/[MITgcm]/MITgcm/verification/offline_exf_seaice/results/output_adm.thsice.txt
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Annotation of /MITgcm/verification/offline_exf_seaice/results/output_adm.thsice.txt

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Revision 1.2 - (hide annotations) (download)
Wed Jun 26 22:58:44 2013 UTC (10 years, 10 months ago) by jmc
Branch: MAIN
CVS Tags: checkpoint64o, checkpoint64q, checkpoint64p, checkpoint64s, checkpoint64r, checkpoint64n, checkpoint64k, checkpoint64j, checkpoint64m, checkpoint64l
Changes since 1.1: +180 -1805 lines
File MIME type: text/plain
reduce length of the test by 2 (only 60 iters, 2.5 days)

1 heimbach 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 jmc 1.2 (PID.TID 0000.0001) // MITgcmUV version: checkpoint64i
9     (PID.TID 0000.0001) // Build user: jmc
10     (PID.TID 0000.0001) // Build host: baudelaire
11     (PID.TID 0000.0001) // Build date: Thu Jun 20 18:14:29 EDT 2013
12 heimbach 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     (PID.TID 0000.0001) >#tempStepping=.FALSE.,
129     (PID.TID 0000.0001) > tempAdvection=.FALSE.,
130     (PID.TID 0000.0001) > momStepping=.FALSE.,
131     (PID.TID 0000.0001) > f0=0.e-4,
132     (PID.TID 0000.0001) > beta=0.,
133     (PID.TID 0000.0001) > useJamartWetPoints=.TRUE.,
134     (PID.TID 0000.0001) > rigidLid=.FALSE.,
135     (PID.TID 0000.0001) > implicitFreeSurface=.TRUE.,
136     (PID.TID 0000.0001) >#exactConserv=.TRUE.,
137     (PID.TID 0000.0001) > convertFW2Salt=-1,
138     (PID.TID 0000.0001) > readBinaryPrec=64,
139     (PID.TID 0000.0001) > writeBinaryPrec=64,
140     (PID.TID 0000.0001) >#globalFiles=.TRUE.,
141     (PID.TID 0000.0001) >#useSingleCpuIO=.TRUE.,
142     (PID.TID 0000.0001) >#debugLevel=4,
143     (PID.TID 0000.0001) > /
144     (PID.TID 0000.0001) >
145     (PID.TID 0000.0001) ># Elliptic solver parameters
146     (PID.TID 0000.0001) > &PARM02
147     (PID.TID 0000.0001) > cg2dMaxIters=500,
148     (PID.TID 0000.0001) > cg2dTargetResidual=1.E-12,
149     (PID.TID 0000.0001) > /
150     (PID.TID 0000.0001) >
151     (PID.TID 0000.0001) ># Time stepping parameters
152     (PID.TID 0000.0001) > &PARM03
153     (PID.TID 0000.0001) > startTime=0.0,
154     (PID.TID 0000.0001) >#endTime=864000.,
155     (PID.TID 0000.0001) > deltaT=3600.0,
156     (PID.TID 0000.0001) > abEps=0.1,
157     (PID.TID 0000.0001) > forcing_In_AB = .FALSE.,
158     (PID.TID 0000.0001) > pChkptFreq=3600000.,
159     (PID.TID 0000.0001) > monitorFreq=432000.,
160     (PID.TID 0000.0001) > monitorSelect=2,
161     (PID.TID 0000.0001) >#dumpFreq = 86400.,
162 jmc 1.2 (PID.TID 0000.0001) > nTimeSteps=60,
163 heimbach 1.1 (PID.TID 0000.0001) >#monitorFreq=1.,
164     (PID.TID 0000.0001) >#dumpFreq = 1.,
165     (PID.TID 0000.0001) > /
166     (PID.TID 0000.0001) >
167     (PID.TID 0000.0001) ># Gridding parameters
168     (PID.TID 0000.0001) > &PARM04
169     (PID.TID 0000.0001) > usingCartesianGrid=.TRUE.,
170     (PID.TID 0000.0001) > delX=80*5.E3,
171     (PID.TID 0000.0001) > delY=42*5.E3,
172     (PID.TID 0000.0001) > ygOrigin=-110.E3,
173     (PID.TID 0000.0001) >#delR= 20., 30., 50.,
174     (PID.TID 0000.0001) > delR= 10.,
175     (PID.TID 0000.0001) > /
176     (PID.TID 0000.0001) >
177     (PID.TID 0000.0001) ># Input datasets
178     (PID.TID 0000.0001) > &PARM05
179     (PID.TID 0000.0001) >#bathyFile = 'bathy_3c.bin',
180     (PID.TID 0000.0001) >#uVelInitFile = 'uVel_3c0.bin',
181     (PID.TID 0000.0001) >#vVelInitFile = 'vVel_3c0.bin',
182     (PID.TID 0000.0001) >#pSurfInitFile = 'eta_3c0.bin',
183     (PID.TID 0000.0001) >#uVelInitFile = 'uVel_3c1.bin',
184     (PID.TID 0000.0001) >#vVelInitFile = 'vVel_3c1.bin',
185     (PID.TID 0000.0001) >#pSurfInitFile = 'eta_3c1.bin',
186     (PID.TID 0000.0001) > bathyFile = 'channel.bin',
187     (PID.TID 0000.0001) > uVelInitFile = 'const+20.bin',
188     (PID.TID 0000.0001) > vVelInitFile = 'const_00.bin',
189     (PID.TID 0000.0001) > /
190     (PID.TID 0000.0001)
191     (PID.TID 0000.0001) INI_PARMS ; starts to read PARM01
192     (PID.TID 0000.0001) INI_PARMS ; read PARM01 : OK
193     (PID.TID 0000.0001) INI_PARMS ; starts to read PARM02
194     (PID.TID 0000.0001) INI_PARMS ; read PARM02 : OK
195     (PID.TID 0000.0001) INI_PARMS ; starts to read PARM03
196     (PID.TID 0000.0001) INI_PARMS ; read PARM03 : OK
197     (PID.TID 0000.0001) INI_PARMS ; starts to read PARM04
198     (PID.TID 0000.0001) INI_PARMS ; read PARM04 : OK
199     (PID.TID 0000.0001) INI_PARMS ; starts to read PARM05
200     (PID.TID 0000.0001) INI_PARMS ; read PARM05 : OK
201     (PID.TID 0000.0001) INI_PARMS: finished reading file "data"
202     (PID.TID 0000.0001) PACKAGES_BOOT: opening data.pkg
203     (PID.TID 0000.0001) OPEN_COPY_DATA_FILE: opening file data.pkg
204     (PID.TID 0000.0001) // =======================================================
205     (PID.TID 0000.0001) // Parameter file "data.pkg"
206     (PID.TID 0000.0001) // =======================================================
207     (PID.TID 0000.0001) ># Packages
208     (PID.TID 0000.0001) > &PACKAGES
209     (PID.TID 0000.0001) > useEXF = .TRUE.,
210 jmc 1.2 (PID.TID 0000.0001) > useSEAICE = .FALSE.,
211 heimbach 1.1 (PID.TID 0000.0001) > useThSIce = .TRUE.,
212     (PID.TID 0000.0001) ># useDiagnostics=.TRUE.,
213     (PID.TID 0000.0001) > useGrdchk = .TRUE.,
214     (PID.TID 0000.0001) > /
215     (PID.TID 0000.0001)
216     (PID.TID 0000.0001) PACKAGES_BOOT: finished reading data.pkg
217     (PID.TID 0000.0001) CAL_READPARMS: opening data.cal
218     (PID.TID 0000.0001) OPEN_COPY_DATA_FILE: opening file data.cal
219     (PID.TID 0000.0001) // =======================================================
220     (PID.TID 0000.0001) // Parameter file "data.cal"
221     (PID.TID 0000.0001) // =======================================================
222     (PID.TID 0000.0001) >#
223     (PID.TID 0000.0001) ># *******************
224     (PID.TID 0000.0001) ># Calendar Parameters
225     (PID.TID 0000.0001) ># *******************
226     (PID.TID 0000.0001) > &CAL_NML
227     (PID.TID 0000.0001) > TheCalendar='gregorian',
228     (PID.TID 0000.0001) ># TheCalendar='model',
229     (PID.TID 0000.0001) > startDate_1=19790101,
230     (PID.TID 0000.0001) > startDate_2=000000,
231     (PID.TID 0000.0001) > /
232     (PID.TID 0000.0001)
233     (PID.TID 0000.0001) CAL_READPARMS: finished reading data.cal
234     (PID.TID 0000.0001) EXF_READPARMS: opening data.exf
235     (PID.TID 0000.0001) OPEN_COPY_DATA_FILE: opening file data.exf
236     (PID.TID 0000.0001) // =======================================================
237     (PID.TID 0000.0001) // Parameter file "data.exf"
238     (PID.TID 0000.0001) // =======================================================
239     (PID.TID 0000.0001) >#
240     (PID.TID 0000.0001) ># *********************
241     (PID.TID 0000.0001) ># External Forcing Data
242     (PID.TID 0000.0001) ># *********************
243     (PID.TID 0000.0001) > &EXF_NML_01
244     (PID.TID 0000.0001) >#
245     (PID.TID 0000.0001) > useExfCheckRange = .TRUE.,
246     (PID.TID 0000.0001) > repeatPeriod = 2635200.0,
247     (PID.TID 0000.0001) > exf_iprec = 64,
248     (PID.TID 0000.0001) > exf_monFreq = 86400000.,
249     (PID.TID 0000.0001) >#useRelativeWind = .TRUE.,
250     (PID.TID 0000.0001) >#
251     (PID.TID 0000.0001) > /
252     (PID.TID 0000.0001) >
253     (PID.TID 0000.0001) ># *********************
254     (PID.TID 0000.0001) > &EXF_NML_02
255     (PID.TID 0000.0001) >#
256     (PID.TID 0000.0001) >#ustressstartdate1 = 19781216,
257     (PID.TID 0000.0001) >#ustressstartdate2 = 180000,
258     (PID.TID 0000.0001) >#ustressperiod = 2635200.0,
259     (PID.TID 0000.0001) >#
260     (PID.TID 0000.0001) >#vstressstartdate1 = 19781216,
261     (PID.TID 0000.0001) >#vstressstartdate2 = 180000,
262     (PID.TID 0000.0001) >#vstressperiod = 2635200.0,
263     (PID.TID 0000.0001) >#
264     (PID.TID 0000.0001) > atempstartdate1 = 19781216,
265     (PID.TID 0000.0001) > atempstartdate2 = 180000,
266     (PID.TID 0000.0001) > atempperiod = 2635200.0,
267     (PID.TID 0000.0001) >#
268     (PID.TID 0000.0001) > aqhstartdate1 = 19781216,
269     (PID.TID 0000.0001) > aqhstartdate2 = 180000,
270     (PID.TID 0000.0001) > aqhperiod = 2635200.0,
271     (PID.TID 0000.0001) >#
272     (PID.TID 0000.0001) > precipstartdate1 = 19781216,
273     (PID.TID 0000.0001) > precipstartdate2 = 180000,
274     (PID.TID 0000.0001) > precipperiod = 2635200.0,
275     (PID.TID 0000.0001) >#
276     (PID.TID 0000.0001) > uwindstartdate1 = 19781216,
277     (PID.TID 0000.0001) > uwindstartdate2 = 180000,
278     (PID.TID 0000.0001) > uwindperiod = 2635200.0,
279     (PID.TID 0000.0001) >#
280     (PID.TID 0000.0001) > vwindstartdate1 = 19781216,
281     (PID.TID 0000.0001) > vwindstartdate2 = 180000,
282     (PID.TID 0000.0001) > vwindperiod = 2635200.0,
283     (PID.TID 0000.0001) >#
284     (PID.TID 0000.0001) > swdownstartdate1 = 19781216,
285     (PID.TID 0000.0001) > swdownstartdate2 = 180000,
286     (PID.TID 0000.0001) > swdownperiod = 2635200.0,
287     (PID.TID 0000.0001) >#
288     (PID.TID 0000.0001) > lwdownstartdate1 = 19781216,
289     (PID.TID 0000.0001) > lwdownstartdate2 = 180000,
290     (PID.TID 0000.0001) > lwdownperiod = 2635200.0,
291     (PID.TID 0000.0001) >#
292     (PID.TID 0000.0001) > climsststartdate1 = 19781216,
293     (PID.TID 0000.0001) > climsststartdate2 = 180000,
294     (PID.TID 0000.0001) > climsstperiod = 2635200.0,
295     (PID.TID 0000.0001) > climsstTauRelax = 2592000.,
296     (PID.TID 0000.0001) >#
297     (PID.TID 0000.0001) > climsssstartdate1 = 19781216,
298     (PID.TID 0000.0001) > climsssstartdate2 = 180000,
299     (PID.TID 0000.0001) > climsssperiod = 2635200.0,
300     (PID.TID 0000.0001) >#climsssTauRelax = 2592000.,
301     (PID.TID 0000.0001) >#
302     (PID.TID 0000.0001) > ustressfile = ' ',
303     (PID.TID 0000.0001) > vstressfile = ' ',
304     (PID.TID 0000.0001) > atempfile = 'tair_4x.bin',
305     (PID.TID 0000.0001) > aqhfile = 'qa70_4x.bin',
306     (PID.TID 0000.0001) > uwindfile = 'windx.bin',
307     (PID.TID 0000.0001) >#vwindfile = 'windy.bin',
308     (PID.TID 0000.0001) > precipfile = 'const_00.bin',
309     (PID.TID 0000.0001) > lwdownfile = 'dlw_250.bin',
310     (PID.TID 0000.0001) > swdownfile = 'dsw_100.bin',
311     (PID.TID 0000.0001) > runoffFile = ' '
312     (PID.TID 0000.0001) > climsstfile = 'tocn.bin',
313     (PID.TID 0000.0001) >#climsssfile = 'socn.bin',
314     (PID.TID 0000.0001) > /
315     (PID.TID 0000.0001) >
316     (PID.TID 0000.0001) ># *********************
317     (PID.TID 0000.0001) > &EXF_NML_03
318     (PID.TID 0000.0001) >#exf_offset_atemp=5;
319     (PID.TID 0000.0001) > /
320     (PID.TID 0000.0001) >
321     (PID.TID 0000.0001) ># *********************
322     (PID.TID 0000.0001) ># old open64 compiler (4.2.1) cannot skip this namelist to read in the next one;
323     (PID.TID 0000.0001) ># comment out this namelist (not read).
324     (PID.TID 0000.0001) >#&EXF_NML_04
325     (PID.TID 0000.0001) >#&
326     (PID.TID 0000.0001) >
327     (PID.TID 0000.0001) ># *********************
328     (PID.TID 0000.0001) > &EXF_NML_OBCS
329     (PID.TID 0000.0001) > /
330     (PID.TID 0000.0001)
331     (PID.TID 0000.0001) EXF_READPARMS: reading EXF_NML_01
332     (PID.TID 0000.0001) EXF_READPARMS: reading EXF_NML_02
333     (PID.TID 0000.0001) EXF_READPARMS: reading EXF_NML_03
334     (PID.TID 0000.0001) EXF_READPARMS: finished reading data.exf
335     (PID.TID 0000.0001) THSICE_READPARMS: opening data.ice
336     (PID.TID 0000.0001) OPEN_COPY_DATA_FILE: opening file data.ice
337     (PID.TID 0000.0001) // =======================================================
338     (PID.TID 0000.0001) // Parameter file "data.ice"
339     (PID.TID 0000.0001) // =======================================================
340     (PID.TID 0000.0001) > &THSICE_CONST
341     (PID.TID 0000.0001) >#- with fractional ice:
342     (PID.TID 0000.0001) > iceMaskMin = 0.001,
343     (PID.TID 0000.0001) > hiMax = 10.,
344     (PID.TID 0000.0001) > hsMax = 10.,
345     (PID.TID 0000.0001) > dhSnowLin = 0.1,
346     (PID.TID 0000.0001) > fracEnFreez= 0.4,
347     (PID.TID 0000.0001) > hNewIceMax = 1.,
348     (PID.TID 0000.0001) > albIceMax = 0.6,
349     (PID.TID 0000.0001) > albIceMin = 0.6,
350     (PID.TID 0000.0001) >#albColdSnow= 0.85,
351     (PID.TID 0000.0001) >#albWarmSnow= 0.60,
352     (PID.TID 0000.0001) >#tempSnowAlb= -5.,
353     (PID.TID 0000.0001) >#albOldSnow = 0.60,
354     (PID.TID 0000.0001) >#hNewSnowAge= 2.e-3,
355     (PID.TID 0000.0001) >#snowAgTime = 4320000.,
356     (PID.TID 0000.0001) >#hAlbIce = 0.44,
357     (PID.TID 0000.0001) >#hAlbSnow = 0.15,
358     (PID.TID 0000.0001) > /
359     (PID.TID 0000.0001) >
360     (PID.TID 0000.0001) > &THSICE_PARM01
361     (PID.TID 0000.0001) >#StartIceModel=1,
362     (PID.TID 0000.0001) >#thSIce_skipThermo=.TRUE.,
363     (PID.TID 0000.0001) >#thSIceAdvScheme=77,
364     (PID.TID 0000.0001) >#thSIce_diffK =800.,
365     (PID.TID 0000.0001) > stressReduction=0.,
366     (PID.TID 0000.0001) > thSIceFract_InitFile='ice0_area.bin',
367     (PID.TID 0000.0001) > thSIceThick_InitFile='const+20.bin',
368     (PID.TID 0000.0001) >#thSIce_diagFreq=2592000.,
369     (PID.TID 0000.0001) >#thSIce_monFreq =43200.,
370     (PID.TID 0000.0001) > thSIce_monFreq =36000.,
371     (PID.TID 0000.0001) > /
372     (PID.TID 0000.0001) >
373     (PID.TID 0000.0001) > &THSICE_COST
374     (PID.TID 0000.0001) > thsice_cost_ice_flag = 1,
375     (PID.TID 0000.0001) > mult_thsice = 1.,
376     (PID.TID 0000.0001) > /
377     (PID.TID 0000.0001) >
378     (PID.TID 0000.0001)
379     (PID.TID 0000.0001) THSICE_READPARMS: read THSICE_CONST
380     (PID.TID 0000.0001) THSICE_READPARMS: read THSICE_PARM01
381     (PID.TID 0000.0001) THSICE_READPARMS: read THSICE_COST
382     ThSI: rhos = 3.3000000000000E+02
383     ThSI: rhoi = 9.0000000000000E+02
384     ThSI: rhosw = 1.0300000000000E+03
385     ThSI: rhofw = 1.0000000000000E+03
386     ThSI: floodFac = 3.9393939393939E-01
387     ThSI: cpIce = 2.1060000000000E+03
388     ThSI: cpWater = 3.9860000000000E+03
389     ThSI: kIce = 2.0300000000000E+00
390     ThSI: kSnow = 3.0000000000000E-01
391     ThSI: bMeltCoef = 6.0000000000000E-03
392     ThSI: Lfresh = 3.3400000000000E+05
393     ThSI: qsnow = 3.3400000000000E+05
394     ThSI: albColdSnow = 8.5000000000000E-01
395     ThSI: albWarmSnow = 7.0000000000000E-01
396     ThSI: tempSnowAlb = -1.0000000000000E+01
397     ThSI: albOldSnow = 5.5000000000000E-01
398     ThSI: hNewSnowAge = 2.0000000000000E-03
399     ThSI: snowAgTime = 4.3200000000000E+06
400     ThSI: albIceMax = 6.0000000000000E-01
401     ThSI: albIceMin = 6.0000000000000E-01
402     ThSI: hAlbIce = 5.0000000000000E-01
403     ThSI: hAlbSnow = 3.0000000000000E-01
404     ThSI: i0swFrac = 3.0000000000000E-01
405     ThSI: ksolar = 1.5000000000000E+00
406     ThSI: dhSnowLin = 1.0000000000000E-01
407     ThSI: saltIce = 4.0000000000000E+00
408     ThSI: S_winton = 1.0000000000000E+00
409     ThSI: mu_Tf = 5.4000000000000E-02
410     ThSI: Tf0kel = 2.7315000000000E+02
411     ThSI: Tmlt1 = -5.4000000000000E-02
412     ThSI: Terrmax = 5.0000000000000E-01
413     ThSI: nitMaxTsf = 20
414     ThSI: hIceMin = 1.0000000000000E-02
415     ThSI: hiMax = 1.0000000000000E+01
416     ThSI: hsMax = 1.0000000000000E+01
417     ThSI: iceMaskMax = 1.0000000000000E+00
418     ThSI: iceMaskMin = 1.0000000000000E-03
419     ThSI: fracEnMelt = 4.0000000000000E-01
420     ThSI: fracEnFreez = 4.0000000000000E-01
421     ThSI: hThinIce = 2.0000000000000E-01
422     ThSI: hThickIce = 2.5000000000000E+00
423     ThSI: hNewIceMax = 1.0000000000000E+00
424     ThSI: stressReduction = 0.0000000000000E+00
425     ThSI: thSIce_skipThermo = F
426     ThSI: thSIceAdvScheme = 0
427     ThSI: thSIceBalanceAtmFW= 0
428     ThSI: thSIce_diffK = 0.0000000000000E+00
429     ThSI: thSIce_deltaT = 3.6000000000000E+03
430     ThSI: ocean_deltaT = 3.6000000000000E+03
431     ThSI: stepFwd_oceMxL = F
432     ThSI: tauRelax_MxL = 0.0000000000000E+00
433     ThSI: tauRelax_MxL_salt = 0.0000000000000E+00
434     ThSI: hMxL_default = 5.0000000000000E+01
435     ThSI: sMxL_default = 3.5000000000000E+01
436     ThSI: vMxL_default = 5.0000000000000E-02
437     ThSI: thSIce_taveFreq = 0.0000000000000E+00
438     ThSI: thSIce_diagFreq = 0.0000000000000E+00
439     ThSI: thSIce_monFreq = 3.6000000000000E+04
440     ThSI: startIceModel = 0
441     (PID.TID 0000.0001) AUTODIFF_READPARMS: opening data.autodiff
442     (PID.TID 0000.0001) OPEN_COPY_DATA_FILE: opening file data.autodiff
443     (PID.TID 0000.0001) // =======================================================
444     (PID.TID 0000.0001) // Parameter file "data.autodiff"
445     (PID.TID 0000.0001) // =======================================================
446     (PID.TID 0000.0001) > &AUTODIFF_PARM01
447     (PID.TID 0000.0001) > /
448     (PID.TID 0000.0001)
449     (PID.TID 0000.0001) AUTODIFF_READPARMS: finished reading data.autodiff
450     (PID.TID 0000.0001) // ===================================
451     (PID.TID 0000.0001) // AUTODIFF parameters :
452     (PID.TID 0000.0001) // ===================================
453     (PID.TID 0000.0001) inAdExact = /* get an exact adjoint (no approximation) */
454     (PID.TID 0000.0001) T
455     (PID.TID 0000.0001) ;
456     (PID.TID 0000.0001) useKPPinAdMode = /* use KPP in adjoint mode */
457     (PID.TID 0000.0001) F
458     (PID.TID 0000.0001) ;
459     (PID.TID 0000.0001) useGMRediInAdMode = /* use GMRedi in adjoint mode */
460     (PID.TID 0000.0001) F
461     (PID.TID 0000.0001) ;
462     (PID.TID 0000.0001) useSEAICEinAdMode = /* use SEAICE in adjoint mode */
463     (PID.TID 0000.0001) F
464     (PID.TID 0000.0001) ;
465     (PID.TID 0000.0001) useGGL90inAdMode = /* use GGL90 in adjoint mode */
466     (PID.TID 0000.0001) F
467     (PID.TID 0000.0001) ;
468     (PID.TID 0000.0001) useSALT_PLUMEinAdMode = /* use SALT_PLUME in adjoint mode */
469     (PID.TID 0000.0001) F
470     (PID.TID 0000.0001) ;
471     (PID.TID 0000.0001) SEAICEuseDYNAMICSswitchInAd = /* switch On/Off SEAICE Dyn in AD mode */
472     (PID.TID 0000.0001) F
473     (PID.TID 0000.0001) ;
474     (PID.TID 0000.0001) SEAICEuseFREEDRIFTswitchInAd= /* switch On/Off Free-Drift in AD mode */
475     (PID.TID 0000.0001) F
476     (PID.TID 0000.0001) ;
477     (PID.TID 0000.0001) dumpAdVarExch = /* control adexch before dumpinp */
478     (PID.TID 0000.0001) 2
479     (PID.TID 0000.0001) ;
480     (PID.TID 0000.0001) mon_AdVarExch = /* control adexch before monitor */
481     (PID.TID 0000.0001) 2
482     (PID.TID 0000.0001) ;
483     (PID.TID 0000.0001)
484     (PID.TID 0000.0001) OPTIM_READPARMS: opening data.optim
485     (PID.TID 0000.0001) OPEN_COPY_DATA_FILE: opening file data.optim
486     (PID.TID 0000.0001) // =======================================================
487     (PID.TID 0000.0001) // Parameter file "data.optim"
488     (PID.TID 0000.0001) // =======================================================
489     (PID.TID 0000.0001) >#
490     (PID.TID 0000.0001) ># ********************************
491     (PID.TID 0000.0001) ># Off-line optimization parameters
492     (PID.TID 0000.0001) ># ********************************
493     (PID.TID 0000.0001) > &OPTIM
494     (PID.TID 0000.0001) > optimcycle=0,
495     (PID.TID 0000.0001) > /
496     (PID.TID 0000.0001)
497     (PID.TID 0000.0001) OPTIM_READPARMS: finished reading data.optim
498     (PID.TID 0000.0001) CTRL_READPARMS: opening data.ctrl
499     (PID.TID 0000.0001) OPEN_COPY_DATA_FILE: opening file data.ctrl
500     (PID.TID 0000.0001) // =======================================================
501     (PID.TID 0000.0001) // Parameter file "data.ctrl"
502     (PID.TID 0000.0001) // =======================================================
503     (PID.TID 0000.0001) > &ctrl_nml
504     (PID.TID 0000.0001) > doMainUnpack=.FALSE.,
505     (PID.TID 0000.0001) > doMainPack=.FALSE.,
506     (PID.TID 0000.0001) > /
507     (PID.TID 0000.0001) >#
508     (PID.TID 0000.0001) > &ctrl_packnames
509     (PID.TID 0000.0001) > /
510     (PID.TID 0000.0001) >
511     (PID.TID 0000.0001)
512     (PID.TID 0000.0001) CTRL_READPARMS: finished reading data.ctrl
513     (PID.TID 0000.0001) COST_READPARMS: opening data.cost
514     (PID.TID 0000.0001) OPEN_COPY_DATA_FILE: opening file data.cost
515     (PID.TID 0000.0001) // =======================================================
516     (PID.TID 0000.0001) // Parameter file "data.cost"
517     (PID.TID 0000.0001) // =======================================================
518     (PID.TID 0000.0001) > &COST_NML
519     (PID.TID 0000.0001) > /
520     (PID.TID 0000.0001)
521     (PID.TID 0000.0001) COST_READPARMS: finished reading data.cost
522     (PID.TID 0000.0001) GRDCHK_READPARMS: opening data.grdchk
523     (PID.TID 0000.0001) OPEN_COPY_DATA_FILE: opening file data.grdchk
524     (PID.TID 0000.0001) // =======================================================
525     (PID.TID 0000.0001) // Parameter file "data.grdchk"
526     (PID.TID 0000.0001) // =======================================================
527     (PID.TID 0000.0001) > &GRDCHK_NML
528     (PID.TID 0000.0001) > grdchk_eps = 1.d-2,
529     (PID.TID 0000.0001) > iglopos = 10,
530     (PID.TID 0000.0001) > jglopos = 10,
531     (PID.TID 0000.0001) > iGloTile = 2,
532     (PID.TID 0000.0001) > jGloTile = 2,
533     (PID.TID 0000.0001) > nbeg = 1,
534     (PID.TID 0000.0001) > nstep = 1,
535     (PID.TID 0000.0001) > nend = 4,
536     (PID.TID 0000.0001) >#(grdchkvarindex = 1 fails at freezing point)
537     (PID.TID 0000.0001) >#grdchkvarindex = 1,
538     (PID.TID 0000.0001) > grdchkvarindex = 7,
539     (PID.TID 0000.0001) >#grdchkvarindex = 34,
540     (PID.TID 0000.0001) > /
541     (PID.TID 0000.0001)
542     (PID.TID 0000.0001) GRDCHK_READPARMS: finished reading data.grdchk
543     (PID.TID 0000.0001)
544     (PID.TID 0000.0001) // =======================================================
545     (PID.TID 0000.0001) // Gradient check configuration >>> START <<<
546     (PID.TID 0000.0001) // =======================================================
547     (PID.TID 0000.0001)
548     (PID.TID 0000.0001) eps: 0.100E-01
549     (PID.TID 0000.0001) First location: 1
550     (PID.TID 0000.0001) Last location: 4
551     (PID.TID 0000.0001) Increment: 1
552     (PID.TID 0000.0001) grdchkWhichProc: 0
553     (PID.TID 0000.0001) iLocTile = 2 , jLocTile = 2
554     (PID.TID 0000.0001)
555     (PID.TID 0000.0001) // =======================================================
556     (PID.TID 0000.0001) // Gradient check configuration >>> END <<<
557     (PID.TID 0000.0001) // =======================================================
558     (PID.TID 0000.0001)
559     (PID.TID 0000.0001) SET_PARMS: done
560     (PID.TID 0000.0001) Enter INI_VERTICAL_GRID: setInterFDr= T ; setCenterDr= F
561     (PID.TID 0000.0001) %MON XC_max = 3.9750000000000E+05
562     (PID.TID 0000.0001) %MON XC_min = 2.5000000000000E+03
563     (PID.TID 0000.0001) %MON XC_mean = 2.0000000000000E+05
564     (PID.TID 0000.0001) %MON XC_sd = 1.1546103238755E+05
565     (PID.TID 0000.0001) %MON XG_max = 3.9500000000000E+05
566     (PID.TID 0000.0001) %MON XG_min = 0.0000000000000E+00
567     (PID.TID 0000.0001) %MON XG_mean = 1.9750000000000E+05
568     (PID.TID 0000.0001) %MON XG_sd = 1.1546103238755E+05
569     (PID.TID 0000.0001) %MON DXC_max = 5.0000000000000E+03
570     (PID.TID 0000.0001) %MON DXC_min = 5.0000000000000E+03
571     (PID.TID 0000.0001) %MON DXC_mean = 5.0000000000000E+03
572     (PID.TID 0000.0001) %MON DXC_sd = 0.0000000000000E+00
573     (PID.TID 0000.0001) %MON DXF_max = 5.0000000000000E+03
574     (PID.TID 0000.0001) %MON DXF_min = 5.0000000000000E+03
575     (PID.TID 0000.0001) %MON DXF_mean = 5.0000000000000E+03
576     (PID.TID 0000.0001) %MON DXF_sd = 0.0000000000000E+00
577     (PID.TID 0000.0001) %MON DXG_max = 5.0000000000000E+03
578     (PID.TID 0000.0001) %MON DXG_min = 5.0000000000000E+03
579     (PID.TID 0000.0001) %MON DXG_mean = 5.0000000000000E+03
580     (PID.TID 0000.0001) %MON DXG_sd = 0.0000000000000E+00
581     (PID.TID 0000.0001) %MON DXV_max = 5.0000000000000E+03
582     (PID.TID 0000.0001) %MON DXV_min = 5.0000000000000E+03
583     (PID.TID 0000.0001) %MON DXV_mean = 5.0000000000000E+03
584     (PID.TID 0000.0001) %MON DXV_sd = 0.0000000000000E+00
585     (PID.TID 0000.0001) %MON YC_max = 9.7500000000000E+04
586     (PID.TID 0000.0001) %MON YC_min = -1.0750000000000E+05
587     (PID.TID 0000.0001) %MON YC_mean = -5.0000000000000E+03
588     (PID.TID 0000.0001) %MON YC_sd = 6.0604592785256E+04
589     (PID.TID 0000.0001) %MON YG_max = 9.5000000000000E+04
590     (PID.TID 0000.0001) %MON YG_min = -1.1000000000000E+05
591     (PID.TID 0000.0001) %MON YG_mean = -7.5000000000000E+03
592     (PID.TID 0000.0001) %MON YG_sd = 6.0604592785256E+04
593     (PID.TID 0000.0001) %MON DYC_max = 5.0000000000000E+03
594     (PID.TID 0000.0001) %MON DYC_min = 5.0000000000000E+03
595     (PID.TID 0000.0001) %MON DYC_mean = 5.0000000000000E+03
596     (PID.TID 0000.0001) %MON DYC_sd = 0.0000000000000E+00
597     (PID.TID 0000.0001) %MON DYF_max = 5.0000000000000E+03
598     (PID.TID 0000.0001) %MON DYF_min = 5.0000000000000E+03
599     (PID.TID 0000.0001) %MON DYF_mean = 5.0000000000000E+03
600     (PID.TID 0000.0001) %MON DYF_sd = 0.0000000000000E+00
601     (PID.TID 0000.0001) %MON DYG_max = 5.0000000000000E+03
602     (PID.TID 0000.0001) %MON DYG_min = 5.0000000000000E+03
603     (PID.TID 0000.0001) %MON DYG_mean = 5.0000000000000E+03
604     (PID.TID 0000.0001) %MON DYG_sd = 0.0000000000000E+00
605     (PID.TID 0000.0001) %MON DYU_max = 5.0000000000000E+03
606     (PID.TID 0000.0001) %MON DYU_min = 5.0000000000000E+03
607     (PID.TID 0000.0001) %MON DYU_mean = 5.0000000000000E+03
608     (PID.TID 0000.0001) %MON DYU_sd = 0.0000000000000E+00
609     (PID.TID 0000.0001) %MON RA_max = 2.5000000000000E+07
610     (PID.TID 0000.0001) %MON RA_min = 2.5000000000000E+07
611     (PID.TID 0000.0001) %MON RA_mean = 2.5000000000000E+07
612     (PID.TID 0000.0001) %MON RA_sd = 3.7252902984619E-09
613     (PID.TID 0000.0001) %MON RAW_max = 2.5000000000000E+07
614     (PID.TID 0000.0001) %MON RAW_min = 2.5000000000000E+07
615     (PID.TID 0000.0001) %MON RAW_mean = 2.5000000000000E+07
616     (PID.TID 0000.0001) %MON RAW_sd = 3.7252902984619E-09
617     (PID.TID 0000.0001) %MON RAS_max = 2.5000000000000E+07
618     (PID.TID 0000.0001) %MON RAS_min = 2.5000000000000E+07
619     (PID.TID 0000.0001) %MON RAS_mean = 2.5000000000000E+07
620     (PID.TID 0000.0001) %MON RAS_sd = 3.7252902984619E-09
621     (PID.TID 0000.0001) %MON RAZ_max = 2.5000000000000E+07
622     (PID.TID 0000.0001) %MON RAZ_min = 2.5000000000000E+07
623     (PID.TID 0000.0001) %MON RAZ_mean = 2.5000000000000E+07
624     (PID.TID 0000.0001) %MON RAZ_sd = 3.7252902984619E-09
625     (PID.TID 0000.0001) %MON AngleCS_max = 1.0000000000000E+00
626     (PID.TID 0000.0001) %MON AngleCS_min = 1.0000000000000E+00
627     (PID.TID 0000.0001) %MON AngleCS_mean = 1.0000000000000E+00
628     (PID.TID 0000.0001) %MON AngleCS_sd = 0.0000000000000E+00
629     (PID.TID 0000.0001) %MON AngleSN_max = 0.0000000000000E+00
630     (PID.TID 0000.0001) %MON AngleSN_min = 0.0000000000000E+00
631     (PID.TID 0000.0001) %MON AngleSN_mean = 0.0000000000000E+00
632     (PID.TID 0000.0001) %MON AngleSN_sd = 0.0000000000000E+00
633     (PID.TID 0000.0001)
634     (PID.TID 0000.0001) // =======================================================
635     (PID.TID 0000.0001) // Calendar configuration >>> START <<<
636     (PID.TID 0000.0001) // =======================================================
637     (PID.TID 0000.0001)
638     (PID.TID 0000.0001) modelstart = /* Start time of the model integration [s] */
639     (PID.TID 0000.0001) 0.000000000000000E+00
640     (PID.TID 0000.0001) ;
641     (PID.TID 0000.0001) modelend = /* End time of the model integration [s] */
642 jmc 1.2 (PID.TID 0000.0001) 2.160000000000000E+05
643 heimbach 1.1 (PID.TID 0000.0001) ;
644     (PID.TID 0000.0001) modelstep = /* Time interval for a model forward step [s] */
645     (PID.TID 0000.0001) 3.600000000000000E+03
646     (PID.TID 0000.0001) ;
647     (PID.TID 0000.0001) usingGregorianCalendar= /* Calendar Type: Gregorian Calendar */
648     (PID.TID 0000.0001) T
649     (PID.TID 0000.0001) ;
650     (PID.TID 0000.0001) usingJulianCalendar = /* Calendar Type: Julian Calendar */
651     (PID.TID 0000.0001) F
652     (PID.TID 0000.0001) ;
653     (PID.TID 0000.0001) usingModelCalendar = /* Calendar Type: Model Calendar */
654     (PID.TID 0000.0001) F
655     (PID.TID 0000.0001) ;
656     (PID.TID 0000.0001) modelstartdate YYYYMMDD = /* Model start date YYYY-MM-DD */
657     (PID.TID 0000.0001) 19790101
658     (PID.TID 0000.0001) ;
659     (PID.TID 0000.0001) modelstartdate HHMMSS = /* Model start date HH-MM-SS */
660     (PID.TID 0000.0001) 0
661     (PID.TID 0000.0001) ;
662     (PID.TID 0000.0001) modelenddate YYYYMMDD = /* Model end date YYYY-MM-DD */
663 jmc 1.2 (PID.TID 0000.0001) 19790103
664 heimbach 1.1 (PID.TID 0000.0001) ;
665     (PID.TID 0000.0001) modelenddate HHMMSS = /* Model end date HH-MM-SS */
666 jmc 1.2 (PID.TID 0000.0001) 120000
667 heimbach 1.1 (PID.TID 0000.0001) ;
668     (PID.TID 0000.0001) intyears = /* Number of calendar years affected by the integration */
669     (PID.TID 0000.0001) 1
670     (PID.TID 0000.0001) ;
671     (PID.TID 0000.0001) intmonths= /* Number of calendar months affected by the integration */
672     (PID.TID 0000.0001) 1
673     (PID.TID 0000.0001) ;
674     (PID.TID 0000.0001) intdays = /* Number of calendar days affected by the integration */
675 jmc 1.2 (PID.TID 0000.0001) 3
676 heimbach 1.1 (PID.TID 0000.0001) ;
677     (PID.TID 0000.0001) modeliter0 = /* Base timestep number */
678     (PID.TID 0000.0001) 0
679     (PID.TID 0000.0001) ;
680     (PID.TID 0000.0001) modeliterend = /* Final timestep number */
681 jmc 1.2 (PID.TID 0000.0001) 60
682 heimbach 1.1 (PID.TID 0000.0001) ;
683     (PID.TID 0000.0001) modelintsteps= /* Number of model timesteps */
684 jmc 1.2 (PID.TID 0000.0001) 60
685 heimbach 1.1 (PID.TID 0000.0001) ;
686     (PID.TID 0000.0001)
687     (PID.TID 0000.0001) // =======================================================
688     (PID.TID 0000.0001) // Calendar configuration >>> END <<<
689     (PID.TID 0000.0001) // =======================================================
690     (PID.TID 0000.0001)
691     (PID.TID 0000.0001) GAD_INIT_FIXED: GAD_OlMinSize= 0 0 1
692     (PID.TID 0000.0001)
693     (PID.TID 0000.0001) // ===================================
694     (PID.TID 0000.0001) // GAD parameters :
695     (PID.TID 0000.0001) // ===================================
696     (PID.TID 0000.0001) tempAdvScheme = /* Temp. Horiz.Advection scheme selector */
697     (PID.TID 0000.0001) 2
698     (PID.TID 0000.0001) ;
699     (PID.TID 0000.0001) tempVertAdvScheme = /* Temp. Vert. Advection scheme selector */
700     (PID.TID 0000.0001) 2
701     (PID.TID 0000.0001) ;
702     (PID.TID 0000.0001) tempMultiDimAdvec = /* use Muti-Dim Advec method for Temp */
703     (PID.TID 0000.0001) F
704     (PID.TID 0000.0001) ;
705     (PID.TID 0000.0001) tempSOM_Advection = /* use 2nd Order Moment Advection for Temp */
706     (PID.TID 0000.0001) F
707     (PID.TID 0000.0001) ;
708     (PID.TID 0000.0001) AdamsBashforthGt = /* apply Adams-Bashforth extrapolation on Gt */
709     (PID.TID 0000.0001) T
710     (PID.TID 0000.0001) ;
711     (PID.TID 0000.0001) AdamsBashforth_T = /* apply Adams-Bashforth extrapolation on Temp */
712     (PID.TID 0000.0001) F
713     (PID.TID 0000.0001) ;
714     (PID.TID 0000.0001) saltAdvScheme = /* Salt. Horiz.advection scheme selector */
715     (PID.TID 0000.0001) 2
716     (PID.TID 0000.0001) ;
717     (PID.TID 0000.0001) saltVertAdvScheme = /* Salt. Vert. Advection scheme selector */
718     (PID.TID 0000.0001) 2
719     (PID.TID 0000.0001) ;
720     (PID.TID 0000.0001) saltMultiDimAdvec = /* use Muti-Dim Advec method for Salt */
721     (PID.TID 0000.0001) F
722     (PID.TID 0000.0001) ;
723     (PID.TID 0000.0001) saltSOM_Advection = /* use 2nd Order Moment Advection for Salt */
724     (PID.TID 0000.0001) F
725     (PID.TID 0000.0001) ;
726     (PID.TID 0000.0001) AdamsBashforthGs = /* apply Adams-Bashforth extrapolation on Gs */
727     (PID.TID 0000.0001) F
728     (PID.TID 0000.0001) ;
729     (PID.TID 0000.0001) AdamsBashforth_S = /* apply Adams-Bashforth extrapolation on Salt */
730     (PID.TID 0000.0001) F
731     (PID.TID 0000.0001) ;
732     (PID.TID 0000.0001) // ===================================
733     (PID.TID 0000.0001)
734     (PID.TID 0000.0001) // =======================================================
735     (PID.TID 0000.0001) // External forcing (EXF) configuration >>> START <<<
736     (PID.TID 0000.0001) // =======================================================
737     (PID.TID 0000.0001)
738     (PID.TID 0000.0001) EXF general parameters:
739     (PID.TID 0000.0001)
740     (PID.TID 0000.0001) exf_iprec = /* exf file precision */
741     (PID.TID 0000.0001) 64
742     (PID.TID 0000.0001) ;
743     (PID.TID 0000.0001) useExfYearlyFields = /* add extension _YEAR to input file names */
744     (PID.TID 0000.0001) F
745     (PID.TID 0000.0001) ;
746     (PID.TID 0000.0001) twoDigitYear = /* use 2-digit year extension */
747     (PID.TID 0000.0001) F
748     (PID.TID 0000.0001) ;
749     (PID.TID 0000.0001) exf_verbose = /* print more messages to STDOUT */
750     (PID.TID 0000.0001) F
751     (PID.TID 0000.0001) ;
752     (PID.TID 0000.0001) useExfCheckRange = /* check for fields range */
753     (PID.TID 0000.0001) T
754     (PID.TID 0000.0001) ;
755     (PID.TID 0000.0001) exf_monFreq = /* EXF monitor frequency [ s ] */
756     (PID.TID 0000.0001) 8.640000000000000E+07
757     (PID.TID 0000.0001) ;
758     (PID.TID 0000.0001) repeatPeriod = /* period for cycling forcing dataset [ s ] */
759     (PID.TID 0000.0001) 2.635200000000000E+06
760     (PID.TID 0000.0001) ;
761     (PID.TID 0000.0001) climTempFreeze= /* Minimum climatological temperature [deg.C] */
762     (PID.TID 0000.0001) -1.900000000000000E+00
763     (PID.TID 0000.0001) ;
764     (PID.TID 0000.0001) windStressMax = /* Maximum absolute windstress [ Pa ] */
765     (PID.TID 0000.0001) 2.000000000000000E+00
766     (PID.TID 0000.0001) ;
767     (PID.TID 0000.0001) stressIsOnCgrid = /* set u,v_stress on Arakawa C-grid */
768     (PID.TID 0000.0001) F
769     (PID.TID 0000.0001) ;
770     (PID.TID 0000.0001) cen2kel = /* conversion of deg. Centigrade to Kelvin [K] */
771     (PID.TID 0000.0001) 2.731500000000000E+02
772     (PID.TID 0000.0001) ;
773     (PID.TID 0000.0001) gravity_mks= /* gravitational acceleration [m/s^2] */
774     (PID.TID 0000.0001) 9.810000000000000E+00
775     (PID.TID 0000.0001) ;
776     (PID.TID 0000.0001) atmrho = /* mean atmospheric density [kg/m^3] */
777     (PID.TID 0000.0001) 1.200000000000000E+00
778     (PID.TID 0000.0001) ;
779     (PID.TID 0000.0001) atmcp = /* mean atmospheric specific heat [J/kg/K] */
780     (PID.TID 0000.0001) 1.005000000000000E+03
781     (PID.TID 0000.0001) ;
782     (PID.TID 0000.0001) flamb = /* latent heat of evaporation [J/kg] */
783     (PID.TID 0000.0001) 2.500000000000000E+06
784     (PID.TID 0000.0001) ;
785     (PID.TID 0000.0001) flami = /* latent heat of pure-ice melting [J/kg] */
786     (PID.TID 0000.0001) 3.340000000000000E+05
787     (PID.TID 0000.0001) ;
788     (PID.TID 0000.0001) cvapor_fac = /* const. for Saturation calculation [?] */
789     (PID.TID 0000.0001) 6.403800000000000E+05
790     (PID.TID 0000.0001) ;
791     (PID.TID 0000.0001) cvapor_exp = /* const. for Saturation calculation [?] */
792     (PID.TID 0000.0001) 5.107400000000000E+03
793     (PID.TID 0000.0001) ;
794     (PID.TID 0000.0001) cvapor_fac_ice= /* const. for Saturation calculation [?] */
795     (PID.TID 0000.0001) 1.163780000000000E+07
796     (PID.TID 0000.0001) ;
797     (PID.TID 0000.0001) cvapor_exp_ice= /* const. for Saturation calculation [?] */
798     (PID.TID 0000.0001) 5.897800000000000E+03
799     (PID.TID 0000.0001) ;
800     (PID.TID 0000.0001) humid_fac = /* humidity coef. in virtual temp. [(kg/kg)^-1] */
801     (PID.TID 0000.0001) 6.060000000000000E-01
802     (PID.TID 0000.0001) ;
803     (PID.TID 0000.0001) gamma_blk = /* adiabatic lapse rate [?] */
804     (PID.TID 0000.0001) 1.000000000000000E-02
805     (PID.TID 0000.0001) ;
806     (PID.TID 0000.0001) saltsat = /* reduction of Qsat over salty water [-] */
807     (PID.TID 0000.0001) 9.800000000000000E-01
808     (PID.TID 0000.0001) ;
809     (PID.TID 0000.0001) noNegativeEvap = /* prevent negative Evaporation */
810     (PID.TID 0000.0001) F
811     (PID.TID 0000.0001) ;
812     (PID.TID 0000.0001) sstExtrapol = /* extrapolation coeff from lev. 1 & 2 to surf [-] */
813     (PID.TID 0000.0001) 0.000000000000000E+00
814     (PID.TID 0000.0001) ;
815     (PID.TID 0000.0001) cDrag_1 = /* coef used in drag calculation [?] */
816     (PID.TID 0000.0001) 2.700000000000000E-03
817     (PID.TID 0000.0001) ;
818     (PID.TID 0000.0001) cDrag_2 = /* coef used in drag calculation [?] */
819     (PID.TID 0000.0001) 1.420000000000000E-04
820     (PID.TID 0000.0001) ;
821     (PID.TID 0000.0001) cDrag_3 = /* coef used in drag calculation [?] */
822     (PID.TID 0000.0001) 7.640000000000000E-05
823     (PID.TID 0000.0001) ;
824     (PID.TID 0000.0001) cStanton_1 = /* coef used in Stanton number calculation [?] */
825     (PID.TID 0000.0001) 3.270000000000000E-02
826     (PID.TID 0000.0001) ;
827     (PID.TID 0000.0001) cStanton_2 = /* coef used in Stanton number calculation [?] */
828     (PID.TID 0000.0001) 1.800000000000000E-02
829     (PID.TID 0000.0001) ;
830     (PID.TID 0000.0001) cDalton = /* coef used in Dalton number calculation [?] */
831     (PID.TID 0000.0001) 3.460000000000000E-02
832     (PID.TID 0000.0001) ;
833     (PID.TID 0000.0001) exf_scal_BulkCdn= /* Drag coefficient scaling factor [-] */
834     (PID.TID 0000.0001) 1.000000000000000E+00
835     (PID.TID 0000.0001) ;
836     (PID.TID 0000.0001) zolmin = /* minimum stability parameter [?] */
837     (PID.TID 0000.0001) -1.000000000000000E+02
838     (PID.TID 0000.0001) ;
839     (PID.TID 0000.0001) psim_fac = /* coef used in turbulent fluxes calculation [-] */
840     (PID.TID 0000.0001) 5.000000000000000E+00
841     (PID.TID 0000.0001) ;
842     (PID.TID 0000.0001) zref = /* reference height [ m ] */
843     (PID.TID 0000.0001) 1.000000000000000E+01
844     (PID.TID 0000.0001) ;
845     (PID.TID 0000.0001) hu = /* height of mean wind [ m ] */
846     (PID.TID 0000.0001) 1.000000000000000E+01
847     (PID.TID 0000.0001) ;
848     (PID.TID 0000.0001) ht = /* height of mean temperature [ m ] */
849     (PID.TID 0000.0001) 2.000000000000000E+00
850     (PID.TID 0000.0001) ;
851     (PID.TID 0000.0001) hq = /* height of mean spec.humidity [ m ] */
852     (PID.TID 0000.0001) 2.000000000000000E+00
853     (PID.TID 0000.0001) ;
854     (PID.TID 0000.0001) uMin = /* minimum wind speed [m/s] */
855     (PID.TID 0000.0001) 5.000000000000000E-01
856     (PID.TID 0000.0001) ;
857     (PID.TID 0000.0001) useStabilityFct_overIce= /* transfert Coeffs over sea-ice depend on stability */
858     (PID.TID 0000.0001) F
859     (PID.TID 0000.0001) ;
860     (PID.TID 0000.0001) exf_iceCd = /* drag coefficient over sea-ice (fixed) [-] */
861     (PID.TID 0000.0001) 1.630000000000000E-03
862     (PID.TID 0000.0001) ;
863     (PID.TID 0000.0001) exf_iceCe = /* transfert coeff. over sea-ice, for Evap (fixed) [-] */
864     (PID.TID 0000.0001) 1.630000000000000E-03
865     (PID.TID 0000.0001) ;
866     (PID.TID 0000.0001) exf_iceCh = /* transfert coeff. over sea-ice, Sens.Heat.(fixed)[-] */
867     (PID.TID 0000.0001) 1.630000000000000E-03
868     (PID.TID 0000.0001) ;
869     (PID.TID 0000.0001) exf_albedo = /* Sea-water albedo [-] */
870     (PID.TID 0000.0001) 1.000000000000000E-01
871     (PID.TID 0000.0001) ;
872     (PID.TID 0000.0001) useExfZenAlbedo = /* Sea-water albedo varies with zenith angle */
873     (PID.TID 0000.0001) F
874     (PID.TID 0000.0001) ;
875     (PID.TID 0000.0001) select_ZenAlbedo = /* Sea-water albedo computation method */
876     (PID.TID 0000.0001) 0
877     (PID.TID 0000.0001) ;
878     (PID.TID 0000.0001) useExfZenIncoming = /* compute incoming solar radiation */
879     (PID.TID 0000.0001) F
880     (PID.TID 0000.0001) ;
881     (PID.TID 0000.0001) ocean_emissivity = /* longwave ocean-surface emissivity [-] */
882     (PID.TID 0000.0001) 9.700176366843034E-01
883     (PID.TID 0000.0001) ;
884     (PID.TID 0000.0001) ice_emissivity = /* longwave seaice emissivity [-] */
885     (PID.TID 0000.0001) 9.500000000000000E-01
886     (PID.TID 0000.0001) ;
887     (PID.TID 0000.0001) snow_emissivity = /* longwave snow emissivity [-] */
888     (PID.TID 0000.0001) 9.500000000000000E-01
889     (PID.TID 0000.0001) ;
890     (PID.TID 0000.0001)
891     (PID.TID 0000.0001) EXF main CPP flags:
892     (PID.TID 0000.0001)
893     (PID.TID 0000.0001) // USE_EXF_INTERPOLATION: NOT defined
894     (PID.TID 0000.0001) // ALLOW_ATM_TEMP: defined
895     (PID.TID 0000.0001) // ALLOW_ATM_WIND (useAtmWind): defined
896     (PID.TID 0000.0001) // ALLOW_DOWNWARD_RADIATION: defined
897     (PID.TID 0000.0001) // ALLOW_BULKFORMULAE: defined
898     (PID.TID 0000.0001)
899     (PID.TID 0000.0001) Net shortwave flux forcing starts at 0.
900     (PID.TID 0000.0001) Net shortwave flux forcing period is 0.
901     (PID.TID 0000.0001) Net shortwave flux forcing is read from file:
902     (PID.TID 0000.0001) >> <<
903     (PID.TID 0000.0001)
904     (PID.TID 0000.0001) Zonal wind forcing starts at -1317600.
905     (PID.TID 0000.0001) Zonal wind forcing period is 2635200.
906     (PID.TID 0000.0001) Zonal wind forcing is read from file:
907     (PID.TID 0000.0001) >> windx.bin <<
908     (PID.TID 0000.0001)
909     (PID.TID 0000.0001) Meridional wind forcing starts at 0.
910     (PID.TID 0000.0001) Meridional wind forcing period is 2635200.
911     (PID.TID 0000.0001) Meridional wind forcing is read from file:
912     (PID.TID 0000.0001) >> <<
913     (PID.TID 0000.0001)
914     (PID.TID 0000.0001) Atmospheric temperature starts at -1317600.
915     (PID.TID 0000.0001) Atmospheric temperature period is 2635200.
916     (PID.TID 0000.0001) Atmospheric temperature is read from file:
917     (PID.TID 0000.0001) >> tair_4x.bin <<
918     (PID.TID 0000.0001)
919     (PID.TID 0000.0001) Atmospheric specific humidity starts at -1317600.
920     (PID.TID 0000.0001) Atmospheric specific humidity period is 2635200.
921     (PID.TID 0000.0001) Atmospheric specific humidity is read from file:
922     (PID.TID 0000.0001) >> qa70_4x.bin <<
923     (PID.TID 0000.0001)
924     (PID.TID 0000.0001) Net longwave flux forcing starts at 0.
925     (PID.TID 0000.0001) Net longwave flux forcing period is 0.
926     (PID.TID 0000.0001) Net longwave flux forcing is read from file:
927     (PID.TID 0000.0001) >> <<
928     (PID.TID 0000.0001)
929     (PID.TID 0000.0001) Precipitation data set starts at -1317600.
930     (PID.TID 0000.0001) Precipitation data period is 2635200.
931     (PID.TID 0000.0001) Precipitation data is read from file:
932     (PID.TID 0000.0001) >> const_00.bin <<
933     (PID.TID 0000.0001)
934     (PID.TID 0000.0001) // EXF_READ_EVAP: NOT defined
935     (PID.TID 0000.0001)
936     (PID.TID 0000.0001) // ALLOW_RUNOFF: defined
937     (PID.TID 0000.0001) Runoff starts at 0.
938     (PID.TID 0000.0001) Runoff period is 0.
939     (PID.TID 0000.0001) Runoff is read from file:
940     (PID.TID 0000.0001) >> <<
941     (PID.TID 0000.0001) // ALLOW_RUNOFTEMP: NOT defined
942     (PID.TID 0000.0001)
943     (PID.TID 0000.0001) Downward shortwave flux forcing starts at -1317600.
944     (PID.TID 0000.0001) Downward shortwave flux forcing period is 2635200.
945     (PID.TID 0000.0001) Downward shortwave flux forcing is read from file:
946     (PID.TID 0000.0001) >> dsw_100.bin <<
947     (PID.TID 0000.0001)
948     (PID.TID 0000.0001) Downward longwave flux forcing starts at -1317600.
949     (PID.TID 0000.0001) Downward longwave flux forcing period is 2635200.
950     (PID.TID 0000.0001) Downward longwave flux forcing is read from file:
951     (PID.TID 0000.0001) >> dlw_250.bin <<
952     (PID.TID 0000.0001)
953     (PID.TID 0000.0001) Atmospheric pressure forcing starts at 0.
954     (PID.TID 0000.0001) Atmospheric pressure forcing period is 0.
955     (PID.TID 0000.0001) Atmospheric pressureforcing is read from file:
956     (PID.TID 0000.0001) >> <<
957     (PID.TID 0000.0001)
958     (PID.TID 0000.0001) // =======================================================
959     (PID.TID 0000.0001) // External forcing (EXF) climatology configuration :
960     (PID.TID 0000.0001) // =======================================================
961     (PID.TID 0000.0001)
962     (PID.TID 0000.0001) // ALLOW_CLIMSST_RELAXATION: defined
963     (PID.TID 0000.0001) // ALLOW_CLIMSSS_RELAXATION: defined
964     (PID.TID 0000.0001)
965     (PID.TID 0000.0001) Climatological SST starts at -1317600.
966     (PID.TID 0000.0001) Climatological SST period is 2635200.
967     (PID.TID 0000.0001) Climatological SST is read from file:
968     (PID.TID 0000.0001) >> tocn.bin <<
969     (PID.TID 0000.0001)
970     (PID.TID 0000.0001) Climatological SSS starts at 0.
971     (PID.TID 0000.0001) Climatological SSS period is 2635200.
972     (PID.TID 0000.0001) Climatological SSS is read from file:
973     (PID.TID 0000.0001) >> <<
974     (PID.TID 0000.0001)
975     (PID.TID 0000.0001) // =======================================================
976     (PID.TID 0000.0001) // External forcing (EXF) configuration >>> END <<<
977     (PID.TID 0000.0001) // =======================================================
978     (PID.TID 0000.0001)
979     (PID.TID 0000.0001) ctrl-wet 1: nvarlength = 9840
980     (PID.TID 0000.0001) ctrl-wet 2: surface wet C = 800
981     (PID.TID 0000.0001) ctrl-wet 3: surface wet W = 800
982     (PID.TID 0000.0001) ctrl-wet 4: surface wet S = 760
983     (PID.TID 0000.0001) ctrl-wet 4a:surface wet V = 0
984     (PID.TID 0000.0001) ctrl-wet 5: 3D wet points = 800
985     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 1 1
986     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 2 0
987     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 3 0
988     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 4 0
989     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 5 0
990     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 6 0
991     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 7 1
992     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 8 0
993     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 9 0
994     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 10 0
995     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 11 0
996     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 12 0
997     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 13 0
998     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 14 0
999     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 15 0
1000     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 16 0
1001     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 17 0
1002     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 18 0
1003     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 19 0
1004     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 20 0
1005     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 21 0
1006     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 22 0
1007     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 23 0
1008     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 24 0
1009     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 25 0
1010     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 26 0
1011     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 27 0
1012     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 28 0
1013     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 29 0
1014     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 30 0
1015     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 31 0
1016     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 32 0
1017     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 33 0
1018     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 34 1
1019     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 35 0
1020     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 36 0
1021     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 37 0
1022     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 38 0
1023     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 39 0
1024     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 40 0
1025     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 41 0
1026     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 42 0
1027     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 43 0
1028     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 44 0
1029     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 45 0
1030     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 46 0
1031     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 47 0
1032     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 48 0
1033     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 49 0
1034     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 50 0
1035     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 51 0
1036     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 52 0
1037     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 53 0
1038     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 54 0
1039     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 55 0
1040     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 56 0
1041     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 57 0
1042     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 58 0
1043     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 59 0
1044     (PID.TID 0000.0001) ctrl-wet 6: no recs for i = 60 0
1045     (PID.TID 0000.0001) ctrl-wet 7: flux 1600
1046     (PID.TID 0000.0001) ctrl-wet 8: atmos 2400
1047     (PID.TID 0000.0001) ctrl-wet -------------------------------------------------
1048     (PID.TID 0000.0001) ctrl-wet 13: global nvarlength for Nr = 1 9840
1049     (PID.TID 0000.0001) ctrl-wet -------------------------------------------------
1050     (PID.TID 0000.0001) ctrl-wet 14: global nWet C/S/W/V k= 1 3280 3200 3280 0
1051     (PID.TID 0000.0001) ctrl-wet -------------------------------------------------
1052     (PID.TID 0000.0001) ctrl-wet -------------------------------------------------
1053     (PID.TID 0000.0001) ctrl-wet -------------------------------------------------
1054     (PID.TID 0000.0001) ctrl_init: no. of control variables: 3
1055     (PID.TID 0000.0001) ctrl_init: control vector length: 9840
1056     (PID.TID 0000.0001) %MON fCori_max = 0.0000000000000E+00
1057     (PID.TID 0000.0001) %MON fCori_min = 0.0000000000000E+00
1058     (PID.TID 0000.0001) %MON fCori_mean = 0.0000000000000E+00
1059     (PID.TID 0000.0001) %MON fCori_sd = 0.0000000000000E+00
1060     (PID.TID 0000.0001) %MON fCoriG_max = 0.0000000000000E+00
1061     (PID.TID 0000.0001) %MON fCoriG_min = 0.0000000000000E+00
1062     (PID.TID 0000.0001) %MON fCoriG_mean = 0.0000000000000E+00
1063     (PID.TID 0000.0001) %MON fCoriG_sd = 0.0000000000000E+00
1064     (PID.TID 0000.0001) %MON fCoriCos_max = 0.0000000000000E+00
1065     (PID.TID 0000.0001) %MON fCoriCos_min = 0.0000000000000E+00
1066     (PID.TID 0000.0001) %MON fCoriCos_mean = 0.0000000000000E+00
1067     (PID.TID 0000.0001) %MON fCoriCos_sd = 0.0000000000000E+00
1068     (PID.TID 0000.0001) INI_CG2D: CG2D normalisation factor = 1.0000000000000001E-01
1069     (PID.TID 0000.0001)
1070     (PID.TID 0000.0001) // =======================================================
1071     (PID.TID 0000.0001) // Model configuration
1072     (PID.TID 0000.0001) // =======================================================
1073     (PID.TID 0000.0001) //
1074     (PID.TID 0000.0001) // "Physical" paramters ( PARM01 in namelist )
1075     (PID.TID 0000.0001) //
1076     (PID.TID 0000.0001) buoyancyRelation = /* Type of relation to get Buoyancy */
1077     (PID.TID 0000.0001) 'OCEANIC'
1078     (PID.TID 0000.0001) ;
1079     (PID.TID 0000.0001) fluidIsAir = /* fluid major constituent is Air */
1080     (PID.TID 0000.0001) F
1081     (PID.TID 0000.0001) ;
1082     (PID.TID 0000.0001) fluidIsWater = /* fluid major constituent is Water */
1083     (PID.TID 0000.0001) T
1084     (PID.TID 0000.0001) ;
1085     (PID.TID 0000.0001) usingPCoords = /* use p (or p*) vertical coordinate */
1086     (PID.TID 0000.0001) F
1087     (PID.TID 0000.0001) ;
1088     (PID.TID 0000.0001) usingZCoords = /* use z (or z*) vertical coordinate */
1089     (PID.TID 0000.0001) T
1090     (PID.TID 0000.0001) ;
1091     (PID.TID 0000.0001) tRef = /* Reference temperature profile ( oC or K ) */
1092     (PID.TID 0000.0001) -1.620000000000000E+00 /* K = 1 */
1093     (PID.TID 0000.0001) ;
1094     (PID.TID 0000.0001) sRef = /* Reference salinity profile ( psu ) */
1095     (PID.TID 0000.0001) 3.000000000000000E+01 /* K = 1 */
1096     (PID.TID 0000.0001) ;
1097     (PID.TID 0000.0001) viscAh = /* Lateral eddy viscosity ( m^2/s ) */
1098     (PID.TID 0000.0001) 3.000000000000000E+02
1099     (PID.TID 0000.0001) ;
1100     (PID.TID 0000.0001) viscAhMax = /* Maximum lateral eddy viscosity ( m^2/s ) */
1101     (PID.TID 0000.0001) 1.000000000000000E+21
1102     (PID.TID 0000.0001) ;
1103     (PID.TID 0000.0001) viscAhGrid = /* Grid dependent lateral eddy viscosity ( non-dim. ) */
1104     (PID.TID 0000.0001) 0.000000000000000E+00
1105     (PID.TID 0000.0001) ;
1106     (PID.TID 0000.0001) useFullLeith = /* Use Full Form of Leith Viscosity on/off flag*/
1107     (PID.TID 0000.0001) F
1108     (PID.TID 0000.0001) ;
1109     (PID.TID 0000.0001) useStrainTensionVisc= /* Use StrainTension Form of Viscous Operator flag*/
1110     (PID.TID 0000.0001) F
1111     (PID.TID 0000.0001) ;
1112     (PID.TID 0000.0001) useAreaViscLength = /* Use area for visc length instead of geom. mean*/
1113     (PID.TID 0000.0001) F
1114     (PID.TID 0000.0001) ;
1115     (PID.TID 0000.0001) viscC2leith = /* Leith harmonic visc. factor (on grad(vort),non-dim.) */
1116     (PID.TID 0000.0001) 0.000000000000000E+00
1117     (PID.TID 0000.0001) ;
1118     (PID.TID 0000.0001) viscC2leithD = /* Leith harmonic viscosity factor (on grad(div),non-dim.)*/
1119     (PID.TID 0000.0001) 0.000000000000000E+00
1120     (PID.TID 0000.0001) ;
1121     (PID.TID 0000.0001) viscC2smag = /* Smagorinsky harmonic viscosity factor (non-dim.) */
1122     (PID.TID 0000.0001) 0.000000000000000E+00
1123     (PID.TID 0000.0001) ;
1124     (PID.TID 0000.0001) viscA4 = /* Lateral biharmonic viscosity ( m^4/s ) */
1125     (PID.TID 0000.0001) 0.000000000000000E+00
1126     (PID.TID 0000.0001) ;
1127     (PID.TID 0000.0001) viscA4Max = /* Maximum biharmonic viscosity ( m^2/s ) */
1128     (PID.TID 0000.0001) 1.000000000000000E+21
1129     (PID.TID 0000.0001) ;
1130     (PID.TID 0000.0001) viscA4Grid = /* Grid dependent biharmonic viscosity ( non-dim. ) */
1131     (PID.TID 0000.0001) 0.000000000000000E+00
1132     (PID.TID 0000.0001) ;
1133     (PID.TID 0000.0001) viscC4leith = /* Leith biharm viscosity factor (on grad(vort), non-dim.)*/
1134     (PID.TID 0000.0001) 0.000000000000000E+00
1135     (PID.TID 0000.0001) ;
1136     (PID.TID 0000.0001) viscC4leithD = /* Leith biharm viscosity factor (on grad(div), non-dim.) */
1137     (PID.TID 0000.0001) 0.000000000000000E+00
1138     (PID.TID 0000.0001) ;
1139     (PID.TID 0000.0001) viscC4Smag = /* Smagorinsky biharm viscosity factor (non-dim) */
1140     (PID.TID 0000.0001) 0.000000000000000E+00
1141     (PID.TID 0000.0001) ;
1142     (PID.TID 0000.0001) no_slip_sides = /* Viscous BCs: No-slip sides */
1143     (PID.TID 0000.0001) F
1144     (PID.TID 0000.0001) ;
1145     (PID.TID 0000.0001) sideDragFactor = /* side-drag scaling factor (non-dim) */
1146     (PID.TID 0000.0001) 2.000000000000000E+00
1147     (PID.TID 0000.0001) ;
1148     (PID.TID 0000.0001) viscArNr = /* vertical profile of vertical viscosity ( m^2/s )*/
1149     (PID.TID 0000.0001) 3.000000000000000E-02 /* K = 1 */
1150     (PID.TID 0000.0001) ;
1151     (PID.TID 0000.0001) no_slip_bottom = /* Viscous BCs: No-slip bottom */
1152     (PID.TID 0000.0001) T
1153     (PID.TID 0000.0001) ;
1154     (PID.TID 0000.0001) bottomDragLinear = /* linear bottom-drag coefficient ( m/s ) */
1155     (PID.TID 0000.0001) 0.000000000000000E+00
1156     (PID.TID 0000.0001) ;
1157     (PID.TID 0000.0001) bottomDragQuadratic = /* quadratic bottom-drag coefficient (-) */
1158     (PID.TID 0000.0001) 5.000000000000000E-03
1159     (PID.TID 0000.0001) ;
1160     (PID.TID 0000.0001) diffKhT = /* Laplacian diffusion of heat laterally ( m^2/s ) */
1161     (PID.TID 0000.0001) 0.000000000000000E+00
1162     (PID.TID 0000.0001) ;
1163     (PID.TID 0000.0001) diffK4T = /* Biharmonic diffusion of heat laterally ( m^4/s ) */
1164     (PID.TID 0000.0001) 0.000000000000000E+00
1165     (PID.TID 0000.0001) ;
1166     (PID.TID 0000.0001) diffKhS = /* Laplacian diffusion of salt laterally ( m^2/s ) */
1167     (PID.TID 0000.0001) 0.000000000000000E+00
1168     (PID.TID 0000.0001) ;
1169     (PID.TID 0000.0001) diffK4S = /* Biharmonic diffusion of salt laterally ( m^4/s ) */
1170     (PID.TID 0000.0001) 0.000000000000000E+00
1171     (PID.TID 0000.0001) ;
1172     (PID.TID 0000.0001) diffKrNrT = /* vertical profile of vertical diffusion of Temp ( m^2/s )*/
1173     (PID.TID 0000.0001) 0.000000000000000E+00 /* K = 1 */
1174     (PID.TID 0000.0001) ;
1175     (PID.TID 0000.0001) diffKrNrS = /* vertical profile of vertical diffusion of Salt ( m^2/s )*/
1176     (PID.TID 0000.0001) 0.000000000000000E+00 /* K = 1 */
1177     (PID.TID 0000.0001) ;
1178     (PID.TID 0000.0001) diffKrBL79surf = /* Surface diffusion for Bryan and Lewis 79 ( m^2/s ) */
1179     (PID.TID 0000.0001) 0.000000000000000E+00
1180     (PID.TID 0000.0001) ;
1181     (PID.TID 0000.0001) diffKrBL79deep = /* Deep diffusion for Bryan and Lewis 1979 ( m^2/s ) */
1182     (PID.TID 0000.0001) 0.000000000000000E+00
1183     (PID.TID 0000.0001) ;
1184     (PID.TID 0000.0001) diffKrBL79scl = /* Depth scale for Bryan and Lewis 1979 ( m ) */
1185     (PID.TID 0000.0001) 2.000000000000000E+02
1186     (PID.TID 0000.0001) ;
1187     (PID.TID 0000.0001) diffKrBL79Ho = /* Turning depth for Bryan and Lewis 1979 ( m ) */
1188     (PID.TID 0000.0001) -2.000000000000000E+03
1189     (PID.TID 0000.0001) ;
1190     (PID.TID 0000.0001) ivdc_kappa = /* Implicit Vertical Diffusivity for Convection ( m^2/s) */
1191     (PID.TID 0000.0001) 0.000000000000000E+00
1192     (PID.TID 0000.0001) ;
1193     (PID.TID 0000.0001) hMixCriteria= /* Criteria for mixed-layer diagnostic */
1194     (PID.TID 0000.0001) -8.000000000000000E-01
1195     (PID.TID 0000.0001) ;
1196     (PID.TID 0000.0001) dRhoSmall = /* Parameter for mixed-layer diagnostic */
1197     (PID.TID 0000.0001) 1.000000000000000E-06
1198     (PID.TID 0000.0001) ;
1199     (PID.TID 0000.0001) hMixSmooth= /* Smoothing parameter for mixed-layer diagnostic */
1200     (PID.TID 0000.0001) 0.000000000000000E+00
1201     (PID.TID 0000.0001) ;
1202     (PID.TID 0000.0001) eosType = /* Type of Equation of State */
1203     (PID.TID 0000.0001) 'LINEAR'
1204     (PID.TID 0000.0001) ;
1205     (PID.TID 0000.0001) tAlpha = /* Linear EOS thermal expansion coefficient ( 1/oC ) */
1206     (PID.TID 0000.0001) 2.000000000000000E-04
1207     (PID.TID 0000.0001) ;
1208     (PID.TID 0000.0001) sBeta = /* Linear EOS haline contraction coefficient ( 1/psu ) */
1209     (PID.TID 0000.0001) 0.000000000000000E+00
1210     (PID.TID 0000.0001) ;
1211     (PID.TID 0000.0001) rhoNil = /* Reference density for Linear EOS ( kg/m^3 ) */
1212     (PID.TID 0000.0001) 1.030000000000000E+03
1213     (PID.TID 0000.0001) ;
1214     (PID.TID 0000.0001) celsius2K = /* 0 degree Celsius converted to Kelvin ( K ) */
1215     (PID.TID 0000.0001) 2.731500000000000E+02
1216     (PID.TID 0000.0001) ;
1217     (PID.TID 0000.0001) rhoConst = /* Reference density (Boussinesq) ( kg/m^3 ) */
1218     (PID.TID 0000.0001) 1.030000000000000E+03
1219     (PID.TID 0000.0001) ;
1220     (PID.TID 0000.0001) rhoFacC = /* normalized Reference density @ cell-Center (-) */
1221     (PID.TID 0000.0001) 1.000000000000000E+00 /* K = 1 */
1222     (PID.TID 0000.0001) ;
1223     (PID.TID 0000.0001) rhoFacF = /* normalized Reference density @ W-Interface (-) */
1224     (PID.TID 0000.0001) 2 @ 1.000000000000000E+00 /* K = 1: 2 */
1225     (PID.TID 0000.0001) ;
1226     (PID.TID 0000.0001) rhoConstFresh = /* Fresh-water reference density ( kg/m^3 ) */
1227     (PID.TID 0000.0001) 1.000000000000000E+03
1228     (PID.TID 0000.0001) ;
1229     (PID.TID 0000.0001) gravity = /* Gravitational acceleration ( m/s^2 ) */
1230     (PID.TID 0000.0001) 9.810000000000000E+00
1231     (PID.TID 0000.0001) ;
1232     (PID.TID 0000.0001) gBaro = /* Barotropic gravity ( m/s^2 ) */
1233     (PID.TID 0000.0001) 9.810000000000000E+00
1234     (PID.TID 0000.0001) ;
1235     (PID.TID 0000.0001) rotationPeriod = /* Rotation Period ( s ) */
1236     (PID.TID 0000.0001) 8.616400000000000E+04
1237     (PID.TID 0000.0001) ;
1238     (PID.TID 0000.0001) omega = /* Angular velocity ( rad/s ) */
1239     (PID.TID 0000.0001) 7.292123516990375E-05
1240     (PID.TID 0000.0001) ;
1241     (PID.TID 0000.0001) f0 = /* Reference coriolis parameter ( 1/s ) */
1242     (PID.TID 0000.0001) 0.000000000000000E+00
1243     (PID.TID 0000.0001) ;
1244     (PID.TID 0000.0001) beta = /* Beta ( 1/(m.s) ) */
1245     (PID.TID 0000.0001) 0.000000000000000E+00
1246     (PID.TID 0000.0001) ;
1247     (PID.TID 0000.0001) fPrime = /* Second coriolis parameter ( 1/s ) */
1248     (PID.TID 0000.0001) 0.000000000000000E+00
1249     (PID.TID 0000.0001) ;
1250     (PID.TID 0000.0001) rigidLid = /* Rigid lid on/off flag */
1251     (PID.TID 0000.0001) F
1252     (PID.TID 0000.0001) ;
1253     (PID.TID 0000.0001) implicitFreeSurface = /* Implicit free surface on/off flag */
1254     (PID.TID 0000.0001) T
1255     (PID.TID 0000.0001) ;
1256     (PID.TID 0000.0001) freeSurfFac = /* Implicit free surface factor */
1257     (PID.TID 0000.0001) 1.000000000000000E+00
1258     (PID.TID 0000.0001) ;
1259     (PID.TID 0000.0001) implicSurfPress = /* Surface Pressure implicit factor (0-1)*/
1260     (PID.TID 0000.0001) 1.000000000000000E+00
1261     (PID.TID 0000.0001) ;
1262     (PID.TID 0000.0001) implicDiv2Dflow = /* Barot. Flow Div. implicit factor (0-1)*/
1263     (PID.TID 0000.0001) 1.000000000000000E+00
1264     (PID.TID 0000.0001) ;
1265     (PID.TID 0000.0001) uniformLin_PhiSurf = /* use uniform Bo_surf on/off flag*/
1266     (PID.TID 0000.0001) T
1267     (PID.TID 0000.0001) ;
1268     (PID.TID 0000.0001) uniformFreeSurfLev = /* free-surface level-index is uniform */
1269     (PID.TID 0000.0001) T
1270     (PID.TID 0000.0001) ;
1271     (PID.TID 0000.0001) hFacMin = /* minimum partial cell factor (hFac) */
1272     (PID.TID 0000.0001) 1.000000000000000E+00
1273     (PID.TID 0000.0001) ;
1274     (PID.TID 0000.0001) hFacMinDr = /* minimum partial cell thickness ( m) */
1275     (PID.TID 0000.0001) 1.000000000000000E+00
1276     (PID.TID 0000.0001) ;
1277     (PID.TID 0000.0001) exactConserv = /* Exact Volume Conservation on/off flag*/
1278     (PID.TID 0000.0001) F
1279     (PID.TID 0000.0001) ;
1280     (PID.TID 0000.0001) linFSConserveTr = /* Tracer correction for Lin Free Surface on/off flag*/
1281     (PID.TID 0000.0001) F
1282     (PID.TID 0000.0001) ;
1283     (PID.TID 0000.0001) nonlinFreeSurf = /* Non-linear Free Surf. options (-1,0,1,2,3)*/
1284     (PID.TID 0000.0001) 0
1285     (PID.TID 0000.0001) -1,0= Off ; 1,2,3= On, 2=+rescale gU,gV, 3=+update cg2d solv.
1286     (PID.TID 0000.0001) ;
1287     (PID.TID 0000.0001) hFacInf = /* lower threshold for hFac (nonlinFreeSurf only)*/
1288     (PID.TID 0000.0001) 2.000000000000000E-01
1289     (PID.TID 0000.0001) ;
1290     (PID.TID 0000.0001) hFacSup = /* upper threshold for hFac (nonlinFreeSurf only)*/
1291     (PID.TID 0000.0001) 2.000000000000000E+00
1292     (PID.TID 0000.0001) ;
1293     (PID.TID 0000.0001) select_rStar = /* r* Vertical coord. options (=0 r coord.; >0 uses r*)*/
1294     (PID.TID 0000.0001) 0
1295     (PID.TID 0000.0001) ;
1296     (PID.TID 0000.0001) useRealFreshWaterFlux = /* Real Fresh Water Flux on/off flag*/
1297     (PID.TID 0000.0001) F
1298     (PID.TID 0000.0001) ;
1299     (PID.TID 0000.0001) temp_EvPrRn = /* Temp. of Evap/Prec/R (UNSET=use local T)(oC)*/
1300     (PID.TID 0000.0001) 1.234567000000000E+05
1301     (PID.TID 0000.0001) ;
1302     (PID.TID 0000.0001) salt_EvPrRn = /* Salin. of Evap/Prec/R (UNSET=use local S)(psu)*/
1303     (PID.TID 0000.0001) 0.000000000000000E+00
1304     (PID.TID 0000.0001) ;
1305     (PID.TID 0000.0001) selectAddFluid = /* option for mass source/sink of fluid (=0: off) */
1306     (PID.TID 0000.0001) 0
1307     (PID.TID 0000.0001) ;
1308     (PID.TID 0000.0001) temp_addMass = /* Temp. of addMass array (UNSET=use local T)(oC)*/
1309     (PID.TID 0000.0001) 1.234567000000000E+05
1310     (PID.TID 0000.0001) ;
1311     (PID.TID 0000.0001) salt_addMass = /* Salin. of addMass array (UNSET=use local S)(psu)*/
1312     (PID.TID 0000.0001) 0.000000000000000E+00
1313     (PID.TID 0000.0001) ;
1314     (PID.TID 0000.0001) convertFW2Salt = /* convert F.W. Flux to Salt Flux (-1=use local S)(psu)*/
1315     (PID.TID 0000.0001) -1.000000000000000E+00
1316     (PID.TID 0000.0001) ;
1317     (PID.TID 0000.0001) use3Dsolver = /* use 3-D pressure solver on/off flag */
1318     (PID.TID 0000.0001) F
1319     (PID.TID 0000.0001) ;
1320     (PID.TID 0000.0001) nonHydrostatic = /* Non-Hydrostatic on/off flag */
1321     (PID.TID 0000.0001) F
1322     (PID.TID 0000.0001) ;
1323     (PID.TID 0000.0001) nh_Am2 = /* Non-Hydrostatic terms scaling factor */
1324     (PID.TID 0000.0001) 1.000000000000000E+00
1325     (PID.TID 0000.0001) ;
1326     (PID.TID 0000.0001) implicitNHPress = /* Non-Hyd Pressure implicit factor (0-1)*/
1327     (PID.TID 0000.0001) 1.000000000000000E+00
1328     (PID.TID 0000.0001) ;
1329     (PID.TID 0000.0001) selectNHfreeSurf = /* Non-Hyd (free-)Surface option */
1330     (PID.TID 0000.0001) 0
1331     (PID.TID 0000.0001) ;
1332     (PID.TID 0000.0001) quasiHydrostatic = /* Quasi-Hydrostatic on/off flag */
1333     (PID.TID 0000.0001) F
1334     (PID.TID 0000.0001) ;
1335     (PID.TID 0000.0001) calc_wVelocity = /* vertical velocity calculation on/off flag */
1336     (PID.TID 0000.0001) F
1337     (PID.TID 0000.0001) ;
1338     (PID.TID 0000.0001) momStepping = /* Momentum equation on/off flag */
1339     (PID.TID 0000.0001) F
1340     (PID.TID 0000.0001) ;
1341     (PID.TID 0000.0001) vectorInvariantMomentum= /* Vector-Invariant Momentum on/off */
1342     (PID.TID 0000.0001) F
1343     (PID.TID 0000.0001) ;
1344     (PID.TID 0000.0001) momAdvection = /* Momentum advection on/off flag */
1345     (PID.TID 0000.0001) F
1346     (PID.TID 0000.0001) ;
1347     (PID.TID 0000.0001) momViscosity = /* Momentum viscosity on/off flag */
1348     (PID.TID 0000.0001) F
1349     (PID.TID 0000.0001) ;
1350     (PID.TID 0000.0001) momImplVertAdv= /* Momentum implicit vert. advection on/off*/
1351     (PID.TID 0000.0001) F
1352     (PID.TID 0000.0001) ;
1353     (PID.TID 0000.0001) implicitViscosity = /* Implicit viscosity on/off flag */
1354     (PID.TID 0000.0001) F
1355     (PID.TID 0000.0001) ;
1356     (PID.TID 0000.0001) metricTerms = /* metric-Terms on/off flag */
1357     (PID.TID 0000.0001) F
1358     (PID.TID 0000.0001) ;
1359     (PID.TID 0000.0001) useNHMTerms = /* Non-Hydrostatic Metric-Terms on/off */
1360     (PID.TID 0000.0001) F
1361     (PID.TID 0000.0001) ;
1362     (PID.TID 0000.0001) selectCoriMap = /* Coriolis Map options (0,1,2,3)*/
1363     (PID.TID 0000.0001) 1
1364     (PID.TID 0000.0001) 0= f-Plane ; 1= Beta-Plane ; 2= Spherical ; 3= read from file
1365     (PID.TID 0000.0001) ;
1366     (PID.TID 0000.0001) use3dCoriolis = /* 3-D Coriolis on/off flag */
1367     (PID.TID 0000.0001) F
1368     (PID.TID 0000.0001) ;
1369     (PID.TID 0000.0001) useCoriolis = /* Coriolis on/off flag */
1370     (PID.TID 0000.0001) F
1371     (PID.TID 0000.0001) ;
1372     (PID.TID 0000.0001) useCDscheme = /* CD scheme on/off flag */
1373     (PID.TID 0000.0001) F
1374     (PID.TID 0000.0001) ;
1375     (PID.TID 0000.0001) useEnergyConservingCoriolis= /* Flx-Form Coriolis scheme flag */
1376     (PID.TID 0000.0001) F
1377     (PID.TID 0000.0001) ;
1378     (PID.TID 0000.0001) useJamartWetPoints= /* Coriolis WetPoints method flag */
1379     (PID.TID 0000.0001) T
1380     (PID.TID 0000.0001) ;
1381     (PID.TID 0000.0001) useJamartMomAdv= /* V.I Non-linear terms Jamart flag */
1382     (PID.TID 0000.0001) F
1383     (PID.TID 0000.0001) ;
1384     (PID.TID 0000.0001) useAbsVorticity= /* V.I Works with f+zeta in Coriolis */
1385     (PID.TID 0000.0001) F
1386     (PID.TID 0000.0001) ;
1387     (PID.TID 0000.0001) selectVortScheme= /* V.I Scheme selector for Vorticity-Term */
1388     (PID.TID 0000.0001) 123456789
1389     (PID.TID 0000.0001) = 0 : enstrophy (Shallow-Water Eq.) conserving scheme by Sadourny, JAS 75
1390     (PID.TID 0000.0001) = 1 : same as 0 with modified hFac
1391     (PID.TID 0000.0001) = 2 : energy conserving scheme (used by Sadourny in JAS 75 paper)
1392     (PID.TID 0000.0001) = 3 : energy (general) and enstrophy (2D, nonDiv.) conserving scheme
1393     (PID.TID 0000.0001) from Sadourny (Burridge & Haseler, ECMWF Rep.4, 1977)
1394     (PID.TID 0000.0001) ;
1395     (PID.TID 0000.0001) upwindVorticity= /* V.I Upwind bias vorticity flag */
1396     (PID.TID 0000.0001) F
1397     (PID.TID 0000.0001) ;
1398     (PID.TID 0000.0001) highOrderVorticity= /* V.I High order vort. advect. flag */
1399     (PID.TID 0000.0001) F
1400     (PID.TID 0000.0001) ;
1401     (PID.TID 0000.0001) upwindShear= /* V.I Upwind vertical Shear advection flag */
1402     (PID.TID 0000.0001) F
1403     (PID.TID 0000.0001) ;
1404     (PID.TID 0000.0001) selectKEscheme= /* V.I Kinetic Energy scheme selector */
1405     (PID.TID 0000.0001) 0
1406     (PID.TID 0000.0001) ;
1407     (PID.TID 0000.0001) momForcing = /* Momentum forcing on/off flag */
1408     (PID.TID 0000.0001) F
1409     (PID.TID 0000.0001) ;
1410     (PID.TID 0000.0001) momPressureForcing = /* Momentum pressure term on/off flag */
1411     (PID.TID 0000.0001) F
1412     (PID.TID 0000.0001) ;
1413     (PID.TID 0000.0001) implicitIntGravWave= /* Implicit Internal Gravity Wave flag */
1414     (PID.TID 0000.0001) F
1415     (PID.TID 0000.0001) ;
1416     (PID.TID 0000.0001) staggerTimeStep = /* Stagger time stepping on/off flag */
1417     (PID.TID 0000.0001) T
1418     (PID.TID 0000.0001) ;
1419     (PID.TID 0000.0001) doResetHFactors = /* reset thickness factors @ each time-step */
1420     (PID.TID 0000.0001) F
1421     (PID.TID 0000.0001) ;
1422     (PID.TID 0000.0001) multiDimAdvection = /* enable/disable Multi-Dim Advection */
1423     (PID.TID 0000.0001) T
1424     (PID.TID 0000.0001) ;
1425     (PID.TID 0000.0001) useMultiDimAdvec = /* Multi-Dim Advection is/is-not used */
1426     (PID.TID 0000.0001) F
1427     (PID.TID 0000.0001) ;
1428     (PID.TID 0000.0001) implicitDiffusion = /* Implicit Diffusion on/off flag */
1429     (PID.TID 0000.0001) F
1430     (PID.TID 0000.0001) ;
1431     (PID.TID 0000.0001) tempStepping = /* Temperature equation on/off flag */
1432     (PID.TID 0000.0001) T
1433     (PID.TID 0000.0001) ;
1434     (PID.TID 0000.0001) tempAdvection = /* Temperature advection on/off flag */
1435     (PID.TID 0000.0001) F
1436     (PID.TID 0000.0001) ;
1437     (PID.TID 0000.0001) tempImplVertAdv = /* Temp. implicit vert. advection on/off */
1438     (PID.TID 0000.0001) F
1439     (PID.TID 0000.0001) ;
1440     (PID.TID 0000.0001) tempForcing = /* Temperature forcing on/off flag */
1441     (PID.TID 0000.0001) T
1442     (PID.TID 0000.0001) ;
1443     (PID.TID 0000.0001) doThetaClimRelax = /* apply SST relaxation on/off flag */
1444     (PID.TID 0000.0001) T
1445     (PID.TID 0000.0001) ;
1446     (PID.TID 0000.0001) tempIsActiveTr = /* Temp. is a dynamically Active Tracer */
1447     (PID.TID 0000.0001) F
1448     (PID.TID 0000.0001) ;
1449     (PID.TID 0000.0001) saltStepping = /* Salinity equation on/off flag */
1450     (PID.TID 0000.0001) F
1451     (PID.TID 0000.0001) ;
1452     (PID.TID 0000.0001) saltAdvection = /* Salinity advection on/off flag */
1453     (PID.TID 0000.0001) F
1454     (PID.TID 0000.0001) ;
1455     (PID.TID 0000.0001) saltImplVertAdv = /* Sali. implicit vert. advection on/off */
1456     (PID.TID 0000.0001) F
1457     (PID.TID 0000.0001) ;
1458     (PID.TID 0000.0001) saltForcing = /* Salinity forcing on/off flag */
1459     (PID.TID 0000.0001) F
1460     (PID.TID 0000.0001) ;
1461     (PID.TID 0000.0001) doSaltClimRelax = /* apply SSS relaxation on/off flag */
1462     (PID.TID 0000.0001) F
1463     (PID.TID 0000.0001) ;
1464     (PID.TID 0000.0001) saltIsActiveTr = /* Salt is a dynamically Active Tracer */
1465     (PID.TID 0000.0001) F
1466     (PID.TID 0000.0001) ;
1467     (PID.TID 0000.0001) readBinaryPrec = /* Precision used for reading binary files */
1468     (PID.TID 0000.0001) 64
1469     (PID.TID 0000.0001) ;
1470     (PID.TID 0000.0001) writeBinaryPrec = /* Precision used for writing binary files */
1471     (PID.TID 0000.0001) 64
1472     (PID.TID 0000.0001) ;
1473     (PID.TID 0000.0001) globalFiles = /* write "global" (=not per tile) files */
1474     (PID.TID 0000.0001) F
1475     (PID.TID 0000.0001) ;
1476     (PID.TID 0000.0001) useSingleCpuIO = /* only master MPI process does I/O */
1477     (PID.TID 0000.0001) F
1478     (PID.TID 0000.0001) ;
1479     (PID.TID 0000.0001) /* debLev[*] : level of debug & auxiliary message printing */
1480     (PID.TID 0000.0001) debLevZero = 0 ; /* level of disabled aux. msg printing */
1481     (PID.TID 0000.0001) debLevA = 1 ; /* level of minimum aux. msg printing */
1482     (PID.TID 0000.0001) debLevB = 2 ; /* level of low aux. print (report read-file opening)*/
1483     (PID.TID 0000.0001) debLevC = 3 ; /* level of moderate debug prt (most pkgs debug msg) */
1484     (PID.TID 0000.0001) debLevD = 4 ; /* level of enhanced debug prt (add DEBUG_STATS prt) */
1485     (PID.TID 0000.0001) debLevE = 5 ; /* level of extensive debug printing */
1486     (PID.TID 0000.0001) debugLevel = /* select debug printing level */
1487     (PID.TID 0000.0001) 1
1488     (PID.TID 0000.0001) ;
1489     (PID.TID 0000.0001) //
1490     (PID.TID 0000.0001) // Elliptic solver(s) paramters ( PARM02 in namelist )
1491     (PID.TID 0000.0001) //
1492     (PID.TID 0000.0001) cg2dMaxIters = /* Upper limit on 2d con. grad iterations */
1493     (PID.TID 0000.0001) 500
1494     (PID.TID 0000.0001) ;
1495     (PID.TID 0000.0001) cg2dChkResFreq = /* 2d con. grad convergence test frequency */
1496     (PID.TID 0000.0001) 1
1497     (PID.TID 0000.0001) ;
1498     (PID.TID 0000.0001) cg2dUseMinResSol= /* use cg2d last-iter(=0) / min-resid.(=1) solution */
1499     (PID.TID 0000.0001) 0
1500     (PID.TID 0000.0001) ;
1501     (PID.TID 0000.0001) cg2dTargetResidual = /* 2d con. grad target residual */
1502     (PID.TID 0000.0001) 1.000000000000000E-12
1503     (PID.TID 0000.0001) ;
1504     (PID.TID 0000.0001) cg2dTargetResWunit = /* CG2d target residual [W units] */
1505     (PID.TID 0000.0001) -1.000000000000000E+00
1506     (PID.TID 0000.0001) ;
1507     (PID.TID 0000.0001) cg2dPreCondFreq = /* Freq. for updating cg2d preconditioner */
1508     (PID.TID 0000.0001) 1
1509     (PID.TID 0000.0001) ;
1510     (PID.TID 0000.0001) useSRCGSolver = /* use single reduction CG solver(s) */
1511     (PID.TID 0000.0001) F
1512     (PID.TID 0000.0001) ;
1513     (PID.TID 0000.0001) printResidualFreq = /* Freq. for printing CG residual */
1514     (PID.TID 0000.0001) 0
1515     (PID.TID 0000.0001) ;
1516     (PID.TID 0000.0001) //
1517     (PID.TID 0000.0001) // Time stepping paramters ( PARM03 in namelist )
1518     (PID.TID 0000.0001) //
1519     (PID.TID 0000.0001) deltaTMom = /* Momentum equation timestep ( s ) */
1520     (PID.TID 0000.0001) 3.600000000000000E+03
1521     (PID.TID 0000.0001) ;
1522     (PID.TID 0000.0001) deltaTFreeSurf = /* FreeSurface equation timestep ( s ) */
1523     (PID.TID 0000.0001) 3.600000000000000E+03
1524     (PID.TID 0000.0001) ;
1525     (PID.TID 0000.0001) dTtracerLev = /* Tracer equation timestep ( s ) */
1526     (PID.TID 0000.0001) 3.600000000000000E+03 /* K = 1 */
1527     (PID.TID 0000.0001) ;
1528     (PID.TID 0000.0001) deltaTClock = /* Model clock timestep ( s ) */
1529     (PID.TID 0000.0001) 3.600000000000000E+03
1530     (PID.TID 0000.0001) ;
1531     (PID.TID 0000.0001) cAdjFreq = /* Convective adjustment interval ( s ) */
1532     (PID.TID 0000.0001) 0.000000000000000E+00
1533     (PID.TID 0000.0001) ;
1534     (PID.TID 0000.0001) momForcingOutAB = /* =1: take Momentum Forcing out of Adams-Bash. stepping */
1535     (PID.TID 0000.0001) 1
1536     (PID.TID 0000.0001) ;
1537     (PID.TID 0000.0001) tracForcingOutAB = /* =1: take T,S,pTr Forcing out of Adams-Bash. stepping */
1538     (PID.TID 0000.0001) 1
1539     (PID.TID 0000.0001) ;
1540     (PID.TID 0000.0001) momDissip_In_AB = /* put Dissipation Tendency in Adams-Bash. stepping */
1541     (PID.TID 0000.0001) T
1542     (PID.TID 0000.0001) ;
1543     (PID.TID 0000.0001) doAB_onGtGs = /* apply AB on Tendencies (rather than on T,S)*/
1544     (PID.TID 0000.0001) T
1545     (PID.TID 0000.0001) ;
1546     (PID.TID 0000.0001) abEps = /* Adams-Bashforth-2 stabilizing weight */
1547     (PID.TID 0000.0001) 1.000000000000000E-01
1548     (PID.TID 0000.0001) ;
1549     (PID.TID 0000.0001) pickupStrictlyMatch= /* stop if pickup do not strictly match */
1550     (PID.TID 0000.0001) T
1551     (PID.TID 0000.0001) ;
1552     (PID.TID 0000.0001) nIter0 = /* Run starting timestep number */
1553     (PID.TID 0000.0001) 0
1554     (PID.TID 0000.0001) ;
1555     (PID.TID 0000.0001) nTimeSteps = /* Number of timesteps */
1556 jmc 1.2 (PID.TID 0000.0001) 60
1557 heimbach 1.1 (PID.TID 0000.0001) ;
1558     (PID.TID 0000.0001) nEndIter = /* Run ending timestep number */
1559 jmc 1.2 (PID.TID 0000.0001) 60
1560 heimbach 1.1 (PID.TID 0000.0001) ;
1561     (PID.TID 0000.0001) baseTime = /* Model base time ( s ) */
1562     (PID.TID 0000.0001) 0.000000000000000E+00
1563     (PID.TID 0000.0001) ;
1564     (PID.TID 0000.0001) startTime = /* Run start time ( s ) */
1565     (PID.TID 0000.0001) 0.000000000000000E+00
1566     (PID.TID 0000.0001) ;
1567     (PID.TID 0000.0001) endTime = /* Integration ending time ( s ) */
1568 jmc 1.2 (PID.TID 0000.0001) 2.160000000000000E+05
1569 heimbach 1.1 (PID.TID 0000.0001) ;
1570     (PID.TID 0000.0001) pChkPtFreq = /* Permanent restart/pickup file interval ( s ) */
1571     (PID.TID 0000.0001) 3.600000000000000E+06
1572     (PID.TID 0000.0001) ;
1573     (PID.TID 0000.0001) chkPtFreq = /* Rolling restart/pickup file interval ( s ) */
1574     (PID.TID 0000.0001) 0.000000000000000E+00
1575     (PID.TID 0000.0001) ;
1576     (PID.TID 0000.0001) pickup_write_mdsio = /* Model IO flag. */
1577     (PID.TID 0000.0001) T
1578     (PID.TID 0000.0001) ;
1579     (PID.TID 0000.0001) pickup_read_mdsio = /* Model IO flag. */
1580     (PID.TID 0000.0001) T
1581     (PID.TID 0000.0001) ;
1582     (PID.TID 0000.0001) pickup_write_immed = /* Model IO flag. */
1583     (PID.TID 0000.0001) F
1584     (PID.TID 0000.0001) ;
1585     (PID.TID 0000.0001) writePickupAtEnd = /* Model IO flag. */
1586     (PID.TID 0000.0001) T
1587     (PID.TID 0000.0001) ;
1588     (PID.TID 0000.0001) dumpFreq = /* Model state write out interval ( s ). */
1589     (PID.TID 0000.0001) 0.000000000000000E+00
1590     (PID.TID 0000.0001) ;
1591     (PID.TID 0000.0001) dumpInitAndLast= /* write out Initial & Last iter. model state */
1592     (PID.TID 0000.0001) T
1593     (PID.TID 0000.0001) ;
1594     (PID.TID 0000.0001) snapshot_mdsio = /* Model IO flag. */
1595     (PID.TID 0000.0001) T
1596     (PID.TID 0000.0001) ;
1597     (PID.TID 0000.0001) monitorFreq = /* Monitor output interval ( s ). */
1598     (PID.TID 0000.0001) 4.320000000000000E+05
1599     (PID.TID 0000.0001) ;
1600     (PID.TID 0000.0001) monitorSelect = /* select group of variables to monitor */
1601     (PID.TID 0000.0001) 2
1602     (PID.TID 0000.0001) ;
1603     (PID.TID 0000.0001) monitor_stdio = /* Model IO flag. */
1604     (PID.TID 0000.0001) T
1605     (PID.TID 0000.0001) ;
1606     (PID.TID 0000.0001) externForcingPeriod = /* forcing period (s) */
1607     (PID.TID 0000.0001) 0.000000000000000E+00
1608     (PID.TID 0000.0001) ;
1609     (PID.TID 0000.0001) externForcingCycle = /* period of the cyle (s). */
1610     (PID.TID 0000.0001) 0.000000000000000E+00
1611     (PID.TID 0000.0001) ;
1612     (PID.TID 0000.0001) tauThetaClimRelax = /* relaxation time scale (s) */
1613     (PID.TID 0000.0001) 2.592000000000000E+06
1614     (PID.TID 0000.0001) ;
1615     (PID.TID 0000.0001) tauSaltClimRelax = /* relaxation time scale (s) */
1616     (PID.TID 0000.0001) 0.000000000000000E+00
1617     (PID.TID 0000.0001) ;
1618     (PID.TID 0000.0001) latBandClimRelax = /* max. Lat. where relaxation */
1619     (PID.TID 0000.0001) 6.300000000000000E+05
1620     (PID.TID 0000.0001) ;
1621     (PID.TID 0000.0001) //
1622     (PID.TID 0000.0001) // Gridding paramters ( PARM04 in namelist )
1623     (PID.TID 0000.0001) //
1624     (PID.TID 0000.0001) usingCartesianGrid = /* Cartesian coordinates flag ( True/False ) */
1625     (PID.TID 0000.0001) T
1626     (PID.TID 0000.0001) ;
1627     (PID.TID 0000.0001) usingCylindricalGrid = /* Cylindrical coordinates flag ( True/False ) */
1628     (PID.TID 0000.0001) F
1629     (PID.TID 0000.0001) ;
1630     (PID.TID 0000.0001) usingSphericalPolarGrid = /* Spherical coordinates flag ( True/False ) */
1631     (PID.TID 0000.0001) F
1632     (PID.TID 0000.0001) ;
1633     (PID.TID 0000.0001) usingCurvilinearGrid = /* Curvilinear coordinates flag ( True/False ) */
1634     (PID.TID 0000.0001) F
1635     (PID.TID 0000.0001) ;
1636     (PID.TID 0000.0001) selectSigmaCoord = /* Hybrid-Sigma Vert. Coordinate option */
1637     (PID.TID 0000.0001) 0
1638     (PID.TID 0000.0001) ;
1639     (PID.TID 0000.0001) Ro_SeaLevel = /* r(1) ( units of r == m ) */
1640     (PID.TID 0000.0001) 0.000000000000000E+00
1641     (PID.TID 0000.0001) ;
1642     (PID.TID 0000.0001) rSigmaBnd = /* r/sigma transition ( units of r == m ) */
1643     (PID.TID 0000.0001) 1.234567000000000E+05
1644     (PID.TID 0000.0001) ;
1645     (PID.TID 0000.0001) rkSign = /* index orientation relative to vertical coordinate */
1646     (PID.TID 0000.0001) -1.000000000000000E+00
1647     (PID.TID 0000.0001) ;
1648     (PID.TID 0000.0001) gravitySign = /* gravity orientation relative to vertical coordinate */
1649     (PID.TID 0000.0001) -1.000000000000000E+00
1650     (PID.TID 0000.0001) ;
1651     (PID.TID 0000.0001) mass2rUnit = /* convert mass per unit area [kg/m2] to r-units [m] */
1652     (PID.TID 0000.0001) 9.708737864077669E-04
1653     (PID.TID 0000.0001) ;
1654     (PID.TID 0000.0001) rUnit2mass = /* convert r-units [m] to mass per unit area [kg/m2] */
1655     (PID.TID 0000.0001) 1.030000000000000E+03
1656     (PID.TID 0000.0001) ;
1657     (PID.TID 0000.0001) drC = /* C spacing ( units of r ) */
1658     (PID.TID 0000.0001) 5.000000000000000E+00 /* K = 1 */
1659     (PID.TID 0000.0001) ;
1660     (PID.TID 0000.0001) drF = /* W spacing ( units of r ) */
1661     (PID.TID 0000.0001) 1.000000000000000E+01 /* K = 1 */
1662     (PID.TID 0000.0001) ;
1663     (PID.TID 0000.0001) delX = /* U spacing ( m - cartesian, degrees - spherical ) */
1664     (PID.TID 0000.0001) 80 @ 5.000000000000000E+03 /* I = 1: 80 */
1665     (PID.TID 0000.0001) ;
1666     (PID.TID 0000.0001) delY = /* V spacing ( m - cartesian, degrees - spherical ) */
1667     (PID.TID 0000.0001) 42 @ 5.000000000000000E+03 /* J = 1: 42 */
1668     (PID.TID 0000.0001) ;
1669     (PID.TID 0000.0001) xgOrigin = /* X-axis origin of West edge (cartesian: m, lat-lon: deg) */
1670     (PID.TID 0000.0001) 0.000000000000000E+00
1671     (PID.TID 0000.0001) ;
1672     (PID.TID 0000.0001) ygOrigin = /* Y-axis origin of South edge (cartesian: m, lat-lon: deg) */
1673     (PID.TID 0000.0001) -1.100000000000000E+05
1674     (PID.TID 0000.0001) ;
1675     (PID.TID 0000.0001) rSphere = /* Radius ( ignored - cartesian, m - spherical ) */
1676     (PID.TID 0000.0001) 6.370000000000000E+06
1677     (PID.TID 0000.0001) ;
1678     (PID.TID 0000.0001) deepAtmosphere = /* Deep/Shallow Atmosphere flag (True/False) */
1679     (PID.TID 0000.0001) F
1680     (PID.TID 0000.0001) ;
1681     (PID.TID 0000.0001) xC = /* xC(:,1,:,1) : P-point X coord ( deg. or m if cartesian) */
1682     (PID.TID 0000.0001) 2.500000000000000E+03, /* I = 1 */
1683     (PID.TID 0000.0001) 7.500000000000000E+03, /* I = 2 */
1684     (PID.TID 0000.0001) 1.250000000000000E+04, /* I = 3 */
1685     (PID.TID 0000.0001) . . .
1686     (PID.TID 0000.0001) 8.750000000000000E+04, /* I = 18 */
1687     (PID.TID 0000.0001) 9.250000000000000E+04, /* I = 19 */
1688     (PID.TID 0000.0001) 9.750000000000000E+04, /* I = 20 */
1689     (PID.TID 0000.0001) 1.025000000000000E+05, /* I = 21 */
1690     (PID.TID 0000.0001) 1.075000000000000E+05, /* I = 22 */
1691     (PID.TID 0000.0001) 1.125000000000000E+05, /* I = 23 */
1692     (PID.TID 0000.0001) . . .
1693     (PID.TID 0000.0001) 1.875000000000000E+05, /* I = 38 */
1694     (PID.TID 0000.0001) 1.925000000000000E+05, /* I = 39 */
1695     (PID.TID 0000.0001) 1.975000000000000E+05, /* I = 40 */
1696     (PID.TID 0000.0001) 2.025000000000000E+05, /* I = 41 */
1697     (PID.TID 0000.0001) 2.075000000000000E+05, /* I = 42 */
1698     (PID.TID 0000.0001) 2.125000000000000E+05, /* I = 43 */
1699     (PID.TID 0000.0001) . . .
1700     (PID.TID 0000.0001) 2.875000000000000E+05, /* I = 58 */
1701     (PID.TID 0000.0001) 2.925000000000000E+05, /* I = 59 */
1702     (PID.TID 0000.0001) 2.975000000000000E+05, /* I = 60 */
1703     (PID.TID 0000.0001) 3.025000000000000E+05, /* I = 61 */
1704     (PID.TID 0000.0001) 3.075000000000000E+05, /* I = 62 */
1705     (PID.TID 0000.0001) 3.125000000000000E+05, /* I = 63 */
1706     (PID.TID 0000.0001) . . .
1707     (PID.TID 0000.0001) 3.875000000000000E+05, /* I = 78 */
1708     (PID.TID 0000.0001) 3.925000000000000E+05, /* I = 79 */
1709     (PID.TID 0000.0001) 3.975000000000000E+05 /* I = 80 */
1710     (PID.TID 0000.0001) ;
1711     (PID.TID 0000.0001) yC = /* yC(1,:,1,:) : P-point Y coord ( deg. or m if cartesian) */
1712     (PID.TID 0000.0001) -1.075000000000000E+05, /* J = 1 */
1713     (PID.TID 0000.0001) -1.025000000000000E+05, /* J = 2 */
1714     (PID.TID 0000.0001) -9.750000000000000E+04, /* J = 3 */
1715     (PID.TID 0000.0001) -9.250000000000000E+04, /* J = 4 */
1716     (PID.TID 0000.0001) -8.750000000000000E+04, /* J = 5 */
1717     (PID.TID 0000.0001) -8.250000000000000E+04, /* J = 6 */
1718     (PID.TID 0000.0001) -7.750000000000000E+04, /* J = 7 */
1719     (PID.TID 0000.0001) -7.250000000000000E+04, /* J = 8 */
1720     (PID.TID 0000.0001) -6.750000000000000E+04, /* J = 9 */
1721     (PID.TID 0000.0001) -6.250000000000000E+04, /* J = 10 */
1722     (PID.TID 0000.0001) -5.750000000000000E+04, /* J = 11 */
1723     (PID.TID 0000.0001) -5.250000000000000E+04, /* J = 12 */
1724     (PID.TID 0000.0001) -4.750000000000000E+04, /* J = 13 */
1725     (PID.TID 0000.0001) -4.250000000000000E+04, /* J = 14 */
1726     (PID.TID 0000.0001) -3.750000000000000E+04, /* J = 15 */
1727     (PID.TID 0000.0001) -3.250000000000000E+04, /* J = 16 */
1728     (PID.TID 0000.0001) -2.750000000000000E+04, /* J = 17 */
1729     (PID.TID 0000.0001) -2.250000000000000E+04, /* J = 18 */
1730     (PID.TID 0000.0001) -1.750000000000000E+04, /* J = 19 */
1731     (PID.TID 0000.0001) -1.250000000000000E+04, /* J = 20 */
1732     (PID.TID 0000.0001) -7.500000000000000E+03, /* J = 21 */
1733     (PID.TID 0000.0001) -2.500000000000000E+03, /* J = 22 */
1734     (PID.TID 0000.0001) 2.500000000000000E+03, /* J = 23 */
1735     (PID.TID 0000.0001) 7.500000000000000E+03, /* J = 24 */
1736     (PID.TID 0000.0001) 1.250000000000000E+04, /* J = 25 */
1737     (PID.TID 0000.0001) 1.750000000000000E+04, /* J = 26 */
1738     (PID.TID 0000.0001) 2.250000000000000E+04, /* J = 27 */
1739     (PID.TID 0000.0001) 2.750000000000000E+04, /* J = 28 */
1740     (PID.TID 0000.0001) 3.250000000000000E+04, /* J = 29 */
1741     (PID.TID 0000.0001) 3.750000000000000E+04, /* J = 30 */
1742     (PID.TID 0000.0001) 4.250000000000000E+04, /* J = 31 */
1743     (PID.TID 0000.0001) 4.750000000000000E+04, /* J = 32 */
1744     (PID.TID 0000.0001) 5.250000000000000E+04, /* J = 33 */
1745     (PID.TID 0000.0001) 5.750000000000000E+04, /* J = 34 */
1746     (PID.TID 0000.0001) 6.250000000000000E+04, /* J = 35 */
1747     (PID.TID 0000.0001) 6.750000000000000E+04, /* J = 36 */
1748     (PID.TID 0000.0001) 7.250000000000000E+04, /* J = 37 */
1749     (PID.TID 0000.0001) 7.750000000000000E+04, /* J = 38 */
1750     (PID.TID 0000.0001) 8.250000000000000E+04, /* J = 39 */
1751     (PID.TID 0000.0001) 8.750000000000000E+04, /* J = 40 */
1752     (PID.TID 0000.0001) 9.250000000000000E+04, /* J = 41 */
1753     (PID.TID 0000.0001) 9.750000000000000E+04 /* J = 42 */
1754     (PID.TID 0000.0001) ;
1755     (PID.TID 0000.0001) rcoord = /* P-point R coordinate ( units of r ) */
1756     (PID.TID 0000.0001) -5.000000000000000E+00 /* K = 1 */
1757     (PID.TID 0000.0001) ;
1758     (PID.TID 0000.0001) rF = /* W-Interf. R coordinate ( units of r ) */
1759     (PID.TID 0000.0001) 0.000000000000000E+00, /* K = 1 */
1760     (PID.TID 0000.0001) -1.000000000000000E+01 /* K = 2 */
1761     (PID.TID 0000.0001) ;
1762     (PID.TID 0000.0001) deepFacC = /* deep-model grid factor @ cell-Center (-) */
1763     (PID.TID 0000.0001) 1.000000000000000E+00 /* K = 1 */
1764     (PID.TID 0000.0001) ;
1765     (PID.TID 0000.0001) deepFacF = /* deep-model grid factor @ W-Interface (-) */
1766     (PID.TID 0000.0001) 2 @ 1.000000000000000E+00 /* K = 1: 2 */
1767     (PID.TID 0000.0001) ;
1768     (PID.TID 0000.0001) rVel2wUnit = /* convert units: rVel -> wSpeed (=1 if z-coord)*/
1769     (PID.TID 0000.0001) 2 @ 1.000000000000000E+00 /* K = 1: 2 */
1770     (PID.TID 0000.0001) ;
1771     (PID.TID 0000.0001) wUnit2rVel = /* convert units: wSpeed -> rVel (=1 if z-coord)*/
1772     (PID.TID 0000.0001) 2 @ 1.000000000000000E+00 /* K = 1: 2 */
1773     (PID.TID 0000.0001) ;
1774     (PID.TID 0000.0001) dBdrRef = /* Vertical grad. of reference buoyancy [(m/s/r)^2] */
1775     (PID.TID 0000.0001) 0.000000000000000E+00 /* K = 1 */
1776     (PID.TID 0000.0001) ;
1777     (PID.TID 0000.0001) rotateGrid = /* use rotated grid ( True/False ) */
1778     (PID.TID 0000.0001) F
1779     (PID.TID 0000.0001) ;
1780     (PID.TID 0000.0001) phiEuler = /* Euler angle, rotation about original z-coordinate [rad] */
1781     (PID.TID 0000.0001) 0.000000000000000E+00
1782     (PID.TID 0000.0001) ;
1783     (PID.TID 0000.0001) thetaEuler = /* Euler angle, rotation about new x-coordinate [rad] */
1784     (PID.TID 0000.0001) 0.000000000000000E+00
1785     (PID.TID 0000.0001) ;
1786     (PID.TID 0000.0001) psiEuler = /* Euler angle, rotation about new z-coordinate [rad] */
1787     (PID.TID 0000.0001) 0.000000000000000E+00
1788     (PID.TID 0000.0001) ;
1789     (PID.TID 0000.0001) dxF = /* dxF(:,1,:,1) ( units: m ) */
1790     (PID.TID 0000.0001) 80 @ 5.000000000000000E+03 /* I = 1: 80 */
1791     (PID.TID 0000.0001) ;
1792     (PID.TID 0000.0001) dxF = /* dxF(1,:,1,:) ( units: m ) */
1793     (PID.TID 0000.0001) 42 @ 5.000000000000000E+03 /* J = 1: 42 */
1794     (PID.TID 0000.0001) ;
1795     (PID.TID 0000.0001) dyF = /* dyF(:,1,:,1) ( units: m ) */
1796     (PID.TID 0000.0001) 80 @ 5.000000000000000E+03 /* I = 1: 80 */
1797     (PID.TID 0000.0001) ;
1798     (PID.TID 0000.0001) dyF = /* dyF(1,:,1,:) ( units: m ) */
1799     (PID.TID 0000.0001) 42 @ 5.000000000000000E+03 /* J = 1: 42 */
1800     (PID.TID 0000.0001) ;
1801     (PID.TID 0000.0001) dxG = /* dxG(:,1,:,1) ( units: m ) */
1802     (PID.TID 0000.0001) 80 @ 5.000000000000000E+03 /* I = 1: 80 */
1803     (PID.TID 0000.0001) ;
1804     (PID.TID 0000.0001) dxG = /* dxG(1,:,1,:) ( units: m ) */
1805     (PID.TID 0000.0001) 42 @ 5.000000000000000E+03 /* J = 1: 42 */
1806     (PID.TID 0000.0001) ;
1807     (PID.TID 0000.0001) dyG = /* dyG(:,1,:,1) ( units: m ) */
1808     (PID.TID 0000.0001) 80 @ 5.000000000000000E+03 /* I = 1: 80 */
1809     (PID.TID 0000.0001) ;
1810     (PID.TID 0000.0001) dyG = /* dyG(1,:,1,:) ( units: m ) */
1811     (PID.TID 0000.0001) 42 @ 5.000000000000000E+03 /* J = 1: 42 */
1812     (PID.TID 0000.0001) ;
1813     (PID.TID 0000.0001) dxC = /* dxC(:,1,:,1) ( units: m ) */
1814     (PID.TID 0000.0001) 80 @ 5.000000000000000E+03 /* I = 1: 80 */
1815     (PID.TID 0000.0001) ;
1816     (PID.TID 0000.0001) dxC = /* dxC(1,:,1,:) ( units: m ) */
1817     (PID.TID 0000.0001) 42 @ 5.000000000000000E+03 /* J = 1: 42 */
1818     (PID.TID 0000.0001) ;
1819     (PID.TID 0000.0001) dyC = /* dyC(:,1,:,1) ( units: m ) */
1820     (PID.TID 0000.0001) 80 @ 5.000000000000000E+03 /* I = 1: 80 */
1821     (PID.TID 0000.0001) ;
1822     (PID.TID 0000.0001) dyC = /* dyC(1,:,1,:) ( units: m ) */
1823     (PID.TID 0000.0001) 42 @ 5.000000000000000E+03 /* J = 1: 42 */
1824     (PID.TID 0000.0001) ;
1825     (PID.TID 0000.0001) dxV = /* dxV(:,1,:,1) ( units: m ) */
1826     (PID.TID 0000.0001) 80 @ 5.000000000000000E+03 /* I = 1: 80 */
1827     (PID.TID 0000.0001) ;
1828     (PID.TID 0000.0001) dxV = /* dxV(1,:,1,:) ( units: m ) */
1829     (PID.TID 0000.0001) 42 @ 5.000000000000000E+03 /* J = 1: 42 */
1830     (PID.TID 0000.0001) ;
1831     (PID.TID 0000.0001) dyU = /* dyU(:,1,:,1) ( units: m ) */
1832     (PID.TID 0000.0001) 80 @ 5.000000000000000E+03 /* I = 1: 80 */
1833     (PID.TID 0000.0001) ;
1834     (PID.TID 0000.0001) dyU = /* dyU(1,:,1,:) ( units: m ) */
1835     (PID.TID 0000.0001) 42 @ 5.000000000000000E+03 /* J = 1: 42 */
1836     (PID.TID 0000.0001) ;
1837     (PID.TID 0000.0001) rA = /* rA (:,1,:,1) ( units: m^2 ) */
1838     (PID.TID 0000.0001) 80 @ 2.500000000000000E+07 /* I = 1: 80 */
1839     (PID.TID 0000.0001) ;
1840     (PID.TID 0000.0001) rA = /* rA (1,:,1,:) ( units: m^2 ) */
1841     (PID.TID 0000.0001) 42 @ 2.500000000000000E+07 /* J = 1: 42 */
1842     (PID.TID 0000.0001) ;
1843     (PID.TID 0000.0001) rAw = /* rAw(:,1,:,1) ( units: m^2 ) */
1844     (PID.TID 0000.0001) 80 @ 2.500000000000000E+07 /* I = 1: 80 */
1845     (PID.TID 0000.0001) ;
1846     (PID.TID 0000.0001) rAw = /* rAw(1,:,1,:) ( units: m^2 ) */
1847     (PID.TID 0000.0001) 42 @ 2.500000000000000E+07 /* J = 1: 42 */
1848     (PID.TID 0000.0001) ;
1849     (PID.TID 0000.0001) rAs = /* rAs(:,1,:,1) ( units: m^2 ) */
1850     (PID.TID 0000.0001) 80 @ 2.500000000000000E+07 /* I = 1: 80 */
1851     (PID.TID 0000.0001) ;
1852     (PID.TID 0000.0001) rAs = /* rAs(1,:,1,:) ( units: m^2 ) */
1853     (PID.TID 0000.0001) 42 @ 2.500000000000000E+07 /* J = 1: 42 */
1854     (PID.TID 0000.0001) ;
1855     (PID.TID 0000.0001) globalArea = /* Integrated horizontal Area (m^2) */
1856     (PID.TID 0000.0001) 8.200000000000000E+10
1857     (PID.TID 0000.0001) ;
1858     (PID.TID 0000.0001) // =======================================================
1859     (PID.TID 0000.0001) // End of Model config. summary
1860     (PID.TID 0000.0001) // =======================================================
1861     (PID.TID 0000.0001)
1862     (PID.TID 0000.0001) == Packages configuration : Check & print summary ==
1863     (PID.TID 0000.0001)
1864     (PID.TID 0000.0001) THSICE_CHECK: #define THSICE
1865     (PID.TID 0000.0001) CTRL_CHECK: ctrl package
1866     (PID.TID 0000.0001) COST_CHECK: cost package
1867     (PID.TID 0000.0001) GRDCHK_CHECK: grdchk package
1868     (PID.TID 0000.0001) GAD_CHECK: #define ALLOW_GENERIC_ADVDIFF
1869     (PID.TID 0000.0001) // =======================================================
1870     (PID.TID 0000.0001) // Check Model config. (CONFIG_CHECK):
1871     (PID.TID 0000.0001) // CONFIG_CHECK : Normal End
1872     (PID.TID 0000.0001) // =======================================================
1873     (PID.TID 0000.0001)
1874     (PID.TID 0000.0001) Start initial hydrostatic pressure computation
1875     (PID.TID 0000.0001) Pressure is predetermined for buoyancyRelation OCEANIC
1876     (PID.TID 0000.0001)
1877     (PID.TID 0000.0001) // =======================================================
1878     (PID.TID 0000.0001) // Begin MONITOR dynamic field statistics
1879     (PID.TID 0000.0001) // =======================================================
1880     (PID.TID 0000.0001) %MON time_tsnumber = 0
1881     (PID.TID 0000.0001) %MON time_secondsf = 0.0000000000000E+00
1882     (PID.TID 0000.0001) %MON dynstat_eta_max = 0.0000000000000E+00
1883     (PID.TID 0000.0001) %MON dynstat_eta_min = 0.0000000000000E+00
1884     (PID.TID 0000.0001) %MON dynstat_eta_mean = 0.0000000000000E+00
1885     (PID.TID 0000.0001) %MON dynstat_eta_sd = 0.0000000000000E+00
1886     (PID.TID 0000.0001) %MON dynstat_eta_del2 = 0.0000000000000E+00
1887     (PID.TID 0000.0001) %MON dynstat_uvel_max = 2.0000000000000E-01
1888     (PID.TID 0000.0001) %MON dynstat_uvel_min = 2.0000000000000E-01
1889     (PID.TID 0000.0001) %MON dynstat_uvel_mean = 2.0000000000000E-01
1890     (PID.TID 0000.0001) %MON dynstat_uvel_sd = 0.0000000000000E+00
1891     (PID.TID 0000.0001) %MON dynstat_uvel_del2 = 0.0000000000000E+00
1892     (PID.TID 0000.0001) %MON dynstat_vvel_max = 0.0000000000000E+00
1893     (PID.TID 0000.0001) %MON dynstat_vvel_min = 0.0000000000000E+00
1894     (PID.TID 0000.0001) %MON dynstat_vvel_mean = 0.0000000000000E+00
1895     (PID.TID 0000.0001) %MON dynstat_vvel_sd = 0.0000000000000E+00
1896     (PID.TID 0000.0001) %MON dynstat_vvel_del2 = 0.0000000000000E+00
1897     (PID.TID 0000.0001) %MON dynstat_wvel_max = -0.0000000000000E+00
1898     (PID.TID 0000.0001) %MON dynstat_wvel_min = -0.0000000000000E+00
1899     (PID.TID 0000.0001) %MON dynstat_wvel_mean = 0.0000000000000E+00
1900     (PID.TID 0000.0001) %MON dynstat_wvel_sd = 0.0000000000000E+00
1901     (PID.TID 0000.0001) %MON dynstat_wvel_del2 = 0.0000000000000E+00
1902     (PID.TID 0000.0001) %MON dynstat_theta_max = -1.6200000000000E+00
1903     (PID.TID 0000.0001) %MON dynstat_theta_min = -1.6200000000000E+00
1904     (PID.TID 0000.0001) %MON dynstat_theta_mean = -1.6200000000000E+00
1905     (PID.TID 0000.0001) %MON dynstat_theta_sd = 0.0000000000000E+00
1906     (PID.TID 0000.0001) %MON dynstat_theta_del2 = 0.0000000000000E+00
1907     (PID.TID 0000.0001) %MON dynstat_salt_max = 3.0000000000000E+01
1908     (PID.TID 0000.0001) %MON dynstat_salt_min = 3.0000000000000E+01
1909     (PID.TID 0000.0001) %MON dynstat_salt_mean = 3.0000000000000E+01
1910     (PID.TID 0000.0001) %MON dynstat_salt_sd = 0.0000000000000E+00
1911     (PID.TID 0000.0001) %MON dynstat_salt_del2 = 0.0000000000000E+00
1912     (PID.TID 0000.0001) %MON advcfl_uvel_max = 1.4400000000000E-01
1913     (PID.TID 0000.0001) %MON advcfl_vvel_max = 0.0000000000000E+00
1914     (PID.TID 0000.0001) %MON advcfl_wvel_max = 0.0000000000000E+00
1915     (PID.TID 0000.0001) %MON advcfl_W_hf_max = 0.0000000000000E+00
1916     (PID.TID 0000.0001) %MON pe_b_mean = 0.0000000000000E+00
1917     (PID.TID 0000.0001) %MON ke_max = 2.0000000000000E-02
1918     (PID.TID 0000.0001) %MON ke_mean = 2.0000000000000E-02
1919     (PID.TID 0000.0001) %MON ke_vol = 8.2000000000000E+11
1920     (PID.TID 0000.0001) %MON vort_r_min = -4.0000000000000E-05
1921     (PID.TID 0000.0001) %MON vort_r_max = 4.0000000000000E-05
1922     (PID.TID 0000.0001) %MON vort_a_mean = 0.0000000000000E+00
1923     (PID.TID 0000.0001) %MON vort_a_sd = 8.7287156094397E-06
1924     (PID.TID 0000.0001) %MON vort_p_mean = 0.0000000000000E+00
1925     (PID.TID 0000.0001) %MON vort_p_sd = 1.7777777777778E-05
1926     (PID.TID 0000.0001) %MON surfExpan_theta_mean = 0.0000000000000E+00
1927     (PID.TID 0000.0001) %MON surfExpan_salt_mean = 0.0000000000000E+00
1928     (PID.TID 0000.0001) // =======================================================
1929     (PID.TID 0000.0001) // End MONITOR dynamic field statistics
1930     (PID.TID 0000.0001) // =======================================================
1931     (PID.TID 0000.0001) // =======================================================
1932     (PID.TID 0000.0001) // Begin MONITOR Therm.SeaIce statistics
1933     (PID.TID 0000.0001) // =======================================================
1934     (PID.TID 0000.0001) %MON thSI_time_sec = 0.0000000000000E+00
1935     (PID.TID 0000.0001) %MON thSI_Ice_Area_G = 7.4220000000000E+10
1936     (PID.TID 0000.0001) %MON thSI_Ice_Area_S = 3.8200000000000E+10
1937     (PID.TID 0000.0001) %MON thSI_Ice_Area_N = 3.6020000000000E+10
1938     (PID.TID 0000.0001) %MON thSI_IceH_ave_G = 2.0000000000000E-01
1939     (PID.TID 0000.0001) %MON thSI_IceH_ave_S = 2.0000000000000E-01
1940     (PID.TID 0000.0001) %MON thSI_IceH_ave_N = 2.0000000000000E-01
1941     (PID.TID 0000.0001) %MON thSI_IceH_max_S = 2.0000000000000E-01
1942     (PID.TID 0000.0001) %MON thSI_IceH_max_N = 2.0000000000000E-01
1943     (PID.TID 0000.0001) %MON thSI_SnwH_ave_G = 0.0000000000000E+00
1944     (PID.TID 0000.0001) %MON thSI_SnwH_ave_S = 0.0000000000000E+00
1945     (PID.TID 0000.0001) %MON thSI_SnwH_ave_N = 0.0000000000000E+00
1946     (PID.TID 0000.0001) %MON thSI_SnwH_max_S = 0.0000000000000E+00
1947     (PID.TID 0000.0001) %MON thSI_SnwH_max_N = 0.0000000000000E+00
1948     (PID.TID 0000.0001) %MON thSI_Tsrf_ave_G = 0.0000000000000E+00
1949     (PID.TID 0000.0001) %MON thSI_Tsrf_ave_S = 0.0000000000000E+00
1950     (PID.TID 0000.0001) %MON thSI_Tsrf_ave_N = 0.0000000000000E+00
1951     (PID.TID 0000.0001) %MON thSI_Tsrf_min_S = 0.0000000000000E+00
1952     (PID.TID 0000.0001) %MON thSI_Tsrf_min_N = 0.0000000000000E+00
1953     (PID.TID 0000.0001) %MON thSI_Tsrf_max_S = 0.0000000000000E+00
1954     (PID.TID 0000.0001) %MON thSI_Tsrf_max_N = 0.0000000000000E+00
1955     (PID.TID 0000.0001) %MON thSI_Tic1_ave_G = 0.0000000000000E+00
1956     (PID.TID 0000.0001) %MON thSI_Tic1_ave_S = 0.0000000000000E+00
1957     (PID.TID 0000.0001) %MON thSI_Tic1_ave_N = 0.0000000000000E+00
1958     (PID.TID 0000.0001) %MON thSI_Tic1_min_S = 0.0000000000000E+00
1959     (PID.TID 0000.0001) %MON thSI_Tic1_min_N = 0.0000000000000E+00
1960     (PID.TID 0000.0001) %MON thSI_Tic1_max_S = 0.0000000000000E+00
1961     (PID.TID 0000.0001) %MON thSI_Tic1_max_N = 0.0000000000000E+00
1962     (PID.TID 0000.0001) %MON thSI_Tic2_ave_G = 0.0000000000000E+00
1963     (PID.TID 0000.0001) %MON thSI_Tic2_ave_S = 0.0000000000000E+00
1964     (PID.TID 0000.0001) %MON thSI_Tic2_ave_N = 0.0000000000000E+00
1965     (PID.TID 0000.0001) %MON thSI_Tic2_min_S = 0.0000000000000E+00
1966     (PID.TID 0000.0001) %MON thSI_Tic2_min_N = 0.0000000000000E+00
1967     (PID.TID 0000.0001) %MON thSI_Tic2_max_S = 0.0000000000000E+00
1968     (PID.TID 0000.0001) %MON thSI_Tic2_max_N = 0.0000000000000E+00
1969     (PID.TID 0000.0001) %MON thSI_TotEnerg_G = -4.4397458245101E+18
1970     (PID.TID 0000.0001) // =======================================================
1971     (PID.TID 0000.0001) // End MONITOR Therm.SeaIce statistics
1972     (PID.TID 0000.0001) // =======================================================
1973     (PID.TID 0000.0001) // =======================================================
1974     (PID.TID 0000.0001) // Begin MONITOR EXF statistics
1975     (PID.TID 0000.0001) // =======================================================
1976     (PID.TID 0000.0001) %MON exf_tsnumber = 0
1977     (PID.TID 0000.0001) %MON exf_time_sec = 0.0000000000000E+00
1978     (PID.TID 0000.0001) %MON exf_ustress_max = 1.5090582345178E-01
1979     (PID.TID 0000.0001) %MON exf_ustress_min = 1.2184383176727E-01
1980     (PID.TID 0000.0001) %MON exf_ustress_mean = 1.3639097604149E-01
1981     (PID.TID 0000.0001) %MON exf_ustress_sd = 1.0386422635495E-02
1982     (PID.TID 0000.0001) %MON exf_ustress_del2 = 4.8239164369080E-06
1983     (PID.TID 0000.0001) %MON exf_vstress_max = 0.0000000000000E+00
1984     (PID.TID 0000.0001) %MON exf_vstress_min = 0.0000000000000E+00
1985     (PID.TID 0000.0001) %MON exf_vstress_mean = 0.0000000000000E+00
1986     (PID.TID 0000.0001) %MON exf_vstress_sd = 0.0000000000000E+00
1987     (PID.TID 0000.0001) %MON exf_vstress_del2 = 0.0000000000000E+00
1988     (PID.TID 0000.0001) %MON exf_hflux_max = 6.5891206537299E+01
1989     (PID.TID 0000.0001) %MON exf_hflux_min = -8.1404237426772E+01
1990     (PID.TID 0000.0001) %MON exf_hflux_mean = -1.2902663247122E+01
1991     (PID.TID 0000.0001) %MON exf_hflux_sd = 5.1129603187018E+01
1992     (PID.TID 0000.0001) %MON exf_hflux_del2 = 7.8376989500286E-03
1993     (PID.TID 0000.0001) %MON exf_sflux_max = 2.4349220321116E-08
1994     (PID.TID 0000.0001) %MON exf_sflux_min = -2.4559554123212E-09
1995     (PID.TID 0000.0001) %MON exf_sflux_mean = 1.1256492036177E-08
1996     (PID.TID 0000.0001) %MON exf_sflux_sd = 9.4794636747833E-09
1997     (PID.TID 0000.0001) %MON exf_sflux_del2 = 1.0812777411482E-12
1998     (PID.TID 0000.0001) %MON exf_uwind_max = 1.0000000000000E+01
1999     (PID.TID 0000.0001) %MON exf_uwind_min = 1.0000000000000E+01
2000     (PID.TID 0000.0001) %MON exf_uwind_mean = 1.0000000000000E+01
2001     (PID.TID 0000.0001) %MON exf_uwind_sd = 0.0000000000000E+00
2002     (PID.TID 0000.0001) %MON exf_uwind_del2 = 5.4878048780488E-02
2003     (PID.TID 0000.0001) %MON exf_vwind_max = 0.0000000000000E+00
2004     (PID.TID 0000.0001) %MON exf_vwind_min = 0.0000000000000E+00
2005     (PID.TID 0000.0001) %MON exf_vwind_mean = 0.0000000000000E+00
2006     (PID.TID 0000.0001) %MON exf_vwind_sd = 0.0000000000000E+00
2007     (PID.TID 0000.0001) %MON exf_vwind_del2 = 0.0000000000000E+00
2008     (PID.TID 0000.0001) %MON exf_wspeed_max = 1.0000000000000E+01
2009     (PID.TID 0000.0001) %MON exf_wspeed_min = 1.0000000000000E+01
2010     (PID.TID 0000.0001) %MON exf_wspeed_mean = 1.0000000000000E+01
2011     (PID.TID 0000.0001) %MON exf_wspeed_sd = 0.0000000000000E+00
2012     (PID.TID 0000.0001) %MON exf_wspeed_del2 = 5.4878048780488E-02
2013     (PID.TID 0000.0001) %MON exf_atemp_max = 2.7714691614496E+02
2014     (PID.TID 0000.0001) %MON exf_atemp_min = 2.6915308385504E+02
2015     (PID.TID 0000.0001) %MON exf_atemp_mean = 2.7315000000000E+02
2016     (PID.TID 0000.0001) %MON exf_atemp_sd = 2.8284271247462E+00
2017     (PID.TID 0000.0001) %MON exf_atemp_del2 = 1.0928897906770E-02
2018     (PID.TID 0000.0001) %MON exf_aqh_max = 3.7064806789606E-03
2019     (PID.TID 0000.0001) %MON exf_aqh_min = 2.1441807824757E-03
2020     (PID.TID 0000.0001) %MON exf_aqh_mean = 2.8779102076748E-03
2021     (PID.TID 0000.0001) %MON exf_aqh_sd = 5.5261989308694E-04
2022     (PID.TID 0000.0001) %MON exf_aqh_del2 = 1.5804141560262E-05
2023     (PID.TID 0000.0001) %MON exf_lwflux_max = 5.6469966707287E+01
2024     (PID.TID 0000.0001) %MON exf_lwflux_min = 5.6469966707287E+01
2025     (PID.TID 0000.0001) %MON exf_lwflux_mean = 5.6469966707288E+01
2026     (PID.TID 0000.0001) %MON exf_lwflux_sd = 8.7396756498492E-13
2027     (PID.TID 0000.0001) %MON exf_lwflux_del2 = 3.0989615875950E-01
2028     (PID.TID 0000.0001) %MON exf_precip_max = 0.0000000000000E+00
2029     (PID.TID 0000.0001) %MON exf_precip_min = 0.0000000000000E+00
2030     (PID.TID 0000.0001) %MON exf_precip_mean = 0.0000000000000E+00
2031     (PID.TID 0000.0001) %MON exf_precip_sd = 0.0000000000000E+00
2032     (PID.TID 0000.0001) %MON exf_precip_del2 = 0.0000000000000E+00
2033     (PID.TID 0000.0001) %MON exf_swflux_max = -9.0000000000000E+01
2034     (PID.TID 0000.0001) %MON exf_swflux_min = -9.0000000000000E+01
2035     (PID.TID 0000.0001) %MON exf_swflux_mean = -9.0000000000000E+01
2036     (PID.TID 0000.0001) %MON exf_swflux_sd = 0.0000000000000E+00
2037     (PID.TID 0000.0001) %MON exf_swflux_del2 = 4.9390243902439E-01
2038     (PID.TID 0000.0001) %MON exf_evap_max = 2.4349220321116E-08
2039     (PID.TID 0000.0001) %MON exf_evap_min = -2.4559554123212E-09
2040     (PID.TID 0000.0001) %MON exf_evap_mean = 1.1256492036177E-08
2041     (PID.TID 0000.0001) %MON exf_evap_sd = 9.4794636747833E-09
2042     (PID.TID 0000.0001) %MON exf_evap_del2 = 7.2578500983819E-11
2043     (PID.TID 0000.0001) %MON exf_swdown_max = 1.0000000000000E+02
2044     (PID.TID 0000.0001) %MON exf_swdown_min = 1.0000000000000E+02
2045     (PID.TID 0000.0001) %MON exf_swdown_mean = 1.0000000000000E+02
2046     (PID.TID 0000.0001) %MON exf_swdown_sd = 0.0000000000000E+00
2047     (PID.TID 0000.0001) %MON exf_swdown_del2 = 5.4878048780488E-01
2048     (PID.TID 0000.0001) %MON exf_lwdown_max = 2.5000000000000E+02
2049     (PID.TID 0000.0001) %MON exf_lwdown_min = 2.5000000000000E+02
2050     (PID.TID 0000.0001) %MON exf_lwdown_mean = 2.5000000000000E+02
2051     (PID.TID 0000.0001) %MON exf_lwdown_sd = 0.0000000000000E+00
2052     (PID.TID 0000.0001) %MON exf_lwdown_del2 = 1.3719512195122E+00
2053     (PID.TID 0000.0001) %MON exf_climsst_max = -1.1200000000000E+00
2054     (PID.TID 0000.0001) %MON exf_climsst_min = -1.9000000000000E+00
2055     (PID.TID 0000.0001) %MON exf_climsst_mean = -1.4268306195527E+00
2056     (PID.TID 0000.0001) %MON exf_climsst_sd = 2.8050177343935E-01
2057     (PID.TID 0000.0001) %MON exf_climsst_del2 = 9.0467371231119E-05
2058     (PID.TID 0000.0001) // =======================================================
2059     (PID.TID 0000.0001) // End MONITOR EXF statistics
2060     (PID.TID 0000.0001) // =======================================================
2061     (PID.TID 0000.0001) // =======================================================
2062     (PID.TID 0000.0001) // Begin MONITOR Therm.SeaIce statistics
2063     (PID.TID 0000.0001) // =======================================================
2064     (PID.TID 0000.0001) %MON thSI_time_sec = 3.6000000000000E+04
2065     (PID.TID 0000.0001) %MON thSI_Ice_Area_G = 7.4180693222958E+10
2066     (PID.TID 0000.0001) %MON thSI_Ice_Area_S = 3.8167447852747E+10
2067     (PID.TID 0000.0001) %MON thSI_Ice_Area_N = 3.6013245370211E+10
2068     (PID.TID 0000.0001) %MON thSI_IceH_ave_G = 2.0025086850703E-01
2069     (PID.TID 0000.0001) %MON thSI_IceH_ave_S = 2.0022261137710E-01
2070     (PID.TID 0000.0001) %MON thSI_IceH_ave_N = 2.0028081589227E-01
2071     (PID.TID 0000.0001) %MON thSI_IceH_max_S = 2.0678595179437E-01
2072     (PID.TID 0000.0001) %MON thSI_IceH_max_N = 2.0873557876667E-01
2073     (PID.TID 0000.0001) %MON thSI_SnwH_ave_G = 0.0000000000000E+00
2074     (PID.TID 0000.0001) %MON thSI_SnwH_ave_S = 0.0000000000000E+00
2075     (PID.TID 0000.0001) %MON thSI_SnwH_ave_N = 0.0000000000000E+00
2076     (PID.TID 0000.0001) %MON thSI_SnwH_max_S = 0.0000000000000E+00
2077     (PID.TID 0000.0001) %MON thSI_SnwH_max_N = 0.0000000000000E+00
2078     (PID.TID 0000.0001) %MON thSI_Tsrf_ave_G = -2.3383878602962E+00
2079     (PID.TID 0000.0001) %MON thSI_Tsrf_ave_S = -2.3381910697115E+00
2080     (PID.TID 0000.0001) %MON thSI_Tsrf_ave_N = -2.3385964222935E+00
2081     (PID.TID 0000.0001) %MON thSI_Tsrf_min_S = -4.6727274617771E+00
2082     (PID.TID 0000.0001) %MON thSI_Tsrf_min_N = -4.6771106053961E+00
2083     (PID.TID 0000.0001) %MON thSI_Tsrf_max_S = -1.2525411208923E-01
2084     (PID.TID 0000.0001) %MON thSI_Tsrf_max_N = -1.2525411208923E-01
2085     (PID.TID 0000.0001) %MON thSI_Tic1_ave_G = -2.1617216991738E+00
2086     (PID.TID 0000.0001) %MON thSI_Tic1_ave_S = -2.1614792419427E+00
2087     (PID.TID 0000.0001) %MON thSI_Tic1_ave_N = -2.1619785847804E+00
2088     (PID.TID 0000.0001) %MON thSI_Tic1_min_S = -3.7413730802656E+00
2089     (PID.TID 0000.0001) %MON thSI_Tic1_min_N = -3.7419681178800E+00
2090     (PID.TID 0000.0001) %MON thSI_Tic1_max_S = -8.5724917582972E-01
2091     (PID.TID 0000.0001) %MON thSI_Tic1_max_N = -8.5724917582972E-01
2092     (PID.TID 0000.0001) %MON thSI_Tic2_ave_G = -1.7948567497817E+00
2093     (PID.TID 0000.0001) %MON thSI_Tic2_ave_S = -1.7948004543638E+00
2094     (PID.TID 0000.0001) %MON thSI_Tic2_ave_N = -1.7949163952809E+00
2095     (PID.TID 0000.0001) %MON thSI_Tic2_min_S = -2.3014491854585E+00
2096     (PID.TID 0000.0001) %MON thSI_Tic2_min_N = -2.3013963294936E+00
2097     (PID.TID 0000.0001) %MON thSI_Tic2_max_S = -1.3772513073859E+00
2098     (PID.TID 0000.0001) %MON thSI_Tic2_max_N = -1.3772513073859E+00
2099     (PID.TID 0000.0001) %MON thSI_TotEnerg_G = -4.4484650348744E+18
2100     (PID.TID 0000.0001) // =======================================================
2101     (PID.TID 0000.0001) // End MONITOR Therm.SeaIce statistics
2102     (PID.TID 0000.0001) // =======================================================
2103     (PID.TID 0000.0001) // =======================================================
2104     (PID.TID 0000.0001) // Begin MONITOR Therm.SeaIce statistics
2105     (PID.TID 0000.0001) // =======================================================
2106     (PID.TID 0000.0001) %MON thSI_time_sec = 7.2000000000000E+04
2107     (PID.TID 0000.0001) %MON thSI_Ice_Area_G = 7.3995837755598E+10
2108     (PID.TID 0000.0001) %MON thSI_Ice_Area_S = 3.8050165361328E+10
2109     (PID.TID 0000.0001) %MON thSI_Ice_Area_N = 3.5945672394269E+10
2110     (PID.TID 0000.0001) %MON thSI_IceH_ave_G = 2.0085100683471E-01
2111     (PID.TID 0000.0001) %MON thSI_IceH_ave_S = 2.0074325870423E-01
2112     (PID.TID 0000.0001) %MON thSI_IceH_ave_N = 2.0096506324009E-01
2113     (PID.TID 0000.0001) %MON thSI_IceH_max_S = 2.1534271379148E-01
2114     (PID.TID 0000.0001) %MON thSI_IceH_max_N = 2.1911059732309E-01
2115     (PID.TID 0000.0001) %MON thSI_SnwH_ave_G = 0.0000000000000E+00
2116     (PID.TID 0000.0001) %MON thSI_SnwH_ave_S = 0.0000000000000E+00
2117     (PID.TID 0000.0001) %MON thSI_SnwH_ave_N = 0.0000000000000E+00
2118     (PID.TID 0000.0001) %MON thSI_SnwH_max_S = 0.0000000000000E+00
2119     (PID.TID 0000.0001) %MON thSI_SnwH_max_N = 0.0000000000000E+00
2120     (PID.TID 0000.0001) %MON thSI_Tsrf_ave_G = -2.3533052528992E+00
2121     (PID.TID 0000.0001) %MON thSI_Tsrf_ave_S = -2.3532014299975E+00
2122     (PID.TID 0000.0001) %MON thSI_Tsrf_ave_N = -2.3534151542674E+00
2123     (PID.TID 0000.0001) %MON thSI_Tsrf_min_S = -4.7831153535656E+00
2124     (PID.TID 0000.0001) %MON thSI_Tsrf_min_N = -4.7928859923066E+00
2125     (PID.TID 0000.0001) %MON thSI_Tsrf_max_S = -2.2688957095523E-02
2126     (PID.TID 0000.0001) %MON thSI_Tsrf_max_N = -2.2688957095523E-02
2127     (PID.TID 0000.0001) %MON thSI_Tic1_ave_G = -2.1810465841593E+00
2128     (PID.TID 0000.0001) %MON thSI_Tic1_ave_S = -2.1804451081826E+00
2129     (PID.TID 0000.0001) %MON thSI_Tic1_ave_N = -2.1816825717305E+00
2130     (PID.TID 0000.0001) %MON thSI_Tic1_min_S = -3.9198711387818E+00
2131     (PID.TID 0000.0001) %MON thSI_Tic1_min_N = -3.9242117247328E+00
2132     (PID.TID 0000.0001) %MON thSI_Tic1_max_S = -6.4839813991796E-01
2133     (PID.TID 0000.0001) %MON thSI_Tic1_max_N = -6.4839813991796E-01
2134     (PID.TID 0000.0001) %MON thSI_Tic2_ave_G = -1.8070795307725E+00
2135     (PID.TID 0000.0001) %MON thSI_Tic2_ave_S = -1.8069264173056E+00
2136     (PID.TID 0000.0001) %MON thSI_Tic2_ave_N = -1.8072414296108E+00
2137     (PID.TID 0000.0001) %MON thSI_Tic2_min_S = -2.3786196356300E+00
2138     (PID.TID 0000.0001) %MON thSI_Tic2_min_N = -2.3785728132989E+00
2139     (PID.TID 0000.0001) %MON thSI_Tic2_max_S = -1.3004336063904E+00
2140     (PID.TID 0000.0001) %MON thSI_Tic2_max_N = -1.3004336063904E+00
2141     (PID.TID 0000.0001) %MON thSI_TotEnerg_G = -4.4421806863078E+18
2142     (PID.TID 0000.0001) // =======================================================
2143     (PID.TID 0000.0001) // End MONITOR Therm.SeaIce statistics
2144     (PID.TID 0000.0001) // =======================================================
2145     (PID.TID 0000.0001) // =======================================================
2146     (PID.TID 0000.0001) // Begin MONITOR Therm.SeaIce statistics
2147     (PID.TID 0000.0001) // =======================================================
2148     (PID.TID 0000.0001) %MON thSI_time_sec = 1.0800000000000E+05
2149     (PID.TID 0000.0001) %MON thSI_Ice_Area_G = 7.3726040661877E+10
2150     (PID.TID 0000.0001) %MON thSI_Ice_Area_S = 3.7882114190516E+10
2151     (PID.TID 0000.0001) %MON thSI_Ice_Area_N = 3.5843926471361E+10
2152     (PID.TID 0000.0001) %MON thSI_IceH_ave_G = 2.0138439666149E-01
2153     (PID.TID 0000.0001) %MON thSI_IceH_ave_S = 2.0116382775521E-01
2154     (PID.TID 0000.0001) %MON thSI_IceH_ave_N = 2.0161750774381E-01
2155     (PID.TID 0000.0001) %MON thSI_IceH_max_S = 2.2415587748524E-01
2156     (PID.TID 0000.0001) %MON thSI_IceH_max_N = 2.2900453853437E-01
2157     (PID.TID 0000.0001) %MON thSI_SnwH_ave_G = 0.0000000000000E+00
2158     (PID.TID 0000.0001) %MON thSI_SnwH_ave_S = 0.0000000000000E+00
2159     (PID.TID 0000.0001) %MON thSI_SnwH_ave_N = 0.0000000000000E+00
2160     (PID.TID 0000.0001) %MON thSI_SnwH_max_S = 0.0000000000000E+00
2161     (PID.TID 0000.0001) %MON thSI_SnwH_max_N = 0.0000000000000E+00
2162     (PID.TID 0000.0001) %MON thSI_Tsrf_ave_G = -2.3540769524456E+00
2163     (PID.TID 0000.0001) %MON thSI_Tsrf_ave_S = -2.3543644547782E+00
2164     (PID.TID 0000.0001) %MON thSI_Tsrf_ave_N = -2.3537731019117E+00
2165     (PID.TID 0000.0001) %MON thSI_Tsrf_min_S = -4.8119204885229E+00
2166     (PID.TID 0000.0001) %MON thSI_Tsrf_min_N = -4.8243421276885E+00
2167     (PID.TID 0000.0001) %MON thSI_Tsrf_max_S = 0.0000000000000E+00
2168     (PID.TID 0000.0001) %MON thSI_Tsrf_max_N = 0.0000000000000E+00
2169     (PID.TID 0000.0001) %MON thSI_Tic1_ave_G = -2.1707830571952E+00
2170     (PID.TID 0000.0001) %MON thSI_Tic1_ave_S = -2.1698726735188E+00
2171     (PID.TID 0000.0001) %MON thSI_Tic1_ave_N = -2.1717430428467E+00
2172     (PID.TID 0000.0001) %MON thSI_Tic1_min_S = -3.9415644503627E+00
2173     (PID.TID 0000.0001) %MON thSI_Tic1_min_N = -3.9481755129820E+00
2174     (PID.TID 0000.0001) %MON thSI_Tic1_max_S = -5.4961316208139E-01
2175     (PID.TID 0000.0001) %MON thSI_Tic1_max_N = -5.4961316208139E-01
2176     (PID.TID 0000.0001) %MON thSI_Tic2_ave_G = -1.8036426635188E+00
2177     (PID.TID 0000.0001) %MON thSI_Tic2_ave_S = -1.8034028998354E+00
2178     (PID.TID 0000.0001) %MON thSI_Tic2_ave_N = -1.8038954906530E+00
2179     (PID.TID 0000.0001) %MON thSI_Tic2_min_S = -2.3870585417813E+00
2180     (PID.TID 0000.0001) %MON thSI_Tic2_min_N = -2.3877679036321E+00
2181     (PID.TID 0000.0001) %MON thSI_Tic2_max_S = -1.2653986067307E+00
2182     (PID.TID 0000.0001) %MON thSI_Tic2_max_N = -1.2653986067307E+00
2183     (PID.TID 0000.0001) %MON thSI_TotEnerg_G = -4.4313122291203E+18
2184     (PID.TID 0000.0001) // =======================================================
2185     (PID.TID 0000.0001) // End MONITOR Therm.SeaIce statistics
2186     (PID.TID 0000.0001) // =======================================================
2187     (PID.TID 0000.0001) // =======================================================
2188     (PID.TID 0000.0001) // Begin MONITOR Therm.SeaIce statistics
2189     (PID.TID 0000.0001) // =======================================================
2190     (PID.TID 0000.0001) %MON thSI_time_sec = 1.4400000000000E+05
2191     (PID.TID 0000.0001) %MON thSI_Ice_Area_G = 7.3392113176734E+10
2192     (PID.TID 0000.0001) %MON thSI_Ice_Area_S = 3.7675605180679E+10
2193     (PID.TID 0000.0001) %MON thSI_Ice_Area_N = 3.5716507996056E+10
2194     (PID.TID 0000.0001) %MON thSI_IceH_ave_G = 2.0184747466660E-01
2195     (PID.TID 0000.0001) %MON thSI_IceH_ave_S = 2.0149247140765E-01
2196     (PID.TID 0000.0001) %MON thSI_IceH_ave_N = 2.0222195031870E-01
2197     (PID.TID 0000.0001) %MON thSI_IceH_max_S = 2.3254320027881E-01
2198     (PID.TID 0000.0001) %MON thSI_IceH_max_N = 2.3838979602511E-01
2199     (PID.TID 0000.0001) %MON thSI_SnwH_ave_G = 0.0000000000000E+00
2200     (PID.TID 0000.0001) %MON thSI_SnwH_ave_S = 0.0000000000000E+00
2201     (PID.TID 0000.0001) %MON thSI_SnwH_ave_N = 0.0000000000000E+00
2202     (PID.TID 0000.0001) %MON thSI_SnwH_max_S = 0.0000000000000E+00
2203     (PID.TID 0000.0001) %MON thSI_SnwH_max_N = 0.0000000000000E+00
2204     (PID.TID 0000.0001) %MON thSI_Tsrf_ave_G = -2.3610607599806E+00
2205     (PID.TID 0000.0001) %MON thSI_Tsrf_ave_S = -2.3619773611311E+00
2206     (PID.TID 0000.0001) %MON thSI_Tsrf_ave_N = -2.3600938820580E+00
2207     (PID.TID 0000.0001) %MON thSI_Tsrf_min_S = -4.8342603774140E+00
2208     (PID.TID 0000.0001) %MON thSI_Tsrf_min_N = -4.8480979587359E+00
2209     (PID.TID 0000.0001) %MON thSI_Tsrf_max_S = 0.0000000000000E+00
2210     (PID.TID 0000.0001) %MON thSI_Tsrf_max_N = 0.0000000000000E+00
2211     (PID.TID 0000.0001) %MON thSI_Tic1_ave_G = -2.1697746314682E+00
2212     (PID.TID 0000.0001) %MON thSI_Tic1_ave_S = -2.1686179191055E+00
2213     (PID.TID 0000.0001) %MON thSI_Tic1_ave_N = -2.1709903895135E+00
2214     (PID.TID 0000.0001) %MON thSI_Tic1_min_S = -3.9542276876931E+00
2215     (PID.TID 0000.0001) %MON thSI_Tic1_min_N = -3.9609328391476E+00
2216     (PID.TID 0000.0001) %MON thSI_Tic1_max_S = -4.9508139620878E-01
2217     (PID.TID 0000.0001) %MON thSI_Tic1_max_N = -4.9508139620877E-01
2218     (PID.TID 0000.0001) %MON thSI_Tic2_ave_G = -1.8031041383096E+00
2219     (PID.TID 0000.0001) %MON thSI_Tic2_ave_S = -1.8027951083153E+00
2220     (PID.TID 0000.0001) %MON thSI_Tic2_ave_N = -1.8034289430872E+00
2221     (PID.TID 0000.0001) %MON thSI_Tic2_min_S = -2.3909731164626E+00
2222     (PID.TID 0000.0001) %MON thSI_Tic2_min_N = -2.3921887553525E+00
2223     (PID.TID 0000.0001) %MON thSI_Tic2_max_S = -1.2463157090777E+00
2224     (PID.TID 0000.0001) %MON thSI_Tic2_max_N = -1.2463157090777E+00
2225     (PID.TID 0000.0001) %MON thSI_TotEnerg_G = -4.4171606209862E+18
2226     (PID.TID 0000.0001) // =======================================================
2227     (PID.TID 0000.0001) // End MONITOR Therm.SeaIce statistics
2228     (PID.TID 0000.0001) // =======================================================
2229     (PID.TID 0000.0001) // =======================================================
2230     (PID.TID 0000.0001) // Begin MONITOR Therm.SeaIce statistics
2231     (PID.TID 0000.0001) // =======================================================
2232     (PID.TID 0000.0001) %MON thSI_time_sec = 1.8000000000000E+05
2233     (PID.TID 0000.0001) %MON thSI_Ice_Area_G = 7.3008997445917E+10
2234     (PID.TID 0000.0001) %MON thSI_Ice_Area_S = 3.7439662098274E+10
2235     (PID.TID 0000.0001) %MON thSI_Ice_Area_N = 3.5569335347644E+10
2236     (PID.TID 0000.0001) %MON thSI_IceH_ave_G = 2.0226382229010E-01
2237     (PID.TID 0000.0001) %MON thSI_IceH_ave_S = 2.0176000096206E-01
2238     (PID.TID 0000.0001) %MON thSI_IceH_ave_N = 2.0279413583392E-01
2239     (PID.TID 0000.0001) %MON thSI_IceH_max_S = 2.4054101684718E-01
2240     (PID.TID 0000.0001) %MON thSI_IceH_max_N = 2.4731939866999E-01
2241     (PID.TID 0000.0001) %MON thSI_SnwH_ave_G = 0.0000000000000E+00
2242     (PID.TID 0000.0001) %MON thSI_SnwH_ave_S = 0.0000000000000E+00
2243     (PID.TID 0000.0001) %MON thSI_SnwH_ave_N = 0.0000000000000E+00
2244     (PID.TID 0000.0001) %MON thSI_SnwH_max_S = 0.0000000000000E+00
2245     (PID.TID 0000.0001) %MON thSI_SnwH_max_N = 0.0000000000000E+00
2246     (PID.TID 0000.0001) %MON thSI_Tsrf_ave_G = -2.3714761250760E+00
2247     (PID.TID 0000.0001) %MON thSI_Tsrf_ave_S = -2.3732165476044E+00
2248     (PID.TID 0000.0001) %MON thSI_Tsrf_ave_N = -2.3696441866735E+00
2249     (PID.TID 0000.0001) %MON thSI_Tsrf_min_S = -4.8538028134654E+00
2250     (PID.TID 0000.0001) %MON thSI_Tsrf_min_N = -4.8689471001861E+00
2251     (PID.TID 0000.0001) %MON thSI_Tsrf_max_S = 0.0000000000000E+00
2252     (PID.TID 0000.0001) %MON thSI_Tsrf_max_N = 0.0000000000000E+00
2253     (PID.TID 0000.0001) %MON thSI_Tic1_ave_G = -2.1751600992223E+00
2254     (PID.TID 0000.0001) %MON thSI_Tic1_ave_S = -2.1738251683436E+00
2255     (PID.TID 0000.0001) %MON thSI_Tic1_ave_N = -2.1765580588465E+00
2256     (PID.TID 0000.0001) %MON thSI_Tic1_min_S = -3.9642203868846E+00
2257     (PID.TID 0000.0001) %MON thSI_Tic1_min_N = -3.9712425686796E+00
2258     (PID.TID 0000.0001) %MON thSI_Tic1_max_S = -4.6041571761548E-01
2259     (PID.TID 0000.0001) %MON thSI_Tic1_max_N = -4.6041571761548E-01
2260     (PID.TID 0000.0001) %MON thSI_Tic2_ave_G = -1.8047840751391E+00
2261     (PID.TID 0000.0001) %MON thSI_Tic2_ave_S = -1.8044256680803E+00
2262     (PID.TID 0000.0001) %MON thSI_Tic2_ave_N = -1.8051594043828E+00
2263     (PID.TID 0000.0001) %MON thSI_Tic2_min_S = -2.3943422840709E+00
2264     (PID.TID 0000.0001) %MON thSI_Tic2_min_N = -2.3957059508118E+00
2265     (PID.TID 0000.0001) %MON thSI_Tic2_max_S = -1.2343219287637E+00
2266     (PID.TID 0000.0001) %MON thSI_Tic2_max_N = -1.2343219287637E+00
2267     (PID.TID 0000.0001) %MON thSI_TotEnerg_G = -4.4004156581732E+18
2268     (PID.TID 0000.0001) // =======================================================
2269     (PID.TID 0000.0001) // End MONITOR Therm.SeaIce statistics
2270     (PID.TID 0000.0001) // =======================================================
2271     (PID.TID 0000.0001) // =======================================================
2272     (PID.TID 0000.0001) // Begin MONITOR Therm.SeaIce statistics
2273     (PID.TID 0000.0001) // =======================================================
2274     (PID.TID 0000.0001) %MON thSI_time_sec = 2.1600000000000E+05
2275     (PID.TID 0000.0001) %MON thSI_Ice_Area_G = 7.2587229461237E+10
2276     (PID.TID 0000.0001) %MON thSI_Ice_Area_S = 3.7180792809936E+10
2277     (PID.TID 0000.0001) %MON thSI_Ice_Area_N = 3.5406436651301E+10
2278     (PID.TID 0000.0001) %MON thSI_IceH_ave_G = 2.0265077438735E-01
2279     (PID.TID 0000.0001) %MON thSI_IceH_ave_S = 2.0198810516742E-01
2280     (PID.TID 0000.0001) %MON thSI_IceH_ave_N = 2.0334665257498E-01
2281     (PID.TID 0000.0001) %MON thSI_IceH_max_S = 2.4818820457076E-01
2282     (PID.TID 0000.0001) %MON thSI_IceH_max_N = 2.5584156101471E-01
2283     (PID.TID 0000.0001) %MON thSI_SnwH_ave_G = 0.0000000000000E+00
2284     (PID.TID 0000.0001) %MON thSI_SnwH_ave_S = 0.0000000000000E+00
2285     (PID.TID 0000.0001) %MON thSI_SnwH_ave_N = 0.0000000000000E+00
2286     (PID.TID 0000.0001) %MON thSI_SnwH_max_S = 0.0000000000000E+00
2287     (PID.TID 0000.0001) %MON thSI_SnwH_max_N = 0.0000000000000E+00
2288     (PID.TID 0000.0001) %MON thSI_Tsrf_ave_G = -2.3842554530311E+00
2289     (PID.TID 0000.0001) %MON thSI_Tsrf_ave_S = -2.3869850990972E+00
2290     (PID.TID 0000.0001) %MON thSI_Tsrf_ave_N = -2.3813890136368E+00
2291     (PID.TID 0000.0001) %MON thSI_Tsrf_min_S = -4.8714046836656E+00
2292     (PID.TID 0000.0001) %MON thSI_Tsrf_min_N = -4.8876056770433E+00
2293     (PID.TID 0000.0001) %MON thSI_Tsrf_max_S = 0.0000000000000E+00
2294     (PID.TID 0000.0001) %MON thSI_Tsrf_max_N = 0.0000000000000E+00
2295     (PID.TID 0000.0001) %MON thSI_Tic1_ave_G = -2.1843442050102E+00
2296     (PID.TID 0000.0001) %MON thSI_Tic1_ave_S = -2.1829061384763E+00
2297     (PID.TID 0000.0001) %MON thSI_Tic1_ave_N = -2.1858442496113E+00
2298     (PID.TID 0000.0001) %MON thSI_Tic1_min_S = -3.9728029298698E+00
2299     (PID.TID 0000.0001) %MON thSI_Tic1_min_N = -3.9799873845883E+00
2300     (PID.TID 0000.0001) %MON thSI_Tic1_max_S = -4.3641696190813E-01
2301     (PID.TID 0000.0001) %MON thSI_Tic1_max_N = -4.3641696190813E-01
2302     (PID.TID 0000.0001) %MON thSI_Tic2_ave_G = -1.8077784385265E+00
2303     (PID.TID 0000.0001) %MON thSI_Tic2_ave_S = -1.8073935781951E+00
2304     (PID.TID 0000.0001) %MON thSI_Tic2_ave_N = -1.8081798856423E+00
2305     (PID.TID 0000.0001) %MON thSI_Tic2_min_S = -2.3972736221690E+00
2306     (PID.TID 0000.0001) %MON thSI_Tic2_min_N = -2.3986969296211E+00
2307     (PID.TID 0000.0001) %MON thSI_Tic2_max_S = -1.2260734838467E+00
2308     (PID.TID 0000.0001) %MON thSI_Tic2_max_N = -1.2260734838467E+00
2309     (PID.TID 0000.0001) %MON thSI_TotEnerg_G = -4.3816264895359E+18
2310     (PID.TID 0000.0001) // =======================================================
2311     (PID.TID 0000.0001) // End MONITOR Therm.SeaIce statistics
2312     (PID.TID 0000.0001) // =======================================================
2313 jmc 1.2 (PID.TID 0000.0001) %CHECKPOINT 60 ckptA
2314 heimbach 1.1 ph-1 in thsice_cost_final
2315     ph-2 in thsice_cost_final
2316 jmc 1.2 --> f_thsice = 0.160336971132022D+11
2317 heimbach 1.1 ph-3 in thsice_cost_final
2318     --> objf_test(bi,bj) = 0.000000000000000D+00
2319     --> objf_tracer(bi,bj) = 0.000000000000000D+00
2320     --> objf_atl(bi,bj) = 0.000000000000000D+00
2321     --> objf_test(bi,bj) = 0.000000000000000D+00
2322     --> objf_tracer(bi,bj) = 0.000000000000000D+00
2323     --> objf_atl(bi,bj) = 0.000000000000000D+00
2324     --> objf_test(bi,bj) = 0.000000000000000D+00
2325     --> objf_tracer(bi,bj) = 0.000000000000000D+00
2326     --> objf_atl(bi,bj) = 0.000000000000000D+00
2327     --> objf_test(bi,bj) = 0.000000000000000D+00
2328     --> objf_tracer(bi,bj) = 0.000000000000000D+00
2329     --> objf_atl(bi,bj) = 0.000000000000000D+00
2330 jmc 1.2 local fc = 0.160336971132022D+11
2331     global fc = 0.160336971132022D+11
2332 heimbach 1.1 (PID.TID 0000.0001) Did not write pickup because writePickupAtEnd = FALSE
2333     (PID.TID 0000.0001) Did not write pickup because writePickupAtEnd = FALSE
2334     (PID.TID 0000.0001) Did not write pickup because writePickupAtEnd = FALSE
2335     (PID.TID 0000.0001) Start initial hydrostatic pressure computation
2336     (PID.TID 0000.0001) Pressure is predetermined for buoyancyRelation OCEANIC
2337     (PID.TID 0000.0001)
2338     (PID.TID 0000.0001) // =======================================================
2339     (PID.TID 0000.0001) // Gradient-check starts (grdchk_main)
2340     (PID.TID 0000.0001) // =======================================================
2341 jmc 1.2 (PID.TID 0000.0001) grdchk reference fc: fcref = 1.60336971132022E+10
2342 heimbach 1.1 grad-res -------------------------------
2343     grad-res proc # i j k bi bj iobc fc ref fc + eps fc - eps
2344     grad-res proc # i j k bi bj iobc adj grad fd grad 1 - fd/adj
2345     (PID.TID 0000.0001) ====== Starts gradient-check number 1 (=ichknum) =======
2346     ph-test icomp, ncvarcomp, ichknum 1 3280 1
2347     ph-grd _loc: bi, bj, icomptest, ichknum 2 2 0 1
2348     ph-grd -->hit<-- 1 1 1 1
2349     (PID.TID 0000.0001) grdchk pos: i,j,k= 1 1 1 ; bi,bj= 2 2 ; iobc= 1 ; rec= 1
2350     (PID.TID 0000.0001) Start initial hydrostatic pressure computation
2351     (PID.TID 0000.0001) Pressure is predetermined for buoyancyRelation OCEANIC
2352     (PID.TID 0000.0001)
2353     (PID.TID 0000.0001) // =======================================================
2354     (PID.TID 0000.0001) // Model current state
2355     (PID.TID 0000.0001) // =======================================================
2356     (PID.TID 0000.0001)
2357     (PID.TID 0000.0001) Did not write pickup because writePickupAtEnd = FALSE
2358     ph-1 in thsice_cost_final
2359     ph-2 in thsice_cost_final
2360 jmc 1.2 --> f_thsice = 0.160336968734131D+11
2361 heimbach 1.1 ph-3 in thsice_cost_final
2362     --> objf_test(bi,bj) = 0.000000000000000D+00
2363     --> objf_tracer(bi,bj) = 0.000000000000000D+00
2364     --> objf_atl(bi,bj) = 0.000000000000000D+00
2365     --> objf_test(bi,bj) = 0.000000000000000D+00
2366     --> objf_tracer(bi,bj) = 0.000000000000000D+00
2367     --> objf_atl(bi,bj) = 0.000000000000000D+00
2368     --> objf_test(bi,bj) = 0.000000000000000D+00
2369     --> objf_tracer(bi,bj) = 0.000000000000000D+00
2370     --> objf_atl(bi,bj) = 0.000000000000000D+00
2371     --> objf_test(bi,bj) = 0.000000000000000D+00
2372     --> objf_tracer(bi,bj) = 0.000000000000000D+00
2373     --> objf_atl(bi,bj) = 0.000000000000000D+00
2374 jmc 1.2 local fc = 0.160336968734131D+11
2375     global fc = 0.160336968734131D+11
2376     (PID.TID 0000.0001) grdchk perturb(+)fc: fcpertplus = 1.60336968734131E+10
2377 heimbach 1.1 (PID.TID 0000.0001) Start initial hydrostatic pressure computation
2378     (PID.TID 0000.0001) Pressure is predetermined for buoyancyRelation OCEANIC
2379     (PID.TID 0000.0001)
2380     (PID.TID 0000.0001) // =======================================================
2381     (PID.TID 0000.0001) // Model current state
2382     (PID.TID 0000.0001) // =======================================================
2383     (PID.TID 0000.0001)
2384     (PID.TID 0000.0001) Did not write pickup because writePickupAtEnd = FALSE
2385     ph-1 in thsice_cost_final
2386     ph-2 in thsice_cost_final
2387 jmc 1.2 --> f_thsice = 0.160336973530640D+11
2388 heimbach 1.1 ph-3 in thsice_cost_final
2389     --> objf_test(bi,bj) = 0.000000000000000D+00
2390     --> objf_tracer(bi,bj) = 0.000000000000000D+00
2391     --> objf_atl(bi,bj) = 0.000000000000000D+00
2392     --> objf_test(bi,bj) = 0.000000000000000D+00
2393     --> objf_tracer(bi,bj) = 0.000000000000000D+00
2394     --> objf_atl(bi,bj) = 0.000000000000000D+00
2395     --> objf_test(bi,bj) = 0.000000000000000D+00
2396     --> objf_tracer(bi,bj) = 0.000000000000000D+00
2397     --> objf_atl(bi,bj) = 0.000000000000000D+00
2398     --> objf_test(bi,bj) = 0.000000000000000D+00
2399     --> objf_tracer(bi,bj) = 0.000000000000000D+00
2400     --> objf_atl(bi,bj) = 0.000000000000000D+00
2401 jmc 1.2 local fc = 0.160336973530640D+11
2402     global fc = 0.160336973530640D+11
2403     (PID.TID 0000.0001) grdchk perturb(-)fc: fcpertminus = 1.60336973530640E+10
2404 heimbach 1.1 grad-res -------------------------------
2405 jmc 1.2 grad-res 0 1 1 1 1 2 2 1 1.60336971132E+10 1.60336968734E+10 1.60336973531E+10
2406     grad-res 0 1 1 1 0 2 2 1 -2.40843886719E+04 -2.39825435638E+04 4.22867731541E-03
2407     (PID.TID 0000.0001) ADM ref_cost_function = 1.60336971132022E+10
2408     (PID.TID 0000.0001) ADM adjoint_gradient = -2.40843886718750E+04
2409     (PID.TID 0000.0001) ADM finite-diff_grad = -2.39825435638428E+04
2410 heimbach 1.1 (PID.TID 0000.0001) ====== End of gradient-check number 1 (ierr= 0) =======
2411     (PID.TID 0000.0001) ====== Starts gradient-check number 2 (=ichknum) =======
2412     ph-test icomp, ncvarcomp, ichknum 2 3280 2
2413     ph-grd _loc: bi, bj, icomptest, ichknum 2 2 1 2
2414     ph-grd -->hit<-- 2 1 1 1
2415     (PID.TID 0000.0001) grdchk pos: i,j,k= 2 1 1 ; bi,bj= 2 2 ; iobc= 1 ; rec= 1
2416     (PID.TID 0000.0001) Start initial hydrostatic pressure computation
2417     (PID.TID 0000.0001) Pressure is predetermined for buoyancyRelation OCEANIC
2418     (PID.TID 0000.0001)
2419     (PID.TID 0000.0001) // =======================================================
2420     (PID.TID 0000.0001) // Model current state
2421     (PID.TID 0000.0001) // =======================================================
2422     (PID.TID 0000.0001)
2423     (PID.TID 0000.0001) Did not write pickup because writePickupAtEnd = FALSE
2424     ph-1 in thsice_cost_final
2425     ph-2 in thsice_cost_final
2426 jmc 1.2 --> f_thsice = 0.160336967917381D+11
2427 heimbach 1.1 ph-3 in thsice_cost_final
2428     --> objf_test(bi,bj) = 0.000000000000000D+00
2429     --> objf_tracer(bi,bj) = 0.000000000000000D+00
2430     --> objf_atl(bi,bj) = 0.000000000000000D+00
2431     --> objf_test(bi,bj) = 0.000000000000000D+00
2432     --> objf_tracer(bi,bj) = 0.000000000000000D+00
2433     --> objf_atl(bi,bj) = 0.000000000000000D+00
2434     --> objf_test(bi,bj) = 0.000000000000000D+00
2435     --> objf_tracer(bi,bj) = 0.000000000000000D+00
2436     --> objf_atl(bi,bj) = 0.000000000000000D+00
2437     --> objf_test(bi,bj) = 0.000000000000000D+00
2438     --> objf_tracer(bi,bj) = 0.000000000000000D+00
2439     --> objf_atl(bi,bj) = 0.000000000000000D+00
2440 jmc 1.2 local fc = 0.160336967917381D+11
2441     global fc = 0.160336967917381D+11
2442     (PID.TID 0000.0001) grdchk perturb(+)fc: fcpertplus = 1.60336967917381E+10
2443 heimbach 1.1 (PID.TID 0000.0001) Start initial hydrostatic pressure computation
2444     (PID.TID 0000.0001) Pressure is predetermined for buoyancyRelation OCEANIC
2445     (PID.TID 0000.0001)
2446     (PID.TID 0000.0001) // =======================================================
2447     (PID.TID 0000.0001) // Model current state
2448     (PID.TID 0000.0001) // =======================================================
2449     (PID.TID 0000.0001)
2450     (PID.TID 0000.0001) Did not write pickup because writePickupAtEnd = FALSE
2451     ph-1 in thsice_cost_final
2452     ph-2 in thsice_cost_final
2453 jmc 1.2 --> f_thsice = 0.160336974361304D+11
2454 heimbach 1.1 ph-3 in thsice_cost_final
2455     --> objf_test(bi,bj) = 0.000000000000000D+00
2456     --> objf_tracer(bi,bj) = 0.000000000000000D+00
2457     --> objf_atl(bi,bj) = 0.000000000000000D+00
2458     --> objf_test(bi,bj) = 0.000000000000000D+00
2459     --> objf_tracer(bi,bj) = 0.000000000000000D+00
2460     --> objf_atl(bi,bj) = 0.000000000000000D+00
2461     --> objf_test(bi,bj) = 0.000000000000000D+00
2462     --> objf_tracer(bi,bj) = 0.000000000000000D+00
2463     --> objf_atl(bi,bj) = 0.000000000000000D+00
2464     --> objf_test(bi,bj) = 0.000000000000000D+00
2465     --> objf_tracer(bi,bj) = 0.000000000000000D+00
2466     --> objf_atl(bi,bj) = 0.000000000000000D+00
2467 jmc 1.2 local fc = 0.160336974361304D+11
2468     global fc = 0.160336974361304D+11
2469     (PID.TID 0000.0001) grdchk perturb(-)fc: fcpertminus = 1.60336974361304E+10
2470 heimbach 1.1 grad-res -------------------------------
2471 jmc 1.2 grad-res 0 2 2 1 1 2 2 1 1.60336971132E+10 1.60336967917E+10 1.60336974361E+10
2472     grad-res 0 2 2 2 0 2 2 1 -3.60025742188E+04 -3.22196142197E+04 1.05074708717E-01
2473     (PID.TID 0000.0001) ADM ref_cost_function = 1.60336971132022E+10
2474     (PID.TID 0000.0001) ADM adjoint_gradient = -3.60025742187500E+04
2475     (PID.TID 0000.0001) ADM finite-diff_grad = -3.22196142196655E+04
2476 heimbach 1.1 (PID.TID 0000.0001) ====== End of gradient-check number 2 (ierr= 0) =======
2477     (PID.TID 0000.0001) ====== Starts gradient-check number 3 (=ichknum) =======
2478     ph-test icomp, ncvarcomp, ichknum 3 3280 3
2479     ph-grd _loc: bi, bj, icomptest, ichknum 2 2 2 3
2480     ph-grd -->hit<-- 3 1 1 1
2481     (PID.TID 0000.0001) grdchk pos: i,j,k= 3 1 1 ; bi,bj= 2 2 ; iobc= 1 ; rec= 1
2482     (PID.TID 0000.0001) Start initial hydrostatic pressure computation
2483     (PID.TID 0000.0001) Pressure is predetermined for buoyancyRelation OCEANIC
2484     (PID.TID 0000.0001)
2485     (PID.TID 0000.0001) // =======================================================
2486     (PID.TID 0000.0001) // Model current state
2487     (PID.TID 0000.0001) // =======================================================
2488     (PID.TID 0000.0001)
2489     (PID.TID 0000.0001) Did not write pickup because writePickupAtEnd = FALSE
2490     ph-1 in thsice_cost_final
2491     ph-2 in thsice_cost_final
2492 jmc 1.2 --> f_thsice = 0.160336967420046D+11
2493 heimbach 1.1 ph-3 in thsice_cost_final
2494     --> objf_test(bi,bj) = 0.000000000000000D+00
2495     --> objf_tracer(bi,bj) = 0.000000000000000D+00
2496     --> objf_atl(bi,bj) = 0.000000000000000D+00
2497     --> objf_test(bi,bj) = 0.000000000000000D+00
2498     --> objf_tracer(bi,bj) = 0.000000000000000D+00
2499     --> objf_atl(bi,bj) = 0.000000000000000D+00
2500     --> objf_test(bi,bj) = 0.000000000000000D+00
2501     --> objf_tracer(bi,bj) = 0.000000000000000D+00
2502     --> objf_atl(bi,bj) = 0.000000000000000D+00
2503     --> objf_test(bi,bj) = 0.000000000000000D+00
2504     --> objf_tracer(bi,bj) = 0.000000000000000D+00
2505     --> objf_atl(bi,bj) = 0.000000000000000D+00
2506 jmc 1.2 local fc = 0.160336967420046D+11
2507     global fc = 0.160336967420046D+11
2508     (PID.TID 0000.0001) grdchk perturb(+)fc: fcpertplus = 1.60336967420046E+10
2509 heimbach 1.1 (PID.TID 0000.0001) Start initial hydrostatic pressure computation
2510     (PID.TID 0000.0001) Pressure is predetermined for buoyancyRelation OCEANIC
2511     (PID.TID 0000.0001)
2512     (PID.TID 0000.0001) // =======================================================
2513     (PID.TID 0000.0001) // Model current state
2514     (PID.TID 0000.0001) // =======================================================
2515     (PID.TID 0000.0001)
2516     (PID.TID 0000.0001) Did not write pickup because writePickupAtEnd = FALSE
2517     ph-1 in thsice_cost_final
2518     ph-2 in thsice_cost_final
2519 jmc 1.2 --> f_thsice = 0.160336974844416D+11
2520 heimbach 1.1 ph-3 in thsice_cost_final
2521     --> objf_test(bi,bj) = 0.000000000000000D+00
2522     --> objf_tracer(bi,bj) = 0.000000000000000D+00
2523     --> objf_atl(bi,bj) = 0.000000000000000D+00
2524     --> objf_test(bi,bj) = 0.000000000000000D+00
2525     --> objf_tracer(bi,bj) = 0.000000000000000D+00
2526     --> objf_atl(bi,bj) = 0.000000000000000D+00
2527     --> objf_test(bi,bj) = 0.000000000000000D+00
2528     --> objf_tracer(bi,bj) = 0.000000000000000D+00
2529     --> objf_atl(bi,bj) = 0.000000000000000D+00
2530     --> objf_test(bi,bj) = 0.000000000000000D+00
2531     --> objf_tracer(bi,bj) = 0.000000000000000D+00
2532     --> objf_atl(bi,bj) = 0.000000000000000D+00
2533 jmc 1.2 local fc = 0.160336974844416D+11
2534     global fc = 0.160336974844416D+11
2535     (PID.TID 0000.0001) grdchk perturb(-)fc: fcpertminus = 1.60336974844416E+10
2536 heimbach 1.1 grad-res -------------------------------
2537 jmc 1.2 grad-res 0 3 3 1 1 2 2 1 1.60336971132E+10 1.60336967420E+10 1.60336974844E+10
2538     grad-res 0 3 3 3 0 2 2 1 -4.59224023438E+04 -3.71218492508E+04 1.91639649578E-01
2539     (PID.TID 0000.0001) ADM ref_cost_function = 1.60336971132022E+10
2540     (PID.TID 0000.0001) ADM adjoint_gradient = -4.59224023437500E+04
2541     (PID.TID 0000.0001) ADM finite-diff_grad = -3.71218492507935E+04
2542 heimbach 1.1 (PID.TID 0000.0001) ====== End of gradient-check number 3 (ierr= 0) =======
2543     (PID.TID 0000.0001) ====== Starts gradient-check number 4 (=ichknum) =======
2544     ph-test icomp, ncvarcomp, ichknum 4 3280 4
2545     ph-grd _loc: bi, bj, icomptest, ichknum 2 2 3 4
2546     ph-grd -->hit<-- 4 1 1 1
2547     (PID.TID 0000.0001) grdchk pos: i,j,k= 4 1 1 ; bi,bj= 2 2 ; iobc= 1 ; rec= 1
2548     (PID.TID 0000.0001) Start initial hydrostatic pressure computation
2549     (PID.TID 0000.0001) Pressure is predetermined for buoyancyRelation OCEANIC
2550     (PID.TID 0000.0001)
2551     (PID.TID 0000.0001) // =======================================================
2552     (PID.TID 0000.0001) // Model current state
2553     (PID.TID 0000.0001) // =======================================================
2554     (PID.TID 0000.0001)
2555     (PID.TID 0000.0001) Did not write pickup because writePickupAtEnd = FALSE
2556     ph-1 in thsice_cost_final
2557     ph-2 in thsice_cost_final
2558 jmc 1.2 --> f_thsice = 0.160336967400952D+11
2559 heimbach 1.1 ph-3 in thsice_cost_final
2560     --> objf_test(bi,bj) = 0.000000000000000D+00
2561     --> objf_tracer(bi,bj) = 0.000000000000000D+00
2562     --> objf_atl(bi,bj) = 0.000000000000000D+00
2563     --> objf_test(bi,bj) = 0.000000000000000D+00
2564     --> objf_tracer(bi,bj) = 0.000000000000000D+00
2565     --> objf_atl(bi,bj) = 0.000000000000000D+00
2566     --> objf_test(bi,bj) = 0.000000000000000D+00
2567     --> objf_tracer(bi,bj) = 0.000000000000000D+00
2568     --> objf_atl(bi,bj) = 0.000000000000000D+00
2569     --> objf_test(bi,bj) = 0.000000000000000D+00
2570     --> objf_tracer(bi,bj) = 0.000000000000000D+00
2571     --> objf_atl(bi,bj) = 0.000000000000000D+00
2572 jmc 1.2 local fc = 0.160336967400952D+11
2573     global fc = 0.160336967400952D+11
2574     (PID.TID 0000.0001) grdchk perturb(+)fc: fcpertplus = 1.60336967400952E+10
2575 heimbach 1.1 (PID.TID 0000.0001) Start initial hydrostatic pressure computation
2576     (PID.TID 0000.0001) Pressure is predetermined for buoyancyRelation OCEANIC
2577     (PID.TID 0000.0001)
2578     (PID.TID 0000.0001) // =======================================================
2579     (PID.TID 0000.0001) // Model current state
2580     (PID.TID 0000.0001) // =======================================================
2581     (PID.TID 0000.0001)
2582     (PID.TID 0000.0001) Did not write pickup because writePickupAtEnd = FALSE
2583     ph-1 in thsice_cost_final
2584     ph-2 in thsice_cost_final
2585 jmc 1.2 --> f_thsice = 0.160336974863433D+11
2586 heimbach 1.1 ph-3 in thsice_cost_final
2587     --> objf_test(bi,bj) = 0.000000000000000D+00
2588     --> objf_tracer(bi,bj) = 0.000000000000000D+00
2589     --> objf_atl(bi,bj) = 0.000000000000000D+00
2590     --> objf_test(bi,bj) = 0.000000000000000D+00
2591     --> objf_tracer(bi,bj) = 0.000000000000000D+00
2592     --> objf_atl(bi,bj) = 0.000000000000000D+00
2593     --> objf_test(bi,bj) = 0.000000000000000D+00
2594     --> objf_tracer(bi,bj) = 0.000000000000000D+00
2595     --> objf_atl(bi,bj) = 0.000000000000000D+00
2596     --> objf_test(bi,bj) = 0.000000000000000D+00
2597     --> objf_tracer(bi,bj) = 0.000000000000000D+00
2598     --> objf_atl(bi,bj) = 0.000000000000000D+00
2599 jmc 1.2 local fc = 0.160336974863433D+11
2600     global fc = 0.160336974863433D+11
2601     (PID.TID 0000.0001) grdchk perturb(-)fc: fcpertminus = 1.60336974863433E+10
2602 heimbach 1.1 grad-res -------------------------------
2603 jmc 1.2 grad-res 0 4 4 1 1 2 2 1 1.60336971132E+10 1.60336967401E+10 1.60336974863E+10
2604     grad-res 0 4 4 4 0 2 2 1 -3.68466367188E+04 -3.73124051094E+04 -1.26407301217E-02
2605     (PID.TID 0000.0001) ADM ref_cost_function = 1.60336971132022E+10
2606     (PID.TID 0000.0001) ADM adjoint_gradient = -3.68466367187500E+04
2607     (PID.TID 0000.0001) ADM finite-diff_grad = -3.73124051094055E+04
2608 heimbach 1.1 (PID.TID 0000.0001) ====== End of gradient-check number 4 (ierr= 0) =======
2609     (PID.TID 0000.0001)
2610     (PID.TID 0000.0001) // =======================================================
2611     (PID.TID 0000.0001) // Gradient check results >>> START <<<
2612     (PID.TID 0000.0001) // =======================================================
2613     (PID.TID 0000.0001)
2614     (PID.TID 0000.0001) EPS = 1.000000E-02
2615     (PID.TID 0000.0001)
2616     (PID.TID 0000.0001) grdchk output h.p: Id Itile Jtile LAYER bi bj X(Id) X(Id)+/-EPS
2617     (PID.TID 0000.0001) grdchk output h.c: Id FC FC1 FC2
2618     (PID.TID 0000.0001) grdchk output h.g: Id FC1-FC2/(2*EPS) ADJ GRAD(FC) 1-FDGRD/ADGRD
2619     (PID.TID 0000.0001)
2620     (PID.TID 0000.0001) grdchk output (p): 1 1 1 1 2 2 0.000000000E+00 -1.000000000E-02
2621 jmc 1.2 (PID.TID 0000.0001) grdchk output (c): 1 1.6033697113202E+10 1.6033696873413E+10 1.6033697353064E+10
2622     (PID.TID 0000.0001) grdchk output (g): 1 -2.3982543563843E+04 -2.4084388671875E+04 4.2286773154080E-03
2623 heimbach 1.1 (PID.TID 0000.0001)
2624     (PID.TID 0000.0001) grdchk output (p): 2 2 1 1 2 2 0.000000000E+00 -1.000000000E-02
2625 jmc 1.2 (PID.TID 0000.0001) grdchk output (c): 2 1.6033697113202E+10 1.6033696791738E+10 1.6033697436130E+10
2626     (PID.TID 0000.0001) grdchk output (g): 2 -3.2219614219666E+04 -3.6002574218750E+04 1.0507470871664E-01
2627 heimbach 1.1 (PID.TID 0000.0001)
2628     (PID.TID 0000.0001) grdchk output (p): 3 3 1 1 2 2 0.000000000E+00 -1.000000000E-02
2629 jmc 1.2 (PID.TID 0000.0001) grdchk output (c): 3 1.6033697113202E+10 1.6033696742005E+10 1.6033697484442E+10
2630     (PID.TID 0000.0001) grdchk output (g): 3 -3.7121849250793E+04 -4.5922402343750E+04 1.9163964957844E-01
2631 heimbach 1.1 (PID.TID 0000.0001)
2632     (PID.TID 0000.0001) grdchk output (p): 4 4 1 1 2 2 0.000000000E+00 -1.000000000E-02
2633 jmc 1.2 (PID.TID 0000.0001) grdchk output (c): 4 1.6033697113202E+10 1.6033696740095E+10 1.6033697486343E+10
2634     (PID.TID 0000.0001) grdchk output (g): 4 -3.7312405109406E+04 -3.6846636718750E+04 -1.2640730121740E-02
2635 heimbach 1.1 (PID.TID 0000.0001)
2636 jmc 1.2 (PID.TID 0000.0001) grdchk summary : RMS of 4 ratios = 1.0948072829531E-01
2637 heimbach 1.1 (PID.TID 0000.0001)
2638     (PID.TID 0000.0001) // =======================================================
2639     (PID.TID 0000.0001) // Gradient check results >>> END <<<
2640     (PID.TID 0000.0001) // =======================================================
2641     (PID.TID 0000.0001)
2642     (PID.TID 0000.0001) Seconds in section "ALL [THE_MODEL_MAIN]":
2643 jmc 1.2 (PID.TID 0000.0001) User time: 259.25000000000000
2644     (PID.TID 0000.0001) System time: 0.27000000000000002
2645     (PID.TID 0000.0001) Wall clock time: 260.50904393196106
2646 heimbach 1.1 (PID.TID 0000.0001) No. starts: 1
2647     (PID.TID 0000.0001) No. stops: 1
2648     (PID.TID 0000.0001) Seconds in section "INITIALISE_FIXED [THE_MODEL_MAIN]":
2649 jmc 1.2 (PID.TID 0000.0001) User time: 4.00000000000000008E-002
2650     (PID.TID 0000.0001) System time: 0.0000000000000000
2651     (PID.TID 0000.0001) Wall clock time: 4.94389533996582031E-002
2652 heimbach 1.1 (PID.TID 0000.0001) No. starts: 1
2653     (PID.TID 0000.0001) No. stops: 1
2654     (PID.TID 0000.0001) Seconds in section "ADTHE_MAIN_LOOP [ADJOINT RUN]":
2655 jmc 1.2 (PID.TID 0000.0001) User time: 237.83000000000001
2656     (PID.TID 0000.0001) System time: 0.25000000000000000
2657     (PID.TID 0000.0001) Wall clock time: 239.00978899002075
2658 heimbach 1.1 (PID.TID 0000.0001) No. starts: 1
2659     (PID.TID 0000.0001) No. stops: 1
2660     (PID.TID 0000.0001) Seconds in section "FORWARD_STEP [MAIN_DO_LOOP]":
2661 jmc 1.2 (PID.TID 0000.0001) User time: 24.050000000001432
2662     (PID.TID 0000.0001) System time: 2.00000000000000178E-002
2663     (PID.TID 0000.0001) Wall clock time: 24.142163276672363
2664     (PID.TID 0000.0001) No. starts: 600
2665     (PID.TID 0000.0001) No. stops: 600
2666 heimbach 1.1 (PID.TID 0000.0001) Seconds in section "LOAD_FIELDS_DRIVER [FORWARD_STEP]":
2667 jmc 1.2 (PID.TID 0000.0001) User time: 5.5799999999996999
2668     (PID.TID 0000.0001) System time: 0.0000000000000000
2669     (PID.TID 0000.0001) Wall clock time: 5.6613337993621826
2670     (PID.TID 0000.0001) No. starts: 600
2671     (PID.TID 0000.0001) No. stops: 600
2672 heimbach 1.1 (PID.TID 0000.0001) Seconds in section "EXF_GETFORCING [LOAD_FLDS_DRIVER]":
2673 jmc 1.2 (PID.TID 0000.0001) User time: 6.1199999999996635
2674 heimbach 1.1 (PID.TID 0000.0001) System time: 0.0000000000000000
2675 jmc 1.2 (PID.TID 0000.0001) Wall clock time: 6.2070808410644531
2676     (PID.TID 0000.0001) No. starts: 660
2677     (PID.TID 0000.0001) No. stops: 660
2678 heimbach 1.1 (PID.TID 0000.0001) Seconds in section "I/O (WRITE) [ADJOINT LOOP]":
2679 jmc 1.2 (PID.TID 0000.0001) User time: 1.99999999999818101E-002
2680 heimbach 1.1 (PID.TID 0000.0001) System time: 0.0000000000000000
2681 jmc 1.2 (PID.TID 0000.0001) Wall clock time: 2.26447582244873047E-002
2682     (PID.TID 0000.0001) No. starts: 2460
2683     (PID.TID 0000.0001) No. stops: 2460
2684 heimbach 1.1 (PID.TID 0000.0001) Seconds in section "EXTERNAL_FLDS_LOAD [LOAD_FLDS_DRIVER]":
2685 jmc 1.2 (PID.TID 0000.0001) User time: 9.99999999999090505E-003
2686     (PID.TID 0000.0001) System time: 0.0000000000000000
2687     (PID.TID 0000.0001) Wall clock time: 6.01816177368164063E-003
2688     (PID.TID 0000.0001) No. starts: 660
2689     (PID.TID 0000.0001) No. stops: 660
2690     (PID.TID 0000.0001) Seconds in section "DO_ATMOSPHERIC_PHYS [FORWARD_STEP]":
2691 heimbach 1.1 (PID.TID 0000.0001) User time: 0.0000000000000000
2692     (PID.TID 0000.0001) System time: 0.0000000000000000
2693 jmc 1.2 (PID.TID 0000.0001) Wall clock time: 5.34296035766601563E-003
2694     (PID.TID 0000.0001) No. starts: 600
2695     (PID.TID 0000.0001) No. stops: 600
2696 heimbach 1.1 (PID.TID 0000.0001) Seconds in section "DO_OCEANIC_PHYS [FORWARD_STEP]":
2697 jmc 1.2 (PID.TID 0000.0001) User time: 14.680000000000405
2698 heimbach 1.1 (PID.TID 0000.0001) System time: 0.0000000000000000
2699 jmc 1.2 (PID.TID 0000.0001) Wall clock time: 14.493967056274414
2700     (PID.TID 0000.0001) No. starts: 600
2701     (PID.TID 0000.0001) No. stops: 600
2702 heimbach 1.1 (PID.TID 0000.0001) Seconds in section "THSICE_MAIN [DO_OCEANIC_PHYS]":
2703 jmc 1.2 (PID.TID 0000.0001) User time: 13.600000000000307
2704 heimbach 1.1 (PID.TID 0000.0001) System time: 0.0000000000000000
2705 jmc 1.2 (PID.TID 0000.0001) Wall clock time: 13.321319580078125
2706     (PID.TID 0000.0001) No. starts: 600
2707     (PID.TID 0000.0001) No. stops: 600
2708 heimbach 1.1 (PID.TID 0000.0001) Seconds in section "DYNAMICS [FORWARD_STEP]":
2709 jmc 1.2 (PID.TID 0000.0001) User time: 0.79000000000007731
2710 heimbach 1.1 (PID.TID 0000.0001) System time: 0.0000000000000000
2711 jmc 1.2 (PID.TID 0000.0001) Wall clock time: 0.81610584259033203
2712     (PID.TID 0000.0001) No. starts: 600
2713     (PID.TID 0000.0001) No. stops: 600
2714 heimbach 1.1 (PID.TID 0000.0001) Seconds in section "MOM_CORRECTION_STEP [FORWARD_STEP]":
2715 jmc 1.2 (PID.TID 0000.0001) User time: 0.30999999999994543
2716 heimbach 1.1 (PID.TID 0000.0001) System time: 0.0000000000000000
2717 jmc 1.2 (PID.TID 0000.0001) Wall clock time: 0.33934807777404785
2718     (PID.TID 0000.0001) No. starts: 600
2719     (PID.TID 0000.0001) No. stops: 600
2720     (PID.TID 0000.0001) Seconds in section "BLOCKING_EXCHANGES [FORWARD_STEP]":
2721     (PID.TID 0000.0001) User time: 0.30999999999994543
2722     (PID.TID 0000.0001) System time: 1.00000000000000089E-002
2723     (PID.TID 0000.0001) Wall clock time: 0.22484111785888672
2724 heimbach 1.1 (PID.TID 0000.0001) No. starts: 1200
2725     (PID.TID 0000.0001) No. stops: 1200
2726     (PID.TID 0000.0001) Seconds in section "THERMODYNAMICS [FORWARD_STEP]":
2727 jmc 1.2 (PID.TID 0000.0001) User time: 2.0699999999999363
2728 heimbach 1.1 (PID.TID 0000.0001) System time: 0.0000000000000000
2729 jmc 1.2 (PID.TID 0000.0001) Wall clock time: 2.3101599216461182
2730     (PID.TID 0000.0001) No. starts: 600
2731     (PID.TID 0000.0001) No. stops: 600
2732 heimbach 1.1 (PID.TID 0000.0001) Seconds in section "TRC_CORRECTION_STEP [FORWARD_STEP]":
2733 jmc 1.2 (PID.TID 0000.0001) User time: 0.13999999999998636
2734 heimbach 1.1 (PID.TID 0000.0001) System time: 0.0000000000000000
2735 jmc 1.2 (PID.TID 0000.0001) Wall clock time: 7.15708732604980469E-002
2736     (PID.TID 0000.0001) No. starts: 600
2737     (PID.TID 0000.0001) No. stops: 600
2738 heimbach 1.1 (PID.TID 0000.0001) Seconds in section "MONITOR [FORWARD_STEP]":
2739     (PID.TID 0000.0001) User time: 0.0000000000000000
2740     (PID.TID 0000.0001) System time: 0.0000000000000000
2741 jmc 1.2 (PID.TID 0000.0001) Wall clock time: 5.78880310058593750E-004
2742     (PID.TID 0000.0001) No. starts: 60
2743     (PID.TID 0000.0001) No. stops: 60
2744 heimbach 1.1 (PID.TID 0000.0001) Seconds in section "COST_TILE [FORWARD_STEP]":
2745 jmc 1.2 (PID.TID 0000.0001) User time: 5.99999999999454303E-002
2746 heimbach 1.1 (PID.TID 0000.0001) System time: 0.0000000000000000
2747 jmc 1.2 (PID.TID 0000.0001) Wall clock time: 5.97186088562011719E-002
2748     (PID.TID 0000.0001) No. starts: 600
2749     (PID.TID 0000.0001) No. stops: 600
2750 heimbach 1.1 (PID.TID 0000.0001) Seconds in section "DO_THE_MODEL_IO [FORWARD_STEP]":
2751 jmc 1.2 (PID.TID 0000.0001) User time: 3.99999999999636202E-002
2752     (PID.TID 0000.0001) System time: 1.00000000000000089E-002
2753     (PID.TID 0000.0001) Wall clock time: 7.33323097229003906E-002
2754     (PID.TID 0000.0001) No. starts: 600
2755     (PID.TID 0000.0001) No. stops: 600
2756 heimbach 1.1 (PID.TID 0000.0001) Seconds in section "DO_WRITE_PICKUP [FORWARD_STEP]":
2757 jmc 1.2 (PID.TID 0000.0001) User time: 9.99999999999090505E-003
2758     (PID.TID 0000.0001) System time: 0.0000000000000000
2759     (PID.TID 0000.0001) Wall clock time: 1.28076076507568359E-002
2760     (PID.TID 0000.0001) No. starts: 600
2761     (PID.TID 0000.0001) No. stops: 600
2762 heimbach 1.1 (PID.TID 0000.0001) Seconds in section "GRDCHK_MAIN [THE_MODEL_MAIN]":
2763 jmc 1.2 (PID.TID 0000.0001) User time: 21.379999999999995
2764     (PID.TID 0000.0001) System time: 2.00000000000000178E-002
2765     (PID.TID 0000.0001) Wall clock time: 21.449764966964722
2766 heimbach 1.1 (PID.TID 0000.0001) No. starts: 1
2767     (PID.TID 0000.0001) No. stops: 1
2768     (PID.TID 0000.0001) Seconds in section "INITIALISE_VARIA [THE_MAIN_LOOP]":
2769 jmc 1.2 (PID.TID 0000.0001) User time: 9.00000000000318323E-002
2770     (PID.TID 0000.0001) System time: 0.0000000000000000
2771     (PID.TID 0000.0001) Wall clock time: 9.74860191345214844E-002
2772 heimbach 1.1 (PID.TID 0000.0001) No. starts: 8
2773     (PID.TID 0000.0001) No. stops: 8
2774     (PID.TID 0000.0001) Seconds in section "MAIN LOOP [THE_MAIN_LOOP]":
2775 jmc 1.2 (PID.TID 0000.0001) User time: 21.279999999999973
2776     (PID.TID 0000.0001) System time: 2.00000000000000178E-002
2777     (PID.TID 0000.0001) Wall clock time: 21.333560943603516
2778 heimbach 1.1 (PID.TID 0000.0001) No. starts: 8
2779     (PID.TID 0000.0001) No. stops: 8
2780     (PID.TID 0000.0001) Seconds in section "MAIN_DO_LOOP [THE_MAIN_LOOP]":
2781 jmc 1.2 (PID.TID 0000.0001) User time: 19.240000000000919
2782     (PID.TID 0000.0001) System time: 2.00000000000000178E-002
2783     (PID.TID 0000.0001) Wall clock time: 19.270514726638794
2784     (PID.TID 0000.0001) No. starts: 480
2785     (PID.TID 0000.0001) No. stops: 480
2786 heimbach 1.1 (PID.TID 0000.0001) Seconds in section "COST_FINAL [ADJOINT SPIN-DOWN]":
2787     (PID.TID 0000.0001) User time: 0.0000000000000000
2788     (PID.TID 0000.0001) System time: 0.0000000000000000
2789 jmc 1.2 (PID.TID 0000.0001) Wall clock time: 6.94990158081054688E-004
2790 heimbach 1.1 (PID.TID 0000.0001) No. starts: 8
2791     (PID.TID 0000.0001) No. stops: 8
2792     (PID.TID 0000.0001) // ======================================================
2793     (PID.TID 0000.0001) // Tile <-> Tile communication statistics
2794     (PID.TID 0000.0001) // ======================================================
2795     (PID.TID 0000.0001) // o Tile number: 000001
2796     (PID.TID 0000.0001) // No. X exchanges = 0
2797     (PID.TID 0000.0001) // Max. X spins = 0
2798     (PID.TID 0000.0001) // Min. X spins = 1000000000
2799     (PID.TID 0000.0001) // Total. X spins = 0
2800     (PID.TID 0000.0001) // Avg. X spins = 0.00E+00
2801     (PID.TID 0000.0001) // No. Y exchanges = 0
2802     (PID.TID 0000.0001) // Max. Y spins = 0
2803     (PID.TID 0000.0001) // Min. Y spins = 1000000000
2804     (PID.TID 0000.0001) // Total. Y spins = 0
2805     (PID.TID 0000.0001) // Avg. Y spins = 0.00E+00
2806     (PID.TID 0000.0001) // o Tile number: 000002
2807     (PID.TID 0000.0001) // No. X exchanges = 0
2808     (PID.TID 0000.0001) // Max. X spins = 0
2809     (PID.TID 0000.0001) // Min. X spins = 1000000000
2810     (PID.TID 0000.0001) // Total. X spins = 0
2811     (PID.TID 0000.0001) // Avg. X spins = 0.00E+00
2812     (PID.TID 0000.0001) // No. Y exchanges = 0
2813     (PID.TID 0000.0001) // Max. Y spins = 0
2814     (PID.TID 0000.0001) // Min. Y spins = 1000000000
2815     (PID.TID 0000.0001) // Total. Y spins = 0
2816     (PID.TID 0000.0001) // Avg. Y spins = 0.00E+00
2817     (PID.TID 0000.0001) // o Tile number: 000003
2818     (PID.TID 0000.0001) // No. X exchanges = 0
2819     (PID.TID 0000.0001) // Max. X spins = 0
2820     (PID.TID 0000.0001) // Min. X spins = 1000000000
2821     (PID.TID 0000.0001) // Total. X spins = 0
2822     (PID.TID 0000.0001) // Avg. X spins = 0.00E+00
2823     (PID.TID 0000.0001) // No. Y exchanges = 0
2824     (PID.TID 0000.0001) // Max. Y spins = 0
2825     (PID.TID 0000.0001) // Min. Y spins = 1000000000
2826     (PID.TID 0000.0001) // Total. Y spins = 0
2827     (PID.TID 0000.0001) // Avg. Y spins = 0.00E+00
2828     (PID.TID 0000.0001) // o Tile number: 000004
2829     (PID.TID 0000.0001) // No. X exchanges = 0
2830     (PID.TID 0000.0001) // Max. X spins = 0
2831     (PID.TID 0000.0001) // Min. X spins = 1000000000
2832     (PID.TID 0000.0001) // Total. X spins = 0
2833     (PID.TID 0000.0001) // Avg. X spins = 0.00E+00
2834     (PID.TID 0000.0001) // No. Y exchanges = 0
2835     (PID.TID 0000.0001) // Max. Y spins = 0
2836     (PID.TID 0000.0001) // Min. Y spins = 1000000000
2837     (PID.TID 0000.0001) // Total. Y spins = 0
2838     (PID.TID 0000.0001) // Avg. Y spins = 0.00E+00
2839     (PID.TID 0000.0001) // o Thread number: 000001
2840 jmc 1.2 (PID.TID 0000.0001) // No. barriers = 2316
2841 heimbach 1.1 (PID.TID 0000.0001) // Max. barrier spins = 1
2842     (PID.TID 0000.0001) // Min. barrier spins = 1
2843 jmc 1.2 (PID.TID 0000.0001) // Total barrier spins = 2316
2844 heimbach 1.1 (PID.TID 0000.0001) // Avg. barrier spins = 1.00E+00
2845 jmc 1.2 STOP NORMAL END
2846 heimbach 1.1 PROGRAM MAIN: Execution ended Normally

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