1=19790101,
245     (PID.TID 0000.0001) > startDate_2=000000,
246     (PID.TID 0000.0001) > /
247     (PID.TID 0000.0001)
248     (PID.TID 0000.0001) CAL_READPARMS: finished reading data.cal
249     (PID.TID 0000.0001) EXF_READPARMS: opening data.exf
250     (PID.TID 0000.0001) OPEN_COPY_DATA_FILE: opening file data.exf
251     (PID.TID 0000.0001) // =======================================================
252     (PID.TID 0000.0001) // Parameter file "data.exf"
253     (PID.TID 0000.0001) // =======================================================
254     (PID.TID 0000.0001) >#
255     (PID.TID 0000.0001) ># *********************
256     (PID.TID 0000.0001) ># External Forcing Data
257     (PID.TID 0000.0001) ># *********************
258     (PID.TID 0000.0001) > &EXF_NML_01
259     (PID.TID 0000.0001) >#
260     (PID.TID 0000.0001) > useExfCheckRange = .TRUE.,
261     (PID.TID 0000.0001) >#repeatPeriod = 2635200.0,
262     (PID.TID 0000.0001) > exf_iprec = 64,
263     (PID.TID 0000.0001) > exf_monFreq = 86400000.,
264     (PID.TID 0000.0001) >#useRelativeWind = .TRUE.,
265     (PID.TID 0000.0001) >#
266     (PID.TID 0000.0001) > /
267     (PID.TID 0000.0001) >
268     (PID.TID 0000.0001) ># *********************
269     (PID.TID 0000.0001) > &EXF_NML_02
270     (PID.TID 0000.0001) >#
271     (PID.TID 0000.0001) >#ustressstartdate1 = 19781216,
272     (PID.TID 0000.0001) >#ustressstartdate2 = 180000,
273     (PID.TID 0000.0001) >#ustressperiod = 0.0,
274     (PID.TID 0000.0001) >#
275     (PID.TID 0000.0001) >#vstressstartdate1 = 19781216,
276     (PID.TID 0000.0001) >#vstressstartdate2 = 180000,
277     (PID.TID 0000.0001) >#vstressperiod = 0.0,
278     (PID.TID 0000.0001) >#
279     (PID.TID 0000.0001) > atempstartdate1 = 19781216,
280     (PID.TID 0000.0001) > atempstartdate2 = 180000,
281     (PID.TID 0000.0001) > atempperiod = 0.0,
282     (PID.TID 0000.0001) >#
283     (PID.TID 0000.0001) > aqhstartdate1 = 19781216,
284     (PID.TID 0000.0001) > aqhstartdate2 = 180000,
285     (PID.TID 0000.0001) > aqhperiod = 0.0,
286     (PID.TID 0000.0001) >#
287     (PID.TID 0000.0001) > precipstartdate1 = 19781216,
288     (PID.TID 0000.0001) > precipstartdate2 = 180000,
289     (PID.TID 0000.0001) > precipperiod = 0.0,
290     (PID.TID 0000.0001) >#
291     (PID.TID 0000.0001) > uwindstartdate1 = 19781216,
292     (PID.TID 0000.0001) > uwindstartdate2 = 180000,
293     (PID.TID 0000.0001) > uwindperiod = 0.0,
294     (PID.TID 0000.0001) >#
295     (PID.TID 0000.0001) > vwindstartdate1 = 19781216,
296     (PID.TID 0000.0001) > vwindstartdate2 = 180000,
297     (PID.TID 0000.0001) > vwindperiod = 0.0,
298     (PID.TID 0000.0001) >#
299     (PID.TID 0000.0001) > swdownstartdate1 = 19781216,
300     (PID.TID 0000.0001) > swdownstartdate2 = 180000,
301     (PID.TID 0000.0001) > swdownperiod = 0.0,
302     (PID.TID 0000.0001) >#
303     (PID.TID 0000.0001) > lwdownstartdate1 = 19781216,
304     (PID.TID 0000.0001) > lwdownstartdate2 = 180000,
305     (PID.TID 0000.0001) > lwdownperiod = 0.0,
306     (PID.TID 0000.0001) >#
307     (PID.TID 0000.0001) > climsststartdate1 = 19781216,
308     (PID.TID 0000.0001) > climsststartdate2 = 180000,
309     (PID.TID 0000.0001) > climsstperiod = 0.0,
310     (PID.TID 0000.0001) >#climsstTauRelax = 2592000.,
311     (PID.TID 0000.0001) >#
312     (PID.TID 0000.0001) > climsssstartdate1 = 19781216,
313     (PID.TID 0000.0001) > climsssstartdate2 = 180000,
314     (PID.TID 0000.0001) > climsssperiod = 0.0,
315     (PID.TID 0000.0001) >#climsssTauRelax = 2592000.,
316     (PID.TID 0000.0001) >#
317     (PID.TID 0000.0001) >#ustressfile = ' ',
318     (PID.TID 0000.0001) >#vstressfile = ' ',
319     (PID.TID 0000.0001) >#atempfile = 'tair_4x.bin',
320     (PID.TID 0000.0001) >#aqhfile = 'qa70_4x.bin',
321     (PID.TID 0000.0001) > uwindfile = 'windx.bin',
322     (PID.TID 0000.0001) >#vwindfile = 'windy.bin',
323     (PID.TID 0000.0001) >#precipfile = 'const_00.bin',
324     (PID.TID 0000.0001) >#lwdownfile = 'dlw_250.bin',
325     (PID.TID 0000.0001) >#swdownfile = 'dsw_100.bin',
326     (PID.TID 0000.0001) >#runoffFile = ' '
327     (PID.TID 0000.0001) >#climsstfile = 'tocn.bin',
328     (PID.TID 0000.0001) >#climsssfile = 'socn.bin',
329     (PID.TID 0000.0001) > /
330     (PID.TID 0000.0001) >
331     (PID.TID 0000.0001) ># *********************
332     (PID.TID 0000.0001) > &EXF_NML_03
333     (PID.TID 0000.0001) >#exf_offset_atemp=5;
334     (PID.TID 0000.0001) > /
335     (PID.TID 0000.0001) >
336     (PID.TID 0000.0001) ># *********************
337     (PID.TID 0000.0001) ># old open64 compiler (4.2.1) cannot skip this namelist to read in the next one;
338     (PID.TID 0000.0001) ># comment out this namelist (not read).
339     (PID.TID 0000.0001) >#&EXF_NML_04
340     (PID.TID 0000.0001) >#&
341     (PID.TID 0000.0001) >
342     (PID.TID 0000.0001) ># *********************
343     (PID.TID 0000.0001) > &EXF_NML_OBCS
344     (PID.TID 0000.0001) > /
345     (PID.TID 0000.0001)
346     (PID.TID 0000.0001) EXF_READPARMS: reading EXF_NML_01
347     (PID.TID 0000.0001) EXF_READPARMS: reading EXF_NML_02
348     (PID.TID 0000.0001) EXF_READPARMS: reading EXF_NML_03
349     (PID.TID 0000.0001) EXF_READPARMS: finished reading data.exf
350     (PID.TID 0000.0001)
351     (PID.TID 0000.0001) SEAICE_READPARMS: opening data.seaice
352     (PID.TID 0000.0001) OPEN_COPY_DATA_FILE: opening file data.seaice
353     (PID.TID 0000.0001) // =======================================================
354     (PID.TID 0000.0001) // Parameter file "data.seaice"
355     (PID.TID 0000.0001) // =======================================================
356     (PID.TID 0000.0001) ># SEAICE parameters
357     (PID.TID 0000.0001) > &SEAICE_PARM01
358     (PID.TID 0000.0001) > usePW79thermodynamics=.FALSE.,
359     (PID.TID 0000.0001) > SEAICE_no_Slip = .FALSE.,
360     (PID.TID 0000.0001) > LSR_ERROR = 1.E-12,
361     (PID.TID 0000.0001) > SOLV_MAX_ITERS = 1500,
362     (PID.TID 0000.0001) > LSR_mixIniGuess = 1,
363     (PID.TID 0000.0001) > SEAICEadvScheme = 77,
364     (PID.TID 0000.0001) > AreaFile = 'const100.bin',
365     (PID.TID 0000.0001) > HeffFile = 'heff_quartic.bin',
366     (PID.TID 0000.0001) > HsnowFile = 'const_00.bin',
367     (PID.TID 0000.0001) > SEAICEwriteState = .TRUE.,
368     (PID.TID 0000.0001) > SEAICE_monFreq = 1800.,
369     (PID.TID 0000.0001) ># ridging
370     (PID.TID 0000.0001) > SEAICEsimpleRidging = .FALSE.,
371     (PID.TID 0000.0001) > useHibler79IceStrength = .FALSE.,
372     (PID.TID 0000.0001) > SEAICE_cf = 2.,
373     (PID.TID 0000.0001) > SEAICEredistFunc = 1,
374     (PID.TID 0000.0001) > SEAICEpartFunc = 1,
375     (PID.TID 0000.0001) > SEAICEsnowFracRidge = 1.,
376     (PID.TID 0000.0001) > /
377     (PID.TID 0000.0001) >
378     (PID.TID 0000.0001) > &SEAICE_PARM03
379     (PID.TID 0000.0001) > /
380     (PID.TID 0000.0001)
381     (PID.TID 0000.0001) SEAICE_READPARMS: finished reading data.seaice
382     (PID.TID 0000.0001) DIAGNOSTICS_READPARMS: opening data.diagnostics
383     (PID.TID 0000.0001) OPEN_COPY_DATA_FILE: opening file data.diagnostics
384     (PID.TID 0000.0001) // =======================================================
385     (PID.TID 0000.0001) // Parameter file "data.diagnostics"
386     (PID.TID 0000.0001) // =======================================================
387     (PID.TID 0000.0001) ># Diagnostic Package Choices
388     (PID.TID 0000.0001) >#--------------------
389     (PID.TID 0000.0001) ># dumpAtLast (logical): always write output at the end of simulation (default=F)
390     (PID.TID 0000.0001) ># diag_mnc (logical): write to NetCDF files (default=useMNC)
391     (PID.TID 0000.0001) >#--for each output-stream:
392     (PID.TID 0000.0001) ># fileName(n) : prefix of the output file name (max 80c long) for outp.stream n
393     (PID.TID 0000.0001) ># frequency(n):< 0 : write snap-shot output every |frequency| seconds
394     (PID.TID 0000.0001) ># > 0 : write time-average output every frequency seconds
395     (PID.TID 0000.0001) ># timePhase(n) : write at time = timePhase + multiple of |frequency|
396     (PID.TID 0000.0001) ># averagingFreq : frequency (in s) for periodic averaging interval
397     (PID.TID 0000.0001) ># averagingPhase : phase (in s) for periodic averaging interval
398     (PID.TID 0000.0001) ># repeatCycle : number of averaging intervals in 1 cycle
399     (PID.TID 0000.0001) ># levels(:,n) : list of levels to write to file (Notes: declared as REAL)
400     (PID.TID 0000.0001) ># when this entry is missing, select all common levels of this list
401     (PID.TID 0000.0001) ># fields(:,n) : list of selected diagnostics fields (8.c) in outp.stream n
402     (PID.TID 0000.0001) ># (see "available_diagnostics.log" file for the full list of diags)
403     (PID.TID 0000.0001) ># missing_value(n) : missing value for real-type fields in output file "n"
404     (PID.TID 0000.0001) ># fileFlags(n) : specific code (8c string) for output file "n"
405     (PID.TID 0000.0001) >#--------------------
406     (PID.TID 0000.0001) ># This example dumps EXF diagnostics as snapshot after 10 time-steps
407     (PID.TID 0000.0001) ># Note: EXF air-sea fluxes over Sea-Ice are wrong
408     (PID.TID 0000.0001) > &DIAGNOSTICS_LIST
409     (PID.TID 0000.0001) > dumpAtLast = .TRUE.,
410     (PID.TID 0000.0001) >#--
411     (PID.TID 0000.0001) > fields(1:11,1) = 'EXFtaux ','EXFtauy ','EXFqnet ','EXFempmr',
412     (PID.TID 0000.0001) > 'EXFhl ','EXFhs ','EXFswnet','EXFlwnet',
413     (PID.TID 0000.0001) > 'EXFuwind','EXFvwind','EXFatemp',
414     (PID.TID 0000.0001) ># fileName(1) = 'exfDiag',
415     (PID.TID 0000.0001) > frequency(1) = 86400.,
416     (PID.TID 0000.0001) >
417     (PID.TID 0000.0001) > fields(1:4,2) = 'SIuice ','SIvice ','SIheff ',
418     (PID.TID 0000.0001) > 'SIarea ',
419     (PID.TID 0000.0001) ># fileName(2) = 'iceDiag',
420     (PID.TID 0000.0001) > frequency(2) = 86400.,
421     (PID.TID 0000.0001) > missing_value(2) = -999.,
422     (PID.TID 0000.0001) >
423     (PID.TID 0000.0001) > fields(1:4,3) = 'SIuice ','SIvice ','SIheff ',
424     (PID.TID 0000.0001) > 'SIarea ',
425     (PID.TID 0000.0001) > fileName(3) = 'snapshot',
426     (PID.TID 0000.0001) > frequency(3) = -86400.,
427     (PID.TID 0000.0001) > timePhase(3) = 3600.,
428     (PID.TID 0000.0001) > missing_value(3) = -999.,
429     (PID.TID 0000.0001) > /
430     (PID.TID 0000.0001) >
431     (PID.TID 0000.0001) >#--------------------
432     (PID.TID 0000.0001) ># Parameter for Diagnostics of per level statistics:
433     (PID.TID 0000.0001) >#--------------------
434     (PID.TID 0000.0001) ># diagSt_mnc (logical): write stat-diags to NetCDF files (default=diag_mnc)
435     (PID.TID 0000.0001) ># diagSt_regMaskFile : file containing the region-mask to read-in
436     (PID.TID 0000.0001) ># nSetRegMskFile : number of region-mask sets within the region-mask file
437     (PID.TID 0000.0001) ># set_regMask(i) : region-mask set-index that identifies the region "i"
438     (PID.TID 0000.0001) ># val_regMask(i) : region "i" identifier value in the region mask
439     (PID.TID 0000.0001) >#--for each output-stream:
440     (PID.TID 0000.0001) ># stat_fName(n) : prefix of the output file name (max 80c long) for outp.stream n
441     (PID.TID 0000.0001) ># stat_freq(n):< 0 : write snap-shot output every |stat_freq| seconds
442     (PID.TID 0000.0001) ># > 0 : write time-average output every stat_freq seconds
443     (PID.TID 0000.0001) ># stat_phase(n) : write at time = stat_phase + multiple of |stat_freq|
444     (PID.TID 0000.0001) ># stat_region(:,n) : list of "regions" (default: 1 region only=global)
445     (PID.TID 0000.0001) ># stat_fields(:,n) : list of selected diagnostics fields (8.c) in outp.stream n
446     (PID.TID 0000.0001) ># (see "available_diagnostics.log" file for the full list of diags)
447     (PID.TID 0000.0001) >#--------------------
448     (PID.TID 0000.0001) > &DIAG_STATIS_PARMS
449     (PID.TID 0000.0001) > stat_fields(1:5,1) = 'SIarea ','SIheff ','SIhsnow ',
450     (PID.TID 0000.0001) > 'SIuice ','SIvice ',
451     (PID.TID 0000.0001) > stat_fName(1) = 'iceStDiag',
452     (PID.TID 0000.0001) > stat_freq(1) = 7200.,
453     (PID.TID 0000.0001) > stat_phase(1) = 1800.,
454     (PID.TID 0000.0001) > /
455     (PID.TID 0000.0001)
456     (PID.TID 0000.0001) S/R DIAGNOSTICS_READPARMS, read namelist "diagnostics_list": start
457     (PID.TID 0000.0001) S/R DIAGNOSTICS_READPARMS, read namelist "diagnostics_list": OK
458     (PID.TID 0000.0001) S/R DIAGNOSTICS_READPARMS, read namelist "DIAG_STATIS_PARMS": start
459     (PID.TID 0000.0001) S/R DIAGNOSTICS_READPARMS, read namelist "DIAG_STATIS_PARMS": OK
460     (PID.TID 0000.0001) DIAGNOSTICS_READPARMS: global parameter summary:
461     (PID.TID 0000.0001) dumpAtLast = /* always write time-ave diags at the end */
462     (PID.TID 0000.0001) T
463     (PID.TID 0000.0001) ;
464     (PID.TID 0000.0001) diag_mnc = /* write NetCDF output files */
465     (PID.TID 0000.0001) F
466     (PID.TID 0000.0001) ;
467     (PID.TID 0000.0001) useMissingValue = /* put MissingValue where mask = 0 */
468     (PID.TID 0000.0001) F
469     (PID.TID 0000.0001) ;
470     (PID.TID 0000.0001) diagCG_maxIters = /* max number of iters in diag_cg2d */
471     (PID.TID 0000.0001) 500
472     (PID.TID 0000.0001) ;
473     (PID.TID 0000.0001) diagCG_resTarget = /* residual target for diag_cg2d */
474     (PID.TID 0000.0001) 1.000000000000000E-12
475     (PID.TID 0000.0001) ;
476 mlosch 1.3 (PID.TID 0000.0001) diagCG_pcOffDFac = /* preconditioner off-diagonal factor */
477     (PID.TID 0000.0001) 9.611687812379854E-01
478     (PID.TID 0000.0001) ;
479 mlosch 1.1 (PID.TID 0000.0001) -----------------------------------------------------
480     (PID.TID 0000.0001) DIAGNOSTICS_READPARMS: active diagnostics summary:
481     (PID.TID 0000.0001) -----------------------------------------------------
482     (PID.TID 0000.0001) Creating Output Stream: snapshot
483     (PID.TID 0000.0001) Output Frequency: -86400.000000 ; Phase: 3600.000000
484     (PID.TID 0000.0001) Averaging Freq.: 0.000000 , Phase: 0.000000 , Cycle: 1
485     (PID.TID 0000.0001) missing value: -9.990000000000E+02
486     (PID.TID 0000.0001) Levels: will be set later
487     (PID.TID 0000.0001) Fields: SIuice SIvice SIheff SIarea
488     (PID.TID 0000.0001) -----------------------------------------------------
489     (PID.TID 0000.0001) DIAGNOSTICS_READPARMS: statistics diags. summary:
490     (PID.TID 0000.0001) Creating Stats. Output Stream: iceStDiag
491     (PID.TID 0000.0001) Output Frequency: 7200.000000 ; Phase: 1800.000000
492     (PID.TID 0000.0001) Regions: 0
493     (PID.TID 0000.0001) Fields: SIarea SIheff SIhsnow SIuice SIvice
494     (PID.TID 0000.0001) -----------------------------------------------------
495     (PID.TID 0000.0001)
496     (PID.TID 0000.0001) SET_PARMS: done
497     (PID.TID 0000.0001) Enter INI_VERTICAL_GRID: setInterFDr= T ; setCenterDr= F
498     (PID.TID 0000.0001) %MON XC_max = 3.9750000000000E+05
499     (PID.TID 0000.0001) %MON XC_min = 2.5000000000000E+03
500     (PID.TID 0000.0001) %MON XC_mean = 2.0000000000000E+05
501     (PID.TID 0000.0001) %MON XC_sd = 1.1546103238755E+05
502     (PID.TID 0000.0001) %MON XG_max = 3.9500000000000E+05
503     (PID.TID 0000.0001) %MON XG_min = 0.0000000000000E+00
504     (PID.TID 0000.0001) %MON XG_mean = 1.9750000000000E+05
505     (PID.TID 0000.0001) %MON XG_sd = 1.1546103238755E+05
506     (PID.TID 0000.0001) %MON DXC_max = 5.0000000000000E+03
507     (PID.TID 0000.0001) %MON DXC_min = 5.0000000000000E+03
508     (PID.TID 0000.0001) %MON DXC_mean = 5.0000000000000E+03
509     (PID.TID 0000.0001) %MON DXC_sd = 0.0000000000000E+00
510     (PID.TID 0000.0001) %MON DXF_max = 5.0000000000000E+03
511     (PID.TID 0000.0001) %MON DXF_min = 5.0000000000000E+03
512     (PID.TID 0000.0001) %MON DXF_mean = 5.0000000000000E+03
513     (PID.TID 0000.0001) %MON DXF_sd = 0.0000000000000E+00
514     (PID.TID 0000.0001) %MON DXG_max = 5.0000000000000E+03
515     (PID.TID 0000.0001) %MON DXG_min = 5.0000000000000E+03
516     (PID.TID 0000.0001) %MON DXG_mean = 5.0000000000000E+03
517     (PID.TID 0000.0001) %MON DXG_sd = 0.0000000000000E+00
518     (PID.TID 0000.0001) %MON DXV_max = 5.0000000000000E+03
519     (PID.TID 0000.0001) %MON DXV_min = 5.0000000000000E+03
520     (PID.TID 0000.0001) %MON DXV_mean = 5.0000000000000E+03
521     (PID.TID 0000.0001) %MON DXV_sd = 0.0000000000000E+00
522     (PID.TID 0000.0001) %MON YC_max = 9.7500000000000E+04
523     (PID.TID 0000.0001) %MON YC_min = -1.0750000000000E+05
524     (PID.TID 0000.0001) %MON YC_mean = -5.0000000000000E+03
525     (PID.TID 0000.0001) %MON YC_sd = 6.0604592785256E+04
526     (PID.TID 0000.0001) %MON YG_max = 9.5000000000000E+04
527     (PID.TID 0000.0001) %MON YG_min = -1.1000000000000E+05
528     (PID.TID 0000.0001) %MON YG_mean = -7.5000000000000E+03
529     (PID.TID 0000.0001) %MON YG_sd = 6.0604592785256E+04
530     (PID.TID 0000.0001) %MON DYC_max = 5.0000000000000E+03
531     (PID.TID 0000.0001) %MON DYC_min = 5.0000000000000E+03
532     (PID.TID 0000.0001) %MON DYC_mean = 5.0000000000000E+03
533     (PID.TID 0000.0001) %MON DYC_sd = 0.0000000000000E+00
534     (PID.TID 0000.0001) %MON DYF_max = 5.0000000000000E+03
535     (PID.TID 0000.0001) %MON DYF_min = 5.0000000000000E+03
536     (PID.TID 0000.0001) %MON DYF_mean = 5.0000000000000E+03
537     (PID.TID 0000.0001) %MON DYF_sd = 0.0000000000000E+00
538     (PID.TID 0000.0001) %MON DYG_max = 5.0000000000000E+03
539     (PID.TID 0000.0001) %MON DYG_min = 5.0000000000000E+03
540     (PID.TID 0000.0001) %MON DYG_mean = 5.0000000000000E+03
541     (PID.TID 0000.0001) %MON DYG_sd = 0.0000000000000E+00
542     (PID.TID 0000.0001) %MON DYU_max = 5.0000000000000E+03
543     (PID.TID 0000.0001) %MON DYU_min = 5.0000000000000E+03
544     (PID.TID 0000.0001) %MON DYU_mean = 5.0000000000000E+03
545     (PID.TID 0000.0001) %MON DYU_sd = 0.0000000000000E+00
546     (PID.TID 0000.0001) %MON RA_max = 2.5000000000000E+07
547     (PID.TID 0000.0001) %MON RA_min = 2.5000000000000E+07
548     (PID.TID 0000.0001) %MON RA_mean = 2.5000000000000E+07
549     (PID.TID 0000.0001) %MON RA_sd = 3.7252902984619E-09
550     (PID.TID 0000.0001) %MON RAW_max = 2.5000000000000E+07
551     (PID.TID 0000.0001) %MON RAW_min = 2.5000000000000E+07
552     (PID.TID 0000.0001) %MON RAW_mean = 2.5000000000000E+07
553     (PID.TID 0000.0001) %MON RAW_sd = 3.7252902984619E-09
554     (PID.TID 0000.0001) %MON RAS_max = 2.5000000000000E+07
555     (PID.TID 0000.0001) %MON RAS_min = 2.5000000000000E+07
556     (PID.TID 0000.0001) %MON RAS_mean = 2.5000000000000E+07
557     (PID.TID 0000.0001) %MON RAS_sd = 3.7252902984619E-09
558     (PID.TID 0000.0001) %MON RAZ_max = 2.5000000000000E+07
559     (PID.TID 0000.0001) %MON RAZ_min = 2.5000000000000E+07
560     (PID.TID 0000.0001) %MON RAZ_mean = 2.5000000000000E+07
561     (PID.TID 0000.0001) %MON RAZ_sd = 3.7252902984619E-09
562     (PID.TID 0000.0001) %MON AngleCS_max = 1.0000000000000E+00
563     (PID.TID 0000.0001) %MON AngleCS_min = 1.0000000000000E+00
564     (PID.TID 0000.0001) %MON AngleCS_mean = 1.0000000000000E+00
565     (PID.TID 0000.0001) %MON AngleCS_sd = 0.0000000000000E+00
566     (PID.TID 0000.0001) %MON AngleSN_max = 0.0000000000000E+00
567     (PID.TID 0000.0001) %MON AngleSN_min = 0.0000000000000E+00
568     (PID.TID 0000.0001) %MON AngleSN_mean = 0.0000000000000E+00
569     (PID.TID 0000.0001) %MON AngleSN_sd = 0.0000000000000E+00
570     (PID.TID 0000.0001) MDS_READ_FIELD: opening global file: bathy_3c.bin
571     (PID.TID 0000.0001) // =======================================================
572     (PID.TID 0000.0001) // Field Model R_low (ini_masks_etc)
573     (PID.TID 0000.0001) // CMIN = -1.000000000000000E+01
574     (PID.TID 0000.0001) // CMAX = -1.000000000000000E+01
575     (PID.TID 0000.0001) // CINT = 0.000000000000000E+00
576     (PID.TID 0000.0001) // SYMBOLS (CMIN->CMAX): -abcdefghijklmnopqrstuvwxyz+
577     (PID.TID 0000.0001) // 0.0: .
578     (PID.TID 0000.0001) // RANGE I (Lo:Hi:Step):( -2: 83: 1)
579     (PID.TID 0000.0001) // RANGE J (Lo:Hi:Step):( 45: -2: -1)
580     (PID.TID 0000.0001) // RANGE K (Lo:Hi:Step):( 1: 1: 1)
581     (PID.TID 0000.0001) // =======================================================
582     (PID.TID 0000.0001) // =======================================================
583     (PID.TID 0000.0001) // END OF FIELD =
584     (PID.TID 0000.0001) // =======================================================
585     (PID.TID 0000.0001)
586     (PID.TID 0000.0001) // =======================================================
587     (PID.TID 0000.0001) // Field Model Ro_surf (ini_masks_etc)
588     (PID.TID 0000.0001) // CMIN = 1.000000000000000E+32
589     (PID.TID 0000.0001) // CMAX = -1.000000000000000E+32
590     (PID.TID 0000.0001) // CINT = 0.000000000000000E+00
591     (PID.TID 0000.0001) // SYMBOLS (CMIN->CMAX): -abcdefghijklmnopqrstuvwxyz+
592     (PID.TID 0000.0001) // 0.0: .
593     (PID.TID 0000.0001) // RANGE I (Lo:Hi:Step):( -2: 83: 1)
594     (PID.TID 0000.0001) // RANGE J (Lo:Hi:Step):( 45: -2: -1)
595     (PID.TID 0000.0001) // RANGE K (Lo:Hi:Step):( 1: 1: 1)
596     (PID.TID 0000.0001) // =======================================================
597     (PID.TID 0000.0001) // =======================================================
598     (PID.TID 0000.0001) // END OF FIELD =
599     (PID.TID 0000.0001) // =======================================================
600     (PID.TID 0000.0001)
601     (PID.TID 0000.0001) // =======================================================
602     (PID.TID 0000.0001) // Field hFacC at iteration 0
603     (PID.TID 0000.0001) // CMIN = 1.000000000000000E+00
604     (PID.TID 0000.0001) // CMAX = 1.000000000000000E+00
605     (PID.TID 0000.0001) // CINT = 0.000000000000000E+00
606     (PID.TID 0000.0001) // SYMBOLS (CMIN->CMAX): -abcdefghijklmnopqrstuvwxyz+
607     (PID.TID 0000.0001) // 0.0: .
608     (PID.TID 0000.0001) // RANGE I (Lo:Hi:Step):( -2: 83: 1)
609     (PID.TID 0000.0001) // RANGE J (Lo:Hi:Step):( 45: -2: -1)
610     (PID.TID 0000.0001) // RANGE K (Lo:Hi:Step):( 1: 1: 1)
611     (PID.TID 0000.0001) // =======================================================
612     (PID.TID 0000.0001) // =======================================================
613     (PID.TID 0000.0001) // END OF FIELD =
614     (PID.TID 0000.0001) // =======================================================
615     (PID.TID 0000.0001)
616     (PID.TID 0000.0001) // =======================================================
617     (PID.TID 0000.0001) // Field hFacW at iteration 0
618     (PID.TID 0000.0001) // CMIN = 1.000000000000000E+00
619     (PID.TID 0000.0001) // CMAX = 1.000000000000000E+00
620     (PID.TID 0000.0001) // CINT = 0.000000000000000E+00
621     (PID.TID 0000.0001) // SYMBOLS (CMIN->CMAX): -abcdefghijklmnopqrstuvwxyz+
622     (PID.TID 0000.0001) // 0.0: .
623     (PID.TID 0000.0001) // RANGE I (Lo:Hi:Step):( -2: 83: 1)
624     (PID.TID 0000.0001) // RANGE J (Lo:Hi:Step):( 45: -2: -1)
625     (PID.TID 0000.0001) // RANGE K (Lo:Hi:Step):( 1: 1: 1)
626     (PID.TID 0000.0001) // =======================================================
627     (PID.TID 0000.0001) // =======================================================
628     (PID.TID 0000.0001) // END OF FIELD =
629     (PID.TID 0000.0001) // =======================================================
630     (PID.TID 0000.0001)
631     (PID.TID 0000.0001) // =======================================================
632     (PID.TID 0000.0001) // Field hFacS at iteration 0
633     (PID.TID 0000.0001) // CMIN = 1.000000000000000E+00
634     (PID.TID 0000.0001) // CMAX = 1.000000000000000E+00
635     (PID.TID 0000.0001) // CINT = 0.000000000000000E+00
636     (PID.TID 0000.0001) // SYMBOLS (CMIN->CMAX): -abcdefghijklmnopqrstuvwxyz+
637     (PID.TID 0000.0001) // 0.0: .
638     (PID.TID 0000.0001) // RANGE I (Lo:Hi:Step):( -2: 83: 1)
639     (PID.TID 0000.0001) // RANGE J (Lo:Hi:Step):( 45: -2: -1)
640     (PID.TID 0000.0001) // RANGE K (Lo:Hi:Step):( 1: 1: 1)
641     (PID.TID 0000.0001) // =======================================================
642     (PID.TID 0000.0001) // =======================================================
643     (PID.TID 0000.0001) // END OF FIELD =
644     (PID.TID 0000.0001) // =======================================================
645     (PID.TID 0000.0001)
646     (PID.TID 0000.0001)
647     (PID.TID 0000.0001) // =======================================================
648     (PID.TID 0000.0001) // Calendar configuration >>> START <<<
649     (PID.TID 0000.0001) // =======================================================
650     (PID.TID 0000.0001)
651     (PID.TID 0000.0001) modelstart = /* Start time of the model integration [s] */
652     (PID.TID 0000.0001) 0.000000000000000E+00
653     (PID.TID 0000.0001) ;
654     (PID.TID 0000.0001) modelend = /* End time of the model integration [s] */
655     (PID.TID 0000.0001) 2.160000000000000E+04
656     (PID.TID 0000.0001) ;
657     (PID.TID 0000.0001) modelStep = /* Time interval for a model forward step [s] */
658     (PID.TID 0000.0001) 1.800000000000000E+03
659     (PID.TID 0000.0001) ;
660     (PID.TID 0000.0001) usingGregorianCalendar= /* Calendar Type: Gregorian Calendar */
661     (PID.TID 0000.0001) T
662     (PID.TID 0000.0001) ;
663     (PID.TID 0000.0001) usingJulianCalendar = /* Calendar Type: Julian Calendar */
664     (PID.TID 0000.0001) F
665     (PID.TID 0000.0001) ;
666     (PID.TID 0000.0001) usingNoLeapYearCal = /* Calendar Type: without Leap Year */
667     (PID.TID 0000.0001) F
668     (PID.TID 0000.0001) ;
669     (PID.TID 0000.0001) usingModelCalendar = /* Calendar Type: Model Calendar */
670     (PID.TID 0000.0001) F
671     (PID.TID 0000.0001) ;
672     (PID.TID 0000.0001) modelStartDate YYYYMMDD = /* Model start date YYYY-MM-DD */
673     (PID.TID 0000.0001) 19790101
674     (PID.TID 0000.0001) ;
675     (PID.TID 0000.0001) modelStartDate HHMMSS = /* Model start date HH-MM-SS */
676     (PID.TID 0000.0001) 0
677     (PID.TID 0000.0001) ;
678     (PID.TID 0000.0001) modelEndDate YYYYMMDD = /* Model end date YYYY-MM-DD */
679     (PID.TID 0000.0001) 19790101
680     (PID.TID 0000.0001) ;
681     (PID.TID 0000.0001) modelEndDate HHMMSS = /* Model end date HH-MM-SS */
682     (PID.TID 0000.0001) 60000
683     (PID.TID 0000.0001) ;
684     (PID.TID 0000.0001) intyears = /* Number of calendar years affected by the integration */
685     (PID.TID 0000.0001) 1
686     (PID.TID 0000.0001) ;
687     (PID.TID 0000.0001) intmonths= /* Number of calendar months affected by the integration */
688     (PID.TID 0000.0001) 1
689     (PID.TID 0000.0001) ;
690     (PID.TID 0000.0001) intdays = /* Number of calendar days affected by the integration */
691     (PID.TID 0000.0001) 1
692     (PID.TID 0000.0001) ;
693     (PID.TID 0000.0001) modelIter0 = /* Base timestep number */
694     (PID.TID 0000.0001) 0
695     (PID.TID 0000.0001) ;
696     (PID.TID 0000.0001) modelIterEnd = /* Final timestep number */
697     (PID.TID 0000.0001) 12
698     (PID.TID 0000.0001) ;
699     (PID.TID 0000.0001) modelIntSteps= /* Number of model timesteps */
700     (PID.TID 0000.0001) 12
701     (PID.TID 0000.0001) ;
702     (PID.TID 0000.0001)
703     (PID.TID 0000.0001) // =======================================================
704     (PID.TID 0000.0001) // Calendar configuration >>> END <<<
705     (PID.TID 0000.0001) // =======================================================
706     (PID.TID 0000.0001)
707     (PID.TID 0000.0001) GAD_INIT_FIXED: GAD_OlMinSize= 0 0 1
708     (PID.TID 0000.0001)
709     (PID.TID 0000.0001) // ===================================
710     (PID.TID 0000.0001) // GAD parameters :
711     (PID.TID 0000.0001) // ===================================
712     (PID.TID 0000.0001) tempAdvScheme = /* Temp. Horiz.Advection scheme selector */
713     (PID.TID 0000.0001) 2
714     (PID.TID 0000.0001) ;
715     (PID.TID 0000.0001) tempVertAdvScheme = /* Temp. Vert. Advection scheme selector */
716     (PID.TID 0000.0001) 2
717     (PID.TID 0000.0001) ;
718     (PID.TID 0000.0001) tempMultiDimAdvec = /* use Muti-Dim Advec method for Temp */
719     (PID.TID 0000.0001) F
720     (PID.TID 0000.0001) ;
721     (PID.TID 0000.0001) tempSOM_Advection = /* use 2nd Order Moment Advection for Temp */
722     (PID.TID 0000.0001) F
723     (PID.TID 0000.0001) ;
724     (PID.TID 0000.0001) AdamsBashforthGt = /* apply Adams-Bashforth extrapolation on Gt */
725 jmc 1.2 (PID.TID 0000.0001) T
726 mlosch 1.1 (PID.TID 0000.0001) ;
727     (PID.TID 0000.0001) AdamsBashforth_T = /* apply Adams-Bashforth extrapolation on Temp */
728     (PID.TID 0000.0001) F
729     (PID.TID 0000.0001) ;
730     (PID.TID 0000.0001) saltAdvScheme = /* Salt. Horiz.advection scheme selector */
731     (PID.TID 0000.0001) 2
732     (PID.TID 0000.0001) ;
733     (PID.TID 0000.0001) saltVertAdvScheme = /* Salt. Vert. Advection scheme selector */
734     (PID.TID 0000.0001) 2
735     (PID.TID 0000.0001) ;
736     (PID.TID 0000.0001) saltMultiDimAdvec = /* use Muti-Dim Advec method for Salt */
737     (PID.TID 0000.0001) F
738     (PID.TID 0000.0001) ;
739     (PID.TID 0000.0001) saltSOM_Advection = /* use 2nd Order Moment Advection for Salt */
740     (PID.TID 0000.0001) F
741     (PID.TID 0000.0001) ;
742     (PID.TID 0000.0001) AdamsBashforthGs = /* apply Adams-Bashforth extrapolation on Gs */
743     (PID.TID 0000.0001) F
744     (PID.TID 0000.0001) ;
745     (PID.TID 0000.0001) AdamsBashforth_S = /* apply Adams-Bashforth extrapolation on Salt */
746     (PID.TID 0000.0001) F
747     (PID.TID 0000.0001) ;
748     (PID.TID 0000.0001) // ===================================
749     (PID.TID 0000.0001)
750     (PID.TID 0000.0001) // =======================================================
751     (PID.TID 0000.0001) // External forcing (EXF) configuration >>> START <<<
752     (PID.TID 0000.0001) // =======================================================
753     (PID.TID 0000.0001)
754     (PID.TID 0000.0001) EXF general parameters:
755     (PID.TID 0000.0001)
756     (PID.TID 0000.0001) exf_iprec = /* exf file precision */
757     (PID.TID 0000.0001) 64
758     (PID.TID 0000.0001) ;
759     (PID.TID 0000.0001) useExfYearlyFields = /* add extension _YEAR to input file names */
760     (PID.TID 0000.0001) F
761     (PID.TID 0000.0001) ;
762     (PID.TID 0000.0001) twoDigitYear = /* use 2-digit year extension */
763     (PID.TID 0000.0001) F
764     (PID.TID 0000.0001) ;
765     (PID.TID 0000.0001) useExfCheckRange = /* check for fields range */
766     (PID.TID 0000.0001) T
767     (PID.TID 0000.0001) ;
768     (PID.TID 0000.0001) exf_debugLev = /* select EXF-debug printing level */
769     (PID.TID 0000.0001) 2
770     (PID.TID 0000.0001) ;
771     (PID.TID 0000.0001) exf_monFreq = /* EXF monitor frequency [ s ] */
772     (PID.TID 0000.0001) 8.640000000000000E+07
773     (PID.TID 0000.0001) ;
774     (PID.TID 0000.0001) repeatPeriod = /* period for cycling forcing dataset [ s ] */
775     (PID.TID 0000.0001) 0.000000000000000E+00
776     (PID.TID 0000.0001) ;
777     (PID.TID 0000.0001) climTempFreeze= /* Minimum climatological temperature [deg.C] */
778     (PID.TID 0000.0001) -1.900000000000000E+00
779     (PID.TID 0000.0001) ;
780     (PID.TID 0000.0001) windStressMax = /* Maximum absolute windstress [ Pa ] */
781     (PID.TID 0000.0001) 2.000000000000000E+00
782     (PID.TID 0000.0001) ;
783     (PID.TID 0000.0001) stressIsOnCgrid = /* set u,v_stress on Arakawa C-grid */
784     (PID.TID 0000.0001) F
785     (PID.TID 0000.0001) ;
786     (PID.TID 0000.0001) cen2kel = /* conversion of deg. Centigrade to Kelvin [K] */
787     (PID.TID 0000.0001) 2.731500000000000E+02
788     (PID.TID 0000.0001) ;
789     (PID.TID 0000.0001) gravity_mks= /* gravitational acceleration [m/s^2] */
790     (PID.TID 0000.0001) 9.810000000000000E+00
791     (PID.TID 0000.0001) ;
792     (PID.TID 0000.0001) atmrho = /* mean atmospheric density [kg/m^3] */
793     (PID.TID 0000.0001) 1.200000000000000E+00
794     (PID.TID 0000.0001) ;
795     (PID.TID 0000.0001) atmcp = /* mean atmospheric specific heat [J/kg/K] */
796     (PID.TID 0000.0001) 1.005000000000000E+03
797     (PID.TID 0000.0001) ;
798     (PID.TID 0000.0001) flamb = /* latent heat of evaporation [J/kg] */
799     (PID.TID 0000.0001) 2.500000000000000E+06
800     (PID.TID 0000.0001) ;
801     (PID.TID 0000.0001) flami = /* latent heat of pure-ice melting [J/kg] */
802     (PID.TID 0000.0001) 3.340000000000000E+05
803     (PID.TID 0000.0001) ;
804     (PID.TID 0000.0001) cvapor_fac = /* const. for Saturation calculation [?] */
805     (PID.TID 0000.0001) 6.403800000000000E+05
806     (PID.TID 0000.0001) ;
807     (PID.TID 0000.0001) cvapor_exp = /* const. for Saturation calculation [?] */
808     (PID.TID 0000.0001) 5.107400000000000E+03
809     (PID.TID 0000.0001) ;
810     (PID.TID 0000.0001) cvapor_fac_ice= /* const. for Saturation calculation [?] */
811     (PID.TID 0000.0001) 1.163780000000000E+07
812     (PID.TID 0000.0001) ;
813     (PID.TID 0000.0001) cvapor_exp_ice= /* const. for Saturation calculation [?] */
814     (PID.TID 0000.0001) 5.897800000000000E+03
815     (PID.TID 0000.0001) ;
816     (PID.TID 0000.0001) humid_fac = /* humidity coef. in virtual temp. [(kg/kg)^-1] */
817     (PID.TID 0000.0001) 6.060000000000000E-01
818     (PID.TID 0000.0001) ;
819     (PID.TID 0000.0001) gamma_blk = /* adiabatic lapse rate [?] */
820     (PID.TID 0000.0001) 1.000000000000000E-02
821     (PID.TID 0000.0001) ;
822     (PID.TID 0000.0001) saltsat = /* reduction of Qsat over salty water [-] */
823     (PID.TID 0000.0001) 9.800000000000000E-01
824     (PID.TID 0000.0001) ;
825     (PID.TID 0000.0001) noNegativeEvap = /* prevent negative Evaporation */
826     (PID.TID 0000.0001) F
827     (PID.TID 0000.0001) ;
828     (PID.TID 0000.0001) sstExtrapol = /* extrapolation coeff from lev. 1 & 2 to surf [-] */
829     (PID.TID 0000.0001) 0.000000000000000E+00
830     (PID.TID 0000.0001) ;
831     (PID.TID 0000.0001) cDrag_1 = /* coef used in drag calculation [?] */
832     (PID.TID 0000.0001) 2.700000000000000E-03
833     (PID.TID 0000.0001) ;
834     (PID.TID 0000.0001) cDrag_2 = /* coef used in drag calculation [?] */
835     (PID.TID 0000.0001) 1.420000000000000E-04
836     (PID.TID 0000.0001) ;
837     (PID.TID 0000.0001) cDrag_3 = /* coef used in drag calculation [?] */
838     (PID.TID 0000.0001) 7.640000000000000E-05
839     (PID.TID 0000.0001) ;
840     (PID.TID 0000.0001) cStanton_1 = /* coef used in Stanton number calculation [?] */
841     (PID.TID 0000.0001) 3.270000000000000E-02
842     (PID.TID 0000.0001) ;
843     (PID.TID 0000.0001) cStanton_2 = /* coef used in Stanton number calculation [?] */
844     (PID.TID 0000.0001) 1.800000000000000E-02
845     (PID.TID 0000.0001) ;
846     (PID.TID 0000.0001) cDalton = /* coef used in Dalton number calculation [?] */
847     (PID.TID 0000.0001) 3.460000000000000E-02
848     (PID.TID 0000.0001) ;
849     (PID.TID 0000.0001) exf_scal_BulkCdn= /* Drag coefficient scaling factor [-] */
850     (PID.TID 0000.0001) 1.000000000000000E+00
851     (PID.TID 0000.0001) ;
852     (PID.TID 0000.0001) zolmin = /* minimum stability parameter [?] */
853     (PID.TID 0000.0001) -1.000000000000000E+02
854     (PID.TID 0000.0001) ;
855     (PID.TID 0000.0001) psim_fac = /* coef used in turbulent fluxes calculation [-] */
856     (PID.TID 0000.0001) 5.000000000000000E+00
857     (PID.TID 0000.0001) ;
858     (PID.TID 0000.0001) zref = /* reference height [ m ] */
859     (PID.TID 0000.0001) 1.000000000000000E+01
860     (PID.TID 0000.0001) ;
861     (PID.TID 0000.0001) hu = /* height of mean wind [ m ] */
862     (PID.TID 0000.0001) 1.000000000000000E+01
863     (PID.TID 0000.0001) ;
864     (PID.TID 0000.0001) ht = /* height of mean temperature [ m ] */
865     (PID.TID 0000.0001) 2.000000000000000E+00
866     (PID.TID 0000.0001) ;
867     (PID.TID 0000.0001) hq = /* height of mean spec.humidity [ m ] */
868     (PID.TID 0000.0001) 2.000000000000000E+00
869     (PID.TID 0000.0001) ;
870     (PID.TID 0000.0001) uMin = /* minimum wind speed [m/s] */
871     (PID.TID 0000.0001) 5.000000000000000E-01
872     (PID.TID 0000.0001) ;
873     (PID.TID 0000.0001) useStabilityFct_overIce= /* transfert Coeffs over sea-ice depend on stability */
874     (PID.TID 0000.0001) F
875     (PID.TID 0000.0001) ;
876     (PID.TID 0000.0001) exf_iceCd = /* drag coefficient over sea-ice (fixed) [-] */
877     (PID.TID 0000.0001) 1.630000000000000E-03
878     (PID.TID 0000.0001) ;
879     (PID.TID 0000.0001) exf_iceCe = /* transfert coeff. over sea-ice, for Evap (fixed) [-] */
880     (PID.TID 0000.0001) 1.630000000000000E-03
881     (PID.TID 0000.0001) ;
882     (PID.TID 0000.0001) exf_iceCh = /* transfert coeff. over sea-ice, Sens.Heat.(fixed)[-] */
883     (PID.TID 0000.0001) 1.630000000000000E-03
884     (PID.TID 0000.0001) ;
885     (PID.TID 0000.0001) exf_albedo = /* Sea-water albedo [-] */
886     (PID.TID 0000.0001) 1.000000000000000E-01
887     (PID.TID 0000.0001) ;
888     (PID.TID 0000.0001) useExfZenAlbedo = /* Sea-water albedo varies with zenith angle */
889     (PID.TID 0000.0001) F
890     (PID.TID 0000.0001) ;
891     (PID.TID 0000.0001) select_ZenAlbedo = /* Sea-water albedo computation method */
892     (PID.TID 0000.0001) 0
893     (PID.TID 0000.0001) ;
894     (PID.TID 0000.0001) useExfZenIncoming = /* compute incoming solar radiation */
895     (PID.TID 0000.0001) F
896     (PID.TID 0000.0001) ;
897     (PID.TID 0000.0001) ocean_emissivity = /* longwave ocean-surface emissivity [-] */
898     (PID.TID 0000.0001) 9.700176366843034E-01
899     (PID.TID 0000.0001) ;
900     (PID.TID 0000.0001) ice_emissivity = /* longwave seaice emissivity [-] */
901     (PID.TID 0000.0001) 9.500000000000000E-01
902     (PID.TID 0000.0001) ;
903     (PID.TID 0000.0001) snow_emissivity = /* longwave snow emissivity [-] */
904     (PID.TID 0000.0001) 9.500000000000000E-01
905     (PID.TID 0000.0001) ;
906     (PID.TID 0000.0001)
907     (PID.TID 0000.0001) EXF main CPP flags:
908     (PID.TID 0000.0001)
909     (PID.TID 0000.0001) // USE_EXF_INTERPOLATION: NOT defined
910     (PID.TID 0000.0001) // ALLOW_ATM_TEMP: defined
911     (PID.TID 0000.0001) // ALLOW_ATM_WIND (useAtmWind): defined
912     (PID.TID 0000.0001) // ALLOW_DOWNWARD_RADIATION: defined
913     (PID.TID 0000.0001) // ALLOW_BULKFORMULAE: defined
914     (PID.TID 0000.0001)
915     (PID.TID 0000.0001) Net shortwave flux forcing starts at 0.
916     (PID.TID 0000.0001) Net shortwave flux forcing period is 0.
917     (PID.TID 0000.0001) Net shortwave flux forcing is read from file:
918     (PID.TID 0000.0001) >> <<
919     (PID.TID 0000.0001)
920     (PID.TID 0000.0001) Zonal wind forcing starts at 0.
921     (PID.TID 0000.0001) Zonal wind forcing period is 0.
922     (PID.TID 0000.0001) Zonal wind forcing is read from file:
923     (PID.TID 0000.0001) >> windx.bin <<
924     (PID.TID 0000.0001)
925     (PID.TID 0000.0001) Meridional wind forcing starts at 0.
926     (PID.TID 0000.0001) Meridional wind forcing period is 0.
927     (PID.TID 0000.0001) Meridional wind forcing is read from file:
928     (PID.TID 0000.0001) >> <<
929     (PID.TID 0000.0001)
930     (PID.TID 0000.0001) Atmospheric temperature starts at 0.
931     (PID.TID 0000.0001) Atmospheric temperature period is 0.
932     (PID.TID 0000.0001) Atmospheric temperature is read from file:
933     (PID.TID 0000.0001) >> <<
934     (PID.TID 0000.0001)
935     (PID.TID 0000.0001) Atmospheric specific humidity starts at 0.
936     (PID.TID 0000.0001) Atmospheric specific humidity period is 0.
937     (PID.TID 0000.0001) Atmospheric specific humidity is read from file:
938     (PID.TID 0000.0001) >> <<
939     (PID.TID 0000.0001)
940     (PID.TID 0000.0001) Net longwave flux forcing starts at 0.
941     (PID.TID 0000.0001) Net longwave flux forcing period is 0.
942     (PID.TID 0000.0001) Net longwave flux forcing is read from file:
943     (PID.TID 0000.0001) >> <<
944     (PID.TID 0000.0001)
945     (PID.TID 0000.0001) Precipitation data set starts at 0.
946     (PID.TID 0000.0001) Precipitation data period is 0.
947     (PID.TID 0000.0001) Precipitation data is read from file:
948     (PID.TID 0000.0001) >> <<
949     (PID.TID 0000.0001)
950     (PID.TID 0000.0001) // EXF_READ_EVAP: NOT defined
951     (PID.TID 0000.0001)
952     (PID.TID 0000.0001) // ALLOW_RUNOFF: defined
953     (PID.TID 0000.0001) Runoff starts at 0.
954     (PID.TID 0000.0001) Runoff period is 0.
955     (PID.TID 0000.0001) Runoff is read from file:
956     (PID.TID 0000.0001) >> <<
957     (PID.TID 0000.0001) // ALLOW_RUNOFTEMP: NOT defined
958     (PID.TID 0000.0001)
959     (PID.TID 0000.0001) Downward shortwave flux forcing starts at 0.
960     (PID.TID 0000.0001) Downward shortwave flux forcing period is 0.
961     (PID.TID 0000.0001) Downward shortwave flux forcing is read from file:
962     (PID.TID 0000.0001) >> <<
963     (PID.TID 0000.0001)
964     (PID.TID 0000.0001) Downward longwave flux forcing starts at 0.
965     (PID.TID 0000.0001) Downward longwave flux forcing period is 0.
966     (PID.TID 0000.0001) Downward longwave flux forcing is read from file:
967     (PID.TID 0000.0001) >> <<
968     (PID.TID 0000.0001)
969     (PID.TID 0000.0001) Atmospheric pressure forcing starts at 0.
970     (PID.TID 0000.0001) Atmospheric pressure forcing period is 0.
971     (PID.TID 0000.0001) Atmospheric pressureforcing is read from file:
972     (PID.TID 0000.0001) >> <<
973     (PID.TID 0000.0001)
974     (PID.TID 0000.0001) // =======================================================
975     (PID.TID 0000.0001) // External forcing (EXF) climatology configuration :
976     (PID.TID 0000.0001) // =======================================================
977     (PID.TID 0000.0001)
978     (PID.TID 0000.0001) // ALLOW_CLIMSST_RELAXATION: defined
979     (PID.TID 0000.0001) // ALLOW_CLIMSSS_RELAXATION: defined
980     (PID.TID 0000.0001)
981     (PID.TID 0000.0001) Climatological SST starts at 0.
982     (PID.TID 0000.0001) Climatological SST period is 0.
983     (PID.TID 0000.0001) Climatological SST is read from file:
984     (PID.TID 0000.0001) >> <<
985     (PID.TID 0000.0001)
986     (PID.TID 0000.0001) Climatological SSS starts at 0.
987     (PID.TID 0000.0001) Climatological SSS period is 0.
988     (PID.TID 0000.0001) Climatological SSS is read from file:
989     (PID.TID 0000.0001) >> <<
990     (PID.TID 0000.0001)
991     (PID.TID 0000.0001) // =======================================================
992     (PID.TID 0000.0001) // External forcing (EXF) configuration >>> END <<<
993     (PID.TID 0000.0001) // =======================================================
994     (PID.TID 0000.0001)
995     (PID.TID 0000.0001) SEAICE_INIT_FIXED: 7 sea ice thickness categories
996     (PID.TID 0000.0001) SEAICE_INIT_FIXED: Hlimit = 0.00 0.46 0.96 1.57 2.40 3.74 6.13 999.9
997     (PID.TID 0000.0001) // =======================================================
998     (PID.TID 0000.0001) // Seaice configuration (SEAICE_PARM01) >>> START <<<
999     (PID.TID 0000.0001) // =======================================================
1000     (PID.TID 0000.0001)
1001     (PID.TID 0000.0001) Seaice time stepping configuration > START <
1002     (PID.TID 0000.0001) ----------------------------------------------
1003     (PID.TID 0000.0001) SEAICE_deltaTtherm= /* thermodynamic timestep */
1004     (PID.TID 0000.0001) 1.800000000000000E+03
1005     (PID.TID 0000.0001) ;
1006     (PID.TID 0000.0001) SEAICE_deltaTdyn = /* dynamic timestep */
1007     (PID.TID 0000.0001) 1.800000000000000E+03
1008     (PID.TID 0000.0001) ;
1009     (PID.TID 0000.0001) SEAICE_deltaTevp = /* EVP timestep */
1010     (PID.TID 0000.0001) 1.234567000000000E+05
1011     (PID.TID 0000.0001) ;
1012     (PID.TID 0000.0001) SEAICEuseBDF2 = /* use backw. differencing for mom. eq. */
1013     (PID.TID 0000.0001) F
1014     (PID.TID 0000.0001) ;
1015     (PID.TID 0000.0001) SEAICErestoreUnderIce = /* restore T and S under ice */
1016     (PID.TID 0000.0001) F
1017     (PID.TID 0000.0001) ;
1018     (PID.TID 0000.0001)
1019     (PID.TID 0000.0001) Seaice dynamics configuration > START <
1020     (PID.TID 0000.0001) ------------------------------------------
1021     (PID.TID 0000.0001) SEAICEuseDYNAMICS = /* use dynamics */
1022     (PID.TID 0000.0001) T
1023     (PID.TID 0000.0001) ;
1024     (PID.TID 0000.0001) model grid type = /* type of sea ice model grid */
1025     (PID.TID 0000.0001) 'C-GRID'
1026     (PID.TID 0000.0001) ;
1027 mlosch 1.3 (PID.TID 0000.0001) SEAICEuseStrImpCpl = /* use strongly implicit coupling */
1028     (PID.TID 0000.0001) F
1029     (PID.TID 0000.0001) ;
1030 mlosch 1.1 (PID.TID 0000.0001) SEAICEuseEVP = /* use EVP solver rather than LSR */
1031     (PID.TID 0000.0001) F
1032     (PID.TID 0000.0001) ;
1033     (PID.TID 0000.0001) SEAICEuseFREEDRIFT = /* use free drift solution */
1034     (PID.TID 0000.0001) F
1035     (PID.TID 0000.0001) ;
1036     (PID.TID 0000.0001) OCEAN_drag = /* air-ocean drag coefficient */
1037     (PID.TID 0000.0001) 1.000000000000000E-03
1038     (PID.TID 0000.0001) ;
1039     (PID.TID 0000.0001) SEAICE_drag = /* air-ice drag coefficient */
1040     (PID.TID 0000.0001) 2.000000000000000E-03
1041     (PID.TID 0000.0001) ;
1042     (PID.TID 0000.0001) SEAICE_drag_south = /* Southern Ocean SEAICE_drag */
1043     (PID.TID 0000.0001) 2.000000000000000E-03
1044     (PID.TID 0000.0001) ;
1045     (PID.TID 0000.0001) SEAICE_waterDrag = /* water-ice drag * density */
1046     (PID.TID 0000.0001) 5.500000000000000E+00
1047     (PID.TID 0000.0001) ;
1048     (PID.TID 0000.0001) SEAICE_waterDrag_south = /* Southern Ocean waterDrag */
1049     (PID.TID 0000.0001) 5.500000000000000E+00
1050     (PID.TID 0000.0001) ;
1051     (PID.TID 0000.0001) SEAICEuseTilt = /* include surface tilt in dyna. */
1052     (PID.TID 0000.0001) T
1053     (PID.TID 0000.0001) ;
1054     (PID.TID 0000.0001) SEAICEuseTEM = /* use truncated ellipse rheology */
1055     (PID.TID 0000.0001) F
1056     (PID.TID 0000.0001) ;
1057     (PID.TID 0000.0001) SEAICE_strength = /* sea-ice strength Pstar */
1058     (PID.TID 0000.0001) 2.750000000000000E+04
1059     (PID.TID 0000.0001) ;
1060 mlosch 1.3 (PID.TID 0000.0001) SEAICE_cStar = /* sea-ice strength parameter cStar */
1061     (PID.TID 0000.0001) 2.000000000000000E+01
1062     (PID.TID 0000.0001) ;
1063     (PID.TID 0000.0001) SEAICE_tensilFac = /* sea-ice tensile strength factor */
1064     (PID.TID 0000.0001) 0.000000000000000E+00
1065     (PID.TID 0000.0001) ;
1066 mlosch 1.1 (PID.TID 0000.0001) SEAICEpresH0 = /* sea-ice strength Heff threshold */
1067     (PID.TID 0000.0001) 1.000000000000000E+00
1068     (PID.TID 0000.0001) ;
1069     (PID.TID 0000.0001) SEAICEpresPow0 = /* exponent for Heff<SEAICEpresH0 */
1070     (PID.TID 0000.0001) 1
1071     (PID.TID 0000.0001) ;
1072     (PID.TID 0000.0001) SEAICEpresPow1 = /* exponent for Heff>SEAICEpresH0 */
1073     (PID.TID 0000.0001) 1
1074     (PID.TID 0000.0001) ;
1075     (PID.TID 0000.0001) SEAICEetaZmethod = /* method computing eta at Z-point */
1076     (PID.TID 0000.0001) 0
1077     (PID.TID 0000.0001) ;
1078     (PID.TID 0000.0001) SEAICE_zetaMin = /* lower bound for viscosity */
1079     (PID.TID 0000.0001) 0.000000000000000E+00
1080     (PID.TID 0000.0001) ;
1081     (PID.TID 0000.0001) SEAICE_eccen = /* elliptical yield curve eccent */
1082     (PID.TID 0000.0001) 2.000000000000000E+00
1083     (PID.TID 0000.0001) ;
1084     (PID.TID 0000.0001) SEAICEstressFactor = /* wind stress scaling factor */
1085     (PID.TID 0000.0001) 1.000000000000000E+00
1086     (PID.TID 0000.0001) ;
1087     (PID.TID 0000.0001) SEAICE_airTurnAngle = /* air-ice turning angle */
1088     (PID.TID 0000.0001) 0.000000000000000E+00
1089     (PID.TID 0000.0001) ;
1090     (PID.TID 0000.0001) SEAICE_waterTurnAngle = /* ice-water turning angle */
1091     (PID.TID 0000.0001) 0.000000000000000E+00
1092     (PID.TID 0000.0001) ;
1093     (PID.TID 0000.0001) SEAICEuseMetricTerms = /* use metric terms */
1094     (PID.TID 0000.0001) T
1095     (PID.TID 0000.0001) ;
1096     (PID.TID 0000.0001) SEAICE_no_slip = /* no slip boundary conditions */
1097     (PID.TID 0000.0001) F
1098     (PID.TID 0000.0001) ;
1099     (PID.TID 0000.0001) SEAICE_clipVeloctities = /* impose max. vels. */
1100     (PID.TID 0000.0001) F
1101     (PID.TID 0000.0001) ;
1102     (PID.TID 0000.0001) useHB87stressCoupling = /* altern. ice-ocean stress */
1103     (PID.TID 0000.0001) F
1104     (PID.TID 0000.0001) ;
1105     (PID.TID 0000.0001) SEAICE_maskRHS = /* mask RHS of solver */
1106     (PID.TID 0000.0001) F
1107     (PID.TID 0000.0001) ;
1108     (PID.TID 0000.0001) LSR_mixIniGuess = /* mix free-drift sol. into LSR initial Guess */
1109     (PID.TID 0000.0001) 1
1110     (PID.TID 0000.0001) ;
1111     (PID.TID 0000.0001) SOLV_MAX_ITERS = /* max. number of LSR solver steps */
1112     (PID.TID 0000.0001) 1500
1113     (PID.TID 0000.0001) ;
1114     (PID.TID 0000.0001) SEAICE_LSRrelaxU = /* LSR solver: relaxation parameter */
1115     (PID.TID 0000.0001) 9.500000000000000E-01
1116     (PID.TID 0000.0001) ;
1117     (PID.TID 0000.0001) SEAICE_LSRrelaxV = /* LSR solver: relaxation parameter */
1118     (PID.TID 0000.0001) 9.500000000000000E-01
1119     (PID.TID 0000.0001) ;
1120     (PID.TID 0000.0001) LSR_ERROR = /* sets accuracy of LSR solver */
1121     (PID.TID 0000.0001) 1.000000000000000E-12
1122     (PID.TID 0000.0001) ;
1123     (PID.TID 0000.0001) SOLV_NCHECK = /* test interval for LSR solver */
1124     (PID.TID 0000.0001) 2
1125     (PID.TID 0000.0001) ;
1126     (PID.TID 0000.0001) NPSEUDOTIMESTEPS = /* num. of extra pseudo time steps */
1127     (PID.TID 0000.0001) 2
1128     (PID.TID 0000.0001) ;
1129     (PID.TID 0000.0001) SEAICEuseMultiTileSolver = /* use full domain tri-diag solver */
1130     (PID.TID 0000.0001) F
1131     (PID.TID 0000.0001) ;
1132     (PID.TID 0000.0001) SEAICE_OLx = /* overlap for LSR/preconditioner */
1133 mlosch 1.3 (PID.TID 0000.0001) 0
1134 mlosch 1.1 (PID.TID 0000.0001) ;
1135     (PID.TID 0000.0001) SEAICE_OLy = /* overlap for LSR/preconditioner */
1136 mlosch 1.3 (PID.TID 0000.0001) 0
1137 mlosch 1.1 (PID.TID 0000.0001) ;
1138     (PID.TID 0000.0001)
1139     (PID.TID 0000.0001) Seaice advection diffusion config, > START <
1140     (PID.TID 0000.0001) -----------------------------------------------
1141     (PID.TID 0000.0001) SEAICEadvHeff = /* advect effective ice thickness */
1142     (PID.TID 0000.0001) T
1143     (PID.TID 0000.0001) ;
1144     (PID.TID 0000.0001) SEAICEadvArea = /* advect fractional ice area */
1145     (PID.TID 0000.0001) T
1146     (PID.TID 0000.0001) ;
1147     (PID.TID 0000.0001) SEAICEadvSnow = /* advect snow layer together with ice */
1148     (PID.TID 0000.0001) T
1149     (PID.TID 0000.0001) ;
1150     (PID.TID 0000.0001) SEAICEadvScheme = /* advection scheme for ice */
1151     (PID.TID 0000.0001) 77
1152     (PID.TID 0000.0001) ;
1153     (PID.TID 0000.0001) SEAICEadvSchArea = /* advection scheme for area */
1154     (PID.TID 0000.0001) 77
1155     (PID.TID 0000.0001) ;
1156     (PID.TID 0000.0001) SEAICEadvSchHeff = /* advection scheme for thickness */
1157     (PID.TID 0000.0001) 77
1158     (PID.TID 0000.0001) ;
1159     (PID.TID 0000.0001) SEAICEadvSchSnow = /* advection scheme for snow */
1160     (PID.TID 0000.0001) 77
1161     (PID.TID 0000.0001) ;
1162     (PID.TID 0000.0001) SEAICEdiffKhArea = /* diffusivity (m^2/s) for area */
1163     (PID.TID 0000.0001) 0.000000000000000E+00
1164     (PID.TID 0000.0001) ;
1165     (PID.TID 0000.0001) SEAICEdiffKhHeff = /* diffusivity (m^2/s) for heff */
1166     (PID.TID 0000.0001) 0.000000000000000E+00
1167     (PID.TID 0000.0001) ;
1168     (PID.TID 0000.0001) SEAICEdiffKhSnow = /* diffusivity (m^2/s) for snow */
1169     (PID.TID 0000.0001) 0.000000000000000E+00
1170     (PID.TID 0000.0001) ;
1171     (PID.TID 0000.0001) DIFF1 = /* parameter used in advect.F [m/s] */
1172     (PID.TID 0000.0001) 0.000000000000000E+00
1173     (PID.TID 0000.0001) ;
1174     (PID.TID 0000.0001)
1175     (PID.TID 0000.0001) Seaice thermodynamics configuration > START <
1176     (PID.TID 0000.0001) -----------------------------------------------
1177     (PID.TID 0000.0001) SEAICE_rhoIce = /* density of sea ice (kg/m3) */
1178     (PID.TID 0000.0001) 9.100000000000000E+02
1179     (PID.TID 0000.0001) ;
1180     (PID.TID 0000.0001) SEAICE_rhoSnow = /* density of snow (kg/m3) */
1181     (PID.TID 0000.0001) 3.300000000000000E+02
1182     (PID.TID 0000.0001) ;
1183     (PID.TID 0000.0001) SEAICE_rhoAir = /* density of air (kg/m3) */
1184     (PID.TID 0000.0001) 1.200000000000000E+00
1185     (PID.TID 0000.0001) ;
1186     (PID.TID 0000.0001) usePW79thermodynamics = /* default 0-layer TD */
1187     (PID.TID 0000.0001) F
1188     (PID.TID 0000.0001) ;
1189     (PID.TID 0000.0001) pkg/seaice thermodynamics is OFF
1190     (PID.TID 0000.0001)
1191     (PID.TID 0000.0001) Seaice initialization and IO config., > START <
1192     (PID.TID 0000.0001) -------------------------------------------------
1193     (PID.TID 0000.0001) SEAICE_initialHEFF= /* initial sea-ice thickness */
1194     (PID.TID 0000.0001) 0.000000000000000E+00
1195     (PID.TID 0000.0001) ;
1196     (PID.TID 0000.0001) AreaFile = /* Initial ice concentration File */
1197     (PID.TID 0000.0001) 'const100.bin'
1198     (PID.TID 0000.0001) ;
1199     (PID.TID 0000.0001) HeffFile = /* Initial effective ice thickness File */
1200     (PID.TID 0000.0001) 'heff_quartic.bin'
1201     (PID.TID 0000.0001) ;
1202     (PID.TID 0000.0001) HsnowFile = /* Initial snow thickness File */
1203     (PID.TID 0000.0001) 'const_00.bin'
1204     (PID.TID 0000.0001) ;
1205     (PID.TID 0000.0001) uIceFile = /* Initial U-ice velocity File */
1206     (PID.TID 0000.0001) ''
1207     (PID.TID 0000.0001) ;
1208     (PID.TID 0000.0001) vIceFile = /* Initial V-ice velocity File */
1209     (PID.TID 0000.0001) ''
1210     (PID.TID 0000.0001) ;
1211     (PID.TID 0000.0001) SEAICEwriteState = /* write sea ice state to file */
1212     (PID.TID 0000.0001) T
1213     (PID.TID 0000.0001) ;
1214     (PID.TID 0000.0001) SEAICE_monFreq = /* monitor frequency */
1215     (PID.TID 0000.0001) 1.800000000000000E+03
1216     (PID.TID 0000.0001) ;
1217     (PID.TID 0000.0001) SEAICE_dumpFreq = /* dump frequency */
1218 jmc 1.2 (PID.TID 0000.0001) 8.640000000000000E+05
1219 mlosch 1.1 (PID.TID 0000.0001) ;
1220     (PID.TID 0000.0001) SEAICE_taveFreq = /* time-averaging frequency */
1221     (PID.TID 0000.0001) 0.000000000000000E+00
1222     (PID.TID 0000.0001) ;
1223     (PID.TID 0000.0001) SEAICE_mon_stdio = /* write monitor to std-outp */
1224     (PID.TID 0000.0001) T
1225     (PID.TID 0000.0001) ;
1226     (PID.TID 0000.0001) SEAICE_dump_mdsio = /* write snap-shot using MDSIO */
1227     (PID.TID 0000.0001) T
1228     (PID.TID 0000.0001) ;
1229     (PID.TID 0000.0001) SEAICE_tave_mdsio = /* write TimeAverage using MDSIO */
1230     (PID.TID 0000.0001) T
1231     (PID.TID 0000.0001) ;
1232     (PID.TID 0000.0001)
1233     (PID.TID 0000.0001) Seaice regularization numbers, > START <
1234     (PID.TID 0000.0001) -----------------------------------------------
1235     (PID.TID 0000.0001) SEAICE_EPS = /* reduce derivative singularities */
1236     (PID.TID 0000.0001) 1.000000000000000E-10
1237     (PID.TID 0000.0001) ;
1238     (PID.TID 0000.0001) SEAICE_EPS_SQ = /* reduce derivative singularities */
1239     (PID.TID 0000.0001) 1.000000000000000E-20
1240     (PID.TID 0000.0001) ;
1241     (PID.TID 0000.0001) SEAICE_area_reg = /* reduce derivative singularities */
1242     (PID.TID 0000.0001) 1.000000000000000E-05
1243     (PID.TID 0000.0001) ;
1244     (PID.TID 0000.0001) SEAICE_hice_reg = /* reduce derivative singularities */
1245     (PID.TID 0000.0001) 5.000000000000000E-02
1246     (PID.TID 0000.0001) ;
1247     (PID.TID 0000.0001) SEAICE_area_floor = /* reduce derivative singularities */
1248     (PID.TID 0000.0001) 1.000000000000000E-05
1249     (PID.TID 0000.0001) ;
1250     (PID.TID 0000.0001)
1251     (PID.TID 0000.0001) // =======================================================
1252     (PID.TID 0000.0001) // Seaice configuration (SEAICE_PARM01) >>> END <<<
1253     (PID.TID 0000.0001) // =======================================================
1254     (PID.TID 0000.0001)
1255     (PID.TID 0000.0001) ------------------------------------------------------------
1256     (PID.TID 0000.0001) DIAGNOSTICS_SET_LEVELS: done
1257 mlosch 1.3 (PID.TID 0000.0001) Total Nb of available Diagnostics: ndiagt= 215
1258 mlosch 1.1 (PID.TID 0000.0001) write list of available Diagnostics to file: available_diagnostics.log
1259 mlosch 1.3 (PID.TID 0000.0001) SETDIAG: Allocate 1 x 1 Levels for Diagnostic # 153 SIuice
1260     (PID.TID 0000.0001) SETDIAG: Allocate 1 x 1 Levels for Diagnostic # 154 SIvice
1261     (PID.TID 0000.0001) SETDIAG: Allocate 1 x 1 Levels for Diagnostic # 147 SIheff
1262     (PID.TID 0000.0001) SETDIAG: Allocate 1 x 1 Levels for Diagnostic # 144 SIarea
1263 mlosch 1.1 (PID.TID 0000.0001) space allocated for all diagnostics: 4 levels
1264 mlosch 1.3 (PID.TID 0000.0001) set mate pointer for diag # 153 SIuice , Parms: UU M1 , mate: 154
1265     (PID.TID 0000.0001) set mate pointer for diag # 154 SIvice , Parms: VV M1 , mate: 153
1266 mlosch 1.1 (PID.TID 0000.0001) DIAGNOSTICS_SET_POINTERS: Set levels for Outp.Stream: snapshot
1267     (PID.TID 0000.0001) Levels: 1.
1268     (PID.TID 0000.0001) DIAGNOSTICS_SET_POINTERS: done
1269     (PID.TID 0000.0001) ------------------------------------------------------------
1270     (PID.TID 0000.0001) DIAGSTATS_SET_REGIONS: define no region
1271     (PID.TID 0000.0001) ------------------------------------------------------------
1272 mlosch 1.3 (PID.TID 0000.0001) SETDIAG: Allocate 1 Levels for Stats-Diag # 144 SIarea
1273     (PID.TID 0000.0001) SETDIAG: Allocate 1 Levels for Stats-Diag # 147 SIheff
1274     (PID.TID 0000.0001) SETDIAG: Allocate 1 Levels for Stats-Diag # 149 SIhsnow
1275     (PID.TID 0000.0001) SETDIAG: Allocate 1 Levels for Stats-Diag # 153 SIuice
1276     (PID.TID 0000.0001) SETDIAG: Allocate 1 Levels for Stats-Diag # 154 SIvice
1277 mlosch 1.1 (PID.TID 0000.0001) space allocated for all stats-diags: 5 levels
1278     (PID.TID 0000.0001) DIAGSTATS_SET_POINTERS: done
1279     (PID.TID 0000.0001) ------------------------------------------------------------
1280     (PID.TID 0000.0001) DIAGSTATS_INI_IO: open file: iceStDiag.0000000000.txt , unit= 9
1281     (PID.TID 0000.0001) %MON fCori_max = 0.0000000000000E+00
1282     (PID.TID 0000.0001) %MON fCori_min = 0.0000000000000E+00
1283     (PID.TID 0000.0001) %MON fCori_mean = 0.0000000000000E+00
1284     (PID.TID 0000.0001) %MON fCori_sd = 0.0000000000000E+00
1285     (PID.TID 0000.0001) %MON fCoriG_max = 0.0000000000000E+00
1286     (PID.TID 0000.0001) %MON fCoriG_min = 0.0000000000000E+00
1287     (PID.TID 0000.0001) %MON fCoriG_mean = 0.0000000000000E+00
1288     (PID.TID 0000.0001) %MON fCoriG_sd = 0.0000000000000E+00
1289     (PID.TID 0000.0001) %MON fCoriCos_max = 0.0000000000000E+00
1290     (PID.TID 0000.0001) %MON fCoriCos_min = 0.0000000000000E+00
1291     (PID.TID 0000.0001) %MON fCoriCos_mean = 0.0000000000000E+00
1292     (PID.TID 0000.0001) %MON fCoriCos_sd = 0.0000000000000E+00
1293     (PID.TID 0000.0001) INI_CG2D: CG2D normalisation factor = 1.0000000000000001E-01
1294     (PID.TID 0000.0001)
1295     (PID.TID 0000.0001) // =======================================================
1296     (PID.TID 0000.0001) // Model configuration
1297     (PID.TID 0000.0001) // =======================================================
1298     (PID.TID 0000.0001) //
1299     (PID.TID 0000.0001) // "Physical" paramters ( PARM01 in namelist )
1300     (PID.TID 0000.0001) //
1301     (PID.TID 0000.0001) buoyancyRelation = /* Type of relation to get Buoyancy */
1302     (PID.TID 0000.0001) 'OCEANIC'
1303     (PID.TID 0000.0001) ;
1304     (PID.TID 0000.0001) fluidIsAir = /* fluid major constituent is Air */
1305     (PID.TID 0000.0001) F
1306     (PID.TID 0000.0001) ;
1307     (PID.TID 0000.0001) fluidIsWater = /* fluid major constituent is Water */
1308     (PID.TID 0000.0001) T
1309     (PID.TID 0000.0001) ;
1310     (PID.TID 0000.0001) usingPCoords = /* use p (or p*) vertical coordinate */
1311     (PID.TID 0000.0001) F
1312     (PID.TID 0000.0001) ;
1313     (PID.TID 0000.0001) usingZCoords = /* use z (or z*) vertical coordinate */
1314     (PID.TID 0000.0001) T
1315     (PID.TID 0000.0001) ;
1316     (PID.TID 0000.0001) tRef = /* Reference temperature profile ( oC or K ) */
1317     (PID.TID 0000.0001) -1.620000000000000E+00 /* K = 1 */
1318     (PID.TID 0000.0001) ;
1319     (PID.TID 0000.0001) sRef = /* Reference salinity profile ( psu ) */
1320     (PID.TID 0000.0001) 3.000000000000000E+01 /* K = 1 */
1321     (PID.TID 0000.0001) ;
1322     (PID.TID 0000.0001) useStrainTensionVisc= /* Use StrainTension Form of Viscous Operator */
1323     (PID.TID 0000.0001) F
1324     (PID.TID 0000.0001) ;
1325     (PID.TID 0000.0001) useVariableVisc = /* Use variable horizontal viscosity */
1326     (PID.TID 0000.0001) F
1327     (PID.TID 0000.0001) ;
1328     (PID.TID 0000.0001) useHarmonicVisc = /* Use harmonic horizontal viscosity */
1329     (PID.TID 0000.0001) F
1330     (PID.TID 0000.0001) ;
1331     (PID.TID 0000.0001) useBiharmonicVisc= /* Use biharmonic horiz. viscosity */
1332     (PID.TID 0000.0001) F
1333     (PID.TID 0000.0001) ;
1334     (PID.TID 0000.0001) useSmag3D = /* Use isotropic 3-D Smagorinsky viscosity */
1335     (PID.TID 0000.0001) F
1336     (PID.TID 0000.0001) ;
1337     (PID.TID 0000.0001) viscAh = /* Lateral harmonic viscosity ( m^2/s ) */
1338     (PID.TID 0000.0001) 3.000000000000000E+02
1339     (PID.TID 0000.0001) ;
1340     (PID.TID 0000.0001) viscA4 = /* Lateral biharmonic viscosity ( m^4/s ) */
1341     (PID.TID 0000.0001) 0.000000000000000E+00
1342     (PID.TID 0000.0001) ;
1343     (PID.TID 0000.0001) no_slip_sides = /* Viscous BCs: No-slip sides */
1344     (PID.TID 0000.0001) F
1345     (PID.TID 0000.0001) ;
1346     (PID.TID 0000.0001) sideDragFactor = /* side-drag scaling factor (non-dim) */
1347     (PID.TID 0000.0001) 2.000000000000000E+00
1348     (PID.TID 0000.0001) ;
1349     (PID.TID 0000.0001) viscArNr = /* vertical profile of vertical viscosity ( m^2/s )*/
1350     (PID.TID 0000.0001) 3.000000000000000E-02 /* K = 1 */
1351     (PID.TID 0000.0001) ;
1352     (PID.TID 0000.0001) no_slip_bottom = /* Viscous BCs: No-slip bottom */
1353     (PID.TID 0000.0001) T
1354     (PID.TID 0000.0001) ;
1355 mlosch 1.3 (PID.TID 0000.0001) bottomVisc_pCell = /* Partial-cell in bottom Visc. BC */
1356     (PID.TID 0000.0001) F
1357     (PID.TID 0000.0001) ;
1358 mlosch 1.1 (PID.TID 0000.0001) bottomDragLinear = /* linear bottom-drag coefficient ( m/s ) */
1359     (PID.TID 0000.0001) 0.000000000000000E+00
1360     (PID.TID 0000.0001) ;
1361     (PID.TID 0000.0001) bottomDragQuadratic = /* quadratic bottom-drag coefficient (-) */
1362     (PID.TID 0000.0001) 5.000000000000000E-03
1363     (PID.TID 0000.0001) ;
1364 mlosch 1.3 (PID.TID 0000.0001) selectBotDragQuadr = /* select quadratic bottom drag options */
1365     (PID.TID 0000.0001) -1
1366     (PID.TID 0000.0001) ;
1367 mlosch 1.1 (PID.TID 0000.0001) diffKhT = /* Laplacian diffusion of heat laterally ( m^2/s ) */
1368     (PID.TID 0000.0001) 0.000000000000000E+00
1369     (PID.TID 0000.0001) ;
1370     (PID.TID 0000.0001) diffK4T = /* Biharmonic diffusion of heat laterally ( m^4/s ) */
1371     (PID.TID 0000.0001) 0.000000000000000E+00
1372     (PID.TID 0000.0001) ;
1373     (PID.TID 0000.0001) diffKhS = /* Laplacian diffusion of salt laterally ( m^2/s ) */
1374     (PID.TID 0000.0001) 0.000000000000000E+00
1375     (PID.TID 0000.0001) ;
1376     (PID.TID 0000.0001) diffK4S = /* Biharmonic diffusion of salt laterally ( m^4/s ) */
1377     (PID.TID 0000.0001) 0.000000000000000E+00
1378     (PID.TID 0000.0001) ;
1379     (PID.TID 0000.0001) diffKrNrT = /* vertical profile of vertical diffusion of Temp ( m^2/s )*/
1380     (PID.TID 0000.0001) 0.000000000000000E+00 /* K = 1 */
1381     (PID.TID 0000.0001) ;
1382     (PID.TID 0000.0001) diffKrNrS = /* vertical profile of vertical diffusion of Salt ( m^2/s )*/
1383     (PID.TID 0000.0001) 0.000000000000000E+00 /* K = 1 */
1384     (PID.TID 0000.0001) ;
1385     (PID.TID 0000.0001) diffKrBL79surf = /* Surface diffusion for Bryan and Lewis 79 ( m^2/s ) */
1386     (PID.TID 0000.0001) 0.000000000000000E+00
1387     (PID.TID 0000.0001) ;
1388     (PID.TID 0000.0001) diffKrBL79deep = /* Deep diffusion for Bryan and Lewis 1979 ( m^2/s ) */
1389     (PID.TID 0000.0001) 0.000000000000000E+00
1390     (PID.TID 0000.0001) ;
1391     (PID.TID 0000.0001) diffKrBL79scl = /* Depth scale for Bryan and Lewis 1979 ( m ) */
1392     (PID.TID 0000.0001) 2.000000000000000E+02
1393     (PID.TID 0000.0001) ;
1394     (PID.TID 0000.0001) diffKrBL79Ho = /* Turning depth for Bryan and Lewis 1979 ( m ) */
1395     (PID.TID 0000.0001) -2.000000000000000E+03
1396     (PID.TID 0000.0001) ;
1397     (PID.TID 0000.0001) ivdc_kappa = /* Implicit Vertical Diffusivity for Convection ( m^2/s) */
1398     (PID.TID 0000.0001) 0.000000000000000E+00
1399     (PID.TID 0000.0001) ;
1400     (PID.TID 0000.0001) hMixCriteria= /* Criteria for mixed-layer diagnostic */
1401     (PID.TID 0000.0001) -8.000000000000000E-01
1402     (PID.TID 0000.0001) ;
1403     (PID.TID 0000.0001) dRhoSmall = /* Parameter for mixed-layer diagnostic */
1404     (PID.TID 0000.0001) 1.000000000000000E-06
1405     (PID.TID 0000.0001) ;
1406     (PID.TID 0000.0001) hMixSmooth= /* Smoothing parameter for mixed-layer diagnostic */
1407     (PID.TID 0000.0001) 0.000000000000000E+00
1408     (PID.TID 0000.0001) ;
1409     (PID.TID 0000.0001) eosType = /* Type of Equation of State */
1410     (PID.TID 0000.0001) 'LINEAR'
1411     (PID.TID 0000.0001) ;
1412     (PID.TID 0000.0001) tAlpha = /* Linear EOS thermal expansion coefficient ( 1/oC ) */
1413     (PID.TID 0000.0001) 2.000000000000000E-04
1414     (PID.TID 0000.0001) ;
1415     (PID.TID 0000.0001) sBeta = /* Linear EOS haline contraction coefficient ( 1/psu ) */
1416     (PID.TID 0000.0001) 0.000000000000000E+00
1417     (PID.TID 0000.0001) ;
1418     (PID.TID 0000.0001) rhoNil = /* Reference density for Linear EOS ( kg/m^3 ) */
1419     (PID.TID 0000.0001) 1.030000000000000E+03
1420     (PID.TID 0000.0001) ;
1421     (PID.TID 0000.0001) HeatCapacity_Cp = /* Specific heat capacity ( J/kg/K ) */
1422     (PID.TID 0000.0001) 3.986000000000000E+03
1423     (PID.TID 0000.0001) ;
1424     (PID.TID 0000.0001) celsius2K = /* 0 degree Celsius converted to Kelvin ( K ) */
1425     (PID.TID 0000.0001) 2.731500000000000E+02
1426     (PID.TID 0000.0001) ;
1427     (PID.TID 0000.0001) rhoConst = /* Reference density (Boussinesq) ( kg/m^3 ) */
1428     (PID.TID 0000.0001) 1.030000000000000E+03
1429     (PID.TID 0000.0001) ;
1430     (PID.TID 0000.0001) rhoFacC = /* normalized Reference density @ cell-Center (-) */
1431     (PID.TID 0000.0001) 1.000000000000000E+00 /* K = 1 */
1432     (PID.TID 0000.0001) ;
1433     (PID.TID 0000.0001) rhoFacF = /* normalized Reference density @ W-Interface (-) */
1434     (PID.TID 0000.0001) 2 @ 1.000000000000000E+00 /* K = 1: 2 */
1435     (PID.TID 0000.0001) ;
1436     (PID.TID 0000.0001) rhoConstFresh = /* Fresh-water reference density ( kg/m^3 ) */
1437     (PID.TID 0000.0001) 1.000000000000000E+03
1438     (PID.TID 0000.0001) ;
1439     (PID.TID 0000.0001) gravity = /* Gravitational acceleration ( m/s^2 ) */
1440     (PID.TID 0000.0001) 9.810000000000000E+00
1441     (PID.TID 0000.0001) ;
1442     (PID.TID 0000.0001) gBaro = /* Barotropic gravity ( m/s^2 ) */
1443     (PID.TID 0000.0001) 9.810000000000000E+00
1444     (PID.TID 0000.0001) ;
1445     (PID.TID 0000.0001) rotationPeriod = /* Rotation Period ( s ) */
1446     (PID.TID 0000.0001) 8.616400000000000E+04
1447     (PID.TID 0000.0001) ;
1448     (PID.TID 0000.0001) omega = /* Angular velocity ( rad/s ) */
1449     (PID.TID 0000.0001) 7.292123516990375E-05
1450     (PID.TID 0000.0001) ;
1451     (PID.TID 0000.0001) f0 = /* Reference coriolis parameter ( 1/s ) */
1452     (PID.TID 0000.0001) 0.000000000000000E+00
1453     (PID.TID 0000.0001) ;
1454     (PID.TID 0000.0001) beta = /* Beta ( 1/(m.s) ) */
1455     (PID.TID 0000.0001) 0.000000000000000E+00
1456     (PID.TID 0000.0001) ;
1457     (PID.TID 0000.0001) fPrime = /* Second coriolis parameter ( 1/s ) */
1458     (PID.TID 0000.0001) 0.000000000000000E+00
1459     (PID.TID 0000.0001) ;
1460     (PID.TID 0000.0001) rigidLid = /* Rigid lid on/off flag */
1461     (PID.TID 0000.0001) F
1462     (PID.TID 0000.0001) ;
1463     (PID.TID 0000.0001) implicitFreeSurface = /* Implicit free surface on/off flag */
1464     (PID.TID 0000.0001) T
1465     (PID.TID 0000.0001) ;
1466     (PID.TID 0000.0001) freeSurfFac = /* Implicit free surface factor */
1467     (PID.TID 0000.0001) 1.000000000000000E+00
1468     (PID.TID 0000.0001) ;
1469     (PID.TID 0000.0001) implicSurfPress = /* Surface Pressure implicit factor (0-1)*/
1470     (PID.TID 0000.0001) 1.000000000000000E+00
1471     (PID.TID 0000.0001) ;
1472     (PID.TID 0000.0001) implicDiv2Dflow = /* Barot. Flow Div. implicit factor (0-1)*/
1473     (PID.TID 0000.0001) 1.000000000000000E+00
1474     (PID.TID 0000.0001) ;
1475     (PID.TID 0000.0001) uniformLin_PhiSurf = /* use uniform Bo_surf on/off flag*/
1476     (PID.TID 0000.0001) T
1477     (PID.TID 0000.0001) ;
1478     (PID.TID 0000.0001) uniformFreeSurfLev = /* free-surface level-index is uniform */
1479     (PID.TID 0000.0001) T
1480     (PID.TID 0000.0001) ;
1481     (PID.TID 0000.0001) hFacMin = /* minimum partial cell factor (hFac) */
1482     (PID.TID 0000.0001) 1.000000000000000E+00
1483     (PID.TID 0000.0001) ;
1484     (PID.TID 0000.0001) hFacMinDr = /* minimum partial cell thickness ( m) */
1485     (PID.TID 0000.0001) 0.000000000000000E+00
1486     (PID.TID 0000.0001) ;
1487     (PID.TID 0000.0001) exactConserv = /* Exact Volume Conservation on/off flag*/
1488     (PID.TID 0000.0001) F
1489     (PID.TID 0000.0001) ;
1490     (PID.TID 0000.0001) linFSConserveTr = /* Tracer correction for Lin Free Surface on/off flag*/
1491     (PID.TID 0000.0001) F
1492     (PID.TID 0000.0001) ;
1493     (PID.TID 0000.0001) nonlinFreeSurf = /* Non-linear Free Surf. options (-1,0,1,2,3)*/
1494     (PID.TID 0000.0001) 0
1495     (PID.TID 0000.0001) -1,0= Off ; 1,2,3= On, 2=+rescale gU,gV, 3=+update cg2d solv.
1496     (PID.TID 0000.0001) ;
1497     (PID.TID 0000.0001) hFacInf = /* lower threshold for hFac (nonlinFreeSurf only)*/
1498     (PID.TID 0000.0001) 2.000000000000000E-01
1499     (PID.TID 0000.0001) ;
1500     (PID.TID 0000.0001) hFacSup = /* upper threshold for hFac (nonlinFreeSurf only)*/
1501     (PID.TID 0000.0001) 2.000000000000000E+00
1502     (PID.TID 0000.0001) ;
1503     (PID.TID 0000.0001) select_rStar = /* r* Vertical coord. options (=0 r coord.; >0 uses r*)*/
1504     (PID.TID 0000.0001) 0
1505     (PID.TID 0000.0001) ;
1506     (PID.TID 0000.0001) useRealFreshWaterFlux = /* Real Fresh Water Flux on/off flag*/
1507     (PID.TID 0000.0001) F
1508     (PID.TID 0000.0001) ;
1509     (PID.TID 0000.0001) temp_EvPrRn = /* Temp. of Evap/Prec/R (UNSET=use local T)(oC)*/
1510     (PID.TID 0000.0001) 1.234567000000000E+05
1511     (PID.TID 0000.0001) ;
1512     (PID.TID 0000.0001) salt_EvPrRn = /* Salin. of Evap/Prec/R (UNSET=use local S)(psu)*/
1513     (PID.TID 0000.0001) 0.000000000000000E+00
1514     (PID.TID 0000.0001) ;
1515     (PID.TID 0000.0001) selectAddFluid = /* option for mass source/sink of fluid (=0: off) */
1516     (PID.TID 0000.0001) 0
1517     (PID.TID 0000.0001) ;
1518     (PID.TID 0000.0001) temp_addMass = /* Temp. of addMass array (UNSET=use local T)(oC)*/
1519     (PID.TID 0000.0001) 1.234567000000000E+05
1520     (PID.TID 0000.0001) ;
1521     (PID.TID 0000.0001) salt_addMass = /* Salin. of addMass array (UNSET=use local S)(psu)*/
1522     (PID.TID 0000.0001) 0.000000000000000E+00
1523     (PID.TID 0000.0001) ;
1524     (PID.TID 0000.0001) convertFW2Salt = /* convert F.W. Flux to Salt Flux (-1=use local S)(psu)*/
1525     (PID.TID 0000.0001) -1.000000000000000E+00
1526     (PID.TID 0000.0001) ;
1527     (PID.TID 0000.0001) use3Dsolver = /* use 3-D pressure solver on/off flag */
1528     (PID.TID 0000.0001) F
1529     (PID.TID 0000.0001) ;
1530     (PID.TID 0000.0001) nonHydrostatic = /* Non-Hydrostatic on/off flag */
1531     (PID.TID 0000.0001) F
1532     (PID.TID 0000.0001) ;
1533     (PID.TID 0000.0001) nh_Am2 = /* Non-Hydrostatic terms scaling factor */
1534     (PID.TID 0000.0001) 1.000000000000000E+00
1535     (PID.TID 0000.0001) ;
1536     (PID.TID 0000.0001) implicitNHPress = /* Non-Hyd Pressure implicit factor (0-1)*/
1537     (PID.TID 0000.0001) 1.000000000000000E+00
1538     (PID.TID 0000.0001) ;
1539     (PID.TID 0000.0001) selectNHfreeSurf = /* Non-Hyd (free-)Surface option */
1540     (PID.TID 0000.0001) 0
1541     (PID.TID 0000.0001) ;
1542     (PID.TID 0000.0001) quasiHydrostatic = /* Quasi-Hydrostatic on/off flag */
1543     (PID.TID 0000.0001) F
1544     (PID.TID 0000.0001) ;
1545     (PID.TID 0000.0001) calc_wVelocity = /* vertical velocity calculation on/off flag */
1546     (PID.TID 0000.0001) F
1547     (PID.TID 0000.0001) ;
1548     (PID.TID 0000.0001) momStepping = /* Momentum equation on/off flag */
1549     (PID.TID 0000.0001) F
1550     (PID.TID 0000.0001) ;
1551     (PID.TID 0000.0001) vectorInvariantMomentum= /* Vector-Invariant Momentum on/off */
1552     (PID.TID 0000.0001) F
1553     (PID.TID 0000.0001) ;
1554     (PID.TID 0000.0001) momAdvection = /* Momentum advection on/off flag */
1555     (PID.TID 0000.0001) F
1556     (PID.TID 0000.0001) ;
1557     (PID.TID 0000.0001) momViscosity = /* Momentum viscosity on/off flag */
1558     (PID.TID 0000.0001) F
1559     (PID.TID 0000.0001) ;
1560     (PID.TID 0000.0001) momImplVertAdv= /* Momentum implicit vert. advection on/off*/
1561     (PID.TID 0000.0001) F
1562     (PID.TID 0000.0001) ;
1563     (PID.TID 0000.0001) implicitViscosity = /* Implicit viscosity on/off flag */
1564     (PID.TID 0000.0001) F
1565     (PID.TID 0000.0001) ;
1566 mlosch 1.3 (PID.TID 0000.0001) implBottomFriction= /* Implicit bottom friction on/off flag */
1567     (PID.TID 0000.0001) F
1568     (PID.TID 0000.0001) ;
1569 mlosch 1.1 (PID.TID 0000.0001) metricTerms = /* metric-Terms on/off flag */
1570     (PID.TID 0000.0001) F
1571     (PID.TID 0000.0001) ;
1572     (PID.TID 0000.0001) useNHMTerms = /* Non-Hydrostatic Metric-Terms on/off */
1573     (PID.TID 0000.0001) F
1574     (PID.TID 0000.0001) ;
1575     (PID.TID 0000.0001) selectCoriMap = /* Coriolis Map options (0,1,2,3)*/
1576     (PID.TID 0000.0001) 1
1577     (PID.TID 0000.0001) 0= f-Plane ; 1= Beta-Plane ; 2= Spherical ; 3= read from file
1578     (PID.TID 0000.0001) ;
1579     (PID.TID 0000.0001) use3dCoriolis = /* 3-D Coriolis on/off flag */
1580     (PID.TID 0000.0001) F
1581     (PID.TID 0000.0001) ;
1582     (PID.TID 0000.0001) useCoriolis = /* Coriolis on/off flag */
1583     (PID.TID 0000.0001) F
1584     (PID.TID 0000.0001) ;
1585     (PID.TID 0000.0001) useCDscheme = /* CD scheme on/off flag */
1586     (PID.TID 0000.0001) F
1587     (PID.TID 0000.0001) ;
1588     (PID.TID 0000.0001) useEnergyConservingCoriolis= /* Flx-Form Coriolis scheme flag */
1589     (PID.TID 0000.0001) F
1590     (PID.TID 0000.0001) ;
1591     (PID.TID 0000.0001) useJamartWetPoints= /* Coriolis WetPoints method flag */
1592     (PID.TID 0000.0001) T
1593     (PID.TID 0000.0001) ;
1594     (PID.TID 0000.0001) useJamartMomAdv= /* V.I Non-linear terms Jamart flag */
1595     (PID.TID 0000.0001) F
1596     (PID.TID 0000.0001) ;
1597     (PID.TID 0000.0001) useAbsVorticity= /* V.I Works with f+zeta in Coriolis */
1598     (PID.TID 0000.0001) F
1599     (PID.TID 0000.0001) ;
1600     (PID.TID 0000.0001) selectVortScheme= /* V.I Scheme selector for Vorticity-Term */
1601     (PID.TID 0000.0001) 123456789
1602     (PID.TID 0000.0001) = 0 : enstrophy (Shallow-Water Eq.) conserving scheme by Sadourny, JAS 75
1603     (PID.TID 0000.0001) = 1 : same as 0 with modified hFac
1604     (PID.TID 0000.0001) = 2 : energy conserving scheme (used by Sadourny in JAS 75 paper)
1605     (PID.TID 0000.0001) = 3 : energy (general) and enstrophy (2D, nonDiv.) conserving scheme
1606     (PID.TID 0000.0001) from Sadourny (Burridge & Haseler, ECMWF Rep.4, 1977)
1607     (PID.TID 0000.0001) ;
1608     (PID.TID 0000.0001) upwindVorticity= /* V.I Upwind bias vorticity flag */
1609     (PID.TID 0000.0001) F
1610     (PID.TID 0000.0001) ;
1611     (PID.TID 0000.0001) highOrderVorticity= /* V.I High order vort. advect. flag */
1612     (PID.TID 0000.0001) F
1613     (PID.TID 0000.0001) ;
1614     (PID.TID 0000.0001) upwindShear= /* V.I Upwind vertical Shear advection flag */
1615     (PID.TID 0000.0001) F
1616     (PID.TID 0000.0001) ;
1617     (PID.TID 0000.0001) selectKEscheme= /* V.I Kinetic Energy scheme selector */
1618     (PID.TID 0000.0001) 0
1619     (PID.TID 0000.0001) ;
1620     (PID.TID 0000.0001) momForcing = /* Momentum forcing on/off flag */
1621     (PID.TID 0000.0001) F
1622     (PID.TID 0000.0001) ;
1623     (PID.TID 0000.0001) momPressureForcing = /* Momentum pressure term on/off flag */
1624     (PID.TID 0000.0001) F
1625     (PID.TID 0000.0001) ;
1626     (PID.TID 0000.0001) implicitIntGravWave= /* Implicit Internal Gravity Wave flag */
1627     (PID.TID 0000.0001) F
1628     (PID.TID 0000.0001) ;
1629     (PID.TID 0000.0001) staggerTimeStep = /* Stagger time stepping on/off flag */
1630     (PID.TID 0000.0001) T
1631     (PID.TID 0000.0001) ;
1632     (PID.TID 0000.0001) doResetHFactors = /* reset thickness factors @ each time-step */
1633     (PID.TID 0000.0001) F
1634     (PID.TID 0000.0001) ;
1635     (PID.TID 0000.0001) multiDimAdvection = /* enable/disable Multi-Dim Advection */
1636     (PID.TID 0000.0001) T
1637     (PID.TID 0000.0001) ;
1638     (PID.TID 0000.0001) useMultiDimAdvec = /* Multi-Dim Advection is/is-not used */
1639     (PID.TID 0000.0001) F
1640     (PID.TID 0000.0001) ;
1641     (PID.TID 0000.0001) implicitDiffusion = /* Implicit Diffusion on/off flag */
1642     (PID.TID 0000.0001) F
1643     (PID.TID 0000.0001) ;
1644     (PID.TID 0000.0001) tempStepping = /* Temperature equation on/off flag */
1645 jmc 1.2 (PID.TID 0000.0001) T
1646 mlosch 1.1 (PID.TID 0000.0001) ;
1647     (PID.TID 0000.0001) tempAdvection = /* Temperature advection on/off flag */
1648     (PID.TID 0000.0001) F
1649     (PID.TID 0000.0001) ;
1650     (PID.TID 0000.0001) tempImplVertAdv = /* Temp. implicit vert. advection on/off */
1651     (PID.TID 0000.0001) F
1652     (PID.TID 0000.0001) ;
1653     (PID.TID 0000.0001) tempForcing = /* Temperature forcing on/off flag */
1654 jmc 1.2 (PID.TID 0000.0001) T
1655 mlosch 1.1 (PID.TID 0000.0001) ;
1656     (PID.TID 0000.0001) doThetaClimRelax = /* apply SST relaxation on/off flag */
1657     (PID.TID 0000.0001) F
1658     (PID.TID 0000.0001) ;
1659     (PID.TID 0000.0001) tempIsActiveTr = /* Temp. is a dynamically Active Tracer */
1660     (PID.TID 0000.0001) F
1661     (PID.TID 0000.0001) ;
1662     (PID.TID 0000.0001) saltStepping = /* Salinity equation on/off flag */
1663     (PID.TID 0000.0001) F
1664     (PID.TID 0000.0001) ;
1665     (PID.TID 0000.0001) saltAdvection = /* Salinity advection on/off flag */
1666     (PID.TID 0000.0001) F
1667     (PID.TID 0000.0001) ;
1668     (PID.TID 0000.0001) saltImplVertAdv = /* Sali. implicit vert. advection on/off */
1669     (PID.TID 0000.0001) F
1670     (PID.TID 0000.0001) ;
1671     (PID.TID 0000.0001) saltForcing = /* Salinity forcing on/off flag */
1672     (PID.TID 0000.0001) F
1673     (PID.TID 0000.0001) ;
1674     (PID.TID 0000.0001) doSaltClimRelax = /* apply SSS relaxation on/off flag */
1675     (PID.TID 0000.0001) F
1676     (PID.TID 0000.0001) ;
1677     (PID.TID 0000.0001) saltIsActiveTr = /* Salt is a dynamically Active Tracer */
1678     (PID.TID 0000.0001) F
1679     (PID.TID 0000.0001) ;
1680     (PID.TID 0000.0001) readBinaryPrec = /* Precision used for reading binary files */
1681     (PID.TID 0000.0001) 64
1682     (PID.TID 0000.0001) ;
1683     (PID.TID 0000.0001) writeBinaryPrec = /* Precision used for writing binary files */
1684     (PID.TID 0000.0001) 64
1685     (PID.TID 0000.0001) ;
1686     (PID.TID 0000.0001) globalFiles = /* write "global" (=not per tile) files */
1687     (PID.TID 0000.0001) F
1688     (PID.TID 0000.0001) ;
1689     (PID.TID 0000.0001) useSingleCpuIO = /* only master MPI process does I/O */
1690     (PID.TID 0000.0001) T
1691     (PID.TID 0000.0001) ;
1692     (PID.TID 0000.0001) useSingleCpuInput = /* only master process reads input */
1693     (PID.TID 0000.0001) T
1694     (PID.TID 0000.0001) ;
1695     (PID.TID 0000.0001) /* debLev[*] : level of debug & auxiliary message printing */
1696     (PID.TID 0000.0001) debLevZero = 0 ; /* level of disabled aux. msg printing */
1697     (PID.TID 0000.0001) debLevA = 1 ; /* level of minimum aux. msg printing */
1698     (PID.TID 0000.0001) debLevB = 2 ; /* level of low aux. print (report read-file opening)*/
1699     (PID.TID 0000.0001) debLevC = 3 ; /* level of moderate debug prt (most pkgs debug msg) */
1700     (PID.TID 0000.0001) debLevD = 4 ; /* level of enhanced debug prt (add DEBUG_STATS prt) */
1701     (PID.TID 0000.0001) debLevE = 5 ; /* level of extensive debug printing */
1702     (PID.TID 0000.0001) debugLevel = /* select debug printing level */
1703     (PID.TID 0000.0001) 2
1704     (PID.TID 0000.0001) ;
1705     (PID.TID 0000.0001) //
1706     (PID.TID 0000.0001) // Elliptic solver(s) paramters ( PARM02 in namelist )
1707     (PID.TID 0000.0001) //
1708     (PID.TID 0000.0001) cg2dMaxIters = /* Upper limit on 2d con. grad iterations */
1709     (PID.TID 0000.0001) 500
1710     (PID.TID 0000.0001) ;
1711     (PID.TID 0000.0001) cg2dChkResFreq = /* 2d con. grad convergence test frequency */
1712     (PID.TID 0000.0001) 1
1713     (PID.TID 0000.0001) ;
1714     (PID.TID 0000.0001) cg2dUseMinResSol= /* use cg2d last-iter(=0) / min-resid.(=1) solution */
1715     (PID.TID 0000.0001) 0
1716     (PID.TID 0000.0001) ;
1717     (PID.TID 0000.0001) cg2dTargetResidual = /* 2d con. grad target residual */
1718     (PID.TID 0000.0001) 1.000000000000000E-12
1719     (PID.TID 0000.0001) ;
1720     (PID.TID 0000.0001) cg2dTargetResWunit = /* CG2d target residual [W units] */
1721     (PID.TID 0000.0001) -1.000000000000000E+00
1722     (PID.TID 0000.0001) ;
1723     (PID.TID 0000.0001) cg2dPreCondFreq = /* Freq. for updating cg2d preconditioner */
1724     (PID.TID 0000.0001) 1
1725     (PID.TID 0000.0001) ;
1726     (PID.TID 0000.0001) useSRCGSolver = /* use single reduction CG solver(s) */
1727     (PID.TID 0000.0001) F
1728     (PID.TID 0000.0001) ;
1729     (PID.TID 0000.0001) printResidualFreq = /* Freq. for printing CG residual */
1730     (PID.TID 0000.0001) 0
1731     (PID.TID 0000.0001) ;
1732     (PID.TID 0000.0001) //
1733     (PID.TID 0000.0001) // Time stepping paramters ( PARM03 in namelist )
1734     (PID.TID 0000.0001) //
1735     (PID.TID 0000.0001) deltaTMom = /* Momentum equation timestep ( s ) */
1736     (PID.TID 0000.0001) 1.800000000000000E+03
1737     (PID.TID 0000.0001) ;
1738     (PID.TID 0000.0001) deltaTFreeSurf = /* FreeSurface equation timestep ( s ) */
1739     (PID.TID 0000.0001) 1.800000000000000E+03
1740     (PID.TID 0000.0001) ;
1741     (PID.TID 0000.0001) dTtracerLev = /* Tracer equation timestep ( s ) */
1742     (PID.TID 0000.0001) 1.800000000000000E+03 /* K = 1 */
1743     (PID.TID 0000.0001) ;
1744     (PID.TID 0000.0001) deltaTClock = /* Model clock timestep ( s ) */
1745     (PID.TID 0000.0001) 1.800000000000000E+03
1746     (PID.TID 0000.0001) ;
1747     (PID.TID 0000.0001) cAdjFreq = /* Convective adjustment interval ( s ) */
1748     (PID.TID 0000.0001) 0.000000000000000E+00
1749     (PID.TID 0000.0001) ;
1750     (PID.TID 0000.0001) momForcingOutAB = /* =1: take Momentum Forcing out of Adams-Bash. stepping */
1751     (PID.TID 0000.0001) 1
1752     (PID.TID 0000.0001) ;
1753     (PID.TID 0000.0001) tracForcingOutAB = /* =1: take T,S,pTr Forcing out of Adams-Bash. stepping */
1754     (PID.TID 0000.0001) 1
1755     (PID.TID 0000.0001) ;
1756     (PID.TID 0000.0001) momDissip_In_AB = /* put Dissipation Tendency in Adams-Bash. stepping */
1757     (PID.TID 0000.0001) T
1758     (PID.TID 0000.0001) ;
1759     (PID.TID 0000.0001) doAB_onGtGs = /* apply AB on Tendencies (rather than on T,S)*/
1760     (PID.TID 0000.0001) T
1761     (PID.TID 0000.0001) ;
1762     (PID.TID 0000.0001) abEps = /* Adams-Bashforth-2 stabilizing weight */
1763     (PID.TID 0000.0001) 1.000000000000000E-01
1764     (PID.TID 0000.0001) ;
1765     (PID.TID 0000.0001) pickupStrictlyMatch= /* stop if pickup do not strictly match */
1766     (PID.TID 0000.0001) T
1767     (PID.TID 0000.0001) ;
1768     (PID.TID 0000.0001) nIter0 = /* Run starting timestep number */
1769     (PID.TID 0000.0001) 0
1770     (PID.TID 0000.0001) ;
1771     (PID.TID 0000.0001) nTimeSteps = /* Number of timesteps */
1772     (PID.TID 0000.0001) 12
1773     (PID.TID 0000.0001) ;
1774     (PID.TID 0000.0001) nEndIter = /* Run ending timestep number */
1775     (PID.TID 0000.0001) 12
1776     (PID.TID 0000.0001) ;
1777     (PID.TID 0000.0001) baseTime = /* Model base time ( s ) */
1778     (PID.TID 0000.0001) 0.000000000000000E+00
1779     (PID.TID 0000.0001) ;
1780     (PID.TID 0000.0001) startTime = /* Run start time ( s ) */
1781     (PID.TID 0000.0001) 0.000000000000000E+00
1782     (PID.TID 0000.0001) ;
1783     (PID.TID 0000.0001) endTime = /* Integration ending time ( s ) */
1784     (PID.TID 0000.0001) 2.160000000000000E+04
1785     (PID.TID 0000.0001) ;
1786     (PID.TID 0000.0001) pChkPtFreq = /* Permanent restart/pickup file interval ( s ) */
1787     (PID.TID 0000.0001) 3.600000000000000E+06
1788     (PID.TID 0000.0001) ;
1789     (PID.TID 0000.0001) chkPtFreq = /* Rolling restart/pickup file interval ( s ) */
1790     (PID.TID 0000.0001) 0.000000000000000E+00
1791     (PID.TID 0000.0001) ;
1792     (PID.TID 0000.0001) pickup_write_mdsio = /* Model IO flag. */
1793     (PID.TID 0000.0001) T
1794     (PID.TID 0000.0001) ;
1795     (PID.TID 0000.0001) pickup_read_mdsio = /* Model IO flag. */
1796     (PID.TID 0000.0001) T
1797     (PID.TID 0000.0001) ;
1798     (PID.TID 0000.0001) pickup_write_immed = /* Model IO flag. */
1799     (PID.TID 0000.0001) F
1800     (PID.TID 0000.0001) ;
1801     (PID.TID 0000.0001) writePickupAtEnd = /* Model IO flag. */
1802     (PID.TID 0000.0001) T
1803     (PID.TID 0000.0001) ;
1804     (PID.TID 0000.0001) dumpFreq = /* Model state write out interval ( s ). */
1805 jmc 1.2 (PID.TID 0000.0001) 8.640000000000000E+05
1806 mlosch 1.1 (PID.TID 0000.0001) ;
1807     (PID.TID 0000.0001) dumpInitAndLast= /* write out Initial & Last iter. model state */
1808     (PID.TID 0000.0001) T
1809     (PID.TID 0000.0001) ;
1810     (PID.TID 0000.0001) snapshot_mdsio = /* Model IO flag. */
1811     (PID.TID 0000.0001) T
1812     (PID.TID 0000.0001) ;
1813     (PID.TID 0000.0001) monitorFreq = /* Monitor output interval ( s ). */
1814 jmc 1.2 (PID.TID 0000.0001) 2.160000000000000E+04
1815 mlosch 1.1 (PID.TID 0000.0001) ;
1816     (PID.TID 0000.0001) monitorSelect = /* select group of variables to monitor */
1817     (PID.TID 0000.0001) 2
1818     (PID.TID 0000.0001) ;
1819     (PID.TID 0000.0001) monitor_stdio = /* Model IO flag. */
1820     (PID.TID 0000.0001) T
1821     (PID.TID 0000.0001) ;
1822     (PID.TID 0000.0001) externForcingPeriod = /* forcing period (s) */
1823     (PID.TID 0000.0001) 0.000000000000000E+00
1824     (PID.TID 0000.0001) ;
1825     (PID.TID 0000.0001) externForcingCycle = /* period of the cyle (s). */
1826     (PID.TID 0000.0001) 0.000000000000000E+00
1827     (PID.TID 0000.0001) ;
1828     (PID.TID 0000.0001) tauThetaClimRelax = /* relaxation time scale (s) */
1829     (PID.TID 0000.0001) 0.000000000000000E+00
1830     (PID.TID 0000.0001) ;
1831     (PID.TID 0000.0001) tauSaltClimRelax = /* relaxation time scale (s) */
1832     (PID.TID 0000.0001) 0.000000000000000E+00
1833     (PID.TID 0000.0001) ;
1834     (PID.TID 0000.0001) latBandClimRelax = /* max. Lat. where relaxation */
1835     (PID.TID 0000.0001) 6.300000000000000E+05
1836     (PID.TID 0000.0001) ;
1837     (PID.TID 0000.0001) //
1838     (PID.TID 0000.0001) // Gridding paramters ( PARM04 in namelist )
1839     (PID.TID 0000.0001) //
1840     (PID.TID 0000.0001) usingCartesianGrid = /* Cartesian coordinates flag ( True/False ) */
1841     (PID.TID 0000.0001) T
1842     (PID.TID 0000.0001) ;
1843     (PID.TID 0000.0001) usingCylindricalGrid = /* Cylindrical coordinates flag ( True/False ) */
1844     (PID.TID 0000.0001) F
1845     (PID.TID 0000.0001) ;
1846     (PID.TID 0000.0001) usingSphericalPolarGrid = /* Spherical coordinates flag ( True/False ) */
1847     (PID.TID 0000.0001) F
1848     (PID.TID 0000.0001) ;
1849     (PID.TID 0000.0001) usingCurvilinearGrid = /* Curvilinear coordinates flag ( True/False ) */
1850     (PID.TID 0000.0001) F
1851     (PID.TID 0000.0001) ;
1852     (PID.TID 0000.0001) selectSigmaCoord = /* Hybrid-Sigma Vert. Coordinate option */
1853     (PID.TID 0000.0001) 0
1854     (PID.TID 0000.0001) ;
1855     (PID.TID 0000.0001) Ro_SeaLevel = /* r(1) ( units of r == m ) */
1856     (PID.TID 0000.0001) 0.000000000000000E+00
1857     (PID.TID 0000.0001) ;
1858     (PID.TID 0000.0001) rSigmaBnd = /* r/sigma transition ( units of r == m ) */
1859     (PID.TID 0000.0001) 1.234567000000000E+05
1860     (PID.TID 0000.0001) ;
1861     (PID.TID 0000.0001) rkSign = /* index orientation relative to vertical coordinate */
1862     (PID.TID 0000.0001) -1.000000000000000E+00
1863     (PID.TID 0000.0001) ;
1864     (PID.TID 0000.0001) gravitySign = /* gravity orientation relative to vertical coordinate */
1865     (PID.TID 0000.0001) -1.000000000000000E+00
1866     (PID.TID 0000.0001) ;
1867     (PID.TID 0000.0001) mass2rUnit = /* convert mass per unit area [kg/m2] to r-units [m] */
1868     (PID.TID 0000.0001) 9.708737864077669E-04
1869     (PID.TID 0000.0001) ;
1870     (PID.TID 0000.0001) rUnit2mass = /* convert r-units [m] to mass per unit area [kg/m2] */
1871     (PID.TID 0000.0001) 1.030000000000000E+03
1872     (PID.TID 0000.0001) ;
1873     (PID.TID 0000.0001) drC = /* C spacing ( units of r ) */
1874     (PID.TID 0000.0001) 2 @ 5.000000000000000E+00 /* K = 1: 2 */
1875     (PID.TID 0000.0001) ;
1876     (PID.TID 0000.0001) drF = /* W spacing ( units of r ) */
1877     (PID.TID 0000.0001) 1.000000000000000E+01 /* K = 1 */
1878     (PID.TID 0000.0001) ;
1879     (PID.TID 0000.0001) delX = /* U spacing ( m - cartesian, degrees - spherical ) */
1880     (PID.TID 0000.0001) 80 @ 5.000000000000000E+03 /* I = 1: 80 */
1881     (PID.TID 0000.0001) ;
1882     (PID.TID 0000.0001) delY = /* V spacing ( m - cartesian, degrees - spherical ) */
1883     (PID.TID 0000.0001) 42 @ 5.000000000000000E+03 /* J = 1: 42 */
1884     (PID.TID 0000.0001) ;
1885     (PID.TID 0000.0001) xgOrigin = /* X-axis origin of West edge (cartesian: m, lat-lon: deg) */
1886     (PID.TID 0000.0001) 0.000000000000000E+00
1887     (PID.TID 0000.0001) ;
1888     (PID.TID 0000.0001) ygOrigin = /* Y-axis origin of South edge (cartesian: m, lat-lon: deg) */
1889     (PID.TID 0000.0001) -1.100000000000000E+05
1890     (PID.TID 0000.0001) ;
1891     (PID.TID 0000.0001) rSphere = /* Radius ( ignored - cartesian, m - spherical ) */
1892     (PID.TID 0000.0001) 6.370000000000000E+06
1893     (PID.TID 0000.0001) ;
1894     (PID.TID 0000.0001) deepAtmosphere = /* Deep/Shallow Atmosphere flag (True/False) */
1895     (PID.TID 0000.0001) F
1896     (PID.TID 0000.0001) ;
1897     (PID.TID 0000.0001) xC = /* xC(:,1,:,1) : P-point X coord ( deg. or m if cartesian) */
1898     (PID.TID 0000.0001) 2.500000000000000E+03, /* I = 1 */
1899     (PID.TID 0000.0001) 7.500000000000000E+03, /* I = 2 */
1900     (PID.TID 0000.0001) 1.250000000000000E+04, /* I = 3 */
1901     (PID.TID 0000.0001) . . .
1902     (PID.TID 0000.0001) 8.750000000000000E+04, /* I = 18 */
1903     (PID.TID 0000.0001) 9.250000000000000E+04, /* I = 19 */
1904     (PID.TID 0000.0001) 9.750000000000000E+04, /* I = 20 */
1905     (PID.TID 0000.0001) 1.025000000000000E+05, /* I = 21 */
1906     (PID.TID 0000.0001) 1.075000000000000E+05, /* I = 22 */
1907     (PID.TID 0000.0001) 1.125000000000000E+05, /* I = 23 */
1908     (PID.TID 0000.0001) . . .
1909     (PID.TID 0000.0001) 1.875000000000000E+05, /* I = 38 */
1910     (PID.TID 0000.0001) 1.925000000000000E+05, /* I = 39 */
1911     (PID.TID 0000.0001) 1.975000000000000E+05, /* I = 40 */
1912     (PID.TID 0000.0001) 2.025000000000000E+05, /* I = 41 */
1913     (PID.TID 0000.0001) 2.075000000000000E+05, /* I = 42 */
1914     (PID.TID 0000.0001) 2.125000000000000E+05, /* I = 43 */
1915     (PID.TID 0000.0001) . . .
1916     (PID.TID 0000.0001) 2.875000000000000E+05, /* I = 58 */
1917     (PID.TID 0000.0001) 2.925000000000000E+05, /* I = 59 */
1918     (PID.TID 0000.0001) 2.975000000000000E+05, /* I = 60 */
1919     (PID.TID 0000.0001) 3.025000000000000E+05, /* I = 61 */
1920     (PID.TID 0000.0001) 3.075000000000000E+05, /* I = 62 */
1921     (PID.TID 0000.0001) 3.125000000000000E+05, /* I = 63 */
1922     (PID.TID 0000.0001) . . .
1923     (PID.TID 0000.0001) 3.875000000000000E+05, /* I = 78 */
1924     (PID.TID 0000.0001) 3.925000000000000E+05, /* I = 79 */
1925     (PID.TID 0000.0001) 3.975000000000000E+05 /* I = 80 */
1926     (PID.TID 0000.0001) ;
1927     (PID.TID 0000.0001) yC = /* yC(1,:,1,:) : P-point Y coord ( deg. or m if cartesian) */
1928     (PID.TID 0000.0001) -1.075000000000000E+05, /* J = 1 */
1929     (PID.TID 0000.0001) -1.025000000000000E+05, /* J = 2 */
1930     (PID.TID 0000.0001) -9.750000000000000E+04, /* J = 3 */
1931     (PID.TID 0000.0001) -9.250000000000000E+04, /* J = 4 */
1932     (PID.TID 0000.0001) -8.750000000000000E+04, /* J = 5 */
1933     (PID.TID 0000.0001) -8.250000000000000E+04, /* J = 6 */
1934     (PID.TID 0000.0001) -7.750000000000000E+04, /* J = 7 */
1935     (PID.TID 0000.0001) -7.250000000000000E+04, /* J = 8 */
1936     (PID.TID 0000.0001) -6.750000000000000E+04, /* J = 9 */
1937     (PID.TID 0000.0001) -6.250000000000000E+04, /* J = 10 */
1938     (PID.TID 0000.0001) -5.750000000000000E+04, /* J = 11 */
1939     (PID.TID 0000.0001) -5.250000000000000E+04, /* J = 12 */
1940     (PID.TID 0000.0001) -4.750000000000000E+04, /* J = 13 */
1941     (PID.TID 0000.0001) -4.250000000000000E+04, /* J = 14 */
1942     (PID.TID 0000.0001) -3.750000000000000E+04, /* J = 15 */
1943     (PID.TID 0000.0001) -3.250000000000000E+04, /* J = 16 */
1944     (PID.TID 0000.0001) -2.750000000000000E+04, /* J = 17 */
1945     (PID.TID 0000.0001) -2.250000000000000E+04, /* J = 18 */
1946     (PID.TID 0000.0001) -1.750000000000000E+04, /* J = 19 */
1947     (PID.TID 0000.0001) -1.250000000000000E+04, /* J = 20 */
1948     (PID.TID 0000.0001) -7.500000000000000E+03, /* J = 21 */
1949     (PID.TID 0000.0001) -2.500000000000000E+03, /* J = 22 */
1950     (PID.TID 0000.0001) 2.500000000000000E+03, /* J = 23 */
1951     (PID.TID 0000.0001) 7.500000000000000E+03, /* J = 24 */
1952     (PID.TID 0000.0001) 1.250000000000000E+04, /* J = 25 */
1953     (PID.TID 0000.0001) 1.750000000000000E+04, /* J = 26 */
1954     (PID.TID 0000.0001) 2.250000000000000E+04, /* J = 27 */
1955     (PID.TID 0000.0001) 2.750000000000000E+04, /* J = 28 */
1956     (PID.TID 0000.0001) 3.250000000000000E+04, /* J = 29 */
1957     (PID.TID 0000.0001) 3.750000000000000E+04, /* J = 30 */
1958     (PID.TID 0000.0001) 4.250000000000000E+04, /* J = 31 */
1959     (PID.TID 0000.0001) 4.750000000000000E+04, /* J = 32 */
1960     (PID.TID 0000.0001) 5.250000000000000E+04, /* J = 33 */
1961     (PID.TID 0000.0001) 5.750000000000000E+04, /* J = 34 */
1962     (PID.TID 0000.0001) 6.250000000000000E+04, /* J = 35 */
1963     (PID.TID 0000.0001) 6.750000000000000E+04, /* J = 36 */
1964     (PID.TID 0000.0001) 7.250000000000000E+04, /* J = 37 */
1965     (PID.TID 0000.0001) 7.750000000000000E+04, /* J = 38 */
1966     (PID.TID 0000.0001) 8.250000000000000E+04, /* J = 39 */
1967     (PID.TID 0000.0001) 8.750000000000000E+04, /* J = 40 */
1968     (PID.TID 0000.0001) 9.250000000000000E+04, /* J = 41 */
1969     (PID.TID 0000.0001) 9.750000000000000E+04 /* J = 42 */
1970     (PID.TID 0000.0001) ;
1971     (PID.TID 0000.0001) rcoord = /* P-point R coordinate ( units of r ) */
1972     (PID.TID 0000.0001) -5.000000000000000E+00 /* K = 1 */
1973     (PID.TID 0000.0001) ;
1974     (PID.TID 0000.0001) rF = /* W-Interf. R coordinate ( units of r ) */
1975     (PID.TID 0000.0001) 0.000000000000000E+00, /* K = 1 */
1976     (PID.TID 0000.0001) -1.000000000000000E+01 /* K = 2 */
1977     (PID.TID 0000.0001) ;
1978     (PID.TID 0000.0001) deepFacC = /* deep-model grid factor @ cell-Center (-) */
1979     (PID.TID 0000.0001) 1.000000000000000E+00 /* K = 1 */
1980     (PID.TID 0000.0001) ;
1981     (PID.TID 0000.0001) deepFacF = /* deep-model grid factor @ W-Interface (-) */
1982     (PID.TID 0000.0001) 2 @ 1.000000000000000E+00 /* K = 1: 2 */
1983     (PID.TID 0000.0001) ;
1984     (PID.TID 0000.0001) rVel2wUnit = /* convert units: rVel -> wSpeed (=1 if z-coord)*/
1985     (PID.TID 0000.0001) 2 @ 1.000000000000000E+00 /* K = 1: 2 */
1986     (PID.TID 0000.0001) ;
1987     (PID.TID 0000.0001) wUnit2rVel = /* convert units: wSpeed -> rVel (=1 if z-coord)*/
1988     (PID.TID 0000.0001) 2 @ 1.000000000000000E+00 /* K = 1: 2 */
1989     (PID.TID 0000.0001) ;
1990     (PID.TID 0000.0001) dBdrRef = /* Vertical grad. of reference buoyancy [(m/s/r)^2] */
1991     (PID.TID 0000.0001) 0.000000000000000E+00 /* K = 1 */
1992     (PID.TID 0000.0001) ;
1993     (PID.TID 0000.0001) rotateGrid = /* use rotated grid ( True/False ) */
1994     (PID.TID 0000.0001) F
1995     (PID.TID 0000.0001) ;
1996     (PID.TID 0000.0001) phiEuler = /* Euler angle, rotation about original z-coordinate [rad] */
1997     (PID.TID 0000.0001) 0.000000000000000E+00
1998     (PID.TID 0000.0001) ;
1999     (PID.TID 0000.0001) thetaEuler = /* Euler angle, rotation about new x-coordinate [rad] */
2000     (PID.TID 0000.0001) 0.000000000000000E+00
2001     (PID.TID 0000.0001) ;
2002     (PID.TID 0000.0001) psiEuler = /* Euler angle, rotation about new z-coordinate [rad] */
2003     (PID.TID 0000.0001) 0.000000000000000E+00
2004     (PID.TID 0000.0001) ;
2005     (PID.TID 0000.0001) dxF = /* dxF(:,1,:,1) ( units: m ) */
2006     (PID.TID 0000.0001) 80 @ 5.000000000000000E+03 /* I = 1: 80 */
2007     (PID.TID 0000.0001) ;
2008     (PID.TID 0000.0001) dxF = /* dxF(1,:,1,:) ( units: m ) */
2009     (PID.TID 0000.0001) 42 @ 5.000000000000000E+03 /* J = 1: 42 */
2010     (PID.TID 0000.0001) ;
2011     (PID.TID 0000.0001) dyF = /* dyF(:,1,:,1) ( units: m ) */
2012     (PID.TID 0000.0001) 80 @ 5.000000000000000E+03 /* I = 1: 80 */
2013     (PID.TID 0000.0001) ;
2014     (PID.TID 0000.0001) dyF = /* dyF(1,:,1,:) ( units: m ) */
2015     (PID.TID 0000.0001) 42 @ 5.000000000000000E+03 /* J = 1: 42 */
2016     (PID.TID 0000.0001) ;
2017     (PID.TID 0000.0001) dxG = /* dxG(:,1,:,1) ( units: m ) */
2018     (PID.TID 0000.0001) 80 @ 5.000000000000000E+03 /* I = 1: 80 */
2019     (PID.TID 0000.0001) ;
2020     (PID.TID 0000.0001) dxG = /* dxG(1,:,1,:) ( units: m ) */
2021     (PID.TID 0000.0001) 42 @ 5.000000000000000E+03 /* J = 1: 42 */
2022     (PID.TID 0000.0001) ;
2023     (PID.TID 0000.0001) dyG = /* dyG(:,1,:,1) ( units: m ) */
2024     (PID.TID 0000.0001) 80 @ 5.000000000000000E+03 /* I = 1: 80 */
2025     (PID.TID 0000.0001) ;
2026     (PID.TID 0000.0001) dyG = /* dyG(1,:,1,:) ( units: m ) */
2027     (PID.TID 0000.0001) 42 @ 5.000000000000000E+03 /* J = 1: 42 */
2028     (PID.TID 0000.0001) ;
2029     (PID.TID 0000.0001) dxC = /* dxC(:,1,:,1) ( units: m ) */
2030     (PID.TID 0000.0001) 80 @ 5.000000000000000E+03 /* I = 1: 80 */
2031     (PID.TID 0000.0001) ;
2032     (PID.TID 0000.0001) dxC = /* dxC(1,:,1,:) ( units: m ) */
2033     (PID.TID 0000.0001) 42 @ 5.000000000000000E+03 /* J = 1: 42 */
2034     (PID.TID 0000.0001) ;
2035     (PID.TID 0000.0001) dyC = /* dyC(:,1,:,1) ( units: m ) */
2036     (PID.TID 0000.0001) 80 @ 5.000000000000000E+03 /* I = 1: 80 */
2037     (PID.TID 0000.0001) ;
2038     (PID.TID 0000.0001) dyC = /* dyC(1,:,1,:) ( units: m ) */
2039     (PID.TID 0000.0001) 42 @ 5.000000000000000E+03 /* J = 1: 42 */
2040     (PID.TID 0000.0001) ;
2041     (PID.TID 0000.0001) dxV = /* dxV(:,1,:,1) ( units: m ) */
2042     (PID.TID 0000.0001) 80 @ 5.000000000000000E+03 /* I = 1: 80 */
2043     (PID.TID 0000.0001) ;
2044     (PID.TID 0000.0001) dxV = /* dxV(1,:,1,:) ( units: m ) */
2045     (PID.TID 0000.0001) 42 @ 5.000000000000000E+03 /* J = 1: 42 */
2046     (PID.TID 0000.0001) ;
2047     (PID.TID 0000.0001) dyU = /* dyU(:,1,:,1) ( units: m ) */
2048     (PID.TID 0000.0001) 80 @ 5.000000000000000E+03 /* I = 1: 80 */
2049     (PID.TID 0000.0001) ;
2050     (PID.TID 0000.0001) dyU = /* dyU(1,:,1,:) ( units: m ) */
2051     (PID.TID 0000.0001) 42 @ 5.000000000000000E+03 /* J = 1: 42 */
2052     (PID.TID 0000.0001) ;
2053     (PID.TID 0000.0001) rA = /* rA (:,1,:,1) ( units: m^2 ) */
2054     (PID.TID 0000.0001) 80 @ 2.500000000000000E+07 /* I = 1: 80 */
2055     (PID.TID 0000.0001) ;
2056     (PID.TID 0000.0001) rA = /* rA (1,:,1,:) ( units: m^2 ) */
2057     (PID.TID 0000.0001) 42 @ 2.500000000000000E+07 /* J = 1: 42 */
2058     (PID.TID 0000.0001) ;
2059     (PID.TID 0000.0001) rAw = /* rAw(:,1,:,1) ( units: m^2 ) */
2060     (PID.TID 0000.0001) 80 @ 2.500000000000000E+07 /* I = 1: 80 */
2061     (PID.TID 0000.0001) ;
2062     (PID.TID 0000.0001) rAw = /* rAw(1,:,1,:) ( units: m^2 ) */
2063     (PID.TID 0000.0001) 42 @ 2.500000000000000E+07 /* J = 1: 42 */
2064     (PID.TID 0000.0001) ;
2065     (PID.TID 0000.0001) rAs = /* rAs(:,1,:,1) ( units: m^2 ) */
2066     (PID.TID 0000.0001) 80 @ 2.500000000000000E+07 /* I = 1: 80 */
2067     (PID.TID 0000.0001) ;
2068     (PID.TID 0000.0001) rAs = /* rAs(1,:,1,:) ( units: m^2 ) */
2069     (PID.TID 0000.0001) 42 @ 2.500000000000000E+07 /* J = 1: 42 */
2070     (PID.TID 0000.0001) ;
2071     (PID.TID 0000.0001) globalArea = /* Integrated horizontal Area (m^2) */
2072     (PID.TID 0000.0001) 6.950000000000000E+10
2073     (PID.TID 0000.0001) ;
2074     (PID.TID 0000.0001) // =======================================================
2075     (PID.TID 0000.0001) // End of Model config. summary
2076     (PID.TID 0000.0001) // =======================================================
2077     (PID.TID 0000.0001)
2078     (PID.TID 0000.0001) == Packages configuration : Check & print summary ==
2079     (PID.TID 0000.0001)
2080     (PID.TID 0000.0001) SEAICE_CHECK: #define ALLOW_SEAICE
2081 jmc 1.2 (PID.TID 0000.0001) GAD_CHECK: #define ALLOW_GENERIC_ADVDIFF
2082 mlosch 1.1 (PID.TID 0000.0001) // =======================================================
2083     (PID.TID 0000.0001) // Check Model config. (CONFIG_CHECK):
2084     (PID.TID 0000.0001) // CONFIG_CHECK : Normal End
2085     (PID.TID 0000.0001) // =======================================================
2086     (PID.TID 0000.0001)
2087     (PID.TID 0000.0001) MDS_READ_FIELD: opening global file: uVel_3c0.bin
2088     (PID.TID 0000.0001) MDS_READ_FIELD: opening global file: vVel_3c0.bin
2089     (PID.TID 0000.0001) MDS_READ_FIELD: opening global file: eta_3c0.bin
2090     (PID.TID 0000.0001) Start initial hydrostatic pressure computation
2091     (PID.TID 0000.0001) Pressure is predetermined for buoyancyRelation OCEANIC
2092     (PID.TID 0000.0001)
2093     (PID.TID 0000.0001) write diagnostics summary to file ioUnit: 6
2094     Iter.Nb: 0 ; Time(s): 0.0000000000000E+00
2095     ------------------------------------------------------------------------
2096     2D/3D diagnostics: Number of lists: 1
2097     ------------------------------------------------------------------------
2098     listId= 1 ; file name: snapshot
2099     nFlds, nActive, freq & phase , nLev
2100     4 | 4 | -86400.000000 3600.000000 | 1
2101     levels: 1
2102     diag# | name | ipt | iMate | kLev| count | mate.C|
2103 mlosch 1.3 153 |SIuice | 1 | 2 | 1 | 0 | 0 |
2104     154 |SIvice | 2 | 1 | 1 | 0 | 0 |
2105     147 |SIheff | 3 | 0 | 1 | 0 |
2106     144 |SIarea | 4 | 0 | 1 | 0 |
2107 mlosch 1.1 ------------------------------------------------------------------------
2108     Global & Regional Statistics diagnostics: Number of lists: 1
2109     ------------------------------------------------------------------------
2110     listId= 1 ; file name: iceStDiag
2111     nFlds, nActive, freq & phase |
2112     5 | 5 | 7200.000000 1800.000000 |
2113     Regions: 0
2114     diag# | name | ipt | iMate | Volume | mate-Vol. |
2115 mlosch 1.3 144 |SIarea | 1 | 0 | 0.00000E+00 |
2116     147 |SIheff | 2 | 0 | 0.00000E+00 |
2117     149 |SIhsnow | 3 | 0 | 0.00000E+00 |
2118     153 |SIuice | 4 | 0 | 0.00000E+00 |
2119     154 |SIvice | 5 | 0 | 0.00000E+00 |
2120 mlosch 1.1 ------------------------------------------------------------------------
2121     (PID.TID 0000.0001) MDS_READ_FIELD: opening global file: windx.bin
2122     (PID.TID 0000.0001) MDS_READ_FIELD: opening global file: heff_quartic.bin
2123     (PID.TID 0000.0001) MDS_READ_FIELD: opening global file: const100.bin
2124     (PID.TID 0000.0001) MDS_READ_FIELD: opening global file: const_00.bin
2125     (PID.TID 0000.0001) // =======================================================
2126     (PID.TID 0000.0001) // Model current state
2127     (PID.TID 0000.0001) // =======================================================
2128     (PID.TID 0000.0001)
2129     (PID.TID 0000.0001) // =======================================================
2130     (PID.TID 0000.0001) // Begin MONITOR dynamic field statistics
2131     (PID.TID 0000.0001) // =======================================================
2132     (PID.TID 0000.0001) %MON time_tsnumber = 0
2133     (PID.TID 0000.0001) %MON time_secondsf = 0.0000000000000E+00
2134     (PID.TID 0000.0001) %MON dynstat_eta_max = 1.4855271423662E-02
2135     (PID.TID 0000.0001) %MON dynstat_eta_min = -1.5547625271979E-02
2136     (PID.TID 0000.0001) %MON dynstat_eta_mean = -6.8609663050809E-19
2137     (PID.TID 0000.0001) %MON dynstat_eta_sd = 5.6185276903544E-03
2138     (PID.TID 0000.0001) %MON dynstat_eta_del2 = 3.4210904025025E-06
2139     (PID.TID 0000.0001) %MON dynstat_uvel_max = 5.4694595665363E-01
2140     (PID.TID 0000.0001) %MON dynstat_uvel_min = 8.1797628424127E-02
2141     (PID.TID 0000.0001) %MON dynstat_uvel_mean = 3.2603530929361E-01
2142     (PID.TID 0000.0001) %MON dynstat_uvel_sd = 8.4661197148990E-02
2143     (PID.TID 0000.0001) %MON dynstat_uvel_del2 = 1.3392731599312E-04
2144     (PID.TID 0000.0001) %MON dynstat_vvel_max = 2.2780617104059E-01
2145     (PID.TID 0000.0001) %MON dynstat_vvel_min = -1.4793000868950E-01
2146     (PID.TID 0000.0001) %MON dynstat_vvel_mean = -3.2450632095700E-04
2147     (PID.TID 0000.0001) %MON dynstat_vvel_sd = 6.0970835295293E-02
2148     (PID.TID 0000.0001) %MON dynstat_vvel_del2 = 8.1836652323282E-05
2149     (PID.TID 0000.0001) %MON dynstat_wvel_max = 1.6555698845343E-04
2150     (PID.TID 0000.0001) %MON dynstat_wvel_min = -2.4393468746960E-04
2151     (PID.TID 0000.0001) %MON dynstat_wvel_mean = -1.8006686469634E-21
2152     (PID.TID 0000.0001) %MON dynstat_wvel_sd = 1.8006622332191E-05
2153     (PID.TID 0000.0001) %MON dynstat_wvel_del2 = 3.4047422448573E-07
2154     (PID.TID 0000.0001) %MON dynstat_theta_max = -1.6200000000000E+00
2155     (PID.TID 0000.0001) %MON dynstat_theta_min = -1.6200000000000E+00
2156     (PID.TID 0000.0001) %MON dynstat_theta_mean = -1.6200000000000E+00
2157     (PID.TID 0000.0001) %MON dynstat_theta_sd = 0.0000000000000E+00
2158     (PID.TID 0000.0001) %MON dynstat_theta_del2 = 0.0000000000000E+00
2159     (PID.TID 0000.0001) %MON dynstat_salt_max = 3.0000000000000E+01
2160     (PID.TID 0000.0001) %MON dynstat_salt_min = 3.0000000000000E+01
2161     (PID.TID 0000.0001) %MON dynstat_salt_mean = 3.0000000000000E+01
2162     (PID.TID 0000.0001) %MON dynstat_salt_sd = 0.0000000000000E+00
2163     (PID.TID 0000.0001) %MON dynstat_salt_del2 = 0.0000000000000E+00
2164     (PID.TID 0000.0001) %MON advcfl_uvel_max = 1.9690054439531E-01
2165     (PID.TID 0000.0001) %MON advcfl_vvel_max = 8.2010221574612E-02
2166     (PID.TID 0000.0001) %MON advcfl_wvel_max = 8.7816487489057E-02
2167     (PID.TID 0000.0001) %MON advcfl_W_hf_max = 0.0000000000000E+00
2168     (PID.TID 0000.0001) %MON pe_b_mean = 1.5484032096270E-05
2169     (PID.TID 0000.0001) %MON ke_max = 1.4564487757410E-01
2170     (PID.TID 0000.0001) %MON ke_mean = 5.8130401708830E-02
2171     (PID.TID 0000.0001) %MON ke_vol = 6.9500000000000E+11
2172     (PID.TID 0000.0001) %MON vort_r_min = -1.4191202448594E-04
2173     (PID.TID 0000.0001) %MON vort_r_max = 8.9657385579761E-05
2174     (PID.TID 0000.0001) %MON vort_a_mean = -6.5586096803907E-22
2175     (PID.TID 0000.0001) %MON vort_a_sd = 1.5889649807104E-05
2176     (PID.TID 0000.0001) %MON vort_p_mean = -6.8228760045090E-22
2177     (PID.TID 0000.0001) %MON vort_p_sd = 3.0669223294758E-05
2178     (PID.TID 0000.0001) %MON surfExpan_theta_mean = -1.4394880171946E-21
2179     (PID.TID 0000.0001) %MON surfExpan_salt_mean = 1.6750406018264E-20
2180     (PID.TID 0000.0001) // =======================================================
2181     (PID.TID 0000.0001) // End MONITOR dynamic field statistics
2182     (PID.TID 0000.0001) // =======================================================
2183     (PID.TID 0000.0001) // =======================================================
2184     (PID.TID 0000.0001) // Begin MONITOR SEAICE statistics
2185     (PID.TID 0000.0001) // =======================================================
2186     (PID.TID 0000.0001) %MON seaice_tsnumber = 0
2187     (PID.TID 0000.0001) %MON seaice_time_sec = 0.0000000000000E+00
2188     (PID.TID 0000.0001) %MON seaice_uice_max = 0.0000000000000E+00
2189     (PID.TID 0000.0001) %MON seaice_uice_min = 0.0000000000000E+00
2190     (PID.TID 0000.0001) %MON seaice_uice_mean = 0.0000000000000E+00
2191     (PID.TID 0000.0001) %MON seaice_uice_sd = 0.0000000000000E+00
2192     (PID.TID 0000.0001) %MON seaice_uice_del2 = 0.0000000000000E+00
2193     (PID.TID 0000.0001) %MON seaice_vice_max = 0.0000000000000E+00
2194     (PID.TID 0000.0001) %MON seaice_vice_min = 0.0000000000000E+00
2195     (PID.TID 0000.0001) %MON seaice_vice_mean = 0.0000000000000E+00
2196     (PID.TID 0000.0001) %MON seaice_vice_sd = 0.0000000000000E+00
2197     (PID.TID 0000.0001) %MON seaice_vice_del2 = 0.0000000000000E+00
2198     (PID.TID 0000.0001) %MON seaice_area_max = 1.0000000000000E+00
2199     (PID.TID 0000.0001) %MON seaice_area_min = 1.0000000000000E+00
2200     (PID.TID 0000.0001) %MON seaice_area_mean = 1.0000000000000E+00
2201     (PID.TID 0000.0001) %MON seaice_area_sd = 0.0000000000000E+00
2202     (PID.TID 0000.0001) %MON seaice_area_del2 = 0.0000000000000E+00
2203     (PID.TID 0000.0001) %MON seaice_heff_max = 7.6257965109702E+00
2204     (PID.TID 0000.0001) %MON seaice_heff_min = 1.3015410245731E-05
2205     (PID.TID 0000.0001) %MON seaice_heff_mean = 1.9238269172251E+00
2206     (PID.TID 0000.0001) %MON seaice_heff_sd = 2.2084104540500E+00
2207     (PID.TID 0000.0001) %MON seaice_heff_del2 = 4.7611843052501E-04
2208     (PID.TID 0000.0001) %MON seaice_hsnow_max = 0.0000000000000E+00
2209     (PID.TID 0000.0001) %MON seaice_hsnow_min = 0.0000000000000E+00
2210     (PID.TID 0000.0001) %MON seaice_hsnow_mean = 0.0000000000000E+00
2211     (PID.TID 0000.0001) %MON seaice_hsnow_sd = 0.0000000000000E+00
2212     (PID.TID 0000.0001) %MON seaice_hsnow_del2 = 0.0000000000000E+00
2213     (PID.TID 0000.0001) // =======================================================
2214     (PID.TID 0000.0001) // End MONITOR SEAICE statistics
2215     (PID.TID 0000.0001) // =======================================================
2216     (PID.TID 0000.0001) // =======================================================
2217     (PID.TID 0000.0001) // Begin MONITOR EXF statistics
2218     (PID.TID 0000.0001) // =======================================================
2219     (PID.TID 0000.0001) %MON exf_tsnumber = 0
2220     (PID.TID 0000.0001) %MON exf_time_sec = 0.0000000000000E+00
2221     (PID.TID 0000.0001) %MON exf_ustress_max = 1.3964039188763E-01
2222     (PID.TID 0000.0001) %MON exf_ustress_min = 1.3964039188763E-01
2223     (PID.TID 0000.0001) %MON exf_ustress_mean = 1.3964039188763E-01
2224     (PID.TID 0000.0001) %MON exf_ustress_sd = 5.5511151231258E-17
2225     (PID.TID 0000.0001) %MON exf_ustress_del2 = 0.0000000000000E+00
2226     (PID.TID 0000.0001) %MON exf_vstress_max = 0.0000000000000E+00
2227     (PID.TID 0000.0001) %MON exf_vstress_min = 0.0000000000000E+00
2228     (PID.TID 0000.0001) %MON exf_vstress_mean = 0.0000000000000E+00
2229     (PID.TID 0000.0001) %MON exf_vstress_sd = 0.0000000000000E+00
2230     (PID.TID 0000.0001) %MON exf_vstress_del2 = 0.0000000000000E+00
2231     (PID.TID 0000.0001) %MON exf_hflux_max = 1.3256147102117E+02
2232     (PID.TID 0000.0001) %MON exf_hflux_min = 1.3256147102117E+02
2233     (PID.TID 0000.0001) %MON exf_hflux_mean = 1.3256147102117E+02
2234     (PID.TID 0000.0001) %MON exf_hflux_sd = 9.6633812063374E-13
2235     (PID.TID 0000.0001) %MON exf_hflux_del2 = 7.8352778346434E-01
2236     (PID.TID 0000.0001) %MON exf_sflux_max = 5.8259080752307E-08
2237     (PID.TID 0000.0001) %MON exf_sflux_min = 5.8259080752307E-08
2238     (PID.TID 0000.0001) %MON exf_sflux_mean = 5.8259080752308E-08
2239     (PID.TID 0000.0001) %MON exf_sflux_sd = 8.7350272685600E-22
2240     (PID.TID 0000.0001) %MON exf_sflux_del2 = 3.4435049684410E-10
2241     (PID.TID 0000.0001) %MON exf_uwind_max = 1.0000000000000E+01
2242     (PID.TID 0000.0001) %MON exf_uwind_min = 1.0000000000000E+01
2243     (PID.TID 0000.0001) %MON exf_uwind_mean = 1.0000000000000E+01
2244     (PID.TID 0000.0001) %MON exf_uwind_sd = 0.0000000000000E+00
2245     (PID.TID 0000.0001) %MON exf_uwind_del2 = 5.9106750809910E-02
2246     (PID.TID 0000.0001) %MON exf_vwind_max = 0.0000000000000E+00
2247     (PID.TID 0000.0001) %MON exf_vwind_min = 0.0000000000000E+00
2248     (PID.TID 0000.0001) %MON exf_vwind_mean = 0.0000000000000E+00
2249     (PID.TID 0000.0001) %MON exf_vwind_sd = 0.0000000000000E+00
2250     (PID.TID 0000.0001) %MON exf_vwind_del2 = 0.0000000000000E+00
2251     (PID.TID 0000.0001) %MON exf_wspeed_max = 1.0000000000000E+01
2252     (PID.TID 0000.0001) %MON exf_wspeed_min = 1.0000000000000E+01
2253     (PID.TID 0000.0001) %MON exf_wspeed_mean = 1.0000000000000E+01
2254     (PID.TID 0000.0001) %MON exf_wspeed_sd = 0.0000000000000E+00
2255     (PID.TID 0000.0001) %MON exf_wspeed_del2 = 5.9106750809910E-02
2256     (PID.TID 0000.0001) %MON exf_evap_max = 5.8259080752307E-08
2257     (PID.TID 0000.0001) %MON exf_evap_min = 5.8259080752307E-08
2258     (PID.TID 0000.0001) %MON exf_evap_mean = 5.8259080752308E-08
2259     (PID.TID 0000.0001) %MON exf_evap_sd = 8.7350272685600E-22
2260     (PID.TID 0000.0001) %MON exf_evap_del2 = 3.4435049684410E-10
2261     (PID.TID 0000.0001) // =======================================================
2262     (PID.TID 0000.0001) // End MONITOR EXF statistics
2263     (PID.TID 0000.0001) // =======================================================
2264     SEAICE_LSR: Residual Initial ipass,Uice,Vice= 1 9.24106196E-01 1.17296801E-01
2265     SEAICE_LSR: Residual FrDrift U_fd,V_fd= 9.86328478E+02 2.13264534E+02
2266     SEAICE_LSR (ipass= 1) iters,dU,Resid= 1500 5.82036947E-06 1.49621319E+00
2267     SEAICE_LSR (ipass= 1) iters,dV,Resid= 262 9.51364096E-13 6.21782792E-09
2268     SEAICE_LSR: Residual Initial ipass,Uice,Vice= 2 1.10270138E+00 4.57691419E-01
2269     SEAICE_LSR: Residual FrDrift U_fd,V_fd= 9.00111561E+02 1.46701502E+02
2270     SEAICE_LSR (ipass= 2) iters,dU,Resid= 1500 7.85942877E-06 1.88589018E+00
2271 mlosch 1.3 SEAICE_LSR (ipass= 2) iters,dV,Resid= 138 9.74267542E-13 2.93259019E-09
2272 mlosch 1.1 (PID.TID 0000.0001) // =======================================================
2273     (PID.TID 0000.0001) // Begin MONITOR SEAICE statistics
2274     (PID.TID 0000.0001) // =======================================================
2275     (PID.TID 0000.0001) %MON seaice_tsnumber = 1
2276     (PID.TID 0000.0001) %MON seaice_time_sec = 1.8000000000000E+03
2277     (PID.TID 0000.0001) %MON seaice_uice_max = 4.5785861648568E-01
2278     (PID.TID 0000.0001) %MON seaice_uice_min = 1.6417452505188E-02
2279     (PID.TID 0000.0001) %MON seaice_uice_mean = 1.1795014980475E-01
2280     (PID.TID 0000.0001) %MON seaice_uice_sd = 1.5454680748272E-01
2281     (PID.TID 0000.0001) %MON seaice_uice_del2 = 1.4105643072444E-04
2282     (PID.TID 0000.0001) %MON seaice_vice_max = 6.8172893461305E-02
2283     (PID.TID 0000.0001) %MON seaice_vice_min = -6.0419618189294E-02
2284     (PID.TID 0000.0001) %MON seaice_vice_mean = -8.8257198042639E-04
2285     (PID.TID 0000.0001) %MON seaice_vice_sd = 1.5068797369797E-02
2286     (PID.TID 0000.0001) %MON seaice_vice_del2 = 2.5562733033719E-05
2287     (PID.TID 0000.0001) %MON seaice_area_max = 1.0000000000000E+00
2288     (PID.TID 0000.0001) %MON seaice_area_min = 9.0994303709186E-01
2289     (PID.TID 0000.0001) %MON seaice_area_mean = 9.9908220599181E-01
2290     (PID.TID 0000.0001) %MON seaice_area_sd = 4.9845253598634E-03
2291     (PID.TID 0000.0001) %MON seaice_area_del2 = 4.7786829098585E-05
2292     (PID.TID 0000.0001) %MON seaice_heff_max = 7.6258091592509E+00
2293     (PID.TID 0000.0001) %MON seaice_heff_min = 1.1843632972116E-05
2294     (PID.TID 0000.0001) %MON seaice_heff_mean = 1.9238269172251E+00
2295     (PID.TID 0000.0001) %MON seaice_heff_sd = 2.2084055511425E+00
2296     (PID.TID 0000.0001) %MON seaice_heff_del2 = 4.7612981468277E-04
2297     (PID.TID 0000.0001) %MON seaice_hsnow_max = 0.0000000000000E+00
2298     (PID.TID 0000.0001) %MON seaice_hsnow_min = 0.0000000000000E+00
2299     (PID.TID 0000.0001) %MON seaice_hsnow_mean = 0.0000000000000E+00
2300     (PID.TID 0000.0001) %MON seaice_hsnow_sd = 0.0000000000000E+00
2301     (PID.TID 0000.0001) %MON seaice_hsnow_del2 = 0.0000000000000E+00
2302     (PID.TID 0000.0001) // =======================================================
2303     (PID.TID 0000.0001) // End MONITOR SEAICE statistics
2304     (PID.TID 0000.0001) // =======================================================
2305 mlosch 1.3 Compute Stats, Diag. # 144 SIarea vol( 0 ): 6.950E+10 Parms: SM M1
2306     Compute Stats, Diag. # 147 SIheff vol( 0 ): 6.950E+10 Parms: SM M1
2307     Compute Stats, Diag. # 149 SIhsnow vol( 0 ): 6.950E+10 Parms: SM M1
2308     Compute Stats, Diag. # 153 SIuice vol( 0 ): 6.900E+10 Parms: UU M1
2309     Compute Stats, Diag. # 154 SIvice vol( 0 ): 6.750E+10 Parms: VV M1
2310 mlosch 1.1 SEAICE_LSR: Residual Initial ipass,Uice,Vice= 1 1.30215741E+00 6.16009135E-01
2311     SEAICE_LSR: Residual FrDrift U_fd,V_fd= 8.28955332E+02 1.84370871E+02
2312     SEAICE_LSR (ipass= 1) iters,dU,Resid= 1500 1.03797737E-05 2.02999433E+00
2313 mlosch 1.3 SEAICE_LSR (ipass= 1) iters,dV,Resid= 94 6.53720134E-13 1.14941600E-10
2314 mlosch 1.1 SEAICE_LSR: Residual Initial ipass,Uice,Vice= 2 1.29534547E+00 5.22648272E-01
2315     SEAICE_LSR: Residual FrDrift U_fd,V_fd= 7.76689576E+02 2.04049703E+02
2316     SEAICE_LSR (ipass= 2) iters,dU,Resid= 1500 1.09310005E-05 1.92167536E+00
2317 mlosch 1.3 SEAICE_LSR (ipass= 2) iters,dV,Resid= 92 9.53778723E-13 7.15713620E-12
2318 mlosch 1.1 (PID.TID 0000.0001) // =======================================================
2319     (PID.TID 0000.0001) // Begin MONITOR SEAICE statistics
2320     (PID.TID 0000.0001) // =======================================================
2321     (PID.TID 0000.0001) %MON seaice_tsnumber = 2
2322     (PID.TID 0000.0001) %MON seaice_time_sec = 3.6000000000000E+03
2323     (PID.TID 0000.0001) %MON seaice_uice_max = 6.5500711893629E-01
2324 mlosch 1.3 (PID.TID 0000.0001) %MON seaice_uice_min = 4.1156434192514E-02
2325 mlosch 1.1 (PID.TID 0000.0001) %MON seaice_uice_mean = 2.3801519152579E-01
2326     (PID.TID 0000.0001) %MON seaice_uice_sd = 1.9281545962067E-01
2327     (PID.TID 0000.0001) %MON seaice_uice_del2 = 4.4846503565925E-04
2328 jmc 1.2 (PID.TID 0000.0001) %MON seaice_vice_max = 1.0977236081257E-01
2329 mlosch 1.1 (PID.TID 0000.0001) %MON seaice_vice_min = -1.1734162879091E-01
2330     (PID.TID 0000.0001) %MON seaice_vice_mean = -8.0510108464115E-03
2331     (PID.TID 0000.0001) %MON seaice_vice_sd = 3.5684707285799E-02
2332 jmc 1.2 (PID.TID 0000.0001) %MON seaice_vice_del2 = 5.3628656114996E-05
2333 mlosch 1.1 (PID.TID 0000.0001) %MON seaice_area_max = 1.0000000000000E+00
2334     (PID.TID 0000.0001) %MON seaice_area_min = 8.0746553906649E-01
2335     (PID.TID 0000.0001) %MON seaice_area_mean = 9.9703000812682E-01
2336 jmc 1.2 (PID.TID 0000.0001) %MON seaice_area_sd = 1.3202771998135E-02
2337     (PID.TID 0000.0001) %MON seaice_area_del2 = 2.5808519651528E-04
2338 mlosch 1.1 (PID.TID 0000.0001) %MON seaice_heff_max = 7.6258261183342E+00
2339     (PID.TID 0000.0001) %MON seaice_heff_min = 1.0507987147848E-05
2340     (PID.TID 0000.0001) %MON seaice_heff_mean = 1.9238269172251E+00
2341     (PID.TID 0000.0001) %MON seaice_heff_sd = 2.2083171871108E+00
2342     (PID.TID 0000.0001) %MON seaice_heff_del2 = 4.7940408028674E-04
2343     (PID.TID 0000.0001) %MON seaice_hsnow_max = 0.0000000000000E+00
2344     (PID.TID 0000.0001) %MON seaice_hsnow_min = 0.0000000000000E+00
2345     (PID.TID 0000.0001) %MON seaice_hsnow_mean = 0.0000000000000E+00
2346     (PID.TID 0000.0001) %MON seaice_hsnow_sd = 0.0000000000000E+00
2347     (PID.TID 0000.0001) %MON seaice_hsnow_del2 = 0.0000000000000E+00
2348     (PID.TID 0000.0001) // =======================================================
2349     (PID.TID 0000.0001) // End MONITOR SEAICE statistics
2350     (PID.TID 0000.0001) // =======================================================
2351     SEAICE_LSR: Residual Initial ipass,Uice,Vice= 1 1.25866776E+00 4.51097578E-01
2352     SEAICE_LSR: Residual FrDrift U_fd,V_fd= 6.44365921E+02 2.10982043E+02
2353     SEAICE_LSR (ipass= 1) iters,dU,Resid= 1500 1.20964195E-05 1.76884007E+00
2354 mlosch 1.3 SEAICE_LSR (ipass= 1) iters,dV,Resid= 96 6.61359856E-13 5.24125692E-13
2355 mlosch 1.1 SEAICE_LSR: Residual Initial ipass,Uice,Vice= 2 1.21292376E+00 4.23656768E-01
2356     SEAICE_LSR: Residual FrDrift U_fd,V_fd= 6.18844127E+02 2.14620724E+02
2357     SEAICE_LSR (ipass= 2) iters,dU,Resid= 1500 1.19720289E-05 1.59659742E+00
2358 mlosch 1.3 SEAICE_LSR (ipass= 2) iters,dV,Resid= 124 7.77766740E-13 1.08316630E-12
2359 mlosch 1.1 (PID.TID 0000.0001) SEAICE_DO_RIDGING: Repeat ridging after iteration 1 in timestep 2
2360     (PID.TID 0000.0001) SEAICE_DO_RIDGING: Repeat ridging after iteration 2 in timestep 2
2361     (PID.TID 0000.0001) // =======================================================
2362     (PID.TID 0000.0001) // Begin MONITOR SEAICE statistics
2363     (PID.TID 0000.0001) // =======================================================
2364     (PID.TID 0000.0001) %MON seaice_tsnumber = 3
2365     (PID.TID 0000.0001) %MON seaice_time_sec = 5.4000000000000E+03
2366 jmc 1.2 (PID.TID 0000.0001) %MON seaice_uice_max = 6.0936482085960E-01
2367 mlosch 1.3 (PID.TID 0000.0001) %MON seaice_uice_min = 6.9299913482389E-02
2368     (PID.TID 0000.0001) %MON seaice_uice_mean = 2.9301485657004E-01
2369 jmc 1.2 (PID.TID 0000.0001) %MON seaice_uice_sd = 1.7896145821627E-01
2370     (PID.TID 0000.0001) %MON seaice_uice_del2 = 1.6882964448690E-04
2371     (PID.TID 0000.0001) %MON seaice_vice_max = 1.1748734516506E-01
2372 mlosch 1.1 (PID.TID 0000.0001) %MON seaice_vice_min = -1.5434093805956E-01
2373     (PID.TID 0000.0001) %MON seaice_vice_mean = -1.7521381476872E-02
2374     (PID.TID 0000.0001) %MON seaice_vice_sd = 4.7445147739516E-02
2375 mlosch 1.3 (PID.TID 0000.0001) %MON seaice_vice_del2 = 6.4590390252684E-05
2376 mlosch 1.1 (PID.TID 0000.0001) %MON seaice_area_max = 1.0000000000000E+00
2377     (PID.TID 0000.0001) %MON seaice_area_min = 0.0000000000000E+00
2378 jmc 1.2 (PID.TID 0000.0001) %MON seaice_area_mean = 9.9496791050425E-01
2379 mlosch 1.3 (PID.TID 0000.0001) %MON seaice_area_sd = 2.7265082191534E-02
2380 mlosch 1.1 (PID.TID 0000.0001) %MON seaice_area_del2 = 6.0263348617220E-04
2381     (PID.TID 0000.0001) %MON seaice_heff_max = 7.6258431764618E+00
2382     (PID.TID 0000.0001) %MON seaice_heff_min = 0.0000000000000E+00
2383 jmc 1.2 (PID.TID 0000.0001) %MON seaice_heff_mean = 1.9238269138577E+00
2384 mlosch 1.1 (PID.TID 0000.0001) %MON seaice_heff_sd = 2.2079427793961E+00
2385 jmc 1.2 (PID.TID 0000.0001) %MON seaice_heff_del2 = 4.9777441782392E-04
2386 mlosch 1.1 (PID.TID 0000.0001) %MON seaice_hsnow_max = 0.0000000000000E+00
2387     (PID.TID 0000.0001) %MON seaice_hsnow_min = 0.0000000000000E+00
2388     (PID.TID 0000.0001) %MON seaice_hsnow_mean = 0.0000000000000E+00
2389     (PID.TID 0000.0001) %MON seaice_hsnow_sd = 0.0000000000000E+00
2390     (PID.TID 0000.0001) %MON seaice_hsnow_del2 = 0.0000000000000E+00
2391     (PID.TID 0000.0001) // =======================================================
2392     (PID.TID 0000.0001) // End MONITOR SEAICE statistics
2393     (PID.TID 0000.0001) // =======================================================
2394 mlosch 1.3 Computing Diagnostic # 153 SIuice Counter: 1 Parms: UU M1
2395     Vector Mate for SIuice Diagnostic # 154 SIvice exists
2396     Computing Diagnostic # 154 SIvice Counter: 1 Parms: VV M1
2397     Vector Mate for SIvice Diagnostic # 153 SIuice exists
2398     Computing Diagnostic # 147 SIheff Counter: 1 Parms: SM M1
2399     Computing Diagnostic # 144 SIarea Counter: 1 Parms: SM M1
2400 mlosch 1.1 SEAICE_LSR: Residual Initial ipass,Uice,Vice= 1 1.15154871E+00 4.04292458E-01
2401     SEAICE_LSR: Residual FrDrift U_fd,V_fd= 5.58013209E+02 2.17652249E+02
2402     SEAICE_LSR (ipass= 1) iters,dU,Resid= 1500 1.25440869E-05 1.41002186E+00
2403 mlosch 1.3 SEAICE_LSR (ipass= 1) iters,dV,Resid= 266 9.84365367E-13 6.02851440E-12
2404 mlosch 1.1 SEAICE_LSR: Residual Initial ipass,Uice,Vice= 2 1.11262746E+00 4.00214446E-01
2405     SEAICE_LSR: Residual FrDrift U_fd,V_fd= 5.55908424E+02 2.18203423E+02
2406     SEAICE_LSR (ipass= 2) iters,dU,Resid= 1500 1.20029879E-05 1.23115022E+00
2407 mlosch 1.3 SEAICE_LSR (ipass= 2) iters,dV,Resid= 306 9.69266334E-13 8.20610642E-12
2408 mlosch 1.1 (PID.TID 0000.0001) SEAICE_DO_RIDGING: Repeat ridging after iteration 1 in timestep 3
2409     (PID.TID 0000.0001) SEAICE_DO_RIDGING: Repeat ridging after iteration 2 in timestep 3
2410     (PID.TID 0000.0001) // =======================================================
2411     (PID.TID 0000.0001) // Begin MONITOR SEAICE statistics
2412     (PID.TID 0000.0001) // =======================================================
2413     (PID.TID 0000.0001) %MON seaice_tsnumber = 4
2414     (PID.TID 0000.0001) %MON seaice_time_sec = 7.2000000000000E+03
2415 jmc 1.2 (PID.TID 0000.0001) %MON seaice_uice_max = 6.7996921868123E-01
2416 mlosch 1.3 (PID.TID 0000.0001) %MON seaice_uice_min = 9.8121158536360E-02
2417 jmc 1.2 (PID.TID 0000.0001) %MON seaice_uice_mean = 3.2873952599553E-01
2418     (PID.TID 0000.0001) %MON seaice_uice_sd = 1.7198107764954E-01
2419     (PID.TID 0000.0001) %MON seaice_uice_del2 = 1.5513793539140E-04
2420     (PID.TID 0000.0001) %MON seaice_vice_max = 1.1600511718195E-01
2421     (PID.TID 0000.0001) %MON seaice_vice_min = -1.8014852316619E-01
2422     (PID.TID 0000.0001) %MON seaice_vice_mean = -2.4621138079835E-02
2423 mlosch 1.3 (PID.TID 0000.0001) %MON seaice_vice_sd = 5.4258947791007E-02
2424 jmc 1.2 (PID.TID 0000.0001) %MON seaice_vice_del2 = 6.4500278885683E-05
2425 mlosch 1.1 (PID.TID 0000.0001) %MON seaice_area_max = 1.0000000000000E+00
2426     (PID.TID 0000.0001) %MON seaice_area_min = 0.0000000000000E+00
2427 jmc 1.2 (PID.TID 0000.0001) %MON seaice_area_mean = 9.9303471434478E-01
2428     (PID.TID 0000.0001) %MON seaice_area_sd = 3.2402095671800E-02
2429     (PID.TID 0000.0001) %MON seaice_area_del2 = 6.2296634069851E-04
2430 mlosch 1.1 (PID.TID 0000.0001) %MON seaice_heff_max = 7.6258567170102E+00
2431     (PID.TID 0000.0001) %MON seaice_heff_min = 0.0000000000000E+00
2432     (PID.TID 0000.0001) %MON seaice_heff_mean = 1.9238269138555E+00
2433     (PID.TID 0000.0001) %MON seaice_heff_sd = 2.2072434105177E+00
2434 jmc 1.2 (PID.TID 0000.0001) %MON seaice_heff_del2 = 5.3647356513630E-04
2435 mlosch 1.1 (PID.TID 0000.0001) %MON seaice_hsnow_max = 0.0000000000000E+00
2436     (PID.TID 0000.0001) %MON seaice_hsnow_min = 0.0000000000000E+00
2437     (PID.TID 0000.0001) %MON seaice_hsnow_mean = 0.0000000000000E+00
2438     (PID.TID 0000.0001) %MON seaice_hsnow_sd = 0.0000000000000E+00
2439     (PID.TID 0000.0001) %MON seaice_hsnow_del2 = 0.0000000000000E+00
2440     (PID.TID 0000.0001) // =======================================================
2441     (PID.TID 0000.0001) // End MONITOR SEAICE statistics
2442     (PID.TID 0000.0001) // =======================================================
2443     SEAICE_LSR: Residual Initial ipass,Uice,Vice= 1 1.03903014E+00 3.95193930E-01
2444     SEAICE_LSR: Residual FrDrift U_fd,V_fd= 5.19666284E+02 2.09285726E+02
2445     SEAICE_LSR (ipass= 1) iters,dU,Resid= 1500 1.19897327E-05 1.05933583E+00
2446 mlosch 1.3 SEAICE_LSR (ipass= 1) iters,dV,Resid= 426 9.86488669E-13 1.46194471E-11
2447 mlosch 1.1 SEAICE_LSR: Residual Initial ipass,Uice,Vice= 2 9.91892259E-01 3.80283986E-01
2448     SEAICE_LSR: Residual FrDrift U_fd,V_fd= 5.01734672E+02 1.91343287E+02
2449     SEAICE_LSR (ipass= 2) iters,dU,Resid= 1500 1.14796349E-05 9.39892995E-01
2450 mlosch 1.3 SEAICE_LSR (ipass= 2) iters,dV,Resid= 448 9.20638565E-13 1.51778015E-11
2451 mlosch 1.1 (PID.TID 0000.0001) SEAICE_DO_RIDGING: Repeat ridging after iteration 1 in timestep 4
2452     (PID.TID 0000.0001) SEAICE_DO_RIDGING: Repeat ridging after iteration 2 in timestep 4
2453     (PID.TID 0000.0001) // =======================================================
2454     (PID.TID 0000.0001) // Begin MONITOR SEAICE statistics
2455     (PID.TID 0000.0001) // =======================================================
2456     (PID.TID 0000.0001) %MON seaice_tsnumber = 5
2457     (PID.TID 0000.0001) %MON seaice_time_sec = 9.0000000000000E+03
2458 jmc 1.2 (PID.TID 0000.0001) %MON seaice_uice_max = 6.8724282539860E-01
2459 mlosch 1.3 (PID.TID 0000.0001) %MON seaice_uice_min = 1.2567603871314E-01
2460     (PID.TID 0000.0001) %MON seaice_uice_mean = 3.5215001864302E-01
2461     (PID.TID 0000.0001) %MON seaice_uice_sd = 1.6228521155981E-01
2462     (PID.TID 0000.0001) %MON seaice_uice_del2 = 1.6204769801280E-04
2463 jmc 1.2 (PID.TID 0000.0001) %MON seaice_vice_max = 1.1639854730232E-01
2464     (PID.TID 0000.0001) %MON seaice_vice_min = -1.8952611147402E-01
2465 mlosch 1.3 (PID.TID 0000.0001) %MON seaice_vice_mean = -2.8147769671648E-02
2466     (PID.TID 0000.0001) %MON seaice_vice_sd = 5.7299847261175E-02
2467     (PID.TID 0000.0001) %MON seaice_vice_del2 = 6.6361024786016E-05
2468 mlosch 1.1 (PID.TID 0000.0001) %MON seaice_area_max = 1.0000000000000E+00
2469     (PID.TID 0000.0001) %MON seaice_area_min = 0.0000000000000E+00
2470 jmc 1.2 (PID.TID 0000.0001) %MON seaice_area_mean = 9.9082063811482E-01
2471     (PID.TID 0000.0001) %MON seaice_area_sd = 4.1794319294774E-02
2472     (PID.TID 0000.0001) %MON seaice_area_del2 = 8.4537089209066E-04
2473 mlosch 1.1 (PID.TID 0000.0001) %MON seaice_heff_max = 7.6258670571433E+00
2474     (PID.TID 0000.0001) %MON seaice_heff_min = 0.0000000000000E+00
2475     (PID.TID 0000.0001) %MON seaice_heff_mean = 1.9238269103969E+00
2476     (PID.TID 0000.0001) %MON seaice_heff_sd = 2.2063082288634E+00
2477 jmc 1.2 (PID.TID 0000.0001) %MON seaice_heff_del2 = 5.9394063329099E-04
2478 mlosch 1.1 (PID.TID 0000.0001) %MON seaice_hsnow_max = 0.0000000000000E+00
2479     (PID.TID 0000.0001) %MON seaice_hsnow_min = 0.0000000000000E+00
2480     (PID.TID 0000.0001) %MON seaice_hsnow_mean = 0.0000000000000E+00
2481     (PID.TID 0000.0001) %MON seaice_hsnow_sd = 0.0000000000000E+00
2482     (PID.TID 0000.0001) %MON seaice_hsnow_del2 = 0.0000000000000E+00
2483     (PID.TID 0000.0001) // =======================================================
2484     (PID.TID 0000.0001) // End MONITOR SEAICE statistics
2485     (PID.TID 0000.0001) // =======================================================
2486 mlosch 1.3 Compute Stats, Diag. # 144 SIarea vol( 0 ): 2.780E+11 Parms: SM M1
2487     Compute Stats, Diag. # 147 SIheff vol( 0 ): 2.780E+11 Parms: SM M1
2488     Compute Stats, Diag. # 149 SIhsnow vol( 0 ): 2.780E+11 Parms: SM M1
2489     Compute Stats, Diag. # 153 SIuice vol( 0 ): 2.760E+11 Parms: UU M1
2490     Compute Stats, Diag. # 154 SIvice vol( 0 ): 2.700E+11 Parms: VV M1
2491 mlosch 1.1 SEAICE_LSR: Residual Initial ipass,Uice,Vice= 1 8.67951257E-01 3.22891198E-01
2492     SEAICE_LSR: Residual FrDrift U_fd,V_fd= 4.33608232E+02 1.55019171E+02
2493     SEAICE_LSR (ipass= 1) iters,dU,Resid= 1500 1.18604006E-05 8.53164684E-01
2494 mlosch 1.3 SEAICE_LSR (ipass= 1) iters,dV,Resid= 514 9.95328819E-13 2.17939573E-11
2495 mlosch 1.1 SEAICE_LSR: Residual Initial ipass,Uice,Vice= 2 8.12273163E-01 3.11884304E-01
2496     SEAICE_LSR: Residual FrDrift U_fd,V_fd= 4.09087894E+02 1.37856361E+02
2497     SEAICE_LSR (ipass= 2) iters,dU,Resid= 1500 1.15781846E-05 7.78273512E-01
2498 mlosch 1.3 SEAICE_LSR (ipass= 2) iters,dV,Resid= 548 9.54097912E-13 2.28823934E-11
2499 mlosch 1.1 (PID.TID 0000.0001) SEAICE_DO_RIDGING: Repeat ridging after iteration 1 in timestep 5
2500     (PID.TID 0000.0001) SEAICE_DO_RIDGING: Repeat ridging after iteration 2 in timestep 5
2501     (PID.TID 0000.0001) // =======================================================
2502     (PID.TID 0000.0001) // Begin MONITOR SEAICE statistics
2503     (PID.TID 0000.0001) // =======================================================
2504     (PID.TID 0000.0001) %MON seaice_tsnumber = 6
2505     (PID.TID 0000.0001) %MON seaice_time_sec = 1.0800000000000E+04
2506 jmc 1.2 (PID.TID 0000.0001) %MON seaice_uice_max = 6.8369301459026E-01
2507 mlosch 1.3 (PID.TID 0000.0001) %MON seaice_uice_min = 1.5339912338472E-01
2508     (PID.TID 0000.0001) %MON seaice_uice_mean = 3.7054126120698E-01
2509     (PID.TID 0000.0001) %MON seaice_uice_sd = 1.5206760351264E-01
2510 jmc 1.2 (PID.TID 0000.0001) %MON seaice_uice_del2 = 1.7193580473473E-04
2511     (PID.TID 0000.0001) %MON seaice_vice_max = 1.1685808983182E-01
2512     (PID.TID 0000.0001) %MON seaice_vice_min = -1.8987119982285E-01
2513 mlosch 1.3 (PID.TID 0000.0001) %MON seaice_vice_mean = -2.9552877871032E-02
2514 jmc 1.2 (PID.TID 0000.0001) %MON seaice_vice_sd = 5.8345821408269E-02
2515     (PID.TID 0000.0001) %MON seaice_vice_del2 = 7.4386284831358E-05
2516 mlosch 1.1 (PID.TID 0000.0001) %MON seaice_area_max = 1.0000000000000E+00
2517     (PID.TID 0000.0001) %MON seaice_area_min = 0.0000000000000E+00
2518 jmc 1.2 (PID.TID 0000.0001) %MON seaice_area_mean = 9.8890622386231E-01
2519     (PID.TID 0000.0001) %MON seaice_area_sd = 4.6392626723723E-02
2520     (PID.TID 0000.0001) %MON seaice_area_del2 = 8.1122800693915E-04
2521 mlosch 1.1 (PID.TID 0000.0001) %MON seaice_heff_max = 7.6258529240304E+00
2522     (PID.TID 0000.0001) %MON seaice_heff_min = 0.0000000000000E+00
2523     (PID.TID 0000.0001) %MON seaice_heff_mean = 1.9238269103938E+00
2524     (PID.TID 0000.0001) %MON seaice_heff_sd = 2.2052282803138E+00
2525 mlosch 1.3 (PID.TID 0000.0001) %MON seaice_heff_del2 = 6.6309266924314E-04
2526 mlosch 1.1 (PID.TID 0000.0001) %MON seaice_hsnow_max = 0.0000000000000E+00
2527     (PID.TID 0000.0001) %MON seaice_hsnow_min = 0.0000000000000E+00
2528     (PID.TID 0000.0001) %MON seaice_hsnow_mean = 0.0000000000000E+00
2529     (PID.TID 0000.0001) %MON seaice_hsnow_sd = 0.0000000000000E+00
2530     (PID.TID 0000.0001) %MON seaice_hsnow_del2 = 0.0000000000000E+00
2531     (PID.TID 0000.0001) // =======================================================
2532     (PID.TID 0000.0001) // End MONITOR SEAICE statistics
2533     (PID.TID 0000.0001) // =======================================================
2534     SEAICE_LSR: Residual Initial ipass,Uice,Vice= 1 7.41747849E-01 3.03287704E-01
2535     SEAICE_LSR: Residual FrDrift U_fd,V_fd= 3.53510186E+02 1.16748343E+02
2536     SEAICE_LSR (ipass= 1) iters,dU,Resid= 1500 1.20953701E-05 7.37813224E-01
2537 mlosch 1.3 SEAICE_LSR (ipass= 1) iters,dV,Resid= 644 9.78071790E-13 3.10111926E-11
2538 mlosch 1.1 SEAICE_LSR: Residual Initial ipass,Uice,Vice= 2 7.15677450E-01 2.63409305E-01
2539     SEAICE_LSR: Residual FrDrift U_fd,V_fd= 3.42009132E+02 1.09639106E+02
2540     SEAICE_LSR (ipass= 2) iters,dU,Resid= 1500 1.15099035E-05 6.83720721E-01
2541 mlosch 1.3 SEAICE_LSR (ipass= 2) iters,dV,Resid= 604 9.60356794E-13 3.42925312E-11
2542 mlosch 1.1 (PID.TID 0000.0001) SEAICE_DO_RIDGING: Repeat ridging after iteration 1 in timestep 6
2543     (PID.TID 0000.0001) SEAICE_DO_RIDGING: Repeat ridging after iteration 2 in timestep 6
2544     (PID.TID 0000.0001) // =======================================================
2545     (PID.TID 0000.0001) // Begin MONITOR SEAICE statistics
2546     (PID.TID 0000.0001) // =======================================================
2547     (PID.TID 0000.0001) %MON seaice_tsnumber = 7
2548     (PID.TID 0000.0001) %MON seaice_time_sec = 1.2600000000000E+04
2549 jmc 1.2 (PID.TID 0000.0001) %MON seaice_uice_max = 6.8094691743793E-01
2550 mlosch 1.3 (PID.TID 0000.0001) %MON seaice_uice_min = 1.8143279180053E-01
2551     (PID.TID 0000.0001) %MON seaice_uice_mean = 3.8616350153202E-01
2552     (PID.TID 0000.0001) %MON seaice_uice_sd = 1.4183338965597E-01
2553     (PID.TID 0000.0001) %MON seaice_uice_del2 = 1.8170068939572E-04
2554 jmc 1.2 (PID.TID 0000.0001) %MON seaice_vice_max = 1.1742753913014E-01
2555     (PID.TID 0000.0001) %MON seaice_vice_min = -1.8719339063504E-01
2556 mlosch 1.3 (PID.TID 0000.0001) %MON seaice_vice_mean = -2.9704634296221E-02
2557     (PID.TID 0000.0001) %MON seaice_vice_sd = 5.8448691037064E-02
2558     (PID.TID 0000.0001) %MON seaice_vice_del2 = 8.4566856812201E-05
2559 mlosch 1.1 (PID.TID 0000.0001) %MON seaice_area_max = 1.0000000000000E+00
2560     (PID.TID 0000.0001) %MON seaice_area_min = 0.0000000000000E+00
2561 jmc 1.2 (PID.TID 0000.0001) %MON seaice_area_mean = 9.8678489770637E-01
2562     (PID.TID 0000.0001) %MON seaice_area_sd = 5.4178917115529E-02
2563     (PID.TID 0000.0001) %MON seaice_area_del2 = 9.2742794973952E-04
2564 mlosch 1.1 (PID.TID 0000.0001) %MON seaice_heff_max = 7.6257965599349E+00
2565     (PID.TID 0000.0001) %MON seaice_heff_min = 0.0000000000000E+00
2566     (PID.TID 0000.0001) %MON seaice_heff_mean = 1.9238269069439E+00
2567     (PID.TID 0000.0001) %MON seaice_heff_sd = 2.2040778844826E+00
2568 mlosch 1.3 (PID.TID 0000.0001) %MON seaice_heff_del2 = 7.3836320544127E-04
2569 mlosch 1.1 (PID.TID 0000.0001) %MON seaice_hsnow_max = 0.0000000000000E+00
2570     (PID.TID 0000.0001) %MON seaice_hsnow_min = 0.0000000000000E+00
2571     (PID.TID 0000.0001) %MON seaice_hsnow_mean = 0.0000000000000E+00
2572     (PID.TID 0000.0001) %MON seaice_hsnow_sd = 0.0000000000000E+00
2573     (PID.TID 0000.0001) %MON seaice_hsnow_del2 = 0.0000000000000E+00
2574     (PID.TID 0000.0001) // =======================================================
2575     (PID.TID 0000.0001) // End MONITOR SEAICE statistics
2576     (PID.TID 0000.0001) // =======================================================
2577     SEAICE_LSR: Residual Initial ipass,Uice,Vice= 1 7.02902264E-01 2.24198303E-01
2578     SEAICE_LSR: Residual FrDrift U_fd,V_fd= 3.10503219E+02 1.01244422E+02
2579     SEAICE_LSR (ipass= 1) iters,dU,Resid= 1500 1.14616005E-05 6.85033756E-01
2580 mlosch 1.3 SEAICE_LSR (ipass= 1) iters,dV,Resid= 910 9.80139581E-13 4.96743204E-11
2581 mlosch 1.1 SEAICE_LSR: Residual Initial ipass,Uice,Vice= 2 7.02746467E-01 2.02255254E-01
2582     SEAICE_LSR: Residual FrDrift U_fd,V_fd= 3.10153207E+02 9.96983880E+01
2583     SEAICE_LSR (ipass= 2) iters,dU,Resid= 1500 1.05749720E-05 6.48582333E-01
2584 mlosch 1.3 SEAICE_LSR (ipass= 2) iters,dV,Resid= 950 9.68863878E-13 5.72958364E-11
2585 mlosch 1.1 (PID.TID 0000.0001) SEAICE_DO_RIDGING: Repeat ridging after iteration 1 in timestep 7
2586     (PID.TID 0000.0001) SEAICE_DO_RIDGING: Repeat ridging after iteration 2 in timestep 7
2587     (PID.TID 0000.0001) // =======================================================
2588     (PID.TID 0000.0001) // Begin MONITOR SEAICE statistics
2589     (PID.TID 0000.0001) // =======================================================
2590     (PID.TID 0000.0001) %MON seaice_tsnumber = 8
2591     (PID.TID 0000.0001) %MON seaice_time_sec = 1.4400000000000E+04
2592 jmc 1.2 (PID.TID 0000.0001) %MON seaice_uice_max = 6.7887692701050E-01
2593 mlosch 1.3 (PID.TID 0000.0001) %MON seaice_uice_min = 2.0757143381259E-01
2594     (PID.TID 0000.0001) %MON seaice_uice_mean = 3.9935297042715E-01
2595     (PID.TID 0000.0001) %MON seaice_uice_sd = 1.3258474602555E-01
2596     (PID.TID 0000.0001) %MON seaice_uice_del2 = 1.9146630464976E-04
2597 jmc 1.2 (PID.TID 0000.0001) %MON seaice_vice_max = 1.1807499137652E-01
2598 mlosch 1.3 (PID.TID 0000.0001) %MON seaice_vice_min = -1.8334390079446E-01
2599     (PID.TID 0000.0001) %MON seaice_vice_mean = -2.9120698361658E-02
2600     (PID.TID 0000.0001) %MON seaice_vice_sd = 5.8083972385195E-02
2601     (PID.TID 0000.0001) %MON seaice_vice_del2 = 9.1443092543289E-05
2602 mlosch 1.1 (PID.TID 0000.0001) %MON seaice_area_max = 1.0000000000000E+00
2603     (PID.TID 0000.0001) %MON seaice_area_min = 0.0000000000000E+00
2604 jmc 1.2 (PID.TID 0000.0001) %MON seaice_area_mean = 9.8498635392612E-01
2605     (PID.TID 0000.0001) %MON seaice_area_sd = 5.8436069213927E-02
2606     (PID.TID 0000.0001) %MON seaice_area_del2 = 8.7311966078379E-04
2607 mlosch 1.1 (PID.TID 0000.0001) %MON seaice_heff_max = 7.6257539533025E+00
2608     (PID.TID 0000.0001) %MON seaice_heff_min = 0.0000000000000E+00
2609     (PID.TID 0000.0001) %MON seaice_heff_mean = 1.9238269069395E+00
2610     (PID.TID 0000.0001) %MON seaice_heff_sd = 2.2029119092714E+00
2611 jmc 1.2 (PID.TID 0000.0001) %MON seaice_heff_del2 = 8.0843771448598E-04
2612 mlosch 1.1 (PID.TID 0000.0001) %MON seaice_hsnow_max = 0.0000000000000E+00
2613     (PID.TID 0000.0001) %MON seaice_hsnow_min = 0.0000000000000E+00
2614     (PID.TID 0000.0001) %MON seaice_hsnow_mean = 0.0000000000000E+00
2615     (PID.TID 0000.0001) %MON seaice_hsnow_sd = 0.0000000000000E+00
2616     (PID.TID 0000.0001) %MON seaice_hsnow_del2 = 0.0000000000000E+00
2617     (PID.TID 0000.0001) // =======================================================
2618     (PID.TID 0000.0001) // End MONITOR SEAICE statistics
2619     (PID.TID 0000.0001) // =======================================================
2620     SEAICE_LSR: Residual Initial ipass,Uice,Vice= 1 6.92646805E-01 2.07699726E-01
2621     SEAICE_LSR: Residual FrDrift U_fd,V_fd= 2.98859586E+02 9.96473948E+01
2622     SEAICE_LSR (ipass= 1) iters,dU,Resid= 1500 1.01265997E-05 6.60697064E-01
2623 mlosch 1.3 SEAICE_LSR (ipass= 1) iters,dV,Resid= 1306 9.74421932E-13 9.19737612E-11
2624 mlosch 1.1 SEAICE_LSR: Residual Initial ipass,Uice,Vice= 2 6.78004698E-01 2.11075333E-01
2625     SEAICE_LSR: Residual FrDrift U_fd,V_fd= 3.03185205E+02 9.96656401E+01
2626     SEAICE_LSR (ipass= 2) iters,dU,Resid= 1500 9.29118006E-06 6.13502911E-01
2627 mlosch 1.3 SEAICE_LSR (ipass= 2) iters,dV,Resid= 1352 9.98812144E-13 1.07812130E-10
2628 mlosch 1.1 (PID.TID 0000.0001) SEAICE_DO_RIDGING: Repeat ridging after iteration 1 in timestep 8
2629     (PID.TID 0000.0001) SEAICE_DO_RIDGING: Repeat ridging after iteration 2 in timestep 8
2630     (PID.TID 0000.0001) // =======================================================
2631     (PID.TID 0000.0001) // Begin MONITOR SEAICE statistics
2632     (PID.TID 0000.0001) // =======================================================
2633     (PID.TID 0000.0001) %MON seaice_tsnumber = 9
2634     (PID.TID 0000.0001) %MON seaice_time_sec = 1.6200000000000E+04
2635 jmc 1.2 (PID.TID 0000.0001) %MON seaice_uice_max = 6.7776213711424E-01
2636 mlosch 1.3 (PID.TID 0000.0001) %MON seaice_uice_min = 2.3055247410606E-01
2637     (PID.TID 0000.0001) %MON seaice_uice_mean = 4.1030880188603E-01
2638     (PID.TID 0000.0001) %MON seaice_uice_sd = 1.2477301254584E-01
2639     (PID.TID 0000.0001) %MON seaice_uice_del2 = 2.0185982874053E-04
2640 jmc 1.2 (PID.TID 0000.0001) %MON seaice_vice_max = 1.1866831254623E-01
2641 mlosch 1.3 (PID.TID 0000.0001) %MON seaice_vice_min = -1.7961216265307E-01
2642     (PID.TID 0000.0001) %MON seaice_vice_mean = -2.8155125031175E-02
2643     (PID.TID 0000.0001) %MON seaice_vice_sd = 5.7521536191821E-02
2644     (PID.TID 0000.0001) %MON seaice_vice_del2 = 9.4976608543186E-05
2645 mlosch 1.1 (PID.TID 0000.0001) %MON seaice_area_max = 1.0000000000000E+00
2646     (PID.TID 0000.0001) %MON seaice_area_min = 0.0000000000000E+00
2647 jmc 1.2 (PID.TID 0000.0001) %MON seaice_area_mean = 9.8298177918208E-01
2648     (PID.TID 0000.0001) %MON seaice_area_sd = 6.5283316352170E-02
2649     (PID.TID 0000.0001) %MON seaice_area_del2 = 9.7343236985680E-04
2650 mlosch 1.1 (PID.TID 0000.0001) %MON seaice_heff_max = 7.6257405023924E+00
2651     (PID.TID 0000.0001) %MON seaice_heff_min = 0.0000000000000E+00
2652     (PID.TID 0000.0001) %MON seaice_heff_mean = 1.9238269034696E+00
2653     (PID.TID 0000.0001) %MON seaice_heff_sd = 2.2017641019926E+00
2654 jmc 1.2 (PID.TID 0000.0001) %MON seaice_heff_del2 = 8.7394719283441E-04
2655 mlosch 1.1 (PID.TID 0000.0001) %MON seaice_hsnow_max = 0.0000000000000E+00
2656     (PID.TID 0000.0001) %MON seaice_hsnow_min = 0.0000000000000E+00
2657     (PID.TID 0000.0001) %MON seaice_hsnow_mean = 0.0000000000000E+00
2658     (PID.TID 0000.0001) %MON seaice_hsnow_sd = 0.0000000000000E+00
2659     (PID.TID 0000.0001) %MON seaice_hsnow_del2 = 0.0000000000000E+00
2660     (PID.TID 0000.0001) // =======================================================
2661     (PID.TID 0000.0001) // End MONITOR SEAICE statistics
2662     (PID.TID 0000.0001) // =======================================================
2663 mlosch 1.3 Compute Stats, Diag. # 144 SIarea vol( 0 ): 2.780E+11 Parms: SM M1
2664     Compute Stats, Diag. # 147 SIheff vol( 0 ): 2.780E+11 Parms: SM M1
2665     Compute Stats, Diag. # 149 SIhsnow vol( 0 ): 2.780E+11 Parms: SM M1
2666     Compute Stats, Diag. # 153 SIuice vol( 0 ): 2.760E+11 Parms: UU M1
2667     Compute Stats, Diag. # 154 SIvice vol( 0 ): 2.700E+11 Parms: VV M1
2668 mlosch 1.1 SEAICE_LSR: Residual Initial ipass,Uice,Vice= 1 6.38370297E-01 1.96249682E-01
2669     SEAICE_LSR: Residual FrDrift U_fd,V_fd= 3.00100948E+02 1.00665323E+02
2670     SEAICE_LSR (ipass= 1) iters,dU,Resid= 1500 8.82504449E-06 5.94853376E-01
2671 mlosch 1.3 SEAICE_LSR (ipass= 1) iters,dV,Resid= 1500 9.71101671E-12 1.47656083E-09
2672 mlosch 1.1 SEAICE_LSR: Residual Initial ipass,Uice,Vice= 2 6.21381351E-01 1.88014365E-01
2673     SEAICE_LSR: Residual FrDrift U_fd,V_fd= 3.06240642E+02 1.00672600E+02
2674     SEAICE_LSR (ipass= 2) iters,dU,Resid= 1500 8.09953002E-06 5.49861020E-01
2675 mlosch 1.3 SEAICE_LSR (ipass= 2) iters,dV,Resid= 1500 1.76966428E-11 3.17691507E-09
2676 mlosch 1.1 (PID.TID 0000.0001) SEAICE_DO_RIDGING: Repeat ridging after iteration 1 in timestep 9
2677     (PID.TID 0000.0001) SEAICE_DO_RIDGING: Repeat ridging after iteration 2 in timestep 9
2678     (PID.TID 0000.0001) // =======================================================
2679     (PID.TID 0000.0001) // Begin MONITOR SEAICE statistics
2680     (PID.TID 0000.0001) // =======================================================
2681     (PID.TID 0000.0001) %MON seaice_tsnumber = 10
2682     (PID.TID 0000.0001) %MON seaice_time_sec = 1.8000000000000E+04
2683 mlosch 1.3 (PID.TID 0000.0001) %MON seaice_uice_max = 6.7759088458760E-01
2684     (PID.TID 0000.0001) %MON seaice_uice_min = 2.5048961362421E-01
2685     (PID.TID 0000.0001) %MON seaice_uice_mean = 4.1946444875153E-01
2686     (PID.TID 0000.0001) %MON seaice_uice_sd = 1.1827028386696E-01
2687     (PID.TID 0000.0001) %MON seaice_uice_del2 = 2.1238031749665E-04
2688 jmc 1.2 (PID.TID 0000.0001) %MON seaice_vice_max = 1.1931991435722E-01
2689 mlosch 1.3 (PID.TID 0000.0001) %MON seaice_vice_min = -1.7675005502870E-01
2690     (PID.TID 0000.0001) %MON seaice_vice_mean = -2.7026295489291E-02
2691     (PID.TID 0000.0001) %MON seaice_vice_sd = 5.6912205653565E-02
2692     (PID.TID 0000.0001) %MON seaice_vice_del2 = 9.6108321896705E-05
2693 mlosch 1.1 (PID.TID 0000.0001) %MON seaice_area_max = 1.0000000000000E+00
2694     (PID.TID 0000.0001) %MON seaice_area_min = 0.0000000000000E+00
2695 jmc 1.2 (PID.TID 0000.0001) %MON seaice_area_mean = 9.8129562237317E-01
2696     (PID.TID 0000.0001) %MON seaice_area_sd = 6.9261879616101E-02
2697     (PID.TID 0000.0001) %MON seaice_area_del2 = 9.2199442637794E-04
2698 mlosch 1.1 (PID.TID 0000.0001) %MON seaice_heff_max = 7.6257275423480E+00
2699     (PID.TID 0000.0001) %MON seaice_heff_min = 0.0000000000000E+00
2700     (PID.TID 0000.0001) %MON seaice_heff_mean = 1.9238269034638E+00
2701     (PID.TID 0000.0001) %MON seaice_heff_sd = 2.2006537298937E+00
2702 mlosch 1.3 (PID.TID 0000.0001) %MON seaice_heff_del2 = 9.3767921600252E-04
2703 mlosch 1.1 (PID.TID 0000.0001) %MON seaice_hsnow_max = 0.0000000000000E+00
2704     (PID.TID 0000.0001) %MON seaice_hsnow_min = 0.0000000000000E+00
2705     (PID.TID 0000.0001) %MON seaice_hsnow_mean = 0.0000000000000E+00
2706     (PID.TID 0000.0001) %MON seaice_hsnow_sd = 0.0000000000000E+00
2707     (PID.TID 0000.0001) %MON seaice_hsnow_del2 = 0.0000000000000E+00
2708     (PID.TID 0000.0001) // =======================================================
2709     (PID.TID 0000.0001) // End MONITOR SEAICE statistics
2710     (PID.TID 0000.0001) // =======================================================
2711     SEAICE_LSR: Residual Initial ipass,Uice,Vice= 1 5.84126842E-01 1.64437705E-01
2712     SEAICE_LSR: Residual FrDrift U_fd,V_fd= 3.08191917E+02 1.01538690E+02
2713     SEAICE_LSR (ipass= 1) iters,dU,Resid= 1500 7.63248464E-06 5.30028611E-01
2714 mlosch 1.3 SEAICE_LSR (ipass= 1) iters,dV,Resid= 1500 3.26664459E-10 8.27700019E-08
2715 mlosch 1.1 SEAICE_LSR: Residual Initial ipass,Uice,Vice= 2 5.70187717E-01 1.60131125E-01
2716     SEAICE_LSR: Residual FrDrift U_fd,V_fd= 3.15998410E+02 1.01694891E+02
2717     SEAICE_LSR (ipass= 2) iters,dU,Resid= 1500 7.01276853E-06 4.94213171E-01
2718 mlosch 1.3 SEAICE_LSR (ipass= 2) iters,dV,Resid= 1500 2.57542411E-10 6.75578379E-08
2719 mlosch 1.1 (PID.TID 0000.0001) SEAICE_DO_RIDGING: Repeat ridging after iteration 1 in timestep 10
2720     (PID.TID 0000.0001) SEAICE_DO_RIDGING: Repeat ridging after iteration 2 in timestep 10
2721     (PID.TID 0000.0001) // =======================================================
2722     (PID.TID 0000.0001) // Begin MONITOR SEAICE statistics
2723     (PID.TID 0000.0001) // =======================================================
2724     (PID.TID 0000.0001) %MON seaice_tsnumber = 11
2725     (PID.TID 0000.0001) %MON seaice_time_sec = 1.9800000000000E+04
2726 jmc 1.2 (PID.TID 0000.0001) %MON seaice_uice_max = 6.7779365019139E-01
2727 mlosch 1.3 (PID.TID 0000.0001) %MON seaice_uice_min = 2.6764072129170E-01
2728     (PID.TID 0000.0001) %MON seaice_uice_mean = 4.2712667581162E-01
2729     (PID.TID 0000.0001) %MON seaice_uice_sd = 1.1290903268560E-01
2730     (PID.TID 0000.0001) %MON seaice_uice_del2 = 2.2314780972034E-04
2731 mlosch 1.1 (PID.TID 0000.0001) %MON seaice_vice_max = 1.2003460279939E-01
2732 mlosch 1.3 (PID.TID 0000.0001) %MON seaice_vice_min = -1.7412054141236E-01
2733     (PID.TID 0000.0001) %MON seaice_vice_mean = -2.5852533975834E-02
2734     (PID.TID 0000.0001) %MON seaice_vice_sd = 5.6331379549325E-02
2735     (PID.TID 0000.0001) %MON seaice_vice_del2 = 9.6282266673794E-05
2736 mlosch 1.1 (PID.TID 0000.0001) %MON seaice_area_max = 1.0000000000000E+00
2737     (PID.TID 0000.0001) %MON seaice_area_min = 0.0000000000000E+00
2738 jmc 1.2 (PID.TID 0000.0001) %MON seaice_area_mean = 9.7939556088201E-01
2739     (PID.TID 0000.0001) %MON seaice_area_sd = 7.5385702623796E-02
2740     (PID.TID 0000.0001) %MON seaice_area_del2 = 1.0258590099412E-03
2741 mlosch 1.1 (PID.TID 0000.0001) %MON seaice_heff_max = 7.6257169461414E+00
2742     (PID.TID 0000.0001) %MON seaice_heff_min = 0.0000000000000E+00
2743     (PID.TID 0000.0001) %MON seaice_heff_mean = 1.9238269000117E+00
2744     (PID.TID 0000.0001) %MON seaice_heff_sd = 2.1995907767369E+00
2745 mlosch 1.3 (PID.TID 0000.0001) %MON seaice_heff_del2 = 9.9583796823250E-04
2746 mlosch 1.1 (PID.TID 0000.0001) %MON seaice_hsnow_max = 0.0000000000000E+00
2747     (PID.TID 0000.0001) %MON seaice_hsnow_min = 0.0000000000000E+00
2748     (PID.TID 0000.0001) %MON seaice_hsnow_mean = 0.0000000000000E+00
2749     (PID.TID 0000.0001) %MON seaice_hsnow_sd = 0.0000000000000E+00
2750     (PID.TID 0000.0001) %MON seaice_hsnow_del2 = 0.0000000000000E+00
2751     (PID.TID 0000.0001) // =======================================================
2752     (PID.TID 0000.0001) // End MONITOR SEAICE statistics
2753     (PID.TID 0000.0001) // =======================================================
2754     SEAICE_LSR: Residual Initial ipass,Uice,Vice= 1 5.40354734E-01 1.49924117E-01
2755     SEAICE_LSR: Residual FrDrift U_fd,V_fd= 3.22399724E+02 1.02464803E+02
2756     SEAICE_LSR (ipass= 1) iters,dU,Resid= 1500 6.56511531E-06 4.80145791E-01
2757 mlosch 1.3 SEAICE_LSR (ipass= 1) iters,dV,Resid= 1500 1.63386343E-09 5.20007514E-07
2758 mlosch 1.1 SEAICE_LSR: Residual Initial ipass,Uice,Vice= 2 5.28745096E-01 1.49404458E-01
2759     SEAICE_LSR: Residual FrDrift U_fd,V_fd= 3.31402721E+02 1.02632951E+02
2760     SEAICE_LSR (ipass= 2) iters,dU,Resid= 1500 6.05154551E-06 4.52032468E-01
2761 jmc 1.2 SEAICE_LSR (ipass= 2) iters,dV,Resid= 1500 1.52383820E-09 5.33111269E-07
2762 mlosch 1.1 (PID.TID 0000.0001) SEAICE_DO_RIDGING: Repeat ridging after iteration 1 in timestep 11
2763     (PID.TID 0000.0001) SEAICE_DO_RIDGING: Repeat ridging after iteration 2 in timestep 11
2764     (PID.TID 0000.0001) // =======================================================
2765 jmc 1.2 (PID.TID 0000.0001) // Begin MONITOR dynamic field statistics
2766     (PID.TID 0000.0001) // =======================================================
2767     (PID.TID 0000.0001) %MON time_tsnumber = 12
2768     (PID.TID 0000.0001) %MON time_secondsf = 2.1600000000000E+04
2769     (PID.TID 0000.0001) %MON dynstat_eta_max = 1.4855271423662E-02
2770     (PID.TID 0000.0001) %MON dynstat_eta_min = -1.5547625271979E-02
2771     (PID.TID 0000.0001) %MON dynstat_eta_mean = -6.8609663050809E-19
2772     (PID.TID 0000.0001) %MON dynstat_eta_sd = 5.6185276903544E-03
2773     (PID.TID 0000.0001) %MON dynstat_eta_del2 = 3.4210904025025E-06
2774     (PID.TID 0000.0001) %MON dynstat_uvel_max = 5.4694595665363E-01
2775     (PID.TID 0000.0001) %MON dynstat_uvel_min = 8.1797628424127E-02
2776     (PID.TID 0000.0001) %MON dynstat_uvel_mean = 3.2603530929361E-01
2777     (PID.TID 0000.0001) %MON dynstat_uvel_sd = 8.4661197148990E-02
2778     (PID.TID 0000.0001) %MON dynstat_uvel_del2 = 1.3392731599312E-04
2779     (PID.TID 0000.0001) %MON dynstat_vvel_max = 2.2780617104059E-01
2780     (PID.TID 0000.0001) %MON dynstat_vvel_min = -1.4793000868950E-01
2781     (PID.TID 0000.0001) %MON dynstat_vvel_mean = -3.2450632095700E-04
2782     (PID.TID 0000.0001) %MON dynstat_vvel_sd = 6.0970835295293E-02
2783     (PID.TID 0000.0001) %MON dynstat_vvel_del2 = 8.1836652323282E-05
2784     (PID.TID 0000.0001) %MON dynstat_wvel_max = 1.6555698845343E-04
2785     (PID.TID 0000.0001) %MON dynstat_wvel_min = -2.4393468746960E-04
2786     (PID.TID 0000.0001) %MON dynstat_wvel_mean = -1.8006686469634E-21
2787     (PID.TID 0000.0001) %MON dynstat_wvel_sd = 1.8006622332191E-05
2788     (PID.TID 0000.0001) %MON dynstat_wvel_del2 = 3.4047422448573E-07
2789     (PID.TID 0000.0001) %MON dynstat_theta_max = -1.6894035960682E+00
2790     (PID.TID 0000.0001) %MON dynstat_theta_min = -1.6894035960682E+00
2791     (PID.TID 0000.0001) %MON dynstat_theta_mean = -1.6894035960682E+00
2792     (PID.TID 0000.0001) %MON dynstat_theta_sd = 1.6209256159527E-14
2793     (PID.TID 0000.0001) %MON dynstat_theta_del2 = 0.0000000000000E+00
2794     (PID.TID 0000.0001) %MON dynstat_salt_max = 3.0000000000000E+01
2795     (PID.TID 0000.0001) %MON dynstat_salt_min = 3.0000000000000E+01
2796     (PID.TID 0000.0001) %MON dynstat_salt_mean = 3.0000000000000E+01
2797     (PID.TID 0000.0001) %MON dynstat_salt_sd = 0.0000000000000E+00
2798     (PID.TID 0000.0001) %MON dynstat_salt_del2 = 0.0000000000000E+00
2799     (PID.TID 0000.0001) %MON advcfl_uvel_max = 1.9690054439531E-01
2800     (PID.TID 0000.0001) %MON advcfl_vvel_max = 8.2010221574612E-02
2801     (PID.TID 0000.0001) %MON advcfl_wvel_max = 8.7816487489057E-02
2802     (PID.TID 0000.0001) %MON advcfl_W_hf_max = 0.0000000000000E+00
2803     (PID.TID 0000.0001) %MON pe_b_mean = 1.5484032096270E-05
2804     (PID.TID 0000.0001) %MON ke_max = 1.4564487757410E-01
2805     (PID.TID 0000.0001) %MON ke_mean = 5.8130401708830E-02
2806     (PID.TID 0000.0001) %MON ke_vol = 6.9500000000000E+11
2807     (PID.TID 0000.0001) %MON vort_r_min = -1.4191202448594E-04
2808     (PID.TID 0000.0001) %MON vort_r_max = 8.9657385579761E-05
2809     (PID.TID 0000.0001) %MON vort_a_mean = -6.5586096803907E-22
2810     (PID.TID 0000.0001) %MON vort_a_sd = 1.5889649807104E-05
2811     (PID.TID 0000.0001) %MON vort_p_mean = -6.8228760045090E-22
2812     (PID.TID 0000.0001) %MON vort_p_sd = 3.0669223294758E-05
2813     (PID.TID 0000.0001) %MON surfExpan_theta_mean = -8.3752030091320E-22
2814     (PID.TID 0000.0001) %MON surfExpan_salt_mean = 1.6750406018264E-20
2815     (PID.TID 0000.0001) // =======================================================
2816     (PID.TID 0000.0001) // End MONITOR dynamic field statistics
2817     (PID.TID 0000.0001) // =======================================================
2818     (PID.TID 0000.0001) // =======================================================
2819 mlosch 1.1 (PID.TID 0000.0001) // Begin MONITOR SEAICE statistics
2820     (PID.TID 0000.0001) // =======================================================
2821     (PID.TID 0000.0001) %MON seaice_tsnumber = 12
2822     (PID.TID 0000.0001) %MON seaice_time_sec = 2.1600000000000E+04
2823 jmc 1.2 (PID.TID 0000.0001) %MON seaice_uice_max = 6.7838163183766E-01
2824 mlosch 1.3 (PID.TID 0000.0001) %MON seaice_uice_min = 2.8232836178862E-01
2825     (PID.TID 0000.0001) %MON seaice_uice_mean = 4.3356565228003E-01
2826     (PID.TID 0000.0001) %MON seaice_uice_sd = 1.0851439450763E-01
2827     (PID.TID 0000.0001) %MON seaice_uice_del2 = 2.3422159889590E-04
2828 mlosch 1.1 (PID.TID 0000.0001) %MON seaice_vice_max = 1.2071888957525E-01
2829 jmc 1.2 (PID.TID 0000.0001) %MON seaice_vice_min = -1.7388832730147E-01
2830 mlosch 1.3 (PID.TID 0000.0001) %MON seaice_vice_mean = -2.4691349641206E-02
2831     (PID.TID 0000.0001) %MON seaice_vice_sd = 5.5818774541649E-02
2832     (PID.TID 0000.0001) %MON seaice_vice_del2 = 9.7318156076815E-05
2833 mlosch 1.1 (PID.TID 0000.0001) %MON seaice_area_max = 1.0000000000000E+00
2834     (PID.TID 0000.0001) %MON seaice_area_min = 0.0000000000000E+00
2835     (PID.TID 0000.0001) %MON seaice_area_mean = 9.7780129884506E-01
2836 jmc 1.2 (PID.TID 0000.0001) %MON seaice_area_sd = 7.9032802136547E-02
2837     (PID.TID 0000.0001) %MON seaice_area_del2 = 9.8121322326731E-04
2838 mlosch 1.1 (PID.TID 0000.0001) %MON seaice_heff_max = 7.6257092573862E+00
2839     (PID.TID 0000.0001) %MON seaice_heff_min = 0.0000000000000E+00
2840     (PID.TID 0000.0001) %MON seaice_heff_mean = 1.9238269000049E+00
2841 jmc 1.2 (PID.TID 0000.0001) %MON seaice_heff_sd = 2.1985791760369E+00
2842     (PID.TID 0000.0001) %MON seaice_heff_del2 = 1.0486872276723E-03
2843 mlosch 1.1 (PID.TID 0000.0001) %MON seaice_hsnow_max = 0.0000000000000E+00
2844     (PID.TID 0000.0001) %MON seaice_hsnow_min = 0.0000000000000E+00
2845     (PID.TID 0000.0001) %MON seaice_hsnow_mean = 0.0000000000000E+00
2846     (PID.TID 0000.0001) %MON seaice_hsnow_sd = 0.0000000000000E+00
2847     (PID.TID 0000.0001) %MON seaice_hsnow_del2 = 0.0000000000000E+00
2848     (PID.TID 0000.0001) // =======================================================
2849     (PID.TID 0000.0001) // End MONITOR SEAICE statistics
2850     (PID.TID 0000.0001) // =======================================================
2851 mlosch 1.3 Compute Stats, Diag. # 144 SIarea vol( 0 ): 2.085E+11 Parms: SM M1
2852     Compute Stats, Diag. # 147 SIheff vol( 0 ): 2.085E+11 Parms: SM M1
2853     Compute Stats, Diag. # 149 SIhsnow vol( 0 ): 2.085E+11 Parms: SM M1
2854     Compute Stats, Diag. # 153 SIuice vol( 0 ): 2.070E+11 Parms: UU M1
2855     Compute Stats, Diag. # 154 SIvice vol( 0 ): 2.025E+11 Parms: VV M1
2856 mlosch 1.1 (PID.TID 0000.0001) DIAGSTATS_CLOSE_IO: close file: iceStDiag.0000000000.txt , unit= 9
2857     (PID.TID 0000.0001) %CHECKPOINT 12 ckptA
2858     (PID.TID 0000.0001) Seconds in section "ALL [THE_MODEL_MAIN]":
2859 mlosch 1.3 (PID.TID 0000.0001) User time: 21.449999999999999
2860     (PID.TID 0000.0001) System time: 2.99999999999999989E-002
2861     (PID.TID 0000.0001) Wall clock time: 21.582900047302246
2862 mlosch 1.1 (PID.TID 0000.0001) No. starts: 1
2863     (PID.TID 0000.0001) No. stops: 1
2864     (PID.TID 0000.0001) Seconds in section "INITIALISE_FIXED [THE_MODEL_MAIN]":
2865 mlosch 1.3 (PID.TID 0000.0001) User time: 2.99999999999999989E-002
2866 mlosch 1.1 (PID.TID 0000.0001) System time: 0.0000000000000000
2867 mlosch 1.3 (PID.TID 0000.0001) Wall clock time: 3.79171371459960938E-002
2868 mlosch 1.1 (PID.TID 0000.0001) No. starts: 1
2869     (PID.TID 0000.0001) No. stops: 1
2870     (PID.TID 0000.0001) Seconds in section "THE_MAIN_LOOP [THE_MODEL_MAIN]":
2871 mlosch 1.3 (PID.TID 0000.0001) User time: 21.419999999999998
2872     (PID.TID 0000.0001) System time: 2.99999999999999989E-002
2873     (PID.TID 0000.0001) Wall clock time: 21.544946908950806
2874 mlosch 1.1 (PID.TID 0000.0001) No. starts: 1
2875     (PID.TID 0000.0001) No. stops: 1
2876     (PID.TID 0000.0001) Seconds in section "INITIALISE_VARIA [THE_MAIN_LOOP]":
2877 mlosch 1.3 (PID.TID 0000.0001) User time: 2.99999999999999989E-002
2878 mlosch 1.1 (PID.TID 0000.0001) System time: 1.00000000000000002E-002
2879 mlosch 1.3 (PID.TID 0000.0001) Wall clock time: 3.85909080505371094E-002
2880 mlosch 1.1 (PID.TID 0000.0001) No. starts: 1
2881     (PID.TID 0000.0001) No. stops: 1
2882     (PID.TID 0000.0001) Seconds in section "MAIN LOOP [THE_MAIN_LOOP]":
2883 mlosch 1.3 (PID.TID 0000.0001) User time: 21.390000000000001
2884     (PID.TID 0000.0001) System time: 1.99999999999999969E-002
2885     (PID.TID 0000.0001) Wall clock time: 21.506328105926514
2886 mlosch 1.1 (PID.TID 0000.0001) No. starts: 1
2887     (PID.TID 0000.0001) No. stops: 1
2888     (PID.TID 0000.0001) Seconds in section "MAIN_DO_LOOP [THE_MAIN_LOOP]":
2889 mlosch 1.3 (PID.TID 0000.0001) User time: 21.390000000000004
2890     (PID.TID 0000.0001) System time: 2.00000000000000039E-002
2891     (PID.TID 0000.0001) Wall clock time: 21.506209135055542
2892 mlosch 1.1 (PID.TID 0000.0001) No. starts: 12
2893     (PID.TID 0000.0001) No. stops: 12
2894     (PID.TID 0000.0001) Seconds in section "FORWARD_STEP [MAIN_DO_LOOP]":
2895 mlosch 1.3 (PID.TID 0000.0001) User time: 21.390000000000004
2896     (PID.TID 0000.0001) System time: 2.00000000000000039E-002
2897     (PID.TID 0000.0001) Wall clock time: 21.505993843078613
2898 mlosch 1.1 (PID.TID 0000.0001) No. starts: 12
2899     (PID.TID 0000.0001) No. stops: 12
2900     (PID.TID 0000.0001) Seconds in section "DO_STATEVARS_DIAGS [FORWARD_STEP]":
2901 jmc 1.2 (PID.TID 0000.0001) User time: 2.00000000000031264E-002
2902 mlosch 1.1 (PID.TID 0000.0001) System time: 0.0000000000000000
2903 mlosch 1.3 (PID.TID 0000.0001) Wall clock time: 9.90009307861328125E-003
2904 mlosch 1.1 (PID.TID 0000.0001) No. starts: 36
2905     (PID.TID 0000.0001) No. stops: 36
2906     (PID.TID 0000.0001) Seconds in section "LOAD_FIELDS_DRIVER [FORWARD_STEP]":
2907 mlosch 1.3 (PID.TID 0000.0001) User time: 5.00000000000007105E-002
2908 mlosch 1.1 (PID.TID 0000.0001) System time: 0.0000000000000000
2909 mlosch 1.3 (PID.TID 0000.0001) Wall clock time: 5.55148124694824219E-002
2910 mlosch 1.1 (PID.TID 0000.0001) No. starts: 12
2911     (PID.TID 0000.0001) No. stops: 12
2912     (PID.TID 0000.0001) Seconds in section "EXF_GETFORCING [LOAD_FLDS_DRIVER]":
2913 mlosch 1.3 (PID.TID 0000.0001) User time: 5.00000000000007105E-002
2914 mlosch 1.1 (PID.TID 0000.0001) System time: 0.0000000000000000
2915 mlosch 1.3 (PID.TID 0000.0001) Wall clock time: 5.50448894500732422E-002
2916 mlosch 1.1 (PID.TID 0000.0001) No. starts: 12
2917     (PID.TID 0000.0001) No. stops: 12
2918     (PID.TID 0000.0001) Seconds in section "EXTERNAL_FLDS_LOAD [LOAD_FLDS_DRIVER]":
2919     (PID.TID 0000.0001) User time: 0.0000000000000000
2920     (PID.TID 0000.0001) System time: 0.0000000000000000
2921 mlosch 1.3 (PID.TID 0000.0001) Wall clock time: 1.22547149658203125E-004
2922 mlosch 1.1 (PID.TID 0000.0001) No. starts: 12
2923     (PID.TID 0000.0001) No. stops: 12
2924     (PID.TID 0000.0001) Seconds in section "DO_ATMOSPHERIC_PHYS [FORWARD_STEP]":
2925     (PID.TID 0000.0001) User time: 0.0000000000000000
2926     (PID.TID 0000.0001) System time: 0.0000000000000000
2927 mlosch 1.3 (PID.TID 0000.0001) Wall clock time: 1.23262405395507813E-004
2928 mlosch 1.1 (PID.TID 0000.0001) No. starts: 12
2929     (PID.TID 0000.0001) No. stops: 12
2930     (PID.TID 0000.0001) Seconds in section "DO_OCEANIC_PHYS [FORWARD_STEP]":
2931 mlosch 1.3 (PID.TID 0000.0001) User time: 21.280000000000005
2932     (PID.TID 0000.0001) System time: 2.00000000000000039E-002
2933     (PID.TID 0000.0001) Wall clock time: 21.347354888916016
2934 mlosch 1.1 (PID.TID 0000.0001) No. starts: 12
2935     (PID.TID 0000.0001) No. stops: 12
2936     (PID.TID 0000.0001) Seconds in section "SEAICE_MODEL [DO_OCEANIC_PHYS]":
2937 mlosch 1.3 (PID.TID 0000.0001) User time: 21.259999999999994
2938     (PID.TID 0000.0001) System time: 2.00000000000000039E-002
2939     (PID.TID 0000.0001) Wall clock time: 21.341663122177124
2940 mlosch 1.1 (PID.TID 0000.0001) No. starts: 12
2941     (PID.TID 0000.0001) No. stops: 12
2942     (PID.TID 0000.0001) Seconds in section "SEAICE_DYNSOLVER [SEAICE_MODEL]":
2943 mlosch 1.3 (PID.TID 0000.0001) User time: 20.690000000000008
2944     (PID.TID 0000.0001) System time: 2.00000000000000039E-002
2945     (PID.TID 0000.0001) Wall clock time: 20.752290010452271
2946 mlosch 1.1 (PID.TID 0000.0001) No. starts: 12
2947     (PID.TID 0000.0001) No. stops: 12
2948     (PID.TID 0000.0001) Seconds in section "BLOCKING_EXCHANGES [FORWARD_STEP]":
2949     (PID.TID 0000.0001) User time: 0.0000000000000000
2950     (PID.TID 0000.0001) System time: 0.0000000000000000
2951 mlosch 1.3 (PID.TID 0000.0001) Wall clock time: 2.43926048278808594E-003
2952 mlosch 1.1 (PID.TID 0000.0001) No. starts: 24
2953     (PID.TID 0000.0001) No. stops: 24
2954     (PID.TID 0000.0001) Seconds in section "THERMODYNAMICS [FORWARD_STEP]":
2955 mlosch 1.3 (PID.TID 0000.0001) User time: 1.00000000000015632E-002
2956 mlosch 1.1 (PID.TID 0000.0001) System time: 0.0000000000000000
2957 mlosch 1.3 (PID.TID 0000.0001) Wall clock time: 1.66709423065185547E-002
2958 mlosch 1.1 (PID.TID 0000.0001) No. starts: 12
2959     (PID.TID 0000.0001) No. stops: 12
2960     (PID.TID 0000.0001) Seconds in section "TRC_CORRECTION_STEP [FORWARD_STEP]":
2961     (PID.TID 0000.0001) User time: 0.0000000000000000
2962     (PID.TID 0000.0001) System time: 0.0000000000000000
2963 mlosch 1.3 (PID.TID 0000.0001) Wall clock time: 1.12056732177734375E-004
2964 mlosch 1.1 (PID.TID 0000.0001) No. starts: 12
2965     (PID.TID 0000.0001) No. stops: 12
2966     (PID.TID 0000.0001) Seconds in section "MONITOR [FORWARD_STEP]":
2967     (PID.TID 0000.0001) User time: 0.0000000000000000
2968     (PID.TID 0000.0001) System time: 0.0000000000000000
2969 mlosch 1.3 (PID.TID 0000.0001) Wall clock time: 3.22890281677246094E-003
2970 mlosch 1.1 (PID.TID 0000.0001) No. starts: 12
2971     (PID.TID 0000.0001) No. stops: 12
2972     (PID.TID 0000.0001) Seconds in section "DO_THE_MODEL_IO [FORWARD_STEP]":
2973 mlosch 1.3 (PID.TID 0000.0001) User time: 3.00000000000011369E-002
2974     (PID.TID 0000.0001) System time: 0.0000000000000000
2975     (PID.TID 0000.0001) Wall clock time: 6.04896545410156250E-002
2976 mlosch 1.1 (PID.TID 0000.0001) No. starts: 12
2977     (PID.TID 0000.0001) No. stops: 12
2978     (PID.TID 0000.0001) Seconds in section "DO_WRITE_PICKUP [FORWARD_STEP]":
2979 mlosch 1.3 (PID.TID 0000.0001) User time: 0.0000000000000000
2980 mlosch 1.1 (PID.TID 0000.0001) System time: 0.0000000000000000
2981 mlosch 1.3 (PID.TID 0000.0001) Wall clock time: 8.53705406188964844E-003
2982 mlosch 1.1 (PID.TID 0000.0001) No. starts: 12
2983     (PID.TID 0000.0001) No. stops: 12
2984     (PID.TID 0000.0001) // ======================================================
2985     (PID.TID 0000.0001) // Tile <-> Tile communication statistics
2986     (PID.TID 0000.0001) // ======================================================
2987     (PID.TID 0000.0001) // o Tile number: 000001
2988     (PID.TID 0000.0001) // No. X exchanges = 0
2989     (PID.TID 0000.0001) // Max. X spins = 0
2990     (PID.TID 0000.0001) // Min. X spins = 1000000000
2991     (PID.TID 0000.0001) // Total. X spins = 0
2992     (PID.TID 0000.0001) // Avg. X spins = 0.00E+00
2993     (PID.TID 0000.0001) // No. Y exchanges = 0
2994     (PID.TID 0000.0001) // Max. Y spins = 0
2995     (PID.TID 0000.0001) // Min. Y spins = 1000000000
2996     (PID.TID 0000.0001) // Total. Y spins = 0
2997     (PID.TID 0000.0001) // Avg. Y spins = 0.00E+00
2998     (PID.TID 0000.0001) // o Tile number: 000002
2999     (PID.TID 0000.0001) // No. X exchanges = 0
3000     (PID.TID 0000.0001) // Max. X spins = 0
3001     (PID.TID 0000.0001) // Min. X spins = 1000000000
3002     (PID.TID 0000.0001) // Total. X spins = 0
3003     (PID.TID 0000.0001) // Avg. X spins = 0.00E+00
3004     (PID.TID 0000.0001) // No. Y exchanges = 0
3005     (PID.TID 0000.0001) // Max. Y spins = 0
3006     (PID.TID 0000.0001) // Min. Y spins = 1000000000
3007     (PID.TID 0000.0001) // Total. Y spins = 0
3008     (PID.TID 0000.0001) // Avg. Y spins = 0.00E+00
3009     (PID.TID 0000.0001) // o Tile number: 000003
3010     (PID.TID 0000.0001) // No. X exchanges = 0
3011     (PID.TID 0000.0001) // Max. X spins = 0
3012     (PID.TID 0000.0001) // Min. X spins = 1000000000
3013     (PID.TID 0000.0001) // Total. X spins = 0
3014     (PID.TID 0000.0001) // Avg. X spins = 0.00E+00
3015     (PID.TID 0000.0001) // No. Y exchanges = 0
3016     (PID.TID 0000.0001) // Max. Y spins = 0
3017     (PID.TID 0000.0001) // Min. Y spins = 1000000000
3018     (PID.TID 0000.0001) // Total. Y spins = 0
3019     (PID.TID 0000.0001) // Avg. Y spins = 0.00E+00
3020     (PID.TID 0000.0001) // o Tile number: 000004
3021     (PID.TID 0000.0001) // No. X exchanges = 0
3022     (PID.TID 0000.0001) // Max. X spins = 0
3023     (PID.TID 0000.0001) // Min. X spins = 1000000000
3024     (PID.TID 0000.0001) // Total. X spins = 0
3025     (PID.TID 0000.0001) // Avg. X spins = 0.00E+00
3026     (PID.TID 0000.0001) // No. Y exchanges = 0
3027     (PID.TID 0000.0001) // Max. Y spins = 0
3028     (PID.TID 0000.0001) // Min. Y spins = 1000000000
3029     (PID.TID 0000.0001) // Total. Y spins = 0
3030     (PID.TID 0000.0001) // Avg. Y spins = 0.00E+00
3031     (PID.TID 0000.0001) // o Thread number: 000001
3032 jmc 1.2 (PID.TID 0000.0001) // No. barriers = 56268
3033 mlosch 1.1 (PID.TID 0000.0001) // Max. barrier spins = 1
3034     (PID.TID 0000.0001) // Min. barrier spins = 1
3035 jmc 1.2 (PID.TID 0000.0001) // Total barrier spins = 56268
3036 mlosch 1.1 (PID.TID 0000.0001) // Avg. barrier spins = 1.00E+00
3037     PROGRAM MAIN: Execution ended Normally

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