/[MITgcm]/MITgcm_contrib/verification_other/offline_cheapaml/results/output.dyn.txt
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Contents of /MITgcm_contrib/verification_other/offline_cheapaml/results/output.dyn.txt

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Revision 1.1 - (show annotations) (download)
Tue Jun 11 02:22:33 2013 UTC (12 years, 1 month ago) by jmc
Branch: MAIN
CVS Tags: checkpoint64k, checkpoint64x, checkpoint64z, checkpoint64o, checkpoint64p, checkpoint64r, checkpoint64w, checkpoint64v, checkpoint66g, checkpoint66f, checkpoint66e, checkpoint66d, checkpoint66c, checkpoint66b, checkpoint66a, checkpoint66h, checkpoint64m, checkpoint65z, checkpoint65x, checkpoint65y, checkpoint65r, checkpoint65s, checkpoint65p, checkpoint65q, checkpoint65v, checkpoint65w, checkpoint65u, checkpoint65j, checkpoint65i, checkpoint65m, checkpoint65c, checkpoint65a, checkpoint65f, checkpoint65e, checkpoint64i, checkpoint65h, checkpoint65, checkpoint64j, checkpoint65n
File MIME type: text/plain
add reference output for secondary test with seaice-dynamics
 and convergent wind to produce precip

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 (PID.TID 0000.0001) // MITgcmUV version: checkpoint64h
9 (PID.TID 0000.0001) // Build user: jmc
10 (PID.TID 0000.0001) // Build host: baudelaire
11 (PID.TID 0000.0001) // Build date: Mon Jun 10 22:12:00 EDT 2013
12 (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) >#debugMode=.TRUE.,
24 (PID.TID 0000.0001) > /
25 (PID.TID 0000.0001) ># Note: Some systems use & as the namelist terminator (as shown here).
26 (PID.TID 0000.0001) ># Other systems use a / character.
27 (PID.TID 0000.0001)
28 (PID.TID 0000.0001) // =======================================================
29 (PID.TID 0000.0001) // Computational Grid Specification ( see files "SIZE.h" )
30 (PID.TID 0000.0001) // ( and "eedata" )
31 (PID.TID 0000.0001) // =======================================================
32 (PID.TID 0000.0001) nPx = 1 ; /* No. processes in X */
33 (PID.TID 0000.0001) nPy = 1 ; /* No. processes in Y */
34 (PID.TID 0000.0001) nSx = 2 ; /* No. tiles in X per process */
35 (PID.TID 0000.0001) nSy = 2 ; /* No. tiles in Y per process */
36 (PID.TID 0000.0001) sNx = 40 ; /* Tile size in X */
37 (PID.TID 0000.0001) sNy = 21 ; /* Tile size in Y */
38 (PID.TID 0000.0001) OLx = 3 ; /* Tile overlap distance in X */
39 (PID.TID 0000.0001) OLy = 3 ; /* Tile overlap distance in Y */
40 (PID.TID 0000.0001) nTx = 1 ; /* No. threads in X per process */
41 (PID.TID 0000.0001) nTy = 1 ; /* No. threads in Y per process */
42 (PID.TID 0000.0001) Nr = 1 ; /* No. levels in the vertical */
43 (PID.TID 0000.0001) Nx = 80 ; /* Total domain size in X ( = nPx*nSx*sNx ) */
44 (PID.TID 0000.0001) Ny = 42 ; /* Total domain size in Y ( = nPy*nSy*sNy ) */
45 (PID.TID 0000.0001) nTiles = 4 ; /* Total no. tiles per process ( = nSx*nSy ) */
46 (PID.TID 0000.0001) nProcs = 1 ; /* Total no. processes ( = nPx*nPy ) */
47 (PID.TID 0000.0001) nThreads = 1 ; /* Total no. threads per process ( = nTx*nTy ) */
48 (PID.TID 0000.0001) usingMPI = F ; /* Flag used to control whether MPI is in use */
49 (PID.TID 0000.0001) /* note: To execute a program with MPI calls */
50 (PID.TID 0000.0001) /* it must be launched appropriately e.g */
51 (PID.TID 0000.0001) /* "mpirun -np 64 ......" */
52 (PID.TID 0000.0001) useCoupler= F ;/* Flag used to control communications with */
53 (PID.TID 0000.0001) /* other model components, through a coupler */
54 (PID.TID 0000.0001) debugMode = F ; /* print debug msg. (sequence of S/R calls) */
55 (PID.TID 0000.0001) printMapIncludesZeros= F ; /* print zeros in Std.Output maps */
56 (PID.TID 0000.0001) maxLengthPrt1D= 65 /* maxLength of 1D array printed to StdOut */
57 (PID.TID 0000.0001)
58 (PID.TID 0000.0001) // ======================================================
59 (PID.TID 0000.0001) // Mapping of tiles to threads
60 (PID.TID 0000.0001) // ======================================================
61 (PID.TID 0000.0001) // -o- Thread 1, tiles ( 1: 2, 1: 2)
62 (PID.TID 0000.0001)
63 (PID.TID 0000.0001) // ======================================================
64 (PID.TID 0000.0001) // Tile <-> Tile connectvity table
65 (PID.TID 0000.0001) // ======================================================
66 (PID.TID 0000.0001) // Tile number: 000001 (process no. = 000000)
67 (PID.TID 0000.0001) // WEST: Tile = 000002, Process = 000000, Comm = put
68 (PID.TID 0000.0001) // bi = 000002, bj = 000001
69 (PID.TID 0000.0001) // EAST: Tile = 000002, Process = 000000, Comm = put
70 (PID.TID 0000.0001) // bi = 000002, bj = 000001
71 (PID.TID 0000.0001) // SOUTH: Tile = 000003, Process = 000000, Comm = put
72 (PID.TID 0000.0001) // bi = 000001, bj = 000002
73 (PID.TID 0000.0001) // NORTH: Tile = 000003, Process = 000000, Comm = put
74 (PID.TID 0000.0001) // bi = 000001, bj = 000002
75 (PID.TID 0000.0001) // Tile number: 000002 (process no. = 000000)
76 (PID.TID 0000.0001) // WEST: Tile = 000001, Process = 000000, Comm = put
77 (PID.TID 0000.0001) // bi = 000001, bj = 000001
78 (PID.TID 0000.0001) // EAST: Tile = 000001, Process = 000000, Comm = put
79 (PID.TID 0000.0001) // bi = 000001, bj = 000001
80 (PID.TID 0000.0001) // SOUTH: Tile = 000004, Process = 000000, Comm = put
81 (PID.TID 0000.0001) // bi = 000002, bj = 000002
82 (PID.TID 0000.0001) // NORTH: Tile = 000004, Process = 000000, Comm = put
83 (PID.TID 0000.0001) // bi = 000002, bj = 000002
84 (PID.TID 0000.0001) // Tile number: 000003 (process no. = 000000)
85 (PID.TID 0000.0001) // WEST: Tile = 000004, Process = 000000, Comm = put
86 (PID.TID 0000.0001) // bi = 000002, bj = 000002
87 (PID.TID 0000.0001) // EAST: Tile = 000004, Process = 000000, Comm = put
88 (PID.TID 0000.0001) // bi = 000002, bj = 000002
89 (PID.TID 0000.0001) // SOUTH: Tile = 000001, Process = 000000, Comm = put
90 (PID.TID 0000.0001) // bi = 000001, bj = 000001
91 (PID.TID 0000.0001) // NORTH: Tile = 000001, Process = 000000, Comm = put
92 (PID.TID 0000.0001) // bi = 000001, bj = 000001
93 (PID.TID 0000.0001) // Tile number: 000004 (process no. = 000000)
94 (PID.TID 0000.0001) // WEST: Tile = 000003, Process = 000000, Comm = put
95 (PID.TID 0000.0001) // bi = 000001, bj = 000002
96 (PID.TID 0000.0001) // EAST: Tile = 000003, Process = 000000, Comm = put
97 (PID.TID 0000.0001) // bi = 000001, bj = 000002
98 (PID.TID 0000.0001) // SOUTH: Tile = 000002, Process = 000000, Comm = put
99 (PID.TID 0000.0001) // bi = 000002, bj = 000001
100 (PID.TID 0000.0001) // NORTH: Tile = 000002, Process = 000000, Comm = put
101 (PID.TID 0000.0001) // bi = 000002, bj = 000001
102 (PID.TID 0000.0001)
103 (PID.TID 0000.0001) INI_PARMS: opening model parameter file "data"
104 (PID.TID 0000.0001) OPEN_COPY_DATA_FILE: opening file data
105 (PID.TID 0000.0001) // =======================================================
106 (PID.TID 0000.0001) // Parameter file "data"
107 (PID.TID 0000.0001) // =======================================================
108 (PID.TID 0000.0001) ># ====================
109 (PID.TID 0000.0001) ># | Model parameters |
110 (PID.TID 0000.0001) ># ====================
111 (PID.TID 0000.0001) >#
112 (PID.TID 0000.0001) > &PARM01
113 (PID.TID 0000.0001) > tRef= -1.62,
114 (PID.TID 0000.0001) > sRef= 30.,
115 (PID.TID 0000.0001) > no_slip_sides=.FALSE.,
116 (PID.TID 0000.0001) > no_slip_bottom=.TRUE.,
117 (PID.TID 0000.0001) >#bottomDragLinear=1.E-3,
118 (PID.TID 0000.0001) > bottomDragQuadratic=5.E-3,
119 (PID.TID 0000.0001) > viscAr=3.E-2,
120 (PID.TID 0000.0001) > viscAh=3.E+2,
121 (PID.TID 0000.0001) > HeatCapacity_Cp = 3986.,
122 (PID.TID 0000.0001) > rhoNil = 1030.,
123 (PID.TID 0000.0001) > rhoConstFresh = 1000.,
124 (PID.TID 0000.0001) > eosType='LINEAR',
125 (PID.TID 0000.0001) > tAlpha=2.E-4,
126 (PID.TID 0000.0001) > sBeta= 0.,
127 (PID.TID 0000.0001) > staggerTimeStep=.TRUE.,
128 (PID.TID 0000.0001) > saltStepping=.FALSE.,
129 (PID.TID 0000.0001) >#tempStepping=.FALSE.,
130 (PID.TID 0000.0001) > tempAdvection=.FALSE.,
131 (PID.TID 0000.0001) > momStepping=.FALSE.,
132 (PID.TID 0000.0001) > f0=0.e-4,
133 (PID.TID 0000.0001) > beta=0.,
134 (PID.TID 0000.0001) > useJamartWetPoints=.TRUE.,
135 (PID.TID 0000.0001) > rigidLid=.FALSE.,
136 (PID.TID 0000.0001) > implicitFreeSurface=.TRUE.,
137 (PID.TID 0000.0001) >#exactConserv=.TRUE.,
138 (PID.TID 0000.0001) > convertFW2Salt=-1,
139 (PID.TID 0000.0001) > readBinaryPrec=64,
140 (PID.TID 0000.0001) > writeBinaryPrec=64,
141 (PID.TID 0000.0001) >#globalFiles=.TRUE.,
142 (PID.TID 0000.0001) > useSingleCpuIO=.TRUE.,
143 (PID.TID 0000.0001) >#debugLevel=3,
144 (PID.TID 0000.0001) > /
145 (PID.TID 0000.0001) >
146 (PID.TID 0000.0001) ># Elliptic solver parameters
147 (PID.TID 0000.0001) > &PARM02
148 (PID.TID 0000.0001) > cg2dMaxIters=500,
149 (PID.TID 0000.0001) > cg2dTargetResidual=1.E-12,
150 (PID.TID 0000.0001) > /
151 (PID.TID 0000.0001) >
152 (PID.TID 0000.0001) ># Time stepping parameters
153 (PID.TID 0000.0001) > &PARM03
154 (PID.TID 0000.0001) > startTime=0.0,
155 (PID.TID 0000.0001) >#endTime=864000.,
156 (PID.TID 0000.0001) > deltaT=3600.0,
157 (PID.TID 0000.0001) > abEps=0.1,
158 (PID.TID 0000.0001) > forcing_In_AB = .FALSE.,
159 (PID.TID 0000.0001) ># 10 days restoring timescale for temperature
160 (PID.TID 0000.0001) > tauThetaClimRelax= 864000.,
161 (PID.TID 0000.0001) > pChkptFreq=3600000.,
162 (PID.TID 0000.0001) > monitorFreq=432000.,
163 (PID.TID 0000.0001) >#monitorSelect=2,
164 (PID.TID 0000.0001) > dumpFreq = 86400.,
165 (PID.TID 0000.0001) > nTimeSteps=12,
166 (PID.TID 0000.0001) > monitorFreq=43200.,
167 (PID.TID 0000.0001) >#dumpFreq = 1.,
168 (PID.TID 0000.0001) >#diagFreq = 1.,
169 (PID.TID 0000.0001) > /
170 (PID.TID 0000.0001) >
171 (PID.TID 0000.0001) ># Gridding parameters
172 (PID.TID 0000.0001) > &PARM04
173 (PID.TID 0000.0001) > usingCartesianGrid=.TRUE.,
174 (PID.TID 0000.0001) > delX=80*5.E3,
175 (PID.TID 0000.0001) > delY=42*5.E3,
176 (PID.TID 0000.0001) > ygOrigin=-110.E3,
177 (PID.TID 0000.0001) >#delR= 20., 30., 50.,
178 (PID.TID 0000.0001) > delR= 10.,
179 (PID.TID 0000.0001) > /
180 (PID.TID 0000.0001) >
181 (PID.TID 0000.0001) ># Input datasets
182 (PID.TID 0000.0001) > &PARM05
183 (PID.TID 0000.0001) > bathyFile = 'channel.bin',
184 (PID.TID 0000.0001) > uVelInitFile = 'const_00.bin',
185 (PID.TID 0000.0001) > vVelInitFile = 'const+20.bin',
186 (PID.TID 0000.0001) > thetaClimFile = 'tocn_1x.bin',
187 (PID.TID 0000.0001) > /
188 (PID.TID 0000.0001)
189 (PID.TID 0000.0001) INI_PARMS ; starts to read PARM01
190 (PID.TID 0000.0001) INI_PARMS ; read PARM01 : OK
191 (PID.TID 0000.0001) INI_PARMS ; starts to read PARM02
192 (PID.TID 0000.0001) INI_PARMS ; read PARM02 : OK
193 (PID.TID 0000.0001) INI_PARMS ; starts to read PARM03
194 (PID.TID 0000.0001) INI_PARMS ; read PARM03 : OK
195 (PID.TID 0000.0001) INI_PARMS ; starts to read PARM04
196 (PID.TID 0000.0001) INI_PARMS ; read PARM04 : OK
197 (PID.TID 0000.0001) INI_PARMS ; starts to read PARM05
198 (PID.TID 0000.0001) INI_PARMS ; read PARM05 : OK
199 (PID.TID 0000.0001) INI_PARMS: finished reading file "data"
200 (PID.TID 0000.0001) PACKAGES_BOOT: opening data.pkg
201 (PID.TID 0000.0001) OPEN_COPY_DATA_FILE: opening file data.pkg
202 (PID.TID 0000.0001) // =======================================================
203 (PID.TID 0000.0001) // Parameter file "data.pkg"
204 (PID.TID 0000.0001) // =======================================================
205 (PID.TID 0000.0001) ># Packages
206 (PID.TID 0000.0001) > &PACKAGES
207 (PID.TID 0000.0001) > useCheapAML=.TRUE.,
208 (PID.TID 0000.0001) > useSEAICE = .TRUE.,
209 (PID.TID 0000.0001) > useThSIce = .TRUE.,
210 (PID.TID 0000.0001) > useDiagnostics=.TRUE.,
211 (PID.TID 0000.0001) > /
212 (PID.TID 0000.0001)
213 (PID.TID 0000.0001) PACKAGES_BOOT: finished reading data.pkg
214 (PID.TID 0000.0001) BULKF_READPARMS: opening data.cheapaml
215 (PID.TID 0000.0001) OPEN_COPY_DATA_FILE: opening file data.cheapaml
216 (PID.TID 0000.0001) // =======================================================
217 (PID.TID 0000.0001) // Parameter file "data.cheapaml"
218 (PID.TID 0000.0001) // =======================================================
219 (PID.TID 0000.0001) ># Package CheapAML parameters
220 (PID.TID 0000.0001) >#--------------------
221 (PID.TID 0000.0001) > &CHEAPAML_CONST
222 (PID.TID 0000.0001) > cheapaml_ntim = 20,
223 (PID.TID 0000.0001) > cheapaml_mask_width=5,
224 (PID.TID 0000.0001) ># cheapaml_taurelax =0.,
225 (PID.TID 0000.0001) > cheapaml_h = 1000.,
226 (PID.TID 0000.0001) > cheapaml_kdiff= 100.,
227 (PID.TID 0000.0001) > /
228 (PID.TID 0000.0001) >
229 (PID.TID 0000.0001) > &CHEAPAML_PARM01
230 (PID.TID 0000.0001) > SolarFile = 'dsw_70y.bin',
231 (PID.TID 0000.0001) > cheap_dlwFile= 'dlw_270y.bin',
232 (PID.TID 0000.0001) > UWindFile = 'windx_10ms.bin',
233 (PID.TID 0000.0001) > VWindFile = 'windy_conv.bin',
234 (PID.TID 0000.0001) > AirTempFile= 'tair_-10.bin',
235 (PID.TID 0000.0001) > TrFile = 'tair_-10.bin',
236 (PID.TID 0000.0001) > AirQFile = 'qa70_-10.bin',
237 (PID.TID 0000.0001) > QrFile = 'qa70_-10.bin',
238 (PID.TID 0000.0001) > cheapMaskFile='const_00.bin',
239 (PID.TID 0000.0001) > /
240 (PID.TID 0000.0001) >
241 (PID.TID 0000.0001) > &CHEAPAML_PARM02
242 (PID.TID 0000.0001) > useFreshWaterFlux=.TRUE.,
243 (PID.TID 0000.0001) > useFluxLimit=.TRUE.,
244 (PID.TID 0000.0001) > FluxFormula='COARE3'
245 (PID.TID 0000.0001) > useDLongWave=.TRUE.,
246 (PID.TID 0000.0001) > cheapamlXperiodic=.TRUE.,
247 (PID.TID 0000.0001) > /
248 (PID.TID 0000.0001)
249 (PID.TID 0000.0001) CHEAPAML_READPARMS: read CHEAPAML_CONST
250 (PID.TID 0000.0001) CHEAPAML_READPARMS: read CHEAPAML_PARM01
251 (PID.TID 0000.0001) CHEAPAML_READPARMS: read CHEAPAML_PARM02
252 Caml: ntim = 20
253 Caml: mask_w = 5
254 Caml: h = 1000.0000000000000
255 Caml: kdiff = 100.00000000000000
256 Caml: taurelax = 0.10000000000000001 (days)
257 Caml: trelaxoce= 0.0000000000000000 (days)
258 Caml: rhoa = 1.3000000000000000
259 Caml: cpair = 1004.0000000000000
260 Caml: stefan = 5.66999999999999982E-008
261 Caml: cheapamlXperiodic = T
262 Caml: cheapamlYperiodic = F
263 Caml: useFreshWaterFlux = T
264 Caml: useFluxLimit = T
265 Caml: useStressOption = F
266 Caml: useCheapTracer = F
267 Caml: useTimeVarBLH = F
268 Caml: useClouds = F
269 Caml: useDlongwave = T
270 (PID.TID 0000.0001)
271 (PID.TID 0000.0001) SEAICE_READPARMS: opening data.seaice
272 (PID.TID 0000.0001) OPEN_COPY_DATA_FILE: opening file data.seaice
273 (PID.TID 0000.0001) // =======================================================
274 (PID.TID 0000.0001) // Parameter file "data.seaice"
275 (PID.TID 0000.0001) // =======================================================
276 (PID.TID 0000.0001) ># SEAICE parameters
277 (PID.TID 0000.0001) > &SEAICE_PARM01
278 (PID.TID 0000.0001) > SEAICErestoreUnderIce=.TRUE.,
279 (PID.TID 0000.0001) > usePW79thermodynamics=.FALSE.,
280 (PID.TID 0000.0001) > SEAICE_strength = 2.6780e+04,
281 (PID.TID 0000.0001) > OCEAN_drag = 8.1541e-04,
282 (PID.TID 0000.0001) > SEAICE_waterDrag = 5.3508,
283 (PID.TID 0000.0001) > LSR_ERROR = 1.E-12,
284 (PID.TID 0000.0001) > SOLV_MAX_ITERS = 1500,
285 (PID.TID 0000.0001) > LSR_mixIniGuess = 1,
286 (PID.TID 0000.0001) >#SEAICE_no_slip = .TRUE.,
287 (PID.TID 0000.0001) > SEAICEwriteState = .TRUE.,
288 (PID.TID 0000.0001) > SEAICE_monFreq = 21600.,
289 (PID.TID 0000.0001) >#SEAICE_monFreq = 1800.,
290 (PID.TID 0000.0001) > /
291 (PID.TID 0000.0001) >
292 (PID.TID 0000.0001) > &SEAICE_PARM03
293 (PID.TID 0000.0001) > /
294 (PID.TID 0000.0001)
295 (PID.TID 0000.0001) SEAICE_READPARMS: finished reading data.seaice
296 (PID.TID 0000.0001) THSICE_READPARMS: opening data.ice
297 (PID.TID 0000.0001) OPEN_COPY_DATA_FILE: opening file data.ice
298 (PID.TID 0000.0001) // =======================================================
299 (PID.TID 0000.0001) // Parameter file "data.ice"
300 (PID.TID 0000.0001) // =======================================================
301 (PID.TID 0000.0001) > &THSICE_CONST
302 (PID.TID 0000.0001) >#- with fractional ice:
303 (PID.TID 0000.0001) > iceMaskMin = 0.001,
304 (PID.TID 0000.0001) > hiMax = 10.,
305 (PID.TID 0000.0001) > hsMax = 10.,
306 (PID.TID 0000.0001) > dhSnowLin = 0.1,
307 (PID.TID 0000.0001) > fracEnFreez= 0.4,
308 (PID.TID 0000.0001) > hNewIceMax = 1.,
309 (PID.TID 0000.0001) > albIceMax = 0.6,
310 (PID.TID 0000.0001) > albIceMin = 0.6,
311 (PID.TID 0000.0001) >#albColdSnow= 0.85,
312 (PID.TID 0000.0001) >#albWarmSnow= 0.60,
313 (PID.TID 0000.0001) >#tempSnowAlb= -5.,
314 (PID.TID 0000.0001) >#albOldSnow = 0.60,
315 (PID.TID 0000.0001) >#hNewSnowAge= 2.e-3,
316 (PID.TID 0000.0001) >#snowAgTime = 4320000.,
317 (PID.TID 0000.0001) >#hAlbIce = 0.44,
318 (PID.TID 0000.0001) >#hAlbSnow = 0.15,
319 (PID.TID 0000.0001) > /
320 (PID.TID 0000.0001) >
321 (PID.TID 0000.0001) > &THSICE_PARM01
322 (PID.TID 0000.0001) >#StartIceModel=1,
323 (PID.TID 0000.0001) >#thSIce_skipThermo=.TRUE.,
324 (PID.TID 0000.0001) > thSIceAdvScheme=77,
325 (PID.TID 0000.0001) >#thSIce_diffK =800.,
326 (PID.TID 0000.0001) > stressReduction=0.,
327 (PID.TID 0000.0001) > thSIceFract_InitFile='ice0_area.bin',
328 (PID.TID 0000.0001) > thSIceThick_InitFile='const+20.bin',
329 (PID.TID 0000.0001) >#thSIce_diagFreq=2592000.,
330 (PID.TID 0000.0001) > thSIce_monFreq =43200.,
331 (PID.TID 0000.0001) > /
332 (PID.TID 0000.0001) >
333 (PID.TID 0000.0001)
334 (PID.TID 0000.0001) THSICE_READPARMS: read THSICE_CONST
335 (PID.TID 0000.0001) THSICE_READPARMS: read THSICE_PARM01
336 ThSI: rhos = 3.3000000000000E+02
337 ThSI: rhoi = 9.0000000000000E+02
338 ThSI: rhosw = 1.0300000000000E+03
339 ThSI: rhofw = 1.0000000000000E+03
340 ThSI: floodFac = 3.9393939393939E-01
341 ThSI: cpIce = 2.1060000000000E+03
342 ThSI: cpWater = 3.9860000000000E+03
343 ThSI: kIce = 2.0300000000000E+00
344 ThSI: kSnow = 3.0000000000000E-01
345 ThSI: bMeltCoef = 6.0000000000000E-03
346 ThSI: Lfresh = 3.3400000000000E+05
347 ThSI: qsnow = 3.3400000000000E+05
348 ThSI: albColdSnow = 8.5000000000000E-01
349 ThSI: albWarmSnow = 7.0000000000000E-01
350 ThSI: tempSnowAlb = -1.0000000000000E+01
351 ThSI: albOldSnow = 5.5000000000000E-01
352 ThSI: hNewSnowAge = 2.0000000000000E-03
353 ThSI: snowAgTime = 4.3200000000000E+06
354 ThSI: albIceMax = 6.0000000000000E-01
355 ThSI: albIceMin = 6.0000000000000E-01
356 ThSI: hAlbIce = 5.0000000000000E-01
357 ThSI: hAlbSnow = 3.0000000000000E-01
358 ThSI: i0swFrac = 3.0000000000000E-01
359 ThSI: ksolar = 1.5000000000000E+00
360 ThSI: dhSnowLin = 1.0000000000000E-01
361 ThSI: saltIce = 4.0000000000000E+00
362 ThSI: S_winton = 1.0000000000000E+00
363 ThSI: mu_Tf = 5.4000000000000E-02
364 ThSI: Tf0kel = 2.7315000000000E+02
365 ThSI: Tmlt1 = -5.4000000000000E-02
366 ThSI: Terrmax = 5.0000000000000E-01
367 ThSI: nitMaxTsf = 20
368 ThSI: hIceMin = 1.0000000000000E-02
369 ThSI: hiMax = 1.0000000000000E+01
370 ThSI: hsMax = 1.0000000000000E+01
371 ThSI: iceMaskMax = 1.0000000000000E+00
372 ThSI: iceMaskMin = 1.0000000000000E-03
373 ThSI: fracEnMelt = 4.0000000000000E-01
374 ThSI: fracEnFreez = 4.0000000000000E-01
375 ThSI: hThinIce = 2.0000000000000E-01
376 ThSI: hThickIce = 2.5000000000000E+00
377 ThSI: hNewIceMax = 1.0000000000000E+00
378 ThSI: stressReduction = 0.0000000000000E+00
379 ThSI: thSIce_skipThermo = F
380 ThSI: thSIceAdvScheme = 77
381 ThSI: thSIceBalanceAtmFW= 0
382 ThSI: thSIce_diffK = 0.0000000000000E+00
383 ThSI: thSIce_deltaT = 3.6000000000000E+03
384 ThSI: ocean_deltaT = 3.6000000000000E+03
385 ThSI: stepFwd_oceMxL = F
386 ThSI: tauRelax_MxL = 0.0000000000000E+00
387 ThSI: tauRelax_MxL_salt = 0.0000000000000E+00
388 ThSI: hMxL_default = 5.0000000000000E+01
389 ThSI: sMxL_default = 3.5000000000000E+01
390 ThSI: vMxL_default = 5.0000000000000E-02
391 ThSI: thSIce_taveFreq = 0.0000000000000E+00
392 ThSI: thSIce_diagFreq = 8.6400000000000E+04
393 ThSI: thSIce_monFreq = 4.3200000000000E+04
394 ThSI: startIceModel = 0
395 (PID.TID 0000.0001) DIAGNOSTICS_READPARMS: opening data.diagnostics
396 (PID.TID 0000.0001) OPEN_COPY_DATA_FILE: opening file data.diagnostics
397 (PID.TID 0000.0001) // =======================================================
398 (PID.TID 0000.0001) // Parameter file "data.diagnostics"
399 (PID.TID 0000.0001) // =======================================================
400 (PID.TID 0000.0001) ># Diagnostic Package Choices
401 (PID.TID 0000.0001) >#--------------------
402 (PID.TID 0000.0001) ># dumpAtLast (logical): always write output at the end of simulation (default=F)
403 (PID.TID 0000.0001) ># diag_mnc (logical): write to NetCDF files (default=useMNC)
404 (PID.TID 0000.0001) >#--for each output-stream:
405 (PID.TID 0000.0001) ># fileName(n) : prefix of the output file name (max 80c long) for outp.stream n
406 (PID.TID 0000.0001) ># frequency(n):< 0 : write snap-shot output every |frequency| seconds
407 (PID.TID 0000.0001) ># > 0 : write time-average output every frequency seconds
408 (PID.TID 0000.0001) ># timePhase(n) : write at time = timePhase + multiple of |frequency|
409 (PID.TID 0000.0001) ># averagingFreq : frequency (in s) for periodic averaging interval
410 (PID.TID 0000.0001) ># averagingPhase : phase (in s) for periodic averaging interval
411 (PID.TID 0000.0001) ># repeatCycle : number of averaging intervals in 1 cycle
412 (PID.TID 0000.0001) ># levels(:,n) : list of levels to write to file (Notes: declared as REAL)
413 (PID.TID 0000.0001) ># when this entry is missing, select all common levels of this list
414 (PID.TID 0000.0001) ># fields(:,n) : list of selected diagnostics fields (8.c) in outp.stream n
415 (PID.TID 0000.0001) ># (see "available_diagnostics.log" file for the full list of diags)
416 (PID.TID 0000.0001) ># missing_value(n) : missing value for real-type fields in output file "n"
417 (PID.TID 0000.0001) ># fileFlags(n) : specific code (8c string) for output file "n"
418 (PID.TID 0000.0001) >#--------------------
419 (PID.TID 0000.0001) > &DIAGNOSTICS_LIST
420 (PID.TID 0000.0001) > dumpAtLast = .TRUE.,
421 (PID.TID 0000.0001) >#--
422 (PID.TID 0000.0001) > fields(1:18,1) = 'CH_TAIR ','CH_QAIR ','THETA ',
423 (PID.TID 0000.0001) > 'SI_Fract','SI_Thick','SI_SnowH',
424 (PID.TID 0000.0001) > 'SIuice ','SIvice ',
425 (PID.TID 0000.0001) > 'SIflxAtm','SIfrwAtm','SIsnwPrc',
426 (PID.TID 0000.0001) > 'CH_QNET ','CH_EmP ','CH_SH ','CH_LH ',
427 (PID.TID 0000.0001) > 'CH_Prec ','CH_q100 ','CH_ssqt ',
428 (PID.TID 0000.0001) ># 'CH_Uwind','CH_Vwind',
429 (PID.TID 0000.0001) > fileName(1) = 'cheapAML',
430 (PID.TID 0000.0001) > frequency(1) = -43200.,
431 (PID.TID 0000.0001) > timePhase(1) = -3600.,
432 (PID.TID 0000.0001) >
433 (PID.TID 0000.0001) > fields(1:14,2) = 'SI_Fract','SI_Thick','THETA ','SI_Tsrf ',
434 (PID.TID 0000.0001) ># 'SI_Tsrf ','SI_Tice1','SI_Tice2',
435 (PID.TID 0000.0001) ># 'SI_Qice1','SI_Qice2',
436 (PID.TID 0000.0001) ># 'SIsnwPrc','SIalbedo','SIsnwAge',
437 (PID.TID 0000.0001) ># 'oceQnet ','oceQsw ','oceFWflx','oceSflux',
438 (PID.TID 0000.0001) > 'SIflx2oc','SIfrw2oc','SIsaltFx','oceQsw ',
439 (PID.TID 0000.0001) > 'SIflxAtm','SIfrwAtm','CH_Prec ',
440 (PID.TID 0000.0001) > 'SIuice ','SIvice ',
441 (PID.TID 0000.0001) > fileName(2) = 'iceDiag',
442 (PID.TID 0000.0001) > frequency(2) = 86400.,
443 (PID.TID 0000.0001) > /
444 (PID.TID 0000.0001) >
445 (PID.TID 0000.0001) >#--------------------
446 (PID.TID 0000.0001) ># Parameter for Diagnostics of per level statistics:
447 (PID.TID 0000.0001) >#--------------------
448 (PID.TID 0000.0001) ># diagSt_mnc (logical): write stat-diags to NetCDF files (default=diag_mnc)
449 (PID.TID 0000.0001) ># diagSt_regMaskFile : file containing the region-mask to read-in
450 (PID.TID 0000.0001) ># nSetRegMskFile : number of region-mask sets within the region-mask file
451 (PID.TID 0000.0001) ># set_regMask(i) : region-mask set-index that identifies the region "i"
452 (PID.TID 0000.0001) ># val_regMask(i) : region "i" identifier value in the region mask
453 (PID.TID 0000.0001) >#--for each output-stream:
454 (PID.TID 0000.0001) ># stat_fName(n) : prefix of the output file name (max 80c long) for outp.stream n
455 (PID.TID 0000.0001) ># stat_freq(n):< 0 : write snap-shot output every |stat_freq| seconds
456 (PID.TID 0000.0001) ># > 0 : write time-average output every stat_freq seconds
457 (PID.TID 0000.0001) ># stat_phase(n) : write at time = stat_phase + multiple of |stat_freq|
458 (PID.TID 0000.0001) ># stat_region(:,n) : list of "regions" (default: 1 region only=global)
459 (PID.TID 0000.0001) ># stat_fields(:,n) : list of selected diagnostics fields (8.c) in outp.stream n
460 (PID.TID 0000.0001) ># (see "available_diagnostics.log" file for the full list of diags)
461 (PID.TID 0000.0001) >#--------------------
462 (PID.TID 0000.0001) > &DIAG_STATIS_PARMS
463 (PID.TID 0000.0001) > stat_fields(1:14,1) = 'SI_Fract','SI_Thick','SI_SnowH','THETA ',
464 (PID.TID 0000.0001) > 'SI_Tsrf ','SI_Tice1','SI_Tice2',
465 (PID.TID 0000.0001) ># 'oceQnet ','oceQsw ','oceFWflx','oceSflux',
466 (PID.TID 0000.0001) > 'SIflx2oc','SIfrw2oc','SIsaltFx',
467 (PID.TID 0000.0001) > 'SIflxAtm','SIfrwAtm',
468 (PID.TID 0000.0001) > 'SIuice ','SIvice ',
469 (PID.TID 0000.0001) > stat_fName(1) = 'iceStDiag',
470 (PID.TID 0000.0001) > stat_freq(1) = 43200.,
471 (PID.TID 0000.0001) > stat_phase(1) = 3600.,
472 (PID.TID 0000.0001) >
473 (PID.TID 0000.0001) > stat_fields(1:10,2) = 'CH_TAIR ','CH_QAIR ',
474 (PID.TID 0000.0001) > 'CH_QNET ','CH_EmP ','CH_SH ','CH_LH ',
475 (PID.TID 0000.0001) > 'CH_Prec ','CH_q100 ','CH_ssqt ','SIsnwPrc',
476 (PID.TID 0000.0001) > stat_fName(2) = 'cheapStDiag',
477 (PID.TID 0000.0001) > stat_freq(2) = 43200.,
478 (PID.TID 0000.0001) > stat_phase(2) = 3600.,
479 (PID.TID 0000.0001) > /
480 (PID.TID 0000.0001)
481 (PID.TID 0000.0001) S/R DIAGNOSTICS_READPARMS, read namelist "diagnostics_list": start
482 (PID.TID 0000.0001) S/R DIAGNOSTICS_READPARMS, read namelist "diagnostics_list": OK
483 (PID.TID 0000.0001) S/R DIAGNOSTICS_READPARMS, read namelist "DIAG_STATIS_PARMS": start
484 (PID.TID 0000.0001) S/R DIAGNOSTICS_READPARMS, read namelist "DIAG_STATIS_PARMS": OK
485 (PID.TID 0000.0001) DIAGNOSTICS_READPARMS: global parameter summary:
486 (PID.TID 0000.0001) dumpAtLast = /* always write time-ave diags at the end */
487 (PID.TID 0000.0001) T
488 (PID.TID 0000.0001) ;
489 (PID.TID 0000.0001) diag_mnc = /* write NetCDF output files */
490 (PID.TID 0000.0001) F
491 (PID.TID 0000.0001) ;
492 (PID.TID 0000.0001) useMissingValue = /* put MissingValue where mask = 0 */
493 (PID.TID 0000.0001) F
494 (PID.TID 0000.0001) ;
495 (PID.TID 0000.0001) diagCG_maxIters = /* max number of iters in diag_cg2d */
496 (PID.TID 0000.0001) 500
497 (PID.TID 0000.0001) ;
498 (PID.TID 0000.0001) diagCG_resTarget = /* residual target for diag_cg2d */
499 (PID.TID 0000.0001) 1.000000000000000E-12
500 (PID.TID 0000.0001) ;
501 (PID.TID 0000.0001) -----------------------------------------------------
502 (PID.TID 0000.0001) DIAGNOSTICS_READPARMS: active diagnostics summary:
503 (PID.TID 0000.0001) -----------------------------------------------------
504 (PID.TID 0000.0001) Creating Output Stream: cheapAML
505 (PID.TID 0000.0001) Output Frequency: -43200.000000 ; Phase: -3600.000000
506 (PID.TID 0000.0001) Averaging Freq.: 0.000000 , Phase: 0.000000 , Cycle: 1
507 (PID.TID 0000.0001) missing value: -9.990000000000E+02
508 (PID.TID 0000.0001) Levels: will be set later
509 (PID.TID 0000.0001) Fields: CH_TAIR CH_QAIR THETA SI_Fract SI_Thick SI_SnowH SIuice SIvice SIflxAtm SIfrwAtm
510 (PID.TID 0000.0001) Fields: SIsnwPrc CH_QNET CH_EmP CH_SH CH_LH CH_Prec CH_q100 CH_ssqt
511 (PID.TID 0000.0001) Creating Output Stream: iceDiag
512 (PID.TID 0000.0001) Output Frequency: 86400.000000 ; Phase: 0.000000
513 (PID.TID 0000.0001) Averaging Freq.: 86400.000000 , Phase: 0.000000 , Cycle: 1
514 (PID.TID 0000.0001) missing value: -9.990000000000E+02
515 (PID.TID 0000.0001) Levels: will be set later
516 (PID.TID 0000.0001) Fields: SI_Fract SI_Thick THETA SI_Tsrf SIflx2oc SIfrw2oc SIsaltFx oceQsw SIflxAtm SIfrwAtm
517 (PID.TID 0000.0001) Fields: CH_Prec SIuice SIvice
518 (PID.TID 0000.0001) -----------------------------------------------------
519 (PID.TID 0000.0001) DIAGNOSTICS_READPARMS: statistics diags. summary:
520 (PID.TID 0000.0001) Creating Stats. Output Stream: iceStDiag
521 (PID.TID 0000.0001) Output Frequency: 43200.000000 ; Phase: 3600.000000
522 (PID.TID 0000.0001) Regions: 0
523 (PID.TID 0000.0001) Fields: SI_Fract SI_Thick SI_SnowH THETA SI_Tsrf SI_Tice1 SI_Tice2 SIflx2oc SIfrw2oc SIsaltFx
524 (PID.TID 0000.0001) Fields: SIflxAtm SIfrwAtm SIuice SIvice
525 (PID.TID 0000.0001) Creating Stats. Output Stream: cheapStDiag
526 (PID.TID 0000.0001) Output Frequency: 43200.000000 ; Phase: 3600.000000
527 (PID.TID 0000.0001) Regions: 0
528 (PID.TID 0000.0001) Fields: CH_TAIR CH_QAIR CH_QNET CH_EmP CH_SH CH_LH CH_Prec CH_q100 CH_ssqt SIsnwPrc
529 (PID.TID 0000.0001) -----------------------------------------------------
530 (PID.TID 0000.0001)
531 (PID.TID 0000.0001) SET_PARMS: done
532 (PID.TID 0000.0001) Enter INI_VERTICAL_GRID: setInterFDr= T ; setCenterDr= F
533 (PID.TID 0000.0001) %MON XC_max = 3.9750000000000E+05
534 (PID.TID 0000.0001) %MON XC_min = 2.5000000000000E+03
535 (PID.TID 0000.0001) %MON XC_mean = 2.0000000000000E+05
536 (PID.TID 0000.0001) %MON XC_sd = 1.1546103238755E+05
537 (PID.TID 0000.0001) %MON XG_max = 3.9500000000000E+05
538 (PID.TID 0000.0001) %MON XG_min = 0.0000000000000E+00
539 (PID.TID 0000.0001) %MON XG_mean = 1.9750000000000E+05
540 (PID.TID 0000.0001) %MON XG_sd = 1.1546103238755E+05
541 (PID.TID 0000.0001) %MON DXC_max = 5.0000000000000E+03
542 (PID.TID 0000.0001) %MON DXC_min = 5.0000000000000E+03
543 (PID.TID 0000.0001) %MON DXC_mean = 5.0000000000000E+03
544 (PID.TID 0000.0001) %MON DXC_sd = 0.0000000000000E+00
545 (PID.TID 0000.0001) %MON DXF_max = 5.0000000000000E+03
546 (PID.TID 0000.0001) %MON DXF_min = 5.0000000000000E+03
547 (PID.TID 0000.0001) %MON DXF_mean = 5.0000000000000E+03
548 (PID.TID 0000.0001) %MON DXF_sd = 0.0000000000000E+00
549 (PID.TID 0000.0001) %MON DXG_max = 5.0000000000000E+03
550 (PID.TID 0000.0001) %MON DXG_min = 5.0000000000000E+03
551 (PID.TID 0000.0001) %MON DXG_mean = 5.0000000000000E+03
552 (PID.TID 0000.0001) %MON DXG_sd = 0.0000000000000E+00
553 (PID.TID 0000.0001) %MON DXV_max = 5.0000000000000E+03
554 (PID.TID 0000.0001) %MON DXV_min = 5.0000000000000E+03
555 (PID.TID 0000.0001) %MON DXV_mean = 5.0000000000000E+03
556 (PID.TID 0000.0001) %MON DXV_sd = 0.0000000000000E+00
557 (PID.TID 0000.0001) %MON YC_max = 9.7500000000000E+04
558 (PID.TID 0000.0001) %MON YC_min = -1.0750000000000E+05
559 (PID.TID 0000.0001) %MON YC_mean = -5.0000000000000E+03
560 (PID.TID 0000.0001) %MON YC_sd = 6.0604592785256E+04
561 (PID.TID 0000.0001) %MON YG_max = 9.5000000000000E+04
562 (PID.TID 0000.0001) %MON YG_min = -1.1000000000000E+05
563 (PID.TID 0000.0001) %MON YG_mean = -7.5000000000000E+03
564 (PID.TID 0000.0001) %MON YG_sd = 6.0604592785256E+04
565 (PID.TID 0000.0001) %MON DYC_max = 5.0000000000000E+03
566 (PID.TID 0000.0001) %MON DYC_min = 5.0000000000000E+03
567 (PID.TID 0000.0001) %MON DYC_mean = 5.0000000000000E+03
568 (PID.TID 0000.0001) %MON DYC_sd = 0.0000000000000E+00
569 (PID.TID 0000.0001) %MON DYF_max = 5.0000000000000E+03
570 (PID.TID 0000.0001) %MON DYF_min = 5.0000000000000E+03
571 (PID.TID 0000.0001) %MON DYF_mean = 5.0000000000000E+03
572 (PID.TID 0000.0001) %MON DYF_sd = 0.0000000000000E+00
573 (PID.TID 0000.0001) %MON DYG_max = 5.0000000000000E+03
574 (PID.TID 0000.0001) %MON DYG_min = 5.0000000000000E+03
575 (PID.TID 0000.0001) %MON DYG_mean = 5.0000000000000E+03
576 (PID.TID 0000.0001) %MON DYG_sd = 0.0000000000000E+00
577 (PID.TID 0000.0001) %MON DYU_max = 5.0000000000000E+03
578 (PID.TID 0000.0001) %MON DYU_min = 5.0000000000000E+03
579 (PID.TID 0000.0001) %MON DYU_mean = 5.0000000000000E+03
580 (PID.TID 0000.0001) %MON DYU_sd = 0.0000000000000E+00
581 (PID.TID 0000.0001) %MON RA_max = 2.5000000000000E+07
582 (PID.TID 0000.0001) %MON RA_min = 2.5000000000000E+07
583 (PID.TID 0000.0001) %MON RA_mean = 2.5000000000000E+07
584 (PID.TID 0000.0001) %MON RA_sd = 3.7252902984619E-09
585 (PID.TID 0000.0001) %MON RAW_max = 2.5000000000000E+07
586 (PID.TID 0000.0001) %MON RAW_min = 2.5000000000000E+07
587 (PID.TID 0000.0001) %MON RAW_mean = 2.5000000000000E+07
588 (PID.TID 0000.0001) %MON RAW_sd = 3.7252902984619E-09
589 (PID.TID 0000.0001) %MON RAS_max = 2.5000000000000E+07
590 (PID.TID 0000.0001) %MON RAS_min = 2.5000000000000E+07
591 (PID.TID 0000.0001) %MON RAS_mean = 2.5000000000000E+07
592 (PID.TID 0000.0001) %MON RAS_sd = 3.7252902984619E-09
593 (PID.TID 0000.0001) %MON RAZ_max = 2.5000000000000E+07
594 (PID.TID 0000.0001) %MON RAZ_min = 2.5000000000000E+07
595 (PID.TID 0000.0001) %MON RAZ_mean = 2.5000000000000E+07
596 (PID.TID 0000.0001) %MON RAZ_sd = 3.7252902984619E-09
597 (PID.TID 0000.0001) %MON AngleCS_max = 1.0000000000000E+00
598 (PID.TID 0000.0001) %MON AngleCS_min = 1.0000000000000E+00
599 (PID.TID 0000.0001) %MON AngleCS_mean = 1.0000000000000E+00
600 (PID.TID 0000.0001) %MON AngleCS_sd = 0.0000000000000E+00
601 (PID.TID 0000.0001) %MON AngleSN_max = 0.0000000000000E+00
602 (PID.TID 0000.0001) %MON AngleSN_min = 0.0000000000000E+00
603 (PID.TID 0000.0001) %MON AngleSN_mean = 0.0000000000000E+00
604 (PID.TID 0000.0001) %MON AngleSN_sd = 0.0000000000000E+00
605 (PID.TID 0000.0001) MDS_READ_FIELD: opening global file: channel.bin
606 (PID.TID 0000.0001) // =======================================================
607 (PID.TID 0000.0001) // Field Model R_low (ini_masks_etc)
608 (PID.TID 0000.0001) // CMIN = -1.000000000000000E+01
609 (PID.TID 0000.0001) // CMAX = -1.000000000000000E+01
610 (PID.TID 0000.0001) // CINT = 0.000000000000000E+00
611 (PID.TID 0000.0001) // SYMBOLS (CMIN->CMAX): -abcdefghijklmnopqrstuvwxyz+
612 (PID.TID 0000.0001) // 0.0: .
613 (PID.TID 0000.0001) // RANGE I (Lo:Hi:Step):( -2: 83: 1)
614 (PID.TID 0000.0001) // RANGE J (Lo:Hi:Step):( 45: -2: -1)
615 (PID.TID 0000.0001) // RANGE K (Lo:Hi:Step):( 1: 1: 1)
616 (PID.TID 0000.0001) // =======================================================
617 (PID.TID 0000.0001) // =======================================================
618 (PID.TID 0000.0001) // END OF FIELD =
619 (PID.TID 0000.0001) // =======================================================
620 (PID.TID 0000.0001)
621 (PID.TID 0000.0001) // =======================================================
622 (PID.TID 0000.0001) // Field Model Ro_surf (ini_masks_etc)
623 (PID.TID 0000.0001) // CMIN = 1.000000000000000E+32
624 (PID.TID 0000.0001) // CMAX = -1.000000000000000E+32
625 (PID.TID 0000.0001) // CINT = 0.000000000000000E+00
626 (PID.TID 0000.0001) // SYMBOLS (CMIN->CMAX): -abcdefghijklmnopqrstuvwxyz+
627 (PID.TID 0000.0001) // 0.0: .
628 (PID.TID 0000.0001) // RANGE I (Lo:Hi:Step):( -2: 83: 1)
629 (PID.TID 0000.0001) // RANGE J (Lo:Hi:Step):( 45: -2: -1)
630 (PID.TID 0000.0001) // RANGE K (Lo:Hi:Step):( 1: 1: 1)
631 (PID.TID 0000.0001) // =======================================================
632 (PID.TID 0000.0001) // =======================================================
633 (PID.TID 0000.0001) // END OF FIELD =
634 (PID.TID 0000.0001) // =======================================================
635 (PID.TID 0000.0001)
636 (PID.TID 0000.0001) // =======================================================
637 (PID.TID 0000.0001) // Field hFacC at iteration 0
638 (PID.TID 0000.0001) // CMIN = 1.000000000000000E+00
639 (PID.TID 0000.0001) // CMAX = 1.000000000000000E+00
640 (PID.TID 0000.0001) // CINT = 0.000000000000000E+00
641 (PID.TID 0000.0001) // SYMBOLS (CMIN->CMAX): -abcdefghijklmnopqrstuvwxyz+
642 (PID.TID 0000.0001) // 0.0: .
643 (PID.TID 0000.0001) // RANGE I (Lo:Hi:Step):( -2: 83: 1)
644 (PID.TID 0000.0001) // RANGE J (Lo:Hi:Step):( 45: -2: -1)
645 (PID.TID 0000.0001) // RANGE K (Lo:Hi:Step):( 1: 1: 1)
646 (PID.TID 0000.0001) // =======================================================
647 (PID.TID 0000.0001) // =======================================================
648 (PID.TID 0000.0001) // END OF FIELD =
649 (PID.TID 0000.0001) // =======================================================
650 (PID.TID 0000.0001)
651 (PID.TID 0000.0001) // =======================================================
652 (PID.TID 0000.0001) // Field hFacW at iteration 0
653 (PID.TID 0000.0001) // CMIN = 1.000000000000000E+00
654 (PID.TID 0000.0001) // CMAX = 1.000000000000000E+00
655 (PID.TID 0000.0001) // CINT = 0.000000000000000E+00
656 (PID.TID 0000.0001) // SYMBOLS (CMIN->CMAX): -abcdefghijklmnopqrstuvwxyz+
657 (PID.TID 0000.0001) // 0.0: .
658 (PID.TID 0000.0001) // RANGE I (Lo:Hi:Step):( -2: 83: 1)
659 (PID.TID 0000.0001) // RANGE J (Lo:Hi:Step):( 45: -2: -1)
660 (PID.TID 0000.0001) // RANGE K (Lo:Hi:Step):( 1: 1: 1)
661 (PID.TID 0000.0001) // =======================================================
662 (PID.TID 0000.0001) // =======================================================
663 (PID.TID 0000.0001) // END OF FIELD =
664 (PID.TID 0000.0001) // =======================================================
665 (PID.TID 0000.0001)
666 (PID.TID 0000.0001) // =======================================================
667 (PID.TID 0000.0001) // Field hFacS at iteration 0
668 (PID.TID 0000.0001) // CMIN = 1.000000000000000E+00
669 (PID.TID 0000.0001) // CMAX = 1.000000000000000E+00
670 (PID.TID 0000.0001) // CINT = 0.000000000000000E+00
671 (PID.TID 0000.0001) // SYMBOLS (CMIN->CMAX): -abcdefghijklmnopqrstuvwxyz+
672 (PID.TID 0000.0001) // 0.0: .
673 (PID.TID 0000.0001) // RANGE I (Lo:Hi:Step):( -2: 83: 1)
674 (PID.TID 0000.0001) // RANGE J (Lo:Hi:Step):( 45: -2: -1)
675 (PID.TID 0000.0001) // RANGE K (Lo:Hi:Step):( 1: 1: 1)
676 (PID.TID 0000.0001) // =======================================================
677 (PID.TID 0000.0001) // =======================================================
678 (PID.TID 0000.0001) // END OF FIELD =
679 (PID.TID 0000.0001) // =======================================================
680 (PID.TID 0000.0001)
681 (PID.TID 0000.0001) GAD_INIT_FIXED: GAD_OlMinSize= 0 0 1
682 (PID.TID 0000.0001)
683 (PID.TID 0000.0001) // ===================================
684 (PID.TID 0000.0001) // GAD parameters :
685 (PID.TID 0000.0001) // ===================================
686 (PID.TID 0000.0001) tempAdvScheme = /* Temp. Horiz.Advection scheme selector */
687 (PID.TID 0000.0001) 2
688 (PID.TID 0000.0001) ;
689 (PID.TID 0000.0001) tempVertAdvScheme = /* Temp. Vert. Advection scheme selector */
690 (PID.TID 0000.0001) 2
691 (PID.TID 0000.0001) ;
692 (PID.TID 0000.0001) tempMultiDimAdvec = /* use Muti-Dim Advec method for Temp */
693 (PID.TID 0000.0001) F
694 (PID.TID 0000.0001) ;
695 (PID.TID 0000.0001) tempSOM_Advection = /* use 2nd Order Moment Advection for Temp */
696 (PID.TID 0000.0001) F
697 (PID.TID 0000.0001) ;
698 (PID.TID 0000.0001) AdamsBashforthGt = /* apply Adams-Bashforth extrapolation on Gt */
699 (PID.TID 0000.0001) T
700 (PID.TID 0000.0001) ;
701 (PID.TID 0000.0001) AdamsBashforth_T = /* apply Adams-Bashforth extrapolation on Temp */
702 (PID.TID 0000.0001) F
703 (PID.TID 0000.0001) ;
704 (PID.TID 0000.0001) saltAdvScheme = /* Salt. Horiz.advection scheme selector */
705 (PID.TID 0000.0001) 2
706 (PID.TID 0000.0001) ;
707 (PID.TID 0000.0001) saltVertAdvScheme = /* Salt. Vert. Advection scheme selector */
708 (PID.TID 0000.0001) 2
709 (PID.TID 0000.0001) ;
710 (PID.TID 0000.0001) saltMultiDimAdvec = /* use Muti-Dim Advec method for Salt */
711 (PID.TID 0000.0001) F
712 (PID.TID 0000.0001) ;
713 (PID.TID 0000.0001) saltSOM_Advection = /* use 2nd Order Moment Advection for Salt */
714 (PID.TID 0000.0001) F
715 (PID.TID 0000.0001) ;
716 (PID.TID 0000.0001) AdamsBashforthGs = /* apply Adams-Bashforth extrapolation on Gs */
717 (PID.TID 0000.0001) F
718 (PID.TID 0000.0001) ;
719 (PID.TID 0000.0001) AdamsBashforth_S = /* apply Adams-Bashforth extrapolation on Salt */
720 (PID.TID 0000.0001) F
721 (PID.TID 0000.0001) ;
722 (PID.TID 0000.0001) // ===================================
723 (PID.TID 0000.0001) // =======================================================
724 (PID.TID 0000.0001) // Seaice configuration (SEAICE_PARM01) >>> START <<<
725 (PID.TID 0000.0001) // =======================================================
726 (PID.TID 0000.0001)
727 (PID.TID 0000.0001) Seaice time stepping configuration > START <
728 (PID.TID 0000.0001) ----------------------------------------------
729 (PID.TID 0000.0001) SEAICE_deltaTtherm= /* thermodynamic timestep */
730 (PID.TID 0000.0001) 3.600000000000000E+03
731 (PID.TID 0000.0001) ;
732 (PID.TID 0000.0001) SEAICE_deltaTdyn = /* dynamic timestep */
733 (PID.TID 0000.0001) 3.600000000000000E+03
734 (PID.TID 0000.0001) ;
735 (PID.TID 0000.0001) SEAICE_deltaTevp = /* EVP timestep */
736 (PID.TID 0000.0001) 1.234567000000000E+05
737 (PID.TID 0000.0001) ;
738 (PID.TID 0000.0001) SEAICEuseAB2 = /* use Adams-Bashforth for mom. eq. */
739 (PID.TID 0000.0001) F
740 (PID.TID 0000.0001) ;
741 (PID.TID 0000.0001) SEAICErestoreUnderIce = /* restore T and S under ice */
742 (PID.TID 0000.0001) T
743 (PID.TID 0000.0001) ;
744 (PID.TID 0000.0001)
745 (PID.TID 0000.0001) Seaice dynamics configuration > START <
746 (PID.TID 0000.0001) ------------------------------------------
747 (PID.TID 0000.0001) SEAICEuseDYNAMICS = /* use dynamics */
748 (PID.TID 0000.0001) T
749 (PID.TID 0000.0001) ;
750 (PID.TID 0000.0001) model grid type = /* type of sea ice model grid */
751 (PID.TID 0000.0001) 'C-GRID'
752 (PID.TID 0000.0001) ;
753 (PID.TID 0000.0001) SEAICEuseEVP = /* use EVP solver rather than LSR */
754 (PID.TID 0000.0001) F
755 (PID.TID 0000.0001) ;
756 (PID.TID 0000.0001) SEAICEuseFREEDRIFT = /* use free drift solution */
757 (PID.TID 0000.0001) F
758 (PID.TID 0000.0001) ;
759 (PID.TID 0000.0001) OCEAN_drag = /* air-ocean drag coefficient */
760 (PID.TID 0000.0001) 8.154100000000000E-04
761 (PID.TID 0000.0001) ;
762 (PID.TID 0000.0001) SEAICE_drag = /* air-ice drag coefficient */
763 (PID.TID 0000.0001) 2.000000000000000E-03
764 (PID.TID 0000.0001) ;
765 (PID.TID 0000.0001) SEAICE_drag_south = /* Southern Ocean SEAICE_drag */
766 (PID.TID 0000.0001) 2.000000000000000E-03
767 (PID.TID 0000.0001) ;
768 (PID.TID 0000.0001) SEAICE_waterDrag = /* water-ice drag * density */
769 (PID.TID 0000.0001) 5.350800000000000E+00
770 (PID.TID 0000.0001) ;
771 (PID.TID 0000.0001) SEAICE_waterDrag_south = /* Southern Ocean waterDrag */
772 (PID.TID 0000.0001) 5.350800000000000E+00
773 (PID.TID 0000.0001) ;
774 (PID.TID 0000.0001) SEAICEuseTilt = /* include surface tilt in dyna. */
775 (PID.TID 0000.0001) T
776 (PID.TID 0000.0001) ;
777 (PID.TID 0000.0001) SEAICEuseTEM = /* use truncated ellipse rheology */
778 (PID.TID 0000.0001) F
779 (PID.TID 0000.0001) ;
780 (PID.TID 0000.0001) SEAICE_strength = /* sea-ice strength Pstar */
781 (PID.TID 0000.0001) 2.678000000000000E+04
782 (PID.TID 0000.0001) ;
783 (PID.TID 0000.0001) SEAICEpresH0 = /* sea-ice strength Heff threshold */
784 (PID.TID 0000.0001) 1.000000000000000E+00
785 (PID.TID 0000.0001) ;
786 (PID.TID 0000.0001) SEAICEpresPow0 = /* exponent for Heff<SEAICEpresH0 */
787 (PID.TID 0000.0001) 1
788 (PID.TID 0000.0001) ;
789 (PID.TID 0000.0001) SEAICEpresPow1 = /* exponent for Heff>SEAICEpresH0 */
790 (PID.TID 0000.0001) 1
791 (PID.TID 0000.0001) ;
792 (PID.TID 0000.0001) SEAICEetaZmethod = /* method computing eta at Z-point */
793 (PID.TID 0000.0001) 0
794 (PID.TID 0000.0001) ;
795 (PID.TID 0000.0001) SEAICE_zetaMin = /* lower bound for viscosity */
796 (PID.TID 0000.0001) 0.000000000000000E+00
797 (PID.TID 0000.0001) ;
798 (PID.TID 0000.0001) SEAICE_eccen = /* elliptical yield curve eccent */
799 (PID.TID 0000.0001) 2.000000000000000E+00
800 (PID.TID 0000.0001) ;
801 (PID.TID 0000.0001) SEAICEstressFactor = /* wind stress scaling factor */
802 (PID.TID 0000.0001) 1.000000000000000E+00
803 (PID.TID 0000.0001) ;
804 (PID.TID 0000.0001) SEAICE_airTurnAngle = /* air-ice turning angle */
805 (PID.TID 0000.0001) 0.000000000000000E+00
806 (PID.TID 0000.0001) ;
807 (PID.TID 0000.0001) SEAICE_waterTurnAngle = /* ice-water turning angle */
808 (PID.TID 0000.0001) 0.000000000000000E+00
809 (PID.TID 0000.0001) ;
810 (PID.TID 0000.0001) SEAICEuseMetricTerms = /* use metric terms */
811 (PID.TID 0000.0001) T
812 (PID.TID 0000.0001) ;
813 (PID.TID 0000.0001) SEAICE_no_slip = /* no slip boundary conditions */
814 (PID.TID 0000.0001) F
815 (PID.TID 0000.0001) ;
816 (PID.TID 0000.0001) SEAICE_clipVeloctities = /* impose max. vels. */
817 (PID.TID 0000.0001) F
818 (PID.TID 0000.0001) ;
819 (PID.TID 0000.0001) useHB87stressCoupling = /* altern. ice-ocean stress */
820 (PID.TID 0000.0001) F
821 (PID.TID 0000.0001) ;
822 (PID.TID 0000.0001) SEAICE_maskRHS = /* mask RHS of solver */
823 (PID.TID 0000.0001) F
824 (PID.TID 0000.0001) ;
825 (PID.TID 0000.0001) LSR_mixIniGuess = /* mix free-drift sol. into LSR initial Guess */
826 (PID.TID 0000.0001) 1
827 (PID.TID 0000.0001) ;
828 (PID.TID 0000.0001) SOLV_MAX_ITERS = /* max. number of LSR solver steps */
829 (PID.TID 0000.0001) 1500
830 (PID.TID 0000.0001) ;
831 (PID.TID 0000.0001) SEAICE_LSRrelaxU = /* LSR solver: relaxation parameter */
832 (PID.TID 0000.0001) 9.500000000000000E-01
833 (PID.TID 0000.0001) ;
834 (PID.TID 0000.0001) SEAICE_LSRrelaxV = /* LSR solver: relaxation parameter */
835 (PID.TID 0000.0001) 9.500000000000000E-01
836 (PID.TID 0000.0001) ;
837 (PID.TID 0000.0001) LSR_ERROR = /* sets accuracy of LSR solver */
838 (PID.TID 0000.0001) 1.000000000000000E-12
839 (PID.TID 0000.0001) ;
840 (PID.TID 0000.0001) SOLV_NCHECK = /* test interval for LSR solver */
841 (PID.TID 0000.0001) 2
842 (PID.TID 0000.0001) ;
843 (PID.TID 0000.0001) NPSEUDOTIMESTEPS = /* num. of extra pseudo time steps */
844 (PID.TID 0000.0001) 2
845 (PID.TID 0000.0001) ;
846 (PID.TID 0000.0001) SEAICEuseMultiTileSolver = /* use full domain tri-diag solver */
847 (PID.TID 0000.0001) F
848 (PID.TID 0000.0001) ;
849 (PID.TID 0000.0001) SEAICE_OLx = /* overlap for LSR/preconditioner */
850 (PID.TID 0000.0001) 1
851 (PID.TID 0000.0001) ;
852 (PID.TID 0000.0001) SEAICE_OLy = /* overlap for LSR/preconditioner */
853 (PID.TID 0000.0001) 1
854 (PID.TID 0000.0001) ;
855 (PID.TID 0000.0001)
856 (PID.TID 0000.0001) Seaice advection diffusion config, > START <
857 (PID.TID 0000.0001) -----------------------------------------------
858 (PID.TID 0000.0001) ==> advection diffusion done in pkg ThSIce
859 (PID.TID 0000.0001)
860 (PID.TID 0000.0001) Seaice thermodynamics configuration > START <
861 (PID.TID 0000.0001) -----------------------------------------------
862 (PID.TID 0000.0001) SEAICE_rhoIce = /* density of sea ice (kg/m3) */
863 (PID.TID 0000.0001) 9.100000000000000E+02
864 (PID.TID 0000.0001) ;
865 (PID.TID 0000.0001) SEAICE_rhoSnow = /* density of snow (kg/m3) */
866 (PID.TID 0000.0001) 3.300000000000000E+02
867 (PID.TID 0000.0001) ;
868 (PID.TID 0000.0001) SEAICE_rhoAir = /* density of air (kg/m3) */
869 (PID.TID 0000.0001) 1.300000000000000E+00
870 (PID.TID 0000.0001) ;
871 (PID.TID 0000.0001) usePW79thermodynamics = /* default 0-layer TD */
872 (PID.TID 0000.0001) F
873 (PID.TID 0000.0001) ;
874 (PID.TID 0000.0001) pkg/seaice thermodynamics is OFF
875 (PID.TID 0000.0001)
876 (PID.TID 0000.0001) Seaice initialization and IO config., > START <
877 (PID.TID 0000.0001) -------------------------------------------------
878 (PID.TID 0000.0001) SEAICE_initialHEFF= /* initial sea-ice thickness */
879 (PID.TID 0000.0001) 0.000000000000000E+00
880 (PID.TID 0000.0001) ;
881 (PID.TID 0000.0001) AreaFile = /* Initial ice concentration File */
882 (PID.TID 0000.0001) ''
883 (PID.TID 0000.0001) ;
884 (PID.TID 0000.0001) HeffFile = /* Initial effective ice thickness File */
885 (PID.TID 0000.0001) ''
886 (PID.TID 0000.0001) ;
887 (PID.TID 0000.0001) HsnowFile = /* Initial snow thickness File */
888 (PID.TID 0000.0001) ''
889 (PID.TID 0000.0001) ;
890 (PID.TID 0000.0001) uIceFile = /* Initial U-ice velocity File */
891 (PID.TID 0000.0001) ''
892 (PID.TID 0000.0001) ;
893 (PID.TID 0000.0001) vIceFile = /* Initial V-ice velocity File */
894 (PID.TID 0000.0001) ''
895 (PID.TID 0000.0001) ;
896 (PID.TID 0000.0001) SEAICEwriteState = /* write sea ice state to file */
897 (PID.TID 0000.0001) T
898 (PID.TID 0000.0001) ;
899 (PID.TID 0000.0001) SEAICE_monFreq = /* monitor frequency */
900 (PID.TID 0000.0001) 2.160000000000000E+04
901 (PID.TID 0000.0001) ;
902 (PID.TID 0000.0001) SEAICE_dumpFreq = /* dump frequency */
903 (PID.TID 0000.0001) 8.640000000000000E+04
904 (PID.TID 0000.0001) ;
905 (PID.TID 0000.0001) SEAICE_taveFreq = /* time-averaging frequency */
906 (PID.TID 0000.0001) 0.000000000000000E+00
907 (PID.TID 0000.0001) ;
908 (PID.TID 0000.0001) SEAICE_mon_stdio = /* write monitor to std-outp */
909 (PID.TID 0000.0001) T
910 (PID.TID 0000.0001) ;
911 (PID.TID 0000.0001) SEAICE_dump_mdsio = /* write snap-shot using MDSIO */
912 (PID.TID 0000.0001) T
913 (PID.TID 0000.0001) ;
914 (PID.TID 0000.0001) SEAICE_tave_mdsio = /* write TimeAverage using MDSIO */
915 (PID.TID 0000.0001) T
916 (PID.TID 0000.0001) ;
917 (PID.TID 0000.0001)
918 (PID.TID 0000.0001) Seaice regularization numbers, > START <
919 (PID.TID 0000.0001) -----------------------------------------------
920 (PID.TID 0000.0001) SEAICE_EPS = /* reduce derivative singularities */
921 (PID.TID 0000.0001) 1.000000000000000E-10
922 (PID.TID 0000.0001) ;
923 (PID.TID 0000.0001) SEAICE_EPS_SQ = /* reduce derivative singularities */
924 (PID.TID 0000.0001) 1.000000000000000E-20
925 (PID.TID 0000.0001) ;
926 (PID.TID 0000.0001) SEAICE_area_reg = /* reduce derivative singularities */
927 (PID.TID 0000.0001) 1.000000000000000E-05
928 (PID.TID 0000.0001) ;
929 (PID.TID 0000.0001) SEAICE_hice_reg = /* reduce derivative singularities */
930 (PID.TID 0000.0001) 5.000000000000000E-02
931 (PID.TID 0000.0001) ;
932 (PID.TID 0000.0001) SEAICE_area_floor = /* reduce derivative singularities */
933 (PID.TID 0000.0001) 1.000000000000000E-05
934 (PID.TID 0000.0001) ;
935 (PID.TID 0000.0001)
936 (PID.TID 0000.0001) // =======================================================
937 (PID.TID 0000.0001) // Seaice configuration (SEAICE_PARM01) >>> END <<<
938 (PID.TID 0000.0001) // =======================================================
939 (PID.TID 0000.0001)
940 (PID.TID 0000.0001) ------------------------------------------------------------
941 (PID.TID 0000.0001) DIAGNOSTICS_SET_LEVELS: done
942 (PID.TID 0000.0001) Total Nb of available Diagnostics: ndiagt= 232
943 (PID.TID 0000.0001) write list of available Diagnostics to file: available_diagnostics.log
944 (PID.TID 0000.0001) SETDIAG: Allocate 1 x 1 Levels for Diagnostic # 121 CH_TAIR
945 (PID.TID 0000.0001) SETDIAG: Allocate 1 x 1 Levels for Diagnostic # 123 CH_QAIR
946 (PID.TID 0000.0001) SETDIAG: Allocate 1 x 1 Levels for Diagnostic # 26 THETA
947 (PID.TID 0000.0001) SETDIAG: Allocate 1 x 1 Levels for Diagnostic # 200 SI_Fract
948 (PID.TID 0000.0001) SETDIAG: Allocate 1 x 1 Levels for Diagnostic # 201 SI_Thick
949 (PID.TID 0000.0001) - NOTE - SETDIAG: Counter-mate # 200 SI_Fract is already set
950 (PID.TID 0000.0001) SETDIAG: Allocate 1 x 1 Levels for Diagnostic # 202 SI_SnowH
951 (PID.TID 0000.0001) - NOTE - SETDIAG: Counter-mate # 200 SI_Fract is already set
952 (PID.TID 0000.0001) SETDIAG: Allocate 1 x 1 Levels for Diagnostic # 142 SIuice
953 (PID.TID 0000.0001) SETDIAG: Allocate 1 x 1 Levels for Diagnostic # 143 SIvice
954 (PID.TID 0000.0001) SETDIAG: Allocate 1 x 1 Levels for Diagnostic # 211 SIflxAtm
955 (PID.TID 0000.0001) SETDIAG: Allocate 1 x 1 Levels for Diagnostic # 212 SIfrwAtm
956 (PID.TID 0000.0001) SETDIAG: Allocate 1 x 1 Levels for Diagnostic # 210 SIsnwPrc
957 (PID.TID 0000.0001) - NOTE - SETDIAG: Counter-mate # 200 SI_Fract is already set
958 (PID.TID 0000.0001) SETDIAG: Allocate 1 x 1 Levels for Diagnostic # 122 CH_QNET
959 (PID.TID 0000.0001) SETDIAG: Allocate 1 x 1 Levels for Diagnostic # 124 CH_EmP
960 (PID.TID 0000.0001) SETDIAG: Allocate 1 x 1 Levels for Diagnostic # 129 CH_SH
961 (PID.TID 0000.0001) SETDIAG: Allocate 1 x 1 Levels for Diagnostic # 128 CH_LH
962 (PID.TID 0000.0001) SETDIAG: Allocate 1 x 1 Levels for Diagnostic # 130 CH_Prec
963 (PID.TID 0000.0001) SETDIAG: Allocate 1 x 1 Levels for Diagnostic # 131 CH_q100
964 (PID.TID 0000.0001) SETDIAG: Allocate 1 x 1 Levels for Diagnostic # 132 CH_ssqt
965 (PID.TID 0000.0001) SETDIAG: Allocate 1 x 1 Levels for Diagnostic # 200 SI_Fract
966 (PID.TID 0000.0001) SETDIAG: Allocate 1 x 1 Levels for Diagnostic # 201 SI_Thick
967 (PID.TID 0000.0001) - NOTE - SETDIAG: Counter-mate # 200 SI_Fract is already set
968 (PID.TID 0000.0001) SETDIAG: Allocate 1 x 1 Levels for Diagnostic # 26 THETA
969 (PID.TID 0000.0001) SETDIAG: Allocate 1 x 1 Levels for Diagnostic # 203 SI_Tsrf
970 (PID.TID 0000.0001) - NOTE - SETDIAG: Counter-mate # 200 SI_Fract is already set
971 (PID.TID 0000.0001) SETDIAG: Allocate 1 x 1 Levels for Diagnostic # 213 SIflx2oc
972 (PID.TID 0000.0001) SETDIAG: Allocate 1 x 1 Levels for Diagnostic # 214 SIfrw2oc
973 (PID.TID 0000.0001) SETDIAG: Allocate 1 x 1 Levels for Diagnostic # 215 SIsaltFx
974 (PID.TID 0000.0001) SETDIAG: Allocate 1 x 1 Levels for Diagnostic # 85 oceQsw
975 (PID.TID 0000.0001) SETDIAG: Allocate 1 x 1 Levels for Diagnostic # 211 SIflxAtm
976 (PID.TID 0000.0001) SETDIAG: Allocate 1 x 1 Levels for Diagnostic # 212 SIfrwAtm
977 (PID.TID 0000.0001) SETDIAG: Allocate 1 x 1 Levels for Diagnostic # 130 CH_Prec
978 (PID.TID 0000.0001) SETDIAG: Allocate 1 x 1 Levels for Diagnostic # 142 SIuice
979 (PID.TID 0000.0001) SETDIAG: Allocate 1 x 1 Levels for Diagnostic # 143 SIvice
980 (PID.TID 0000.0001) space allocated for all diagnostics: 31 levels
981 (PID.TID 0000.0001) set mate pointer for diag # 142 SIuice , Parms: UU M1 , mate: 143
982 (PID.TID 0000.0001) set mate pointer for diag # 143 SIvice , Parms: VV M1 , mate: 142
983 (PID.TID 0000.0001) set mate pointer for diag # 142 SIuice , Parms: UU M1 , mate: 143
984 (PID.TID 0000.0001) set mate pointer for diag # 143 SIvice , Parms: VV M1 , mate: 142
985 (PID.TID 0000.0001) DIAGNOSTICS_SET_POINTERS: Set levels for Outp.Stream: cheapAML
986 (PID.TID 0000.0001) Levels: 1.
987 (PID.TID 0000.0001) DIAGNOSTICS_SET_POINTERS: Set levels for Outp.Stream: iceDiag
988 (PID.TID 0000.0001) Levels: 1.
989 (PID.TID 0000.0001) DIAGNOSTICS_SET_POINTERS: done
990 (PID.TID 0000.0001) ------------------------------------------------------------
991 (PID.TID 0000.0001) DIAGSTATS_SET_REGIONS: define no region
992 (PID.TID 0000.0001) ------------------------------------------------------------
993 (PID.TID 0000.0001) SETDIAG: Allocate 1 Levels for Stats-Diag # 200 SI_Fract
994 (PID.TID 0000.0001) SETDIAG: Allocate 1 Levels for Stats-Diag # 201 SI_Thick
995 (PID.TID 0000.0001) - NOTE - SETDIAG: Counter Diagnostic # 200 SI_Fract has already been set
996 (PID.TID 0000.0001) SETDIAG: Allocate 1 Levels for Stats-Diag # 202 SI_SnowH
997 (PID.TID 0000.0001) - NOTE - SETDIAG: Counter Diagnostic # 200 SI_Fract has already been set
998 (PID.TID 0000.0001) SETDIAG: Allocate 1 Levels for Stats-Diag # 26 THETA
999 (PID.TID 0000.0001) SETDIAG: Allocate 1 Levels for Stats-Diag # 203 SI_Tsrf
1000 (PID.TID 0000.0001) - NOTE - SETDIAG: Counter Diagnostic # 200 SI_Fract has already been set
1001 (PID.TID 0000.0001) SETDIAG: Allocate 1 Levels for Stats-Diag # 204 SI_Tice1
1002 (PID.TID 0000.0001) - NOTE - SETDIAG: Counter Diagnostic # 200 SI_Fract has already been set
1003 (PID.TID 0000.0001) SETDIAG: Allocate 1 Levels for Stats-Diag # 205 SI_Tice2
1004 (PID.TID 0000.0001) - NOTE - SETDIAG: Counter Diagnostic # 200 SI_Fract has already been set
1005 (PID.TID 0000.0001) SETDIAG: Allocate 1 Levels for Stats-Diag # 213 SIflx2oc
1006 (PID.TID 0000.0001) SETDIAG: Allocate 1 Levels for Stats-Diag # 214 SIfrw2oc
1007 (PID.TID 0000.0001) SETDIAG: Allocate 1 Levels for Stats-Diag # 215 SIsaltFx
1008 (PID.TID 0000.0001) SETDIAG: Allocate 1 Levels for Stats-Diag # 211 SIflxAtm
1009 (PID.TID 0000.0001) SETDIAG: Allocate 1 Levels for Stats-Diag # 212 SIfrwAtm
1010 (PID.TID 0000.0001) SETDIAG: Allocate 1 Levels for Stats-Diag # 142 SIuice
1011 (PID.TID 0000.0001) SETDIAG: Allocate 1 Levels for Stats-Diag # 143 SIvice
1012 (PID.TID 0000.0001) SETDIAG: Allocate 1 Levels for Stats-Diag # 121 CH_TAIR
1013 (PID.TID 0000.0001) SETDIAG: Allocate 1 Levels for Stats-Diag # 123 CH_QAIR
1014 (PID.TID 0000.0001) SETDIAG: Allocate 1 Levels for Stats-Diag # 122 CH_QNET
1015 (PID.TID 0000.0001) SETDIAG: Allocate 1 Levels for Stats-Diag # 124 CH_EmP
1016 (PID.TID 0000.0001) SETDIAG: Allocate 1 Levels for Stats-Diag # 129 CH_SH
1017 (PID.TID 0000.0001) SETDIAG: Allocate 1 Levels for Stats-Diag # 128 CH_LH
1018 (PID.TID 0000.0001) SETDIAG: Allocate 1 Levels for Stats-Diag # 130 CH_Prec
1019 (PID.TID 0000.0001) SETDIAG: Allocate 1 Levels for Stats-Diag # 131 CH_q100
1020 (PID.TID 0000.0001) SETDIAG: Allocate 1 Levels for Stats-Diag # 132 CH_ssqt
1021 (PID.TID 0000.0001) SETDIAG: Allocate 1 Levels for Stats-Diag # 210 SIsnwPrc
1022 (PID.TID 0000.0001) - NOTE - SETDIAG: Counter Diagnostic # 200 SI_Fract has already been set
1023 (PID.TID 0000.0001) space allocated for all stats-diags: 24 levels
1024 (PID.TID 0000.0001) DIAGSTATS_SET_POINTERS: done
1025 (PID.TID 0000.0001) ------------------------------------------------------------
1026 (PID.TID 0000.0001) DIAGSTATS_INI_IO: open file: iceStDiag.0000000000.txt , unit= 9
1027 (PID.TID 0000.0001) DIAGSTATS_INI_IO: open file: cheapStDiag.0000000000.txt , unit= 10
1028 (PID.TID 0000.0001) %MON fCori_max = 0.0000000000000E+00
1029 (PID.TID 0000.0001) %MON fCori_min = 0.0000000000000E+00
1030 (PID.TID 0000.0001) %MON fCori_mean = 0.0000000000000E+00
1031 (PID.TID 0000.0001) %MON fCori_sd = 0.0000000000000E+00
1032 (PID.TID 0000.0001) %MON fCoriG_max = 0.0000000000000E+00
1033 (PID.TID 0000.0001) %MON fCoriG_min = 0.0000000000000E+00
1034 (PID.TID 0000.0001) %MON fCoriG_mean = 0.0000000000000E+00
1035 (PID.TID 0000.0001) %MON fCoriG_sd = 0.0000000000000E+00
1036 (PID.TID 0000.0001) %MON fCoriCos_max = 0.0000000000000E+00
1037 (PID.TID 0000.0001) %MON fCoriCos_min = 0.0000000000000E+00
1038 (PID.TID 0000.0001) %MON fCoriCos_mean = 0.0000000000000E+00
1039 (PID.TID 0000.0001) %MON fCoriCos_sd = 0.0000000000000E+00
1040 (PID.TID 0000.0001) INI_CG2D: CG2D normalisation factor = 1.0000000000000001E-01
1041 (PID.TID 0000.0001)
1042 (PID.TID 0000.0001) // =======================================================
1043 (PID.TID 0000.0001) // Model configuration
1044 (PID.TID 0000.0001) // =======================================================
1045 (PID.TID 0000.0001) //
1046 (PID.TID 0000.0001) // "Physical" paramters ( PARM01 in namelist )
1047 (PID.TID 0000.0001) //
1048 (PID.TID 0000.0001) buoyancyRelation = /* Type of relation to get Buoyancy */
1049 (PID.TID 0000.0001) 'OCEANIC'
1050 (PID.TID 0000.0001) ;
1051 (PID.TID 0000.0001) fluidIsAir = /* fluid major constituent is Air */
1052 (PID.TID 0000.0001) F
1053 (PID.TID 0000.0001) ;
1054 (PID.TID 0000.0001) fluidIsWater = /* fluid major constituent is Water */
1055 (PID.TID 0000.0001) T
1056 (PID.TID 0000.0001) ;
1057 (PID.TID 0000.0001) usingPCoords = /* use p (or p*) vertical coordinate */
1058 (PID.TID 0000.0001) F
1059 (PID.TID 0000.0001) ;
1060 (PID.TID 0000.0001) usingZCoords = /* use z (or z*) vertical coordinate */
1061 (PID.TID 0000.0001) T
1062 (PID.TID 0000.0001) ;
1063 (PID.TID 0000.0001) tRef = /* Reference temperature profile ( oC or K ) */
1064 (PID.TID 0000.0001) -1.620000000000000E+00 /* K = 1 */
1065 (PID.TID 0000.0001) ;
1066 (PID.TID 0000.0001) sRef = /* Reference salinity profile ( psu ) */
1067 (PID.TID 0000.0001) 3.000000000000000E+01 /* K = 1 */
1068 (PID.TID 0000.0001) ;
1069 (PID.TID 0000.0001) viscAh = /* Lateral eddy viscosity ( m^2/s ) */
1070 (PID.TID 0000.0001) 3.000000000000000E+02
1071 (PID.TID 0000.0001) ;
1072 (PID.TID 0000.0001) viscAhMax = /* Maximum lateral eddy viscosity ( m^2/s ) */
1073 (PID.TID 0000.0001) 1.000000000000000E+21
1074 (PID.TID 0000.0001) ;
1075 (PID.TID 0000.0001) viscAhGrid = /* Grid dependent lateral eddy viscosity ( non-dim. ) */
1076 (PID.TID 0000.0001) 0.000000000000000E+00
1077 (PID.TID 0000.0001) ;
1078 (PID.TID 0000.0001) useFullLeith = /* Use Full Form of Leith Viscosity on/off flag*/
1079 (PID.TID 0000.0001) F
1080 (PID.TID 0000.0001) ;
1081 (PID.TID 0000.0001) useStrainTensionVisc= /* Use StrainTension Form of Viscous Operator flag*/
1082 (PID.TID 0000.0001) F
1083 (PID.TID 0000.0001) ;
1084 (PID.TID 0000.0001) useAreaViscLength = /* Use area for visc length instead of geom. mean*/
1085 (PID.TID 0000.0001) F
1086 (PID.TID 0000.0001) ;
1087 (PID.TID 0000.0001) viscC2leith = /* Leith harmonic visc. factor (on grad(vort),non-dim.) */
1088 (PID.TID 0000.0001) 0.000000000000000E+00
1089 (PID.TID 0000.0001) ;
1090 (PID.TID 0000.0001) viscC2leithD = /* Leith harmonic viscosity factor (on grad(div),non-dim.)*/
1091 (PID.TID 0000.0001) 0.000000000000000E+00
1092 (PID.TID 0000.0001) ;
1093 (PID.TID 0000.0001) viscC2smag = /* Smagorinsky harmonic viscosity factor (non-dim.) */
1094 (PID.TID 0000.0001) 0.000000000000000E+00
1095 (PID.TID 0000.0001) ;
1096 (PID.TID 0000.0001) viscA4 = /* Lateral biharmonic viscosity ( m^4/s ) */
1097 (PID.TID 0000.0001) 0.000000000000000E+00
1098 (PID.TID 0000.0001) ;
1099 (PID.TID 0000.0001) viscA4Max = /* Maximum biharmonic viscosity ( m^2/s ) */
1100 (PID.TID 0000.0001) 1.000000000000000E+21
1101 (PID.TID 0000.0001) ;
1102 (PID.TID 0000.0001) viscA4Grid = /* Grid dependent biharmonic viscosity ( non-dim. ) */
1103 (PID.TID 0000.0001) 0.000000000000000E+00
1104 (PID.TID 0000.0001) ;
1105 (PID.TID 0000.0001) viscC4leith = /* Leith biharm viscosity factor (on grad(vort), non-dim.)*/
1106 (PID.TID 0000.0001) 0.000000000000000E+00
1107 (PID.TID 0000.0001) ;
1108 (PID.TID 0000.0001) viscC4leithD = /* Leith biharm viscosity factor (on grad(div), non-dim.) */
1109 (PID.TID 0000.0001) 0.000000000000000E+00
1110 (PID.TID 0000.0001) ;
1111 (PID.TID 0000.0001) viscC4Smag = /* Smagorinsky biharm viscosity factor (non-dim) */
1112 (PID.TID 0000.0001) 0.000000000000000E+00
1113 (PID.TID 0000.0001) ;
1114 (PID.TID 0000.0001) no_slip_sides = /* Viscous BCs: No-slip sides */
1115 (PID.TID 0000.0001) F
1116 (PID.TID 0000.0001) ;
1117 (PID.TID 0000.0001) sideDragFactor = /* side-drag scaling factor (non-dim) */
1118 (PID.TID 0000.0001) 2.000000000000000E+00
1119 (PID.TID 0000.0001) ;
1120 (PID.TID 0000.0001) viscArNr = /* vertical profile of vertical viscosity ( m^2/s )*/
1121 (PID.TID 0000.0001) 3.000000000000000E-02 /* K = 1 */
1122 (PID.TID 0000.0001) ;
1123 (PID.TID 0000.0001) no_slip_bottom = /* Viscous BCs: No-slip bottom */
1124 (PID.TID 0000.0001) T
1125 (PID.TID 0000.0001) ;
1126 (PID.TID 0000.0001) bottomDragLinear = /* linear bottom-drag coefficient ( m/s ) */
1127 (PID.TID 0000.0001) 0.000000000000000E+00
1128 (PID.TID 0000.0001) ;
1129 (PID.TID 0000.0001) bottomDragQuadratic = /* quadratic bottom-drag coefficient (-) */
1130 (PID.TID 0000.0001) 5.000000000000000E-03
1131 (PID.TID 0000.0001) ;
1132 (PID.TID 0000.0001) diffKhT = /* Laplacian diffusion of heat laterally ( m^2/s ) */
1133 (PID.TID 0000.0001) 0.000000000000000E+00
1134 (PID.TID 0000.0001) ;
1135 (PID.TID 0000.0001) diffK4T = /* Biharmonic diffusion of heat laterally ( m^4/s ) */
1136 (PID.TID 0000.0001) 0.000000000000000E+00
1137 (PID.TID 0000.0001) ;
1138 (PID.TID 0000.0001) diffKhS = /* Laplacian diffusion of salt laterally ( m^2/s ) */
1139 (PID.TID 0000.0001) 0.000000000000000E+00
1140 (PID.TID 0000.0001) ;
1141 (PID.TID 0000.0001) diffK4S = /* Biharmonic diffusion of salt laterally ( m^4/s ) */
1142 (PID.TID 0000.0001) 0.000000000000000E+00
1143 (PID.TID 0000.0001) ;
1144 (PID.TID 0000.0001) diffKrNrT = /* vertical profile of vertical diffusion of Temp ( m^2/s )*/
1145 (PID.TID 0000.0001) 0.000000000000000E+00 /* K = 1 */
1146 (PID.TID 0000.0001) ;
1147 (PID.TID 0000.0001) diffKrNrS = /* vertical profile of vertical diffusion of Salt ( m^2/s )*/
1148 (PID.TID 0000.0001) 0.000000000000000E+00 /* K = 1 */
1149 (PID.TID 0000.0001) ;
1150 (PID.TID 0000.0001) diffKrBL79surf = /* Surface diffusion for Bryan and Lewis 79 ( m^2/s ) */
1151 (PID.TID 0000.0001) 0.000000000000000E+00
1152 (PID.TID 0000.0001) ;
1153 (PID.TID 0000.0001) diffKrBL79deep = /* Deep diffusion for Bryan and Lewis 1979 ( m^2/s ) */
1154 (PID.TID 0000.0001) 0.000000000000000E+00
1155 (PID.TID 0000.0001) ;
1156 (PID.TID 0000.0001) diffKrBL79scl = /* Depth scale for Bryan and Lewis 1979 ( m ) */
1157 (PID.TID 0000.0001) 2.000000000000000E+02
1158 (PID.TID 0000.0001) ;
1159 (PID.TID 0000.0001) diffKrBL79Ho = /* Turning depth for Bryan and Lewis 1979 ( m ) */
1160 (PID.TID 0000.0001) -2.000000000000000E+03
1161 (PID.TID 0000.0001) ;
1162 (PID.TID 0000.0001) ivdc_kappa = /* Implicit Vertical Diffusivity for Convection ( m^2/s) */
1163 (PID.TID 0000.0001) 0.000000000000000E+00
1164 (PID.TID 0000.0001) ;
1165 (PID.TID 0000.0001) hMixCriteria= /* Criteria for mixed-layer diagnostic */
1166 (PID.TID 0000.0001) -8.000000000000000E-01
1167 (PID.TID 0000.0001) ;
1168 (PID.TID 0000.0001) dRhoSmall = /* Parameter for mixed-layer diagnostic */
1169 (PID.TID 0000.0001) 1.000000000000000E-06
1170 (PID.TID 0000.0001) ;
1171 (PID.TID 0000.0001) hMixSmooth= /* Smoothing parameter for mixed-layer diagnostic */
1172 (PID.TID 0000.0001) 0.000000000000000E+00
1173 (PID.TID 0000.0001) ;
1174 (PID.TID 0000.0001) eosType = /* Type of Equation of State */
1175 (PID.TID 0000.0001) 'LINEAR'
1176 (PID.TID 0000.0001) ;
1177 (PID.TID 0000.0001) tAlpha = /* Linear EOS thermal expansion coefficient ( 1/oC ) */
1178 (PID.TID 0000.0001) 2.000000000000000E-04
1179 (PID.TID 0000.0001) ;
1180 (PID.TID 0000.0001) sBeta = /* Linear EOS haline contraction coefficient ( 1/psu ) */
1181 (PID.TID 0000.0001) 0.000000000000000E+00
1182 (PID.TID 0000.0001) ;
1183 (PID.TID 0000.0001) rhoNil = /* Reference density for Linear EOS ( kg/m^3 ) */
1184 (PID.TID 0000.0001) 1.030000000000000E+03
1185 (PID.TID 0000.0001) ;
1186 (PID.TID 0000.0001) celsius2K = /* 0 degree Celsius converted to Kelvin ( K ) */
1187 (PID.TID 0000.0001) 2.731500000000000E+02
1188 (PID.TID 0000.0001) ;
1189 (PID.TID 0000.0001) rhoConst = /* Reference density (Boussinesq) ( kg/m^3 ) */
1190 (PID.TID 0000.0001) 1.030000000000000E+03
1191 (PID.TID 0000.0001) ;
1192 (PID.TID 0000.0001) rhoFacC = /* normalized Reference density @ cell-Center (-) */
1193 (PID.TID 0000.0001) 1.000000000000000E+00 /* K = 1 */
1194 (PID.TID 0000.0001) ;
1195 (PID.TID 0000.0001) rhoFacF = /* normalized Reference density @ W-Interface (-) */
1196 (PID.TID 0000.0001) 2 @ 1.000000000000000E+00 /* K = 1: 2 */
1197 (PID.TID 0000.0001) ;
1198 (PID.TID 0000.0001) rhoConstFresh = /* Fresh-water reference density ( kg/m^3 ) */
1199 (PID.TID 0000.0001) 1.000000000000000E+03
1200 (PID.TID 0000.0001) ;
1201 (PID.TID 0000.0001) gravity = /* Gravitational acceleration ( m/s^2 ) */
1202 (PID.TID 0000.0001) 9.810000000000000E+00
1203 (PID.TID 0000.0001) ;
1204 (PID.TID 0000.0001) gBaro = /* Barotropic gravity ( m/s^2 ) */
1205 (PID.TID 0000.0001) 9.810000000000000E+00
1206 (PID.TID 0000.0001) ;
1207 (PID.TID 0000.0001) rotationPeriod = /* Rotation Period ( s ) */
1208 (PID.TID 0000.0001) 8.616400000000000E+04
1209 (PID.TID 0000.0001) ;
1210 (PID.TID 0000.0001) omega = /* Angular velocity ( rad/s ) */
1211 (PID.TID 0000.0001) 7.292123516990375E-05
1212 (PID.TID 0000.0001) ;
1213 (PID.TID 0000.0001) f0 = /* Reference coriolis parameter ( 1/s ) */
1214 (PID.TID 0000.0001) 0.000000000000000E+00
1215 (PID.TID 0000.0001) ;
1216 (PID.TID 0000.0001) beta = /* Beta ( 1/(m.s) ) */
1217 (PID.TID 0000.0001) 0.000000000000000E+00
1218 (PID.TID 0000.0001) ;
1219 (PID.TID 0000.0001) fPrime = /* Second coriolis parameter ( 1/s ) */
1220 (PID.TID 0000.0001) 0.000000000000000E+00
1221 (PID.TID 0000.0001) ;
1222 (PID.TID 0000.0001) rigidLid = /* Rigid lid on/off flag */
1223 (PID.TID 0000.0001) F
1224 (PID.TID 0000.0001) ;
1225 (PID.TID 0000.0001) implicitFreeSurface = /* Implicit free surface on/off flag */
1226 (PID.TID 0000.0001) T
1227 (PID.TID 0000.0001) ;
1228 (PID.TID 0000.0001) freeSurfFac = /* Implicit free surface factor */
1229 (PID.TID 0000.0001) 1.000000000000000E+00
1230 (PID.TID 0000.0001) ;
1231 (PID.TID 0000.0001) implicSurfPress = /* Surface Pressure implicit factor (0-1)*/
1232 (PID.TID 0000.0001) 1.000000000000000E+00
1233 (PID.TID 0000.0001) ;
1234 (PID.TID 0000.0001) implicDiv2Dflow = /* Barot. Flow Div. implicit factor (0-1)*/
1235 (PID.TID 0000.0001) 1.000000000000000E+00
1236 (PID.TID 0000.0001) ;
1237 (PID.TID 0000.0001) uniformLin_PhiSurf = /* use uniform Bo_surf on/off flag*/
1238 (PID.TID 0000.0001) T
1239 (PID.TID 0000.0001) ;
1240 (PID.TID 0000.0001) uniformFreeSurfLev = /* free-surface level-index is uniform */
1241 (PID.TID 0000.0001) T
1242 (PID.TID 0000.0001) ;
1243 (PID.TID 0000.0001) hFacMin = /* minimum partial cell factor (hFac) */
1244 (PID.TID 0000.0001) 1.000000000000000E+00
1245 (PID.TID 0000.0001) ;
1246 (PID.TID 0000.0001) hFacMinDr = /* minimum partial cell thickness ( m) */
1247 (PID.TID 0000.0001) 1.000000000000000E+00
1248 (PID.TID 0000.0001) ;
1249 (PID.TID 0000.0001) exactConserv = /* Exact Volume Conservation on/off flag*/
1250 (PID.TID 0000.0001) F
1251 (PID.TID 0000.0001) ;
1252 (PID.TID 0000.0001) linFSConserveTr = /* Tracer correction for Lin Free Surface on/off flag*/
1253 (PID.TID 0000.0001) F
1254 (PID.TID 0000.0001) ;
1255 (PID.TID 0000.0001) nonlinFreeSurf = /* Non-linear Free Surf. options (-1,0,1,2,3)*/
1256 (PID.TID 0000.0001) 0
1257 (PID.TID 0000.0001) -1,0= Off ; 1,2,3= On, 2=+rescale gU,gV, 3=+update cg2d solv.
1258 (PID.TID 0000.0001) ;
1259 (PID.TID 0000.0001) hFacInf = /* lower threshold for hFac (nonlinFreeSurf only)*/
1260 (PID.TID 0000.0001) 2.000000000000000E-01
1261 (PID.TID 0000.0001) ;
1262 (PID.TID 0000.0001) hFacSup = /* upper threshold for hFac (nonlinFreeSurf only)*/
1263 (PID.TID 0000.0001) 2.000000000000000E+00
1264 (PID.TID 0000.0001) ;
1265 (PID.TID 0000.0001) select_rStar = /* r* Vertical coord. options (=0 r coord.; >0 uses r*)*/
1266 (PID.TID 0000.0001) 0
1267 (PID.TID 0000.0001) ;
1268 (PID.TID 0000.0001) useRealFreshWaterFlux = /* Real Fresh Water Flux on/off flag*/
1269 (PID.TID 0000.0001) F
1270 (PID.TID 0000.0001) ;
1271 (PID.TID 0000.0001) temp_EvPrRn = /* Temp. of Evap/Prec/R (UNSET=use local T)(oC)*/
1272 (PID.TID 0000.0001) 1.234567000000000E+05
1273 (PID.TID 0000.0001) ;
1274 (PID.TID 0000.0001) salt_EvPrRn = /* Salin. of Evap/Prec/R (UNSET=use local S)(psu)*/
1275 (PID.TID 0000.0001) 0.000000000000000E+00
1276 (PID.TID 0000.0001) ;
1277 (PID.TID 0000.0001) selectAddFluid = /* option for mass source/sink of fluid (=0: off) */
1278 (PID.TID 0000.0001) 0
1279 (PID.TID 0000.0001) ;
1280 (PID.TID 0000.0001) temp_addMass = /* Temp. of addMass array (UNSET=use local T)(oC)*/
1281 (PID.TID 0000.0001) 1.234567000000000E+05
1282 (PID.TID 0000.0001) ;
1283 (PID.TID 0000.0001) salt_addMass = /* Salin. of addMass array (UNSET=use local S)(psu)*/
1284 (PID.TID 0000.0001) 0.000000000000000E+00
1285 (PID.TID 0000.0001) ;
1286 (PID.TID 0000.0001) convertFW2Salt = /* convert F.W. Flux to Salt Flux (-1=use local S)(psu)*/
1287 (PID.TID 0000.0001) -1.000000000000000E+00
1288 (PID.TID 0000.0001) ;
1289 (PID.TID 0000.0001) use3Dsolver = /* use 3-D pressure solver on/off flag */
1290 (PID.TID 0000.0001) F
1291 (PID.TID 0000.0001) ;
1292 (PID.TID 0000.0001) nonHydrostatic = /* Non-Hydrostatic on/off flag */
1293 (PID.TID 0000.0001) F
1294 (PID.TID 0000.0001) ;
1295 (PID.TID 0000.0001) nh_Am2 = /* Non-Hydrostatic terms scaling factor */
1296 (PID.TID 0000.0001) 1.000000000000000E+00
1297 (PID.TID 0000.0001) ;
1298 (PID.TID 0000.0001) implicitNHPress = /* Non-Hyd Pressure implicit factor (0-1)*/
1299 (PID.TID 0000.0001) 1.000000000000000E+00
1300 (PID.TID 0000.0001) ;
1301 (PID.TID 0000.0001) selectNHfreeSurf = /* Non-Hyd (free-)Surface option */
1302 (PID.TID 0000.0001) 0
1303 (PID.TID 0000.0001) ;
1304 (PID.TID 0000.0001) quasiHydrostatic = /* Quasi-Hydrostatic on/off flag */
1305 (PID.TID 0000.0001) F
1306 (PID.TID 0000.0001) ;
1307 (PID.TID 0000.0001) calc_wVelocity = /* vertical velocity calculation on/off flag */
1308 (PID.TID 0000.0001) F
1309 (PID.TID 0000.0001) ;
1310 (PID.TID 0000.0001) momStepping = /* Momentum equation on/off flag */
1311 (PID.TID 0000.0001) F
1312 (PID.TID 0000.0001) ;
1313 (PID.TID 0000.0001) vectorInvariantMomentum= /* Vector-Invariant Momentum on/off */
1314 (PID.TID 0000.0001) F
1315 (PID.TID 0000.0001) ;
1316 (PID.TID 0000.0001) momAdvection = /* Momentum advection on/off flag */
1317 (PID.TID 0000.0001) F
1318 (PID.TID 0000.0001) ;
1319 (PID.TID 0000.0001) momViscosity = /* Momentum viscosity on/off flag */
1320 (PID.TID 0000.0001) F
1321 (PID.TID 0000.0001) ;
1322 (PID.TID 0000.0001) momImplVertAdv= /* Momentum implicit vert. advection on/off*/
1323 (PID.TID 0000.0001) F
1324 (PID.TID 0000.0001) ;
1325 (PID.TID 0000.0001) implicitViscosity = /* Implicit viscosity on/off flag */
1326 (PID.TID 0000.0001) F
1327 (PID.TID 0000.0001) ;
1328 (PID.TID 0000.0001) metricTerms = /* metric-Terms on/off flag */
1329 (PID.TID 0000.0001) F
1330 (PID.TID 0000.0001) ;
1331 (PID.TID 0000.0001) useNHMTerms = /* Non-Hydrostatic Metric-Terms on/off */
1332 (PID.TID 0000.0001) F
1333 (PID.TID 0000.0001) ;
1334 (PID.TID 0000.0001) selectCoriMap = /* Coriolis Map options (0,1,2,3)*/
1335 (PID.TID 0000.0001) 1
1336 (PID.TID 0000.0001) 0= f-Plane ; 1= Beta-Plane ; 2= Spherical ; 3= read from file
1337 (PID.TID 0000.0001) ;
1338 (PID.TID 0000.0001) use3dCoriolis = /* 3-D Coriolis on/off flag */
1339 (PID.TID 0000.0001) F
1340 (PID.TID 0000.0001) ;
1341 (PID.TID 0000.0001) useCoriolis = /* Coriolis on/off flag */
1342 (PID.TID 0000.0001) F
1343 (PID.TID 0000.0001) ;
1344 (PID.TID 0000.0001) useCDscheme = /* CD scheme on/off flag */
1345 (PID.TID 0000.0001) F
1346 (PID.TID 0000.0001) ;
1347 (PID.TID 0000.0001) useEnergyConservingCoriolis= /* Flx-Form Coriolis scheme flag */
1348 (PID.TID 0000.0001) F
1349 (PID.TID 0000.0001) ;
1350 (PID.TID 0000.0001) useJamartWetPoints= /* Coriolis WetPoints method flag */
1351 (PID.TID 0000.0001) T
1352 (PID.TID 0000.0001) ;
1353 (PID.TID 0000.0001) useJamartMomAdv= /* V.I Non-linear terms Jamart flag */
1354 (PID.TID 0000.0001) F
1355 (PID.TID 0000.0001) ;
1356 (PID.TID 0000.0001) useAbsVorticity= /* V.I Works with f+zeta in Coriolis */
1357 (PID.TID 0000.0001) F
1358 (PID.TID 0000.0001) ;
1359 (PID.TID 0000.0001) selectVortScheme= /* V.I Scheme selector for Vorticity-Term */
1360 (PID.TID 0000.0001) 123456789
1361 (PID.TID 0000.0001) = 0 : enstrophy (Shallow-Water Eq.) conserving scheme by Sadourny, JAS 75
1362 (PID.TID 0000.0001) = 1 : same as 0 with modified hFac
1363 (PID.TID 0000.0001) = 2 : energy conserving scheme (used by Sadourny in JAS 75 paper)
1364 (PID.TID 0000.0001) = 3 : energy (general) and enstrophy (2D, nonDiv.) conserving scheme
1365 (PID.TID 0000.0001) from Sadourny (Burridge & Haseler, ECMWF Rep.4, 1977)
1366 (PID.TID 0000.0001) ;
1367 (PID.TID 0000.0001) upwindVorticity= /* V.I Upwind bias vorticity flag */
1368 (PID.TID 0000.0001) F
1369 (PID.TID 0000.0001) ;
1370 (PID.TID 0000.0001) highOrderVorticity= /* V.I High order vort. advect. flag */
1371 (PID.TID 0000.0001) F
1372 (PID.TID 0000.0001) ;
1373 (PID.TID 0000.0001) upwindShear= /* V.I Upwind vertical Shear advection flag */
1374 (PID.TID 0000.0001) F
1375 (PID.TID 0000.0001) ;
1376 (PID.TID 0000.0001) selectKEscheme= /* V.I Kinetic Energy scheme selector */
1377 (PID.TID 0000.0001) 0
1378 (PID.TID 0000.0001) ;
1379 (PID.TID 0000.0001) momForcing = /* Momentum forcing on/off flag */
1380 (PID.TID 0000.0001) F
1381 (PID.TID 0000.0001) ;
1382 (PID.TID 0000.0001) momPressureForcing = /* Momentum pressure term on/off flag */
1383 (PID.TID 0000.0001) F
1384 (PID.TID 0000.0001) ;
1385 (PID.TID 0000.0001) implicitIntGravWave= /* Implicit Internal Gravity Wave flag */
1386 (PID.TID 0000.0001) F
1387 (PID.TID 0000.0001) ;
1388 (PID.TID 0000.0001) staggerTimeStep = /* Stagger time stepping on/off flag */
1389 (PID.TID 0000.0001) T
1390 (PID.TID 0000.0001) ;
1391 (PID.TID 0000.0001) doResetHFactors = /* reset thickness factors @ each time-step */
1392 (PID.TID 0000.0001) F
1393 (PID.TID 0000.0001) ;
1394 (PID.TID 0000.0001) multiDimAdvection = /* enable/disable Multi-Dim Advection */
1395 (PID.TID 0000.0001) T
1396 (PID.TID 0000.0001) ;
1397 (PID.TID 0000.0001) useMultiDimAdvec = /* Multi-Dim Advection is/is-not used */
1398 (PID.TID 0000.0001) F
1399 (PID.TID 0000.0001) ;
1400 (PID.TID 0000.0001) implicitDiffusion = /* Implicit Diffusion on/off flag */
1401 (PID.TID 0000.0001) F
1402 (PID.TID 0000.0001) ;
1403 (PID.TID 0000.0001) tempStepping = /* Temperature equation on/off flag */
1404 (PID.TID 0000.0001) T
1405 (PID.TID 0000.0001) ;
1406 (PID.TID 0000.0001) tempAdvection = /* Temperature advection on/off flag */
1407 (PID.TID 0000.0001) F
1408 (PID.TID 0000.0001) ;
1409 (PID.TID 0000.0001) tempImplVertAdv = /* Temp. implicit vert. advection on/off */
1410 (PID.TID 0000.0001) F
1411 (PID.TID 0000.0001) ;
1412 (PID.TID 0000.0001) tempForcing = /* Temperature forcing on/off flag */
1413 (PID.TID 0000.0001) T
1414 (PID.TID 0000.0001) ;
1415 (PID.TID 0000.0001) doThetaClimRelax = /* apply SST relaxation on/off flag */
1416 (PID.TID 0000.0001) T
1417 (PID.TID 0000.0001) ;
1418 (PID.TID 0000.0001) tempIsActiveTr = /* Temp. is a dynamically Active Tracer */
1419 (PID.TID 0000.0001) F
1420 (PID.TID 0000.0001) ;
1421 (PID.TID 0000.0001) saltStepping = /* Salinity equation on/off flag */
1422 (PID.TID 0000.0001) F
1423 (PID.TID 0000.0001) ;
1424 (PID.TID 0000.0001) saltAdvection = /* Salinity advection on/off flag */
1425 (PID.TID 0000.0001) F
1426 (PID.TID 0000.0001) ;
1427 (PID.TID 0000.0001) saltImplVertAdv = /* Sali. implicit vert. advection on/off */
1428 (PID.TID 0000.0001) F
1429 (PID.TID 0000.0001) ;
1430 (PID.TID 0000.0001) saltForcing = /* Salinity forcing on/off flag */
1431 (PID.TID 0000.0001) F
1432 (PID.TID 0000.0001) ;
1433 (PID.TID 0000.0001) doSaltClimRelax = /* apply SSS relaxation on/off flag */
1434 (PID.TID 0000.0001) F
1435 (PID.TID 0000.0001) ;
1436 (PID.TID 0000.0001) saltIsActiveTr = /* Salt is a dynamically Active Tracer */
1437 (PID.TID 0000.0001) F
1438 (PID.TID 0000.0001) ;
1439 (PID.TID 0000.0001) readBinaryPrec = /* Precision used for reading binary files */
1440 (PID.TID 0000.0001) 64
1441 (PID.TID 0000.0001) ;
1442 (PID.TID 0000.0001) writeBinaryPrec = /* Precision used for writing binary files */
1443 (PID.TID 0000.0001) 64
1444 (PID.TID 0000.0001) ;
1445 (PID.TID 0000.0001) globalFiles = /* write "global" (=not per tile) files */
1446 (PID.TID 0000.0001) F
1447 (PID.TID 0000.0001) ;
1448 (PID.TID 0000.0001) useSingleCpuIO = /* only master MPI process does I/O */
1449 (PID.TID 0000.0001) T
1450 (PID.TID 0000.0001) ;
1451 (PID.TID 0000.0001) /* debLev[*] : level of debug & auxiliary message printing */
1452 (PID.TID 0000.0001) debLevZero = 0 ; /* level of disabled aux. msg printing */
1453 (PID.TID 0000.0001) debLevA = 1 ; /* level of minimum aux. msg printing */
1454 (PID.TID 0000.0001) debLevB = 2 ; /* level of low aux. print (report read-file opening)*/
1455 (PID.TID 0000.0001) debLevC = 3 ; /* level of moderate debug prt (most pkgs debug msg) */
1456 (PID.TID 0000.0001) debLevD = 4 ; /* level of enhanced debug prt (add DEBUG_STATS prt) */
1457 (PID.TID 0000.0001) debLevE = 5 ; /* level of extensive debug printing */
1458 (PID.TID 0000.0001) debugLevel = /* select debug printing level */
1459 (PID.TID 0000.0001) 2
1460 (PID.TID 0000.0001) ;
1461 (PID.TID 0000.0001) //
1462 (PID.TID 0000.0001) // Elliptic solver(s) paramters ( PARM02 in namelist )
1463 (PID.TID 0000.0001) //
1464 (PID.TID 0000.0001) cg2dMaxIters = /* Upper limit on 2d con. grad iterations */
1465 (PID.TID 0000.0001) 500
1466 (PID.TID 0000.0001) ;
1467 (PID.TID 0000.0001) cg2dChkResFreq = /* 2d con. grad convergence test frequency */
1468 (PID.TID 0000.0001) 1
1469 (PID.TID 0000.0001) ;
1470 (PID.TID 0000.0001) cg2dUseMinResSol= /* use cg2d last-iter(=0) / min-resid.(=1) solution */
1471 (PID.TID 0000.0001) 0
1472 (PID.TID 0000.0001) ;
1473 (PID.TID 0000.0001) cg2dTargetResidual = /* 2d con. grad target residual */
1474 (PID.TID 0000.0001) 1.000000000000000E-12
1475 (PID.TID 0000.0001) ;
1476 (PID.TID 0000.0001) cg2dTargetResWunit = /* CG2d target residual [W units] */
1477 (PID.TID 0000.0001) -1.000000000000000E+00
1478 (PID.TID 0000.0001) ;
1479 (PID.TID 0000.0001) cg2dPreCondFreq = /* Freq. for updating cg2d preconditioner */
1480 (PID.TID 0000.0001) 1
1481 (PID.TID 0000.0001) ;
1482 (PID.TID 0000.0001) useSRCGSolver = /* use single reduction CG solver(s) */
1483 (PID.TID 0000.0001) F
1484 (PID.TID 0000.0001) ;
1485 (PID.TID 0000.0001) printResidualFreq = /* Freq. for printing CG residual */
1486 (PID.TID 0000.0001) 0
1487 (PID.TID 0000.0001) ;
1488 (PID.TID 0000.0001) //
1489 (PID.TID 0000.0001) // Time stepping paramters ( PARM03 in namelist )
1490 (PID.TID 0000.0001) //
1491 (PID.TID 0000.0001) deltaTMom = /* Momentum equation timestep ( s ) */
1492 (PID.TID 0000.0001) 3.600000000000000E+03
1493 (PID.TID 0000.0001) ;
1494 (PID.TID 0000.0001) deltaTFreeSurf = /* FreeSurface equation timestep ( s ) */
1495 (PID.TID 0000.0001) 3.600000000000000E+03
1496 (PID.TID 0000.0001) ;
1497 (PID.TID 0000.0001) dTtracerLev = /* Tracer equation timestep ( s ) */
1498 (PID.TID 0000.0001) 3.600000000000000E+03 /* K = 1 */
1499 (PID.TID 0000.0001) ;
1500 (PID.TID 0000.0001) deltaTClock = /* Model clock timestep ( s ) */
1501 (PID.TID 0000.0001) 3.600000000000000E+03
1502 (PID.TID 0000.0001) ;
1503 (PID.TID 0000.0001) cAdjFreq = /* Convective adjustment interval ( s ) */
1504 (PID.TID 0000.0001) 0.000000000000000E+00
1505 (PID.TID 0000.0001) ;
1506 (PID.TID 0000.0001) momForcingOutAB = /* =1: take Momentum Forcing out of Adams-Bash. stepping */
1507 (PID.TID 0000.0001) 1
1508 (PID.TID 0000.0001) ;
1509 (PID.TID 0000.0001) tracForcingOutAB = /* =1: take T,S,pTr Forcing out of Adams-Bash. stepping */
1510 (PID.TID 0000.0001) 1
1511 (PID.TID 0000.0001) ;
1512 (PID.TID 0000.0001) momDissip_In_AB = /* put Dissipation Tendency in Adams-Bash. stepping */
1513 (PID.TID 0000.0001) T
1514 (PID.TID 0000.0001) ;
1515 (PID.TID 0000.0001) doAB_onGtGs = /* apply AB on Tendencies (rather than on T,S)*/
1516 (PID.TID 0000.0001) T
1517 (PID.TID 0000.0001) ;
1518 (PID.TID 0000.0001) abEps = /* Adams-Bashforth-2 stabilizing weight */
1519 (PID.TID 0000.0001) 1.000000000000000E-01
1520 (PID.TID 0000.0001) ;
1521 (PID.TID 0000.0001) pickupStrictlyMatch= /* stop if pickup do not strictly match */
1522 (PID.TID 0000.0001) T
1523 (PID.TID 0000.0001) ;
1524 (PID.TID 0000.0001) nIter0 = /* Run starting timestep number */
1525 (PID.TID 0000.0001) 0
1526 (PID.TID 0000.0001) ;
1527 (PID.TID 0000.0001) nTimeSteps = /* Number of timesteps */
1528 (PID.TID 0000.0001) 12
1529 (PID.TID 0000.0001) ;
1530 (PID.TID 0000.0001) nEndIter = /* Run ending timestep number */
1531 (PID.TID 0000.0001) 12
1532 (PID.TID 0000.0001) ;
1533 (PID.TID 0000.0001) baseTime = /* Model base time ( s ) */
1534 (PID.TID 0000.0001) 0.000000000000000E+00
1535 (PID.TID 0000.0001) ;
1536 (PID.TID 0000.0001) startTime = /* Run start time ( s ) */
1537 (PID.TID 0000.0001) 0.000000000000000E+00
1538 (PID.TID 0000.0001) ;
1539 (PID.TID 0000.0001) endTime = /* Integration ending time ( s ) */
1540 (PID.TID 0000.0001) 4.320000000000000E+04
1541 (PID.TID 0000.0001) ;
1542 (PID.TID 0000.0001) pChkPtFreq = /* Permanent restart/pickup file interval ( s ) */
1543 (PID.TID 0000.0001) 3.600000000000000E+06
1544 (PID.TID 0000.0001) ;
1545 (PID.TID 0000.0001) chkPtFreq = /* Rolling restart/pickup file interval ( s ) */
1546 (PID.TID 0000.0001) 0.000000000000000E+00
1547 (PID.TID 0000.0001) ;
1548 (PID.TID 0000.0001) pickup_write_mdsio = /* Model IO flag. */
1549 (PID.TID 0000.0001) T
1550 (PID.TID 0000.0001) ;
1551 (PID.TID 0000.0001) pickup_read_mdsio = /* Model IO flag. */
1552 (PID.TID 0000.0001) T
1553 (PID.TID 0000.0001) ;
1554 (PID.TID 0000.0001) pickup_write_immed = /* Model IO flag. */
1555 (PID.TID 0000.0001) F
1556 (PID.TID 0000.0001) ;
1557 (PID.TID 0000.0001) writePickupAtEnd = /* Model IO flag. */
1558 (PID.TID 0000.0001) T
1559 (PID.TID 0000.0001) ;
1560 (PID.TID 0000.0001) dumpFreq = /* Model state write out interval ( s ). */
1561 (PID.TID 0000.0001) 8.640000000000000E+04
1562 (PID.TID 0000.0001) ;
1563 (PID.TID 0000.0001) dumpInitAndLast= /* write out Initial & Last iter. model state */
1564 (PID.TID 0000.0001) T
1565 (PID.TID 0000.0001) ;
1566 (PID.TID 0000.0001) snapshot_mdsio = /* Model IO flag. */
1567 (PID.TID 0000.0001) T
1568 (PID.TID 0000.0001) ;
1569 (PID.TID 0000.0001) monitorFreq = /* Monitor output interval ( s ). */
1570 (PID.TID 0000.0001) 4.320000000000000E+04
1571 (PID.TID 0000.0001) ;
1572 (PID.TID 0000.0001) monitorSelect = /* select group of variables to monitor */
1573 (PID.TID 0000.0001) 3
1574 (PID.TID 0000.0001) ;
1575 (PID.TID 0000.0001) monitor_stdio = /* Model IO flag. */
1576 (PID.TID 0000.0001) T
1577 (PID.TID 0000.0001) ;
1578 (PID.TID 0000.0001) externForcingPeriod = /* forcing period (s) */
1579 (PID.TID 0000.0001) 0.000000000000000E+00
1580 (PID.TID 0000.0001) ;
1581 (PID.TID 0000.0001) externForcingCycle = /* period of the cyle (s). */
1582 (PID.TID 0000.0001) 0.000000000000000E+00
1583 (PID.TID 0000.0001) ;
1584 (PID.TID 0000.0001) tauThetaClimRelax = /* relaxation time scale (s) */
1585 (PID.TID 0000.0001) 8.640000000000000E+05
1586 (PID.TID 0000.0001) ;
1587 (PID.TID 0000.0001) tauSaltClimRelax = /* relaxation time scale (s) */
1588 (PID.TID 0000.0001) 0.000000000000000E+00
1589 (PID.TID 0000.0001) ;
1590 (PID.TID 0000.0001) latBandClimRelax = /* max. Lat. where relaxation */
1591 (PID.TID 0000.0001) 6.300000000000000E+05
1592 (PID.TID 0000.0001) ;
1593 (PID.TID 0000.0001) //
1594 (PID.TID 0000.0001) // Gridding paramters ( PARM04 in namelist )
1595 (PID.TID 0000.0001) //
1596 (PID.TID 0000.0001) usingCartesianGrid = /* Cartesian coordinates flag ( True/False ) */
1597 (PID.TID 0000.0001) T
1598 (PID.TID 0000.0001) ;
1599 (PID.TID 0000.0001) usingCylindricalGrid = /* Cylindrical coordinates flag ( True/False ) */
1600 (PID.TID 0000.0001) F
1601 (PID.TID 0000.0001) ;
1602 (PID.TID 0000.0001) usingSphericalPolarGrid = /* Spherical coordinates flag ( True/False ) */
1603 (PID.TID 0000.0001) F
1604 (PID.TID 0000.0001) ;
1605 (PID.TID 0000.0001) usingCurvilinearGrid = /* Curvilinear coordinates flag ( True/False ) */
1606 (PID.TID 0000.0001) F
1607 (PID.TID 0000.0001) ;
1608 (PID.TID 0000.0001) selectSigmaCoord = /* Hybrid-Sigma Vert. Coordinate option */
1609 (PID.TID 0000.0001) 0
1610 (PID.TID 0000.0001) ;
1611 (PID.TID 0000.0001) Ro_SeaLevel = /* r(1) ( units of r == m ) */
1612 (PID.TID 0000.0001) 0.000000000000000E+00
1613 (PID.TID 0000.0001) ;
1614 (PID.TID 0000.0001) rSigmaBnd = /* r/sigma transition ( units of r == m ) */
1615 (PID.TID 0000.0001) 1.234567000000000E+05
1616 (PID.TID 0000.0001) ;
1617 (PID.TID 0000.0001) rkSign = /* index orientation relative to vertical coordinate */
1618 (PID.TID 0000.0001) -1.000000000000000E+00
1619 (PID.TID 0000.0001) ;
1620 (PID.TID 0000.0001) gravitySign = /* gravity orientation relative to vertical coordinate */
1621 (PID.TID 0000.0001) -1.000000000000000E+00
1622 (PID.TID 0000.0001) ;
1623 (PID.TID 0000.0001) mass2rUnit = /* convert mass per unit area [kg/m2] to r-units [m] */
1624 (PID.TID 0000.0001) 9.708737864077669E-04
1625 (PID.TID 0000.0001) ;
1626 (PID.TID 0000.0001) rUnit2mass = /* convert r-units [m] to mass per unit area [kg/m2] */
1627 (PID.TID 0000.0001) 1.030000000000000E+03
1628 (PID.TID 0000.0001) ;
1629 (PID.TID 0000.0001) drC = /* C spacing ( units of r ) */
1630 (PID.TID 0000.0001) 5.000000000000000E+00 /* K = 1 */
1631 (PID.TID 0000.0001) ;
1632 (PID.TID 0000.0001) drF = /* W spacing ( units of r ) */
1633 (PID.TID 0000.0001) 1.000000000000000E+01 /* K = 1 */
1634 (PID.TID 0000.0001) ;
1635 (PID.TID 0000.0001) delX = /* U spacing ( m - cartesian, degrees - spherical ) */
1636 (PID.TID 0000.0001) 80 @ 5.000000000000000E+03 /* I = 1: 80 */
1637 (PID.TID 0000.0001) ;
1638 (PID.TID 0000.0001) delY = /* V spacing ( m - cartesian, degrees - spherical ) */
1639 (PID.TID 0000.0001) 42 @ 5.000000000000000E+03 /* J = 1: 42 */
1640 (PID.TID 0000.0001) ;
1641 (PID.TID 0000.0001) xgOrigin = /* X-axis origin of West edge (cartesian: m, lat-lon: deg) */
1642 (PID.TID 0000.0001) 0.000000000000000E+00
1643 (PID.TID 0000.0001) ;
1644 (PID.TID 0000.0001) ygOrigin = /* Y-axis origin of South edge (cartesian: m, lat-lon: deg) */
1645 (PID.TID 0000.0001) -1.100000000000000E+05
1646 (PID.TID 0000.0001) ;
1647 (PID.TID 0000.0001) rSphere = /* Radius ( ignored - cartesian, m - spherical ) */
1648 (PID.TID 0000.0001) 6.370000000000000E+06
1649 (PID.TID 0000.0001) ;
1650 (PID.TID 0000.0001) deepAtmosphere = /* Deep/Shallow Atmosphere flag (True/False) */
1651 (PID.TID 0000.0001) F
1652 (PID.TID 0000.0001) ;
1653 (PID.TID 0000.0001) xC = /* xC(:,1,:,1) : P-point X coord ( deg. or m if cartesian) */
1654 (PID.TID 0000.0001) 2.500000000000000E+03, /* I = 1 */
1655 (PID.TID 0000.0001) 7.500000000000000E+03, /* I = 2 */
1656 (PID.TID 0000.0001) 1.250000000000000E+04, /* I = 3 */
1657 (PID.TID 0000.0001) . . .
1658 (PID.TID 0000.0001) 8.750000000000000E+04, /* I = 18 */
1659 (PID.TID 0000.0001) 9.250000000000000E+04, /* I = 19 */
1660 (PID.TID 0000.0001) 9.750000000000000E+04, /* I = 20 */
1661 (PID.TID 0000.0001) 1.025000000000000E+05, /* I = 21 */
1662 (PID.TID 0000.0001) 1.075000000000000E+05, /* I = 22 */
1663 (PID.TID 0000.0001) 1.125000000000000E+05, /* I = 23 */
1664 (PID.TID 0000.0001) . . .
1665 (PID.TID 0000.0001) 1.875000000000000E+05, /* I = 38 */
1666 (PID.TID 0000.0001) 1.925000000000000E+05, /* I = 39 */
1667 (PID.TID 0000.0001) 1.975000000000000E+05, /* I = 40 */
1668 (PID.TID 0000.0001) 2.025000000000000E+05, /* I = 41 */
1669 (PID.TID 0000.0001) 2.075000000000000E+05, /* I = 42 */
1670 (PID.TID 0000.0001) 2.125000000000000E+05, /* I = 43 */
1671 (PID.TID 0000.0001) . . .
1672 (PID.TID 0000.0001) 2.875000000000000E+05, /* I = 58 */
1673 (PID.TID 0000.0001) 2.925000000000000E+05, /* I = 59 */
1674 (PID.TID 0000.0001) 2.975000000000000E+05, /* I = 60 */
1675 (PID.TID 0000.0001) 3.025000000000000E+05, /* I = 61 */
1676 (PID.TID 0000.0001) 3.075000000000000E+05, /* I = 62 */
1677 (PID.TID 0000.0001) 3.125000000000000E+05, /* I = 63 */
1678 (PID.TID 0000.0001) . . .
1679 (PID.TID 0000.0001) 3.875000000000000E+05, /* I = 78 */
1680 (PID.TID 0000.0001) 3.925000000000000E+05, /* I = 79 */
1681 (PID.TID 0000.0001) 3.975000000000000E+05 /* I = 80 */
1682 (PID.TID 0000.0001) ;
1683 (PID.TID 0000.0001) yC = /* yC(1,:,1,:) : P-point Y coord ( deg. or m if cartesian) */
1684 (PID.TID 0000.0001) -1.075000000000000E+05, /* J = 1 */
1685 (PID.TID 0000.0001) -1.025000000000000E+05, /* J = 2 */
1686 (PID.TID 0000.0001) -9.750000000000000E+04, /* J = 3 */
1687 (PID.TID 0000.0001) -9.250000000000000E+04, /* J = 4 */
1688 (PID.TID 0000.0001) -8.750000000000000E+04, /* J = 5 */
1689 (PID.TID 0000.0001) -8.250000000000000E+04, /* J = 6 */
1690 (PID.TID 0000.0001) -7.750000000000000E+04, /* J = 7 */
1691 (PID.TID 0000.0001) -7.250000000000000E+04, /* J = 8 */
1692 (PID.TID 0000.0001) -6.750000000000000E+04, /* J = 9 */
1693 (PID.TID 0000.0001) -6.250000000000000E+04, /* J = 10 */
1694 (PID.TID 0000.0001) -5.750000000000000E+04, /* J = 11 */
1695 (PID.TID 0000.0001) -5.250000000000000E+04, /* J = 12 */
1696 (PID.TID 0000.0001) -4.750000000000000E+04, /* J = 13 */
1697 (PID.TID 0000.0001) -4.250000000000000E+04, /* J = 14 */
1698 (PID.TID 0000.0001) -3.750000000000000E+04, /* J = 15 */
1699 (PID.TID 0000.0001) -3.250000000000000E+04, /* J = 16 */
1700 (PID.TID 0000.0001) -2.750000000000000E+04, /* J = 17 */
1701 (PID.TID 0000.0001) -2.250000000000000E+04, /* J = 18 */
1702 (PID.TID 0000.0001) -1.750000000000000E+04, /* J = 19 */
1703 (PID.TID 0000.0001) -1.250000000000000E+04, /* J = 20 */
1704 (PID.TID 0000.0001) -7.500000000000000E+03, /* J = 21 */
1705 (PID.TID 0000.0001) -2.500000000000000E+03, /* J = 22 */
1706 (PID.TID 0000.0001) 2.500000000000000E+03, /* J = 23 */
1707 (PID.TID 0000.0001) 7.500000000000000E+03, /* J = 24 */
1708 (PID.TID 0000.0001) 1.250000000000000E+04, /* J = 25 */
1709 (PID.TID 0000.0001) 1.750000000000000E+04, /* J = 26 */
1710 (PID.TID 0000.0001) 2.250000000000000E+04, /* J = 27 */
1711 (PID.TID 0000.0001) 2.750000000000000E+04, /* J = 28 */
1712 (PID.TID 0000.0001) 3.250000000000000E+04, /* J = 29 */
1713 (PID.TID 0000.0001) 3.750000000000000E+04, /* J = 30 */
1714 (PID.TID 0000.0001) 4.250000000000000E+04, /* J = 31 */
1715 (PID.TID 0000.0001) 4.750000000000000E+04, /* J = 32 */
1716 (PID.TID 0000.0001) 5.250000000000000E+04, /* J = 33 */
1717 (PID.TID 0000.0001) 5.750000000000000E+04, /* J = 34 */
1718 (PID.TID 0000.0001) 6.250000000000000E+04, /* J = 35 */
1719 (PID.TID 0000.0001) 6.750000000000000E+04, /* J = 36 */
1720 (PID.TID 0000.0001) 7.250000000000000E+04, /* J = 37 */
1721 (PID.TID 0000.0001) 7.750000000000000E+04, /* J = 38 */
1722 (PID.TID 0000.0001) 8.250000000000000E+04, /* J = 39 */
1723 (PID.TID 0000.0001) 8.750000000000000E+04, /* J = 40 */
1724 (PID.TID 0000.0001) 9.250000000000000E+04, /* J = 41 */
1725 (PID.TID 0000.0001) 9.750000000000000E+04 /* J = 42 */
1726 (PID.TID 0000.0001) ;
1727 (PID.TID 0000.0001) rcoord = /* P-point R coordinate ( units of r ) */
1728 (PID.TID 0000.0001) -5.000000000000000E+00 /* K = 1 */
1729 (PID.TID 0000.0001) ;
1730 (PID.TID 0000.0001) rF = /* W-Interf. R coordinate ( units of r ) */
1731 (PID.TID 0000.0001) 0.000000000000000E+00, /* K = 1 */
1732 (PID.TID 0000.0001) -1.000000000000000E+01 /* K = 2 */
1733 (PID.TID 0000.0001) ;
1734 (PID.TID 0000.0001) deepFacC = /* deep-model grid factor @ cell-Center (-) */
1735 (PID.TID 0000.0001) 1.000000000000000E+00 /* K = 1 */
1736 (PID.TID 0000.0001) ;
1737 (PID.TID 0000.0001) deepFacF = /* deep-model grid factor @ W-Interface (-) */
1738 (PID.TID 0000.0001) 2 @ 1.000000000000000E+00 /* K = 1: 2 */
1739 (PID.TID 0000.0001) ;
1740 (PID.TID 0000.0001) rVel2wUnit = /* convert units: rVel -> wSpeed (=1 if z-coord)*/
1741 (PID.TID 0000.0001) 2 @ 1.000000000000000E+00 /* K = 1: 2 */
1742 (PID.TID 0000.0001) ;
1743 (PID.TID 0000.0001) wUnit2rVel = /* convert units: wSpeed -> rVel (=1 if z-coord)*/
1744 (PID.TID 0000.0001) 2 @ 1.000000000000000E+00 /* K = 1: 2 */
1745 (PID.TID 0000.0001) ;
1746 (PID.TID 0000.0001) dBdrRef = /* Vertical grad. of reference buoyancy [(m/s/r)^2] */
1747 (PID.TID 0000.0001) 0.000000000000000E+00 /* K = 1 */
1748 (PID.TID 0000.0001) ;
1749 (PID.TID 0000.0001) rotateGrid = /* use rotated grid ( True/False ) */
1750 (PID.TID 0000.0001) F
1751 (PID.TID 0000.0001) ;
1752 (PID.TID 0000.0001) phiEuler = /* Euler angle, rotation about original z-coordinate [rad] */
1753 (PID.TID 0000.0001) 0.000000000000000E+00
1754 (PID.TID 0000.0001) ;
1755 (PID.TID 0000.0001) thetaEuler = /* Euler angle, rotation about new x-coordinate [rad] */
1756 (PID.TID 0000.0001) 0.000000000000000E+00
1757 (PID.TID 0000.0001) ;
1758 (PID.TID 0000.0001) psiEuler = /* Euler angle, rotation about new z-coordinate [rad] */
1759 (PID.TID 0000.0001) 0.000000000000000E+00
1760 (PID.TID 0000.0001) ;
1761 (PID.TID 0000.0001) dxF = /* dxF(:,1,:,1) ( units: m ) */
1762 (PID.TID 0000.0001) 80 @ 5.000000000000000E+03 /* I = 1: 80 */
1763 (PID.TID 0000.0001) ;
1764 (PID.TID 0000.0001) dxF = /* dxF(1,:,1,:) ( units: m ) */
1765 (PID.TID 0000.0001) 42 @ 5.000000000000000E+03 /* J = 1: 42 */
1766 (PID.TID 0000.0001) ;
1767 (PID.TID 0000.0001) dyF = /* dyF(:,1,:,1) ( units: m ) */
1768 (PID.TID 0000.0001) 80 @ 5.000000000000000E+03 /* I = 1: 80 */
1769 (PID.TID 0000.0001) ;
1770 (PID.TID 0000.0001) dyF = /* dyF(1,:,1,:) ( units: m ) */
1771 (PID.TID 0000.0001) 42 @ 5.000000000000000E+03 /* J = 1: 42 */
1772 (PID.TID 0000.0001) ;
1773 (PID.TID 0000.0001) dxG = /* dxG(:,1,:,1) ( units: m ) */
1774 (PID.TID 0000.0001) 80 @ 5.000000000000000E+03 /* I = 1: 80 */
1775 (PID.TID 0000.0001) ;
1776 (PID.TID 0000.0001) dxG = /* dxG(1,:,1,:) ( units: m ) */
1777 (PID.TID 0000.0001) 42 @ 5.000000000000000E+03 /* J = 1: 42 */
1778 (PID.TID 0000.0001) ;
1779 (PID.TID 0000.0001) dyG = /* dyG(:,1,:,1) ( units: m ) */
1780 (PID.TID 0000.0001) 80 @ 5.000000000000000E+03 /* I = 1: 80 */
1781 (PID.TID 0000.0001) ;
1782 (PID.TID 0000.0001) dyG = /* dyG(1,:,1,:) ( units: m ) */
1783 (PID.TID 0000.0001) 42 @ 5.000000000000000E+03 /* J = 1: 42 */
1784 (PID.TID 0000.0001) ;
1785 (PID.TID 0000.0001) dxC = /* dxC(:,1,:,1) ( units: m ) */
1786 (PID.TID 0000.0001) 80 @ 5.000000000000000E+03 /* I = 1: 80 */
1787 (PID.TID 0000.0001) ;
1788 (PID.TID 0000.0001) dxC = /* dxC(1,:,1,:) ( units: m ) */
1789 (PID.TID 0000.0001) 42 @ 5.000000000000000E+03 /* J = 1: 42 */
1790 (PID.TID 0000.0001) ;
1791 (PID.TID 0000.0001) dyC = /* dyC(:,1,:,1) ( units: m ) */
1792 (PID.TID 0000.0001) 80 @ 5.000000000000000E+03 /* I = 1: 80 */
1793 (PID.TID 0000.0001) ;
1794 (PID.TID 0000.0001) dyC = /* dyC(1,:,1,:) ( units: m ) */
1795 (PID.TID 0000.0001) 42 @ 5.000000000000000E+03 /* J = 1: 42 */
1796 (PID.TID 0000.0001) ;
1797 (PID.TID 0000.0001) dxV = /* dxV(:,1,:,1) ( units: m ) */
1798 (PID.TID 0000.0001) 80 @ 5.000000000000000E+03 /* I = 1: 80 */
1799 (PID.TID 0000.0001) ;
1800 (PID.TID 0000.0001) dxV = /* dxV(1,:,1,:) ( units: m ) */
1801 (PID.TID 0000.0001) 42 @ 5.000000000000000E+03 /* J = 1: 42 */
1802 (PID.TID 0000.0001) ;
1803 (PID.TID 0000.0001) dyU = /* dyU(:,1,:,1) ( units: m ) */
1804 (PID.TID 0000.0001) 80 @ 5.000000000000000E+03 /* I = 1: 80 */
1805 (PID.TID 0000.0001) ;
1806 (PID.TID 0000.0001) dyU = /* dyU(1,:,1,:) ( units: m ) */
1807 (PID.TID 0000.0001) 42 @ 5.000000000000000E+03 /* J = 1: 42 */
1808 (PID.TID 0000.0001) ;
1809 (PID.TID 0000.0001) rA = /* rA (:,1,:,1) ( units: m^2 ) */
1810 (PID.TID 0000.0001) 80 @ 2.500000000000000E+07 /* I = 1: 80 */
1811 (PID.TID 0000.0001) ;
1812 (PID.TID 0000.0001) rA = /* rA (1,:,1,:) ( units: m^2 ) */
1813 (PID.TID 0000.0001) 42 @ 2.500000000000000E+07 /* J = 1: 42 */
1814 (PID.TID 0000.0001) ;
1815 (PID.TID 0000.0001) rAw = /* rAw(:,1,:,1) ( units: m^2 ) */
1816 (PID.TID 0000.0001) 80 @ 2.500000000000000E+07 /* I = 1: 80 */
1817 (PID.TID 0000.0001) ;
1818 (PID.TID 0000.0001) rAw = /* rAw(1,:,1,:) ( units: m^2 ) */
1819 (PID.TID 0000.0001) 42 @ 2.500000000000000E+07 /* J = 1: 42 */
1820 (PID.TID 0000.0001) ;
1821 (PID.TID 0000.0001) rAs = /* rAs(:,1,:,1) ( units: m^2 ) */
1822 (PID.TID 0000.0001) 80 @ 2.500000000000000E+07 /* I = 1: 80 */
1823 (PID.TID 0000.0001) ;
1824 (PID.TID 0000.0001) rAs = /* rAs(1,:,1,:) ( units: m^2 ) */
1825 (PID.TID 0000.0001) 42 @ 2.500000000000000E+07 /* J = 1: 42 */
1826 (PID.TID 0000.0001) ;
1827 (PID.TID 0000.0001) globalArea = /* Integrated horizontal Area (m^2) */
1828 (PID.TID 0000.0001) 8.000000000000000E+10
1829 (PID.TID 0000.0001) ;
1830 (PID.TID 0000.0001) // =======================================================
1831 (PID.TID 0000.0001) // End of Model config. summary
1832 (PID.TID 0000.0001) // =======================================================
1833 (PID.TID 0000.0001)
1834 (PID.TID 0000.0001) == Packages configuration : Check & print summary ==
1835 (PID.TID 0000.0001)
1836 (PID.TID 0000.0001) SEAICE_CHECK: #define ALLOW_SEAICE
1837 (PID.TID 0000.0001) THSICE_CHECK: #define THSICE
1838 (PID.TID 0000.0001) GAD_CHECK: #define ALLOW_GENERIC_ADVDIFF
1839 (PID.TID 0000.0001) // =======================================================
1840 (PID.TID 0000.0001) // Check Model config. (CONFIG_CHECK):
1841 (PID.TID 0000.0001) // CONFIG_CHECK : Normal End
1842 (PID.TID 0000.0001) // =======================================================
1843 (PID.TID 0000.0001)
1844 (PID.TID 0000.0001) MDS_READ_FIELD: opening global file: const_00.bin
1845 (PID.TID 0000.0001) MDS_READ_FIELD: opening global file: const+20.bin
1846 (PID.TID 0000.0001) Start initial hydrostatic pressure computation
1847 (PID.TID 0000.0001) Pressure is predetermined for buoyancyRelation OCEANIC
1848 (PID.TID 0000.0001)
1849 (PID.TID 0000.0001) MDS_READ_FIELD: opening global file: tocn_1x.bin
1850 (PID.TID 0000.0001) write diagnostics summary to file ioUnit: 6
1851 Iter.Nb: 0 ; Time(s): 0.0000000000000E+00
1852 ------------------------------------------------------------------------
1853 2D/3D diagnostics: Number of lists: 2
1854 ------------------------------------------------------------------------
1855 listId= 1 ; file name: cheapAML
1856 nFlds, nActive, freq & phase , nLev
1857 18 | 18 | -43200.000000 -3600.000000 | 1
1858 levels: 1
1859 diag# | name | ipt | iMate | kLev| count | mate.C|
1860 121 |CH_TAIR | 1 | 0 | 1 | 0 |
1861 123 |CH_QAIR | 2 | 0 | 1 | 0 |
1862 26 |THETA | 3 | 0 | 1 | 0 |
1863 200 |SI_Fract| 4 | 0 | 1 | 0 |
1864 201 |SI_Thick| 5 | 4 | 1 | 0 | 0 |
1865 202 |SI_SnowH| 6 | 4 | 1 | 0 | 0 |
1866 142 |SIuice | 7 | 8 | 1 | 0 | 0 |
1867 143 |SIvice | 8 | 7 | 1 | 0 | 0 |
1868 211 |SIflxAtm| 9 | 0 | 1 | 0 |
1869 212 |SIfrwAtm| 10 | 0 | 1 | 0 |
1870 210 |SIsnwPrc| 11 | 4 | 1 | 0 | 0 |
1871 122 |CH_QNET | 12 | 0 | 1 | 0 |
1872 124 |CH_EmP | 13 | 0 | 1 | 0 |
1873 129 |CH_SH | 14 | 0 | 1 | 0 |
1874 128 |CH_LH | 15 | 0 | 1 | 0 |
1875 130 |CH_Prec | 16 | 0 | 1 | 0 |
1876 131 |CH_q100 | 17 | 0 | 1 | 0 |
1877 132 |CH_ssqt | 18 | 0 | 1 | 0 |
1878 ------------------------------------------------------------------------
1879 listId= 2 ; file name: iceDiag
1880 nFlds, nActive, freq & phase , nLev
1881 13 | 13 | 86400.000000 0.000000 | 1
1882 levels: 1
1883 diag# | name | ipt | iMate | kLev| count | mate.C|
1884 200 |SI_Fract| 19 | 0 | 1 | 0 |
1885 201 |SI_Thick| 20 | 19 | 1 | 0 | 0 |
1886 26 |THETA | 21 | 0 | 1 | 0 |
1887 203 |SI_Tsrf | 22 | 19 | 1 | 0 | 0 |
1888 213 |SIflx2oc| 23 | 0 | 1 | 0 |
1889 214 |SIfrw2oc| 24 | 0 | 1 | 0 |
1890 215 |SIsaltFx| 25 | 0 | 1 | 0 |
1891 85 |oceQsw | 26 | 0 | 1 | 0 |
1892 211 |SIflxAtm| 27 | 0 | 1 | 0 |
1893 212 |SIfrwAtm| 28 | 0 | 1 | 0 |
1894 130 |CH_Prec | 29 | 0 | 1 | 0 |
1895 142 |SIuice | 30 | 31 | 1 | 0 | 0 |
1896 143 |SIvice | 31 | 30 | 1 | 0 | 0 |
1897 ------------------------------------------------------------------------
1898 Global & Regional Statistics diagnostics: Number of lists: 2
1899 ------------------------------------------------------------------------
1900 listId= 1 ; file name: iceStDiag
1901 nFlds, nActive, freq & phase |
1902 14 | 14 | 43200.000000 3600.000000 |
1903 Regions: 0
1904 diag# | name | ipt | iMate | Volume | mate-Vol. |
1905 200 |SI_Fract| 1 | 0 | 0.00000E+00 |
1906 201 |SI_Thick| 2 | 1 | 0.00000E+00 | 0.00000E+00 |
1907 202 |SI_SnowH| 3 | 1 | 0.00000E+00 | 0.00000E+00 |
1908 26 |THETA | 4 | 0 | 0.00000E+00 |
1909 203 |SI_Tsrf | 5 | 1 | 0.00000E+00 | 0.00000E+00 |
1910 204 |SI_Tice1| 6 | 1 | 0.00000E+00 | 0.00000E+00 |
1911 205 |SI_Tice2| 7 | 1 | 0.00000E+00 | 0.00000E+00 |
1912 213 |SIflx2oc| 8 | 0 | 0.00000E+00 |
1913 214 |SIfrw2oc| 9 | 0 | 0.00000E+00 |
1914 215 |SIsaltFx| 10 | 0 | 0.00000E+00 |
1915 211 |SIflxAtm| 11 | 0 | 0.00000E+00 |
1916 212 |SIfrwAtm| 12 | 0 | 0.00000E+00 |
1917 142 |SIuice | 13 | 0 | 0.00000E+00 |
1918 143 |SIvice | 14 | 0 | 0.00000E+00 |
1919 ------------------------------------------------------------------------
1920 listId= 2 ; file name: cheapStDiag
1921 nFlds, nActive, freq & phase |
1922 10 | 10 | 43200.000000 3600.000000 |
1923 Regions: 0
1924 diag# | name | ipt | iMate | Volume | mate-Vol. |
1925 121 |CH_TAIR | 15 | 0 | 0.00000E+00 |
1926 123 |CH_QAIR | 16 | 0 | 0.00000E+00 |
1927 122 |CH_QNET | 17 | 0 | 0.00000E+00 |
1928 124 |CH_EmP | 18 | 0 | 0.00000E+00 |
1929 129 |CH_SH | 19 | 0 | 0.00000E+00 |
1930 128 |CH_LH | 20 | 0 | 0.00000E+00 |
1931 130 |CH_Prec | 21 | 0 | 0.00000E+00 |
1932 131 |CH_q100 | 22 | 0 | 0.00000E+00 |
1933 132 |CH_ssqt | 23 | 0 | 0.00000E+00 |
1934 210 |SIsnwPrc| 24 | 1 | 0.00000E+00 | 0.00000E+00 |
1935 ------------------------------------------------------------------------
1936 (PID.TID 0000.0001) CHEAPAML_INIT_VARIA: Tair initialized from ->tair_-10.bin<-
1937 (PID.TID 0000.0001) MDS_READ_FIELD: opening global file: tair_-10.bin
1938 (PID.TID 0000.0001) CHEAPAML_INIT_VARIA: Qair initialized from ->qa70_-10.bin<-
1939 (PID.TID 0000.0001) MDS_READ_FIELD: opening global file: qa70_-10.bin
1940 (PID.TID 0000.0001) CHEAPAML_INIT_VARIA: Tracer initialized using standard profile
1941 (PID.TID 0000.0001) CHEAPAML_INIT_VARIA: CheapMask initialized from ->const_00.bin<-
1942 (PID.TID 0000.0001) MDS_READ_FIELD: opening global file: const_00.bin
1943 (PID.TID 0000.0001) MDS_READ_FIELD: opening global file: ice0_area.bin
1944 (PID.TID 0000.0001) MDS_READ_FIELD: opening global file: const+20.bin
1945 (PID.TID 0000.0001) // =======================================================
1946 (PID.TID 0000.0001) // Model current state
1947 (PID.TID 0000.0001) // =======================================================
1948 (PID.TID 0000.0001)
1949 (PID.TID 0000.0001) // =======================================================
1950 (PID.TID 0000.0001) // Begin MONITOR dynamic field statistics
1951 (PID.TID 0000.0001) // =======================================================
1952 (PID.TID 0000.0001) %MON time_tsnumber = 0
1953 (PID.TID 0000.0001) %MON time_secondsf = 0.0000000000000E+00
1954 (PID.TID 0000.0001) %MON dynstat_eta_max = 0.0000000000000E+00
1955 (PID.TID 0000.0001) %MON dynstat_eta_min = 0.0000000000000E+00
1956 (PID.TID 0000.0001) %MON dynstat_eta_mean = 0.0000000000000E+00
1957 (PID.TID 0000.0001) %MON dynstat_eta_sd = 0.0000000000000E+00
1958 (PID.TID 0000.0001) %MON dynstat_eta_del2 = 0.0000000000000E+00
1959 (PID.TID 0000.0001) %MON dynstat_uvel_max = 0.0000000000000E+00
1960 (PID.TID 0000.0001) %MON dynstat_uvel_min = 0.0000000000000E+00
1961 (PID.TID 0000.0001) %MON dynstat_uvel_mean = 0.0000000000000E+00
1962 (PID.TID 0000.0001) %MON dynstat_uvel_sd = 0.0000000000000E+00
1963 (PID.TID 0000.0001) %MON dynstat_uvel_del2 = 0.0000000000000E+00
1964 (PID.TID 0000.0001) %MON dynstat_vvel_max = 2.0000000000000E-01
1965 (PID.TID 0000.0001) %MON dynstat_vvel_min = 2.0000000000000E-01
1966 (PID.TID 0000.0001) %MON dynstat_vvel_mean = 2.0000000000000E-01
1967 (PID.TID 0000.0001) %MON dynstat_vvel_sd = 0.0000000000000E+00
1968 (PID.TID 0000.0001) %MON dynstat_vvel_del2 = 0.0000000000000E+00
1969 (PID.TID 0000.0001) %MON dynstat_wvel_max = 4.0000000000000E-04
1970 (PID.TID 0000.0001) %MON dynstat_wvel_min = -4.0000000000000E-04
1971 (PID.TID 0000.0001) %MON dynstat_wvel_mean = 0.0000000000000E+00
1972 (PID.TID 0000.0001) %MON dynstat_wvel_sd = 8.9442719099992E-05
1973 (PID.TID 0000.0001) %MON dynstat_wvel_del2 = 1.5811388300842E-06
1974 (PID.TID 0000.0001) %MON dynstat_theta_max = -1.6200000000000E+00
1975 (PID.TID 0000.0001) %MON dynstat_theta_min = -1.6200000000000E+00
1976 (PID.TID 0000.0001) %MON dynstat_theta_mean = -1.6200000000000E+00
1977 (PID.TID 0000.0001) %MON dynstat_theta_sd = 0.0000000000000E+00
1978 (PID.TID 0000.0001) %MON dynstat_theta_del2 = 0.0000000000000E+00
1979 (PID.TID 0000.0001) %MON dynstat_salt_max = 3.0000000000000E+01
1980 (PID.TID 0000.0001) %MON dynstat_salt_min = 3.0000000000000E+01
1981 (PID.TID 0000.0001) %MON dynstat_salt_mean = 3.0000000000000E+01
1982 (PID.TID 0000.0001) %MON dynstat_salt_sd = 0.0000000000000E+00
1983 (PID.TID 0000.0001) %MON dynstat_salt_del2 = 0.0000000000000E+00
1984 (PID.TID 0000.0001) %MON forcing_qnet_max = 0.0000000000000E+00
1985 (PID.TID 0000.0001) %MON forcing_qnet_min = 0.0000000000000E+00
1986 (PID.TID 0000.0001) %MON forcing_qnet_mean = 0.0000000000000E+00
1987 (PID.TID 0000.0001) %MON forcing_qnet_sd = 0.0000000000000E+00
1988 (PID.TID 0000.0001) %MON forcing_qnet_del2 = 0.0000000000000E+00
1989 (PID.TID 0000.0001) %MON forcing_qsw_max = 0.0000000000000E+00
1990 (PID.TID 0000.0001) %MON forcing_qsw_min = 0.0000000000000E+00
1991 (PID.TID 0000.0001) %MON forcing_qsw_mean = 0.0000000000000E+00
1992 (PID.TID 0000.0001) %MON forcing_qsw_sd = 0.0000000000000E+00
1993 (PID.TID 0000.0001) %MON forcing_qsw_del2 = 0.0000000000000E+00
1994 (PID.TID 0000.0001) %MON forcing_empmr_max = 0.0000000000000E+00
1995 (PID.TID 0000.0001) %MON forcing_empmr_min = 0.0000000000000E+00
1996 (PID.TID 0000.0001) %MON forcing_empmr_mean = 0.0000000000000E+00
1997 (PID.TID 0000.0001) %MON forcing_empmr_sd = 0.0000000000000E+00
1998 (PID.TID 0000.0001) %MON forcing_empmr_del2 = 0.0000000000000E+00
1999 (PID.TID 0000.0001) %MON forcing_fu_max = 0.0000000000000E+00
2000 (PID.TID 0000.0001) %MON forcing_fu_min = 0.0000000000000E+00
2001 (PID.TID 0000.0001) %MON forcing_fu_mean = 0.0000000000000E+00
2002 (PID.TID 0000.0001) %MON forcing_fu_sd = 0.0000000000000E+00
2003 (PID.TID 0000.0001) %MON forcing_fu_del2 = 0.0000000000000E+00
2004 (PID.TID 0000.0001) %MON forcing_fv_max = 0.0000000000000E+00
2005 (PID.TID 0000.0001) %MON forcing_fv_min = 0.0000000000000E+00
2006 (PID.TID 0000.0001) %MON forcing_fv_mean = 0.0000000000000E+00
2007 (PID.TID 0000.0001) %MON forcing_fv_sd = 0.0000000000000E+00
2008 (PID.TID 0000.0001) %MON forcing_fv_del2 = 0.0000000000000E+00
2009 (PID.TID 0000.0001) %MON advcfl_uvel_max = 0.0000000000000E+00
2010 (PID.TID 0000.0001) %MON advcfl_vvel_max = 1.4400000000000E-01
2011 (PID.TID 0000.0001) %MON advcfl_wvel_max = 2.8800000000000E-01
2012 (PID.TID 0000.0001) %MON advcfl_W_hf_max = 0.0000000000000E+00
2013 (PID.TID 0000.0001) %MON pe_b_mean = 0.0000000000000E+00
2014 (PID.TID 0000.0001) %MON ke_max = 2.0000000000000E-02
2015 (PID.TID 0000.0001) %MON ke_mean = 1.9500000000000E-02
2016 (PID.TID 0000.0001) %MON ke_vol = 8.0000000000000E+11
2017 (PID.TID 0000.0001) %MON vort_r_min = 0.0000000000000E+00
2018 (PID.TID 0000.0001) %MON vort_r_max = 0.0000000000000E+00
2019 (PID.TID 0000.0001) %MON vort_a_mean = 0.0000000000000E+00
2020 (PID.TID 0000.0001) %MON vort_a_sd = 0.0000000000000E+00
2021 (PID.TID 0000.0001) %MON vort_p_mean = 0.0000000000000E+00
2022 (PID.TID 0000.0001) %MON vort_p_sd = 0.0000000000000E+00
2023 (PID.TID 0000.0001) %MON surfExpan_theta_mean = 0.0000000000000E+00
2024 (PID.TID 0000.0001) %MON surfExpan_salt_mean = 0.0000000000000E+00
2025 (PID.TID 0000.0001) // =======================================================
2026 (PID.TID 0000.0001) // End MONITOR dynamic field statistics
2027 (PID.TID 0000.0001) // =======================================================
2028 (PID.TID 0000.0001) // =======================================================
2029 (PID.TID 0000.0001) // Begin MONITOR SEAICE statistics
2030 (PID.TID 0000.0001) // =======================================================
2031 (PID.TID 0000.0001) %MON seaice_tsnumber = 0
2032 (PID.TID 0000.0001) %MON seaice_time_sec = 0.0000000000000E+00
2033 (PID.TID 0000.0001) %MON seaice_uice_max = 0.0000000000000E+00
2034 (PID.TID 0000.0001) %MON seaice_uice_min = 0.0000000000000E+00
2035 (PID.TID 0000.0001) %MON seaice_uice_mean = 0.0000000000000E+00
2036 (PID.TID 0000.0001) %MON seaice_uice_sd = 0.0000000000000E+00
2037 (PID.TID 0000.0001) %MON seaice_uice_del2 = 0.0000000000000E+00
2038 (PID.TID 0000.0001) %MON seaice_vice_max = 0.0000000000000E+00
2039 (PID.TID 0000.0001) %MON seaice_vice_min = 0.0000000000000E+00
2040 (PID.TID 0000.0001) %MON seaice_vice_mean = 0.0000000000000E+00
2041 (PID.TID 0000.0001) %MON seaice_vice_sd = 0.0000000000000E+00
2042 (PID.TID 0000.0001) %MON seaice_vice_del2 = 0.0000000000000E+00
2043 (PID.TID 0000.0001) // =======================================================
2044 (PID.TID 0000.0001) // End MONITOR SEAICE statistics
2045 (PID.TID 0000.0001) // =======================================================
2046 (PID.TID 0000.0001) // =======================================================
2047 (PID.TID 0000.0001) // Begin MONITOR Therm.SeaIce statistics
2048 (PID.TID 0000.0001) // =======================================================
2049 (PID.TID 0000.0001) %MON thSI_time_sec = 0.0000000000000E+00
2050 (PID.TID 0000.0001) %MON thSI_Ice_Area_G = 4.0000000000000E+10
2051 (PID.TID 0000.0001) %MON thSI_Ice_Area_S = 2.1000000000000E+10
2052 (PID.TID 0000.0001) %MON thSI_Ice_Area_N = 1.9000000000000E+10
2053 (PID.TID 0000.0001) %MON thSI_IceH_ave_G = 2.0000000000000E-01
2054 (PID.TID 0000.0001) %MON thSI_IceH_ave_S = 2.0000000000000E-01
2055 (PID.TID 0000.0001) %MON thSI_IceH_ave_N = 2.0000000000000E-01
2056 (PID.TID 0000.0001) %MON thSI_IceH_max_S = 2.0000000000000E-01
2057 (PID.TID 0000.0001) %MON thSI_IceH_max_N = 2.0000000000000E-01
2058 (PID.TID 0000.0001) %MON thSI_SnwH_ave_G = 0.0000000000000E+00
2059 (PID.TID 0000.0001) %MON thSI_SnwH_ave_S = 0.0000000000000E+00
2060 (PID.TID 0000.0001) %MON thSI_SnwH_ave_N = 0.0000000000000E+00
2061 (PID.TID 0000.0001) %MON thSI_SnwH_max_S = 0.0000000000000E+00
2062 (PID.TID 0000.0001) %MON thSI_SnwH_max_N = 0.0000000000000E+00
2063 (PID.TID 0000.0001) %MON thSI_Tsrf_ave_G = 0.0000000000000E+00
2064 (PID.TID 0000.0001) %MON thSI_Tsrf_ave_S = 0.0000000000000E+00
2065 (PID.TID 0000.0001) %MON thSI_Tsrf_ave_N = 0.0000000000000E+00
2066 (PID.TID 0000.0001) %MON thSI_Tsrf_min_S = 0.0000000000000E+00
2067 (PID.TID 0000.0001) %MON thSI_Tsrf_min_N = 0.0000000000000E+00
2068 (PID.TID 0000.0001) %MON thSI_Tsrf_max_S = 0.0000000000000E+00
2069 (PID.TID 0000.0001) %MON thSI_Tsrf_max_N = 0.0000000000000E+00
2070 (PID.TID 0000.0001) %MON thSI_Tic1_ave_G = 0.0000000000000E+00
2071 (PID.TID 0000.0001) %MON thSI_Tic1_ave_S = 0.0000000000000E+00
2072 (PID.TID 0000.0001) %MON thSI_Tic1_ave_N = 0.0000000000000E+00
2073 (PID.TID 0000.0001) %MON thSI_Tic1_min_S = 0.0000000000000E+00
2074 (PID.TID 0000.0001) %MON thSI_Tic1_min_N = 0.0000000000000E+00
2075 (PID.TID 0000.0001) %MON thSI_Tic1_max_S = 0.0000000000000E+00
2076 (PID.TID 0000.0001) %MON thSI_Tic1_max_N = 0.0000000000000E+00
2077 (PID.TID 0000.0001) %MON thSI_Tic2_ave_G = 0.0000000000000E+00
2078 (PID.TID 0000.0001) %MON thSI_Tic2_ave_S = 0.0000000000000E+00
2079 (PID.TID 0000.0001) %MON thSI_Tic2_ave_N = 0.0000000000000E+00
2080 (PID.TID 0000.0001) %MON thSI_Tic2_min_S = 0.0000000000000E+00
2081 (PID.TID 0000.0001) %MON thSI_Tic2_min_N = 0.0000000000000E+00
2082 (PID.TID 0000.0001) %MON thSI_Tic2_max_S = 0.0000000000000E+00
2083 (PID.TID 0000.0001) %MON thSI_Tic2_max_N = 0.0000000000000E+00
2084 (PID.TID 0000.0001) %MON thSI_TotEnerg_G = -2.3927490296471E+18
2085 (PID.TID 0000.0001) // =======================================================
2086 (PID.TID 0000.0001) // End MONITOR Therm.SeaIce statistics
2087 (PID.TID 0000.0001) // =======================================================
2088 (PID.TID 0000.0001) MDS_READ_FIELD: opening global file: dsw_70y.bin
2089 (PID.TID 0000.0001) MDS_READ_FIELD: opening global file: tair_-10.bin
2090 (PID.TID 0000.0001) MDS_READ_FIELD: opening global file: qa70_-10.bin
2091 (PID.TID 0000.0001) MDS_READ_FIELD: opening global file: windx_10ms.bin
2092 (PID.TID 0000.0001) MDS_READ_FIELD: opening global file: windy_conv.bin
2093 (PID.TID 0000.0001) MDS_READ_FIELD: opening global file: dlw_270y.bin
2094 SEAICE_LSR: Residual Initial ipass,Uice,Vice= 1 4.76868078E-01 1.99570573E-01
2095 SEAICE_LSR: Residual FrDrift U_fd,V_fd= 1.16825932E+03 1.81721147E+03
2096 SEAICE_LSR (ipass= 1) iters,dU,Resid= 1500 2.43972142E-05 4.14169510E-01
2097 SEAICE_LSR (ipass= 1) iters,dV,Resid= 912 9.78775871E-13 1.27753864E-08
2098 SEAICE_LSR: Residual Initial ipass,Uice,Vice= 2 3.76808043E-01 1.56861740E-01
2099 SEAICE_LSR: Residual FrDrift U_fd,V_fd= 4.66649262E+02 5.18213203E+02
2100 SEAICE_LSR (ipass= 2) iters,dU,Resid= 1500 4.03693209E-05 4.08130384E-01
2101 SEAICE_LSR (ipass= 2) iters,dV,Resid= 1500 4.41136949E-12 4.37869571E-08
2102 Compute Stats, Diag. # 200 SI_Fract vol( 0 ): 8.000E+10 Parms: SM P M1
2103 Compute Stats, Diag. # 201 SI_Thick vol( 0 ): 4.000E+10 Parms: SM PC M1
2104 use Counter Mate # 200 SI_Fract vol( 0 ): 8.000E+10 integral 4.000E+10
2105 Compute Stats, Diag. # 202 SI_SnowH vol( 0 ): 4.000E+10 Parms: SM PC M1
2106 use Counter Mate # 200 SI_Fract vol( 0 ): 8.000E+10 integral 4.000E+10
2107 Compute Stats, Diag. # 26 THETA vol( 0 ): 8.000E+11 Parms: SMR MR
2108 Compute Stats, Diag. # 203 SI_Tsrf vol( 0 ): 4.000E+10 Parms: SM C M1
2109 use Counter Mate # 200 SI_Fract vol( 0 ): 8.000E+10 integral 4.000E+10
2110 Compute Stats, Diag. # 204 SI_Tice1 vol( 0 ): 4.000E+10 Parms: SM C M1
2111 use Counter Mate # 200 SI_Fract vol( 0 ): 8.000E+10 integral 4.000E+10
2112 Compute Stats, Diag. # 205 SI_Tice2 vol( 0 ): 4.000E+10 Parms: SM C M1
2113 use Counter Mate # 200 SI_Fract vol( 0 ): 8.000E+10 integral 4.000E+10
2114 Compute Stats, Diag. # 213 SIflx2oc vol( 0 ): 8.000E+10 Parms: SM M1
2115 Compute Stats, Diag. # 214 SIfrw2oc vol( 0 ): 8.000E+10 Parms: SM M1
2116 Compute Stats, Diag. # 215 SIsaltFx vol( 0 ): 8.000E+10 Parms: SM M1
2117 Compute Stats, Diag. # 211 SIflxAtm vol( 0 ): 8.000E+10 Parms: SM M1
2118 Compute Stats, Diag. # 212 SIfrwAtm vol( 0 ): 8.000E+10 Parms: SM M1
2119 Compute Stats, Diag. # 142 SIuice vol( 0 ): 8.000E+10 Parms: UU M1
2120 Compute Stats, Diag. # 143 SIvice vol( 0 ): 7.800E+10 Parms: VV M1
2121 Compute Stats, Diag. # 121 CH_TAIR vol( 0 ): 8.000E+10 Parms: SM L1
2122 Compute Stats, Diag. # 123 CH_QAIR vol( 0 ): 8.000E+10 Parms: SM L1
2123 Compute Stats, Diag. # 122 CH_QNET vol( 0 ): 8.000E+10 Parms: SM L1
2124 Compute Stats, Diag. # 124 CH_EmP vol( 0 ): 8.000E+10 Parms: SM L1
2125 Compute Stats, Diag. # 129 CH_SH vol( 0 ): 8.000E+10 Parms: SM L1
2126 Compute Stats, Diag. # 128 CH_LH vol( 0 ): 8.000E+10 Parms: SM L1
2127 Compute Stats, Diag. # 130 CH_Prec vol( 0 ): 8.000E+10 Parms: SM L1
2128 Compute Stats, Diag. # 131 CH_q100 vol( 0 ): 8.000E+10 Parms: SM L1
2129 Compute Stats, Diag. # 132 CH_ssqt vol( 0 ): 8.000E+10 Parms: SM L1
2130 Compute Stats, Diag. # 210 SIsnwPrc vol( 0 ): 4.000E+10 Parms: SM C M1
2131 use Counter Mate # 200 SI_Fract vol( 0 ): 8.000E+10 integral 4.000E+10
2132 (PID.TID 0000.0001) // =======================================================
2133 (PID.TID 0000.0001) // Begin MONITOR SEAICE statistics
2134 (PID.TID 0000.0001) // =======================================================
2135 (PID.TID 0000.0001) %MON seaice_tsnumber = 6
2136 (PID.TID 0000.0001) %MON seaice_time_sec = 2.1600000000000E+04
2137 (PID.TID 0000.0001) %MON seaice_uice_max = 4.2355844095083E-01
2138 (PID.TID 0000.0001) %MON seaice_uice_min = 1.4908218138121E-01
2139 (PID.TID 0000.0001) %MON seaice_uice_mean = 2.9539900334009E-01
2140 (PID.TID 0000.0001) %MON seaice_uice_sd = 8.3570508150598E-03
2141 (PID.TID 0000.0001) %MON seaice_uice_del2 = 1.7338390539234E-04
2142 (PID.TID 0000.0001) %MON seaice_vice_max = 1.9690229827663E-01
2143 (PID.TID 0000.0001) %MON seaice_vice_min = 3.6389363223299E-02
2144 (PID.TID 0000.0001) %MON seaice_vice_mean = 1.8354602402383E-01
2145 (PID.TID 0000.0001) %MON seaice_vice_sd = 1.5266209556291E-02
2146 (PID.TID 0000.0001) %MON seaice_vice_del2 = 1.1671327290893E-04
2147 (PID.TID 0000.0001) // =======================================================
2148 (PID.TID 0000.0001) // End MONITOR SEAICE statistics
2149 (PID.TID 0000.0001) // =======================================================
2150 SEAICE_LSR: Residual Initial ipass,Uice,Vice= 1 2.70775330E-02 2.31445337E-02
2151 SEAICE_LSR: Residual FrDrift U_fd,V_fd= 1.65203302E-01 1.78987833E-01
2152 SEAICE_LSR (ipass= 1) iters,dU,Resid= 1500 5.53871781E-08 2.93276627E-05
2153 SEAICE_LSR (ipass= 1) iters,dV,Resid= 1500 4.87727185E-08 3.52239230E-05
2154 SEAICE_LSR: Residual Initial ipass,Uice,Vice= 2 1.45048009E-02 1.55812346E-02
2155 SEAICE_LSR: Residual FrDrift U_fd,V_fd= 1.78353047E-01 1.80217398E-01
2156 SEAICE_LSR (ipass= 2) iters,dU,Resid= 1500 6.20181073E-09 3.34924186E-06
2157 SEAICE_LSR (ipass= 2) iters,dV,Resid= 1500 3.21779697E-08 2.34321495E-05
2158 (PID.TID 0000.0001) // =======================================================
2159 (PID.TID 0000.0001) // Begin MONITOR dynamic field statistics
2160 (PID.TID 0000.0001) // =======================================================
2161 (PID.TID 0000.0001) %MON time_tsnumber = 12
2162 (PID.TID 0000.0001) %MON time_secondsf = 4.3200000000000E+04
2163 (PID.TID 0000.0001) %MON dynstat_eta_max = 0.0000000000000E+00
2164 (PID.TID 0000.0001) %MON dynstat_eta_min = 0.0000000000000E+00
2165 (PID.TID 0000.0001) %MON dynstat_eta_mean = 0.0000000000000E+00
2166 (PID.TID 0000.0001) %MON dynstat_eta_sd = 0.0000000000000E+00
2167 (PID.TID 0000.0001) %MON dynstat_eta_del2 = 0.0000000000000E+00
2168 (PID.TID 0000.0001) %MON dynstat_uvel_max = 0.0000000000000E+00
2169 (PID.TID 0000.0001) %MON dynstat_uvel_min = 0.0000000000000E+00
2170 (PID.TID 0000.0001) %MON dynstat_uvel_mean = 0.0000000000000E+00
2171 (PID.TID 0000.0001) %MON dynstat_uvel_sd = 0.0000000000000E+00
2172 (PID.TID 0000.0001) %MON dynstat_uvel_del2 = 0.0000000000000E+00
2173 (PID.TID 0000.0001) %MON dynstat_vvel_max = 2.0000000000000E-01
2174 (PID.TID 0000.0001) %MON dynstat_vvel_min = 2.0000000000000E-01
2175 (PID.TID 0000.0001) %MON dynstat_vvel_mean = 2.0000000000000E-01
2176 (PID.TID 0000.0001) %MON dynstat_vvel_sd = 0.0000000000000E+00
2177 (PID.TID 0000.0001) %MON dynstat_vvel_del2 = 0.0000000000000E+00
2178 (PID.TID 0000.0001) %MON dynstat_wvel_max = 4.0000000000000E-04
2179 (PID.TID 0000.0001) %MON dynstat_wvel_min = -4.0000000000000E-04
2180 (PID.TID 0000.0001) %MON dynstat_wvel_mean = 0.0000000000000E+00
2181 (PID.TID 0000.0001) %MON dynstat_wvel_sd = 8.9442719099992E-05
2182 (PID.TID 0000.0001) %MON dynstat_wvel_del2 = 1.5811388300842E-06
2183 (PID.TID 0000.0001) %MON dynstat_theta_max = -1.5386650596416E+00
2184 (PID.TID 0000.0001) %MON dynstat_theta_min = -1.6315490429861E+00
2185 (PID.TID 0000.0001) %MON dynstat_theta_mean = -1.6010421085399E+00
2186 (PID.TID 0000.0001) %MON dynstat_theta_sd = 3.0538608156686E-02
2187 (PID.TID 0000.0001) %MON dynstat_theta_del2 = 7.3191594320079E-05
2188 (PID.TID 0000.0001) %MON dynstat_salt_max = 3.0000000000000E+01
2189 (PID.TID 0000.0001) %MON dynstat_salt_min = 3.0000000000000E+01
2190 (PID.TID 0000.0001) %MON dynstat_salt_mean = 3.0000000000000E+01
2191 (PID.TID 0000.0001) %MON dynstat_salt_sd = 0.0000000000000E+00
2192 (PID.TID 0000.0001) %MON dynstat_salt_del2 = 0.0000000000000E+00
2193 (PID.TID 0000.0001) %MON forcing_qnet_max = 1.0138309841621E+02
2194 (PID.TID 0000.0001) %MON forcing_qnet_min = -5.7765984168076E+00
2195 (PID.TID 0000.0001) %MON forcing_qnet_mean = 2.8214195137508E+01
2196 (PID.TID 0000.0001) %MON forcing_qnet_sd = 2.6593838049942E+01
2197 (PID.TID 0000.0001) %MON forcing_qnet_del2 = 4.9381905253918E-01
2198 (PID.TID 0000.0001) %MON forcing_qsw_max = -4.2649665866292E+00
2199 (PID.TID 0000.0001) %MON forcing_qsw_min = -9.6984481503143E+01
2200 (PID.TID 0000.0001) %MON forcing_qsw_mean = -3.6263698430365E+01
2201 (PID.TID 0000.0001) %MON forcing_qsw_sd = 3.2077963897458E+01
2202 (PID.TID 0000.0001) %MON forcing_qsw_del2 = 2.8511574873349E-01
2203 (PID.TID 0000.0001) %MON forcing_empmr_max = 4.2325518588225E-04
2204 (PID.TID 0000.0001) %MON forcing_empmr_min = -3.5142887687415E-05
2205 (PID.TID 0000.0001) %MON forcing_empmr_mean = 1.3940237031865E-04
2206 (PID.TID 0000.0001) %MON forcing_empmr_sd = 1.1023739486113E-04
2207 (PID.TID 0000.0001) %MON forcing_empmr_del2 = 9.5208911070733E-07
2208 (PID.TID 0000.0001) %MON forcing_fu_max = 7.8122044158422E-01
2209 (PID.TID 0000.0001) %MON forcing_fu_min = 1.7069674294741E-01
2210 (PID.TID 0000.0001) %MON forcing_fu_mean = 3.2885540255796E-01
2211 (PID.TID 0000.0001) %MON forcing_fu_sd = 1.2540173273673E-01
2212 (PID.TID 0000.0001) %MON forcing_fu_del2 = 4.2160794072985E-04
2213 (PID.TID 0000.0001) %MON forcing_fv_max = -2.0578797851117E-03
2214 (PID.TID 0000.0001) %MON forcing_fv_min = -3.4256862072793E-01
2215 (PID.TID 0000.0001) %MON forcing_fv_mean = -2.7198950323622E-02
2216 (PID.TID 0000.0001) %MON forcing_fv_sd = 3.6497177435952E-02
2217 (PID.TID 0000.0001) %MON forcing_fv_del2 = 2.4329997658236E-04
2218 (PID.TID 0000.0001) %MON advcfl_uvel_max = 0.0000000000000E+00
2219 (PID.TID 0000.0001) %MON advcfl_vvel_max = 1.4400000000000E-01
2220 (PID.TID 0000.0001) %MON advcfl_wvel_max = 2.8800000000000E-01
2221 (PID.TID 0000.0001) %MON advcfl_W_hf_max = 0.0000000000000E+00
2222 (PID.TID 0000.0001) %MON pe_b_mean = 0.0000000000000E+00
2223 (PID.TID 0000.0001) %MON ke_max = 2.0000000000000E-02
2224 (PID.TID 0000.0001) %MON ke_mean = 1.9500000000000E-02
2225 (PID.TID 0000.0001) %MON ke_vol = 8.0000000000000E+11
2226 (PID.TID 0000.0001) %MON vort_r_min = 0.0000000000000E+00
2227 (PID.TID 0000.0001) %MON vort_r_max = 0.0000000000000E+00
2228 (PID.TID 0000.0001) %MON vort_a_mean = 0.0000000000000E+00
2229 (PID.TID 0000.0001) %MON vort_a_sd = 0.0000000000000E+00
2230 (PID.TID 0000.0001) %MON vort_p_mean = 0.0000000000000E+00
2231 (PID.TID 0000.0001) %MON vort_p_sd = 0.0000000000000E+00
2232 (PID.TID 0000.0001) %MON surfExpan_theta_mean = 1.8455408661173E-07
2233 (PID.TID 0000.0001) %MON surfExpan_salt_mean = 0.0000000000000E+00
2234 (PID.TID 0000.0001) // =======================================================
2235 (PID.TID 0000.0001) // End MONITOR dynamic field statistics
2236 (PID.TID 0000.0001) // =======================================================
2237 (PID.TID 0000.0001) // =======================================================
2238 (PID.TID 0000.0001) // Begin MONITOR SEAICE statistics
2239 (PID.TID 0000.0001) // =======================================================
2240 (PID.TID 0000.0001) %MON seaice_tsnumber = 12
2241 (PID.TID 0000.0001) %MON seaice_time_sec = 4.3200000000000E+04
2242 (PID.TID 0000.0001) %MON seaice_uice_max = 3.9249033599031E-01
2243 (PID.TID 0000.0001) %MON seaice_uice_min = 1.6044144713185E-01
2244 (PID.TID 0000.0001) %MON seaice_uice_mean = 2.9281391101449E-01
2245 (PID.TID 0000.0001) %MON seaice_uice_sd = 9.1127943334290E-03
2246 (PID.TID 0000.0001) %MON seaice_uice_del2 = 1.6432427434172E-04
2247 (PID.TID 0000.0001) %MON seaice_vice_max = 1.9691394074270E-01
2248 (PID.TID 0000.0001) %MON seaice_vice_min = 2.5999241746550E-02
2249 (PID.TID 0000.0001) %MON seaice_vice_mean = 1.8082302915869E-01
2250 (PID.TID 0000.0001) %MON seaice_vice_sd = 2.1866801273125E-02
2251 (PID.TID 0000.0001) %MON seaice_vice_del2 = 1.5328418866395E-04
2252 (PID.TID 0000.0001) // =======================================================
2253 (PID.TID 0000.0001) // End MONITOR SEAICE statistics
2254 (PID.TID 0000.0001) // =======================================================
2255 (PID.TID 0000.0001) // =======================================================
2256 (PID.TID 0000.0001) // Begin MONITOR Therm.SeaIce statistics
2257 (PID.TID 0000.0001) // =======================================================
2258 (PID.TID 0000.0001) %MON thSI_time_sec = 4.3200000000000E+04
2259 (PID.TID 0000.0001) %MON thSI_Ice_Area_G = 4.1222336907219E+10
2260 (PID.TID 0000.0001) %MON thSI_Ice_Area_S = 2.0896472183679E+10
2261 (PID.TID 0000.0001) %MON thSI_Ice_Area_N = 2.0325864723540E+10
2262 (PID.TID 0000.0001) %MON thSI_IceH_ave_G = 2.0793441255117E-01
2263 (PID.TID 0000.0001) %MON thSI_IceH_ave_S = 2.0289250251671E-01
2264 (PID.TID 0000.0001) %MON thSI_IceH_ave_N = 2.1311786399203E-01
2265 (PID.TID 0000.0001) %MON thSI_IceH_max_S = 2.1924839524376E-01
2266 (PID.TID 0000.0001) %MON thSI_IceH_max_N = 3.3657407475331E-01
2267 (PID.TID 0000.0001) %MON thSI_SnwH_ave_G = 0.0000000000000E+00
2268 (PID.TID 0000.0001) %MON thSI_SnwH_ave_S = 0.0000000000000E+00
2269 (PID.TID 0000.0001) %MON thSI_SnwH_ave_N = 0.0000000000000E+00
2270 (PID.TID 0000.0001) %MON thSI_SnwH_max_S = 0.0000000000000E+00
2271 (PID.TID 0000.0001) %MON thSI_SnwH_max_N = 0.0000000000000E+00
2272 (PID.TID 0000.0001) %MON thSI_Tsrf_ave_G = -5.6303469885182E+00
2273 (PID.TID 0000.0001) %MON thSI_Tsrf_ave_S = -5.4028186041450E+00
2274 (PID.TID 0000.0001) %MON thSI_Tsrf_ave_N = -5.8642627711783E+00
2275 (PID.TID 0000.0001) %MON thSI_Tsrf_min_S = -5.8591354442392E+00
2276 (PID.TID 0000.0001) %MON thSI_Tsrf_min_N = -7.0120756694228E+00
2277 (PID.TID 0000.0001) %MON thSI_Tsrf_max_S = -5.1946261260556E+00
2278 (PID.TID 0000.0001) %MON thSI_Tsrf_max_N = -5.5190940470573E+00
2279 (PID.TID 0000.0001) %MON thSI_Tic1_ave_G = -4.6397686334426E+00
2280 (PID.TID 0000.0001) %MON thSI_Tic1_ave_S = -4.4822690967428E+00
2281 (PID.TID 0000.0001) %MON thSI_Tic1_ave_N = -4.7939207056119E+00
2282 (PID.TID 0000.0001) %MON thSI_Tic1_min_S = -4.8023347690924E+00
2283 (PID.TID 0000.0001) %MON thSI_Tic1_min_N = -5.4073173302680E+00
2284 (PID.TID 0000.0001) %MON thSI_Tic1_max_S = -4.2508138167118E+00
2285 (PID.TID 0000.0001) %MON thSI_Tic1_max_N = -4.4602101366712E+00
2286 (PID.TID 0000.0001) %MON thSI_Tic2_ave_G = -2.6276990375656E+00
2287 (PID.TID 0000.0001) %MON thSI_Tic2_ave_S = -2.5782689729668E+00
2288 (PID.TID 0000.0001) %MON thSI_Tic2_ave_N = -2.6760785251820E+00
2289 (PID.TID 0000.0001) %MON thSI_Tic2_min_S = -2.6753547429115E+00
2290 (PID.TID 0000.0001) %MON thSI_Tic2_min_N = -2.8539481641877E+00
2291 (PID.TID 0000.0001) %MON thSI_Tic2_max_S = -2.4656237759255E+00
2292 (PID.TID 0000.0001) %MON thSI_Tic2_max_N = -2.5319382068840E+00
2293 (PID.TID 0000.0001) %MON thSI_TotEnerg_G = -2.6209588397590E+18
2294 (PID.TID 0000.0001) // =======================================================
2295 (PID.TID 0000.0001) // End MONITOR Therm.SeaIce statistics
2296 (PID.TID 0000.0001) // =======================================================
2297 Computing Diagnostic # 121 CH_TAIR Counter: 1 Parms: SM L1
2298 Computing Diagnostic # 123 CH_QAIR Counter: 1 Parms: SM L1
2299 Computing Diagnostic # 26 THETA Counter: 1 Parms: SMR MR
2300 Computing Diagnostic # 200 SI_Fract Counter: 1 Parms: SM P M1
2301 Computing Diagnostic # 201 SI_Thick Counter: 1 Parms: SM PC M1
2302 use Counter Mate for SI_Thick Diagnostic # 200 SI_Fract
2303 Computing Diagnostic # 202 SI_SnowH Counter: 1 Parms: SM PC M1
2304 use Counter Mate for SI_SnowH Diagnostic # 200 SI_Fract
2305 Computing Diagnostic # 142 SIuice Counter: 1 Parms: UU M1
2306 Vector Mate for SIuice Diagnostic # 143 SIvice exists
2307 Computing Diagnostic # 143 SIvice Counter: 1 Parms: VV M1
2308 Vector Mate for SIvice Diagnostic # 142 SIuice exists
2309 Computing Diagnostic # 211 SIflxAtm Counter: 1 Parms: SM M1
2310 Computing Diagnostic # 212 SIfrwAtm Counter: 1 Parms: SM M1
2311 Computing Diagnostic # 210 SIsnwPrc Counter: 1 Parms: SM C M1
2312 use Counter Mate for SIsnwPrc Diagnostic # 200 SI_Fract
2313 Computing Diagnostic # 122 CH_QNET Counter: 1 Parms: SM L1
2314 Computing Diagnostic # 124 CH_EmP Counter: 1 Parms: SM L1
2315 Computing Diagnostic # 129 CH_SH Counter: 1 Parms: SM L1
2316 Computing Diagnostic # 128 CH_LH Counter: 1 Parms: SM L1
2317 Computing Diagnostic # 130 CH_Prec Counter: 1 Parms: SM L1
2318 Computing Diagnostic # 131 CH_q100 Counter: 1 Parms: SM L1
2319 Computing Diagnostic # 132 CH_ssqt Counter: 1 Parms: SM L1
2320 Computing Diagnostic # 200 SI_Fract Counter: 12 Parms: SM P M1
2321 Computing Diagnostic # 201 SI_Thick Counter: 12 Parms: SM PC M1
2322 use Counter Mate for SI_Thick Diagnostic # 200 SI_Fract
2323 Computing Diagnostic # 26 THETA Counter: 12 Parms: SMR MR
2324 Computing Diagnostic # 203 SI_Tsrf Counter: 12 Parms: SM C M1
2325 use Counter Mate for SI_Tsrf Diagnostic # 200 SI_Fract
2326 Computing Diagnostic # 213 SIflx2oc Counter: 12 Parms: SM M1
2327 Computing Diagnostic # 214 SIfrw2oc Counter: 12 Parms: SM M1
2328 Computing Diagnostic # 215 SIsaltFx Counter: 12 Parms: SM M1
2329 Computing Diagnostic # 85 oceQsw Counter: 12 Parms: SM U1
2330 Computing Diagnostic # 211 SIflxAtm Counter: 12 Parms: SM M1
2331 Computing Diagnostic # 212 SIfrwAtm Counter: 12 Parms: SM M1
2332 Computing Diagnostic # 130 CH_Prec Counter: 12 Parms: SM L1
2333 Computing Diagnostic # 142 SIuice Counter: 12 Parms: UU M1
2334 Vector Mate for SIuice Diagnostic # 143 SIvice exists
2335 Computing Diagnostic # 143 SIvice Counter: 12 Parms: VV M1
2336 Vector Mate for SIvice Diagnostic # 142 SIuice exists
2337 Compute Stats, Diag. # 200 SI_Fract vol( 0 ): 8.800E+11 Parms: SM P M1
2338 Compute Stats, Diag. # 201 SI_Thick vol( 0 ): 4.483E+11 Parms: SM PC M1
2339 use Counter Mate # 200 SI_Fract vol( 0 ): 8.800E+11 integral 4.483E+11
2340 Compute Stats, Diag. # 202 SI_SnowH vol( 0 ): 4.483E+11 Parms: SM PC M1
2341 use Counter Mate # 200 SI_Fract vol( 0 ): 8.800E+11 integral 4.483E+11
2342 Compute Stats, Diag. # 26 THETA vol( 0 ): 8.800E+12 Parms: SMR MR
2343 Compute Stats, Diag. # 203 SI_Tsrf vol( 0 ): 4.483E+11 Parms: SM C M1
2344 use Counter Mate # 200 SI_Fract vol( 0 ): 8.800E+11 integral 4.483E+11
2345 Compute Stats, Diag. # 204 SI_Tice1 vol( 0 ): 4.483E+11 Parms: SM C M1
2346 use Counter Mate # 200 SI_Fract vol( 0 ): 8.800E+11 integral 4.483E+11
2347 Compute Stats, Diag. # 205 SI_Tice2 vol( 0 ): 4.483E+11 Parms: SM C M1
2348 use Counter Mate # 200 SI_Fract vol( 0 ): 8.800E+11 integral 4.483E+11
2349 Compute Stats, Diag. # 213 SIflx2oc vol( 0 ): 8.800E+11 Parms: SM M1
2350 Compute Stats, Diag. # 214 SIfrw2oc vol( 0 ): 8.800E+11 Parms: SM M1
2351 Compute Stats, Diag. # 215 SIsaltFx vol( 0 ): 8.800E+11 Parms: SM M1
2352 Compute Stats, Diag. # 211 SIflxAtm vol( 0 ): 8.800E+11 Parms: SM M1
2353 Compute Stats, Diag. # 212 SIfrwAtm vol( 0 ): 8.800E+11 Parms: SM M1
2354 Compute Stats, Diag. # 142 SIuice vol( 0 ): 8.800E+11 Parms: UU M1
2355 Compute Stats, Diag. # 143 SIvice vol( 0 ): 8.580E+11 Parms: VV M1
2356 Compute Stats, Diag. # 121 CH_TAIR vol( 0 ): 8.800E+11 Parms: SM L1
2357 Compute Stats, Diag. # 123 CH_QAIR vol( 0 ): 8.800E+11 Parms: SM L1
2358 Compute Stats, Diag. # 122 CH_QNET vol( 0 ): 8.800E+11 Parms: SM L1
2359 Compute Stats, Diag. # 124 CH_EmP vol( 0 ): 8.800E+11 Parms: SM L1
2360 Compute Stats, Diag. # 129 CH_SH vol( 0 ): 8.800E+11 Parms: SM L1
2361 Compute Stats, Diag. # 128 CH_LH vol( 0 ): 8.800E+11 Parms: SM L1
2362 Compute Stats, Diag. # 130 CH_Prec vol( 0 ): 8.800E+11 Parms: SM L1
2363 Compute Stats, Diag. # 131 CH_q100 vol( 0 ): 8.800E+11 Parms: SM L1
2364 Compute Stats, Diag. # 132 CH_ssqt vol( 0 ): 8.800E+11 Parms: SM L1
2365 Compute Stats, Diag. # 210 SIsnwPrc vol( 0 ): 4.483E+11 Parms: SM C M1
2366 use Counter Mate # 200 SI_Fract vol( 0 ): 8.800E+11 integral 4.483E+11
2367 (PID.TID 0000.0001) DIAGSTATS_CLOSE_IO: close file: iceStDiag.0000000000.txt , unit= 9
2368 (PID.TID 0000.0001) DIAGSTATS_CLOSE_IO: close file: cheapStDiag.0000000000.txt , unit= 10
2369 (PID.TID 0000.0001) %CHECKPOINT 12 ckptA
2370 (PID.TID 0000.0001) Seconds in section "ALL [THE_MODEL_MAIN]":
2371 (PID.TID 0000.0001) User time: 70.810000000000002
2372 (PID.TID 0000.0001) System time: 2.00000000000000004E-002
2373 (PID.TID 0000.0001) Wall clock time: 71.020517110824585
2374 (PID.TID 0000.0001) No. starts: 1
2375 (PID.TID 0000.0001) No. stops: 1
2376 (PID.TID 0000.0001) Seconds in section "INITIALISE_FIXED [THE_MODEL_MAIN]":
2377 (PID.TID 0000.0001) User time: 4.00000000000000008E-002
2378 (PID.TID 0000.0001) System time: 0.0000000000000000
2379 (PID.TID 0000.0001) Wall clock time: 4.85692024230957031E-002
2380 (PID.TID 0000.0001) No. starts: 1
2381 (PID.TID 0000.0001) No. stops: 1
2382 (PID.TID 0000.0001) Seconds in section "THE_MAIN_LOOP [THE_MODEL_MAIN]":
2383 (PID.TID 0000.0001) User time: 70.769999999999996
2384 (PID.TID 0000.0001) System time: 2.00000000000000004E-002
2385 (PID.TID 0000.0001) Wall clock time: 70.971911907196045
2386 (PID.TID 0000.0001) No. starts: 1
2387 (PID.TID 0000.0001) No. stops: 1
2388 (PID.TID 0000.0001) Seconds in section "INITIALISE_VARIA [THE_MAIN_LOOP]":
2389 (PID.TID 0000.0001) User time: 4.99999999999999958E-002
2390 (PID.TID 0000.0001) System time: 1.00000000000000002E-002
2391 (PID.TID 0000.0001) Wall clock time: 7.66389369964599609E-002
2392 (PID.TID 0000.0001) No. starts: 1
2393 (PID.TID 0000.0001) No. stops: 1
2394 (PID.TID 0000.0001) Seconds in section "MAIN LOOP [THE_MAIN_LOOP]":
2395 (PID.TID 0000.0001) User time: 70.719999999999999
2396 (PID.TID 0000.0001) System time: 1.00000000000000002E-002
2397 (PID.TID 0000.0001) Wall clock time: 70.895243167877197
2398 (PID.TID 0000.0001) No. starts: 1
2399 (PID.TID 0000.0001) No. stops: 1
2400 (PID.TID 0000.0001) Seconds in section "MAIN_DO_LOOP [THE_MAIN_LOOP]":
2401 (PID.TID 0000.0001) User time: 70.719999999999999
2402 (PID.TID 0000.0001) System time: 9.99999999999999847E-003
2403 (PID.TID 0000.0001) Wall clock time: 70.895126581192017
2404 (PID.TID 0000.0001) No. starts: 12
2405 (PID.TID 0000.0001) No. stops: 12
2406 (PID.TID 0000.0001) Seconds in section "FORWARD_STEP [MAIN_DO_LOOP]":
2407 (PID.TID 0000.0001) User time: 70.719999999999999
2408 (PID.TID 0000.0001) System time: 9.99999999999999847E-003
2409 (PID.TID 0000.0001) Wall clock time: 70.894912481307983
2410 (PID.TID 0000.0001) No. starts: 12
2411 (PID.TID 0000.0001) No. stops: 12
2412 (PID.TID 0000.0001) Seconds in section "DO_STATEVARS_DIAGS [FORWARD_STEP]":
2413 (PID.TID 0000.0001) User time: 1.99999999999960210E-002
2414 (PID.TID 0000.0001) System time: 0.0000000000000000
2415 (PID.TID 0000.0001) Wall clock time: 2.43067741394042969E-002
2416 (PID.TID 0000.0001) No. starts: 36
2417 (PID.TID 0000.0001) No. stops: 36
2418 (PID.TID 0000.0001) Seconds in section "LOAD_FIELDS_DRIVER [FORWARD_STEP]":
2419 (PID.TID 0000.0001) User time: 1.00000000000051159E-002
2420 (PID.TID 0000.0001) System time: 0.0000000000000000
2421 (PID.TID 0000.0001) Wall clock time: 1.73320770263671875E-002
2422 (PID.TID 0000.0001) No. starts: 12
2423 (PID.TID 0000.0001) No. stops: 12
2424 (PID.TID 0000.0001) Seconds in section "CHEAPAML [FORWARD_STEP]":
2425 (PID.TID 0000.0001) User time: 3.3500000000000085
2426 (PID.TID 0000.0001) System time: 9.99999999999999847E-003
2427 (PID.TID 0000.0001) Wall clock time: 3.3704724311828613
2428 (PID.TID 0000.0001) No. starts: 12
2429 (PID.TID 0000.0001) No. stops: 12
2430 (PID.TID 0000.0001) Seconds in section "DO_ATMOSPHERIC_PHYS [FORWARD_STEP]":
2431 (PID.TID 0000.0001) User time: 0.0000000000000000
2432 (PID.TID 0000.0001) System time: 0.0000000000000000
2433 (PID.TID 0000.0001) Wall clock time: 1.14679336547851563E-004
2434 (PID.TID 0000.0001) No. starts: 12
2435 (PID.TID 0000.0001) No. stops: 12
2436 (PID.TID 0000.0001) Seconds in section "DO_OCEANIC_PHYS [FORWARD_STEP]":
2437 (PID.TID 0000.0001) User time: 67.230000000000018
2438 (PID.TID 0000.0001) System time: 0.0000000000000000
2439 (PID.TID 0000.0001) Wall clock time: 67.371004343032837
2440 (PID.TID 0000.0001) No. starts: 12
2441 (PID.TID 0000.0001) No. stops: 12
2442 (PID.TID 0000.0001) Seconds in section "THSICE_MAIN [DO_OCEANIC_PHYS]":
2443 (PID.TID 0000.0001) User time: 7.99999999999840838E-002
2444 (PID.TID 0000.0001) System time: 0.0000000000000000
2445 (PID.TID 0000.0001) Wall clock time: 7.36627578735351563E-002
2446 (PID.TID 0000.0001) No. starts: 12
2447 (PID.TID 0000.0001) No. stops: 12
2448 (PID.TID 0000.0001) Seconds in section "SEAICE_MODEL [DO_OCEANIC_PHYS]":
2449 (PID.TID 0000.0001) User time: 67.120000000000033
2450 (PID.TID 0000.0001) System time: 0.0000000000000000
2451 (PID.TID 0000.0001) Wall clock time: 67.275252580642700
2452 (PID.TID 0000.0001) No. starts: 12
2453 (PID.TID 0000.0001) No. stops: 12
2454 (PID.TID 0000.0001) Seconds in section "SEAICE_DYNSOLVER [SEAICE_MODEL]":
2455 (PID.TID 0000.0001) User time: 66.970000000000027
2456 (PID.TID 0000.0001) System time: 0.0000000000000000
2457 (PID.TID 0000.0001) Wall clock time: 67.120100498199463
2458 (PID.TID 0000.0001) No. starts: 12
2459 (PID.TID 0000.0001) No. stops: 12
2460 (PID.TID 0000.0001) Seconds in section "BLOCKING_EXCHANGES [FORWARD_STEP]":
2461 (PID.TID 0000.0001) User time: 0.0000000000000000
2462 (PID.TID 0000.0001) System time: 0.0000000000000000
2463 (PID.TID 0000.0001) Wall clock time: 4.54783439636230469E-003
2464 (PID.TID 0000.0001) No. starts: 24
2465 (PID.TID 0000.0001) No. stops: 24
2466 (PID.TID 0000.0001) Seconds in section "THERMODYNAMICS [FORWARD_STEP]":
2467 (PID.TID 0000.0001) User time: 4.99999999999971578E-002
2468 (PID.TID 0000.0001) System time: 0.0000000000000000
2469 (PID.TID 0000.0001) Wall clock time: 4.95858192443847656E-002
2470 (PID.TID 0000.0001) No. starts: 12
2471 (PID.TID 0000.0001) No. stops: 12
2472 (PID.TID 0000.0001) Seconds in section "TRC_CORRECTION_STEP [FORWARD_STEP]":
2473 (PID.TID 0000.0001) User time: 9.99999999999090505E-003
2474 (PID.TID 0000.0001) System time: 0.0000000000000000
2475 (PID.TID 0000.0001) Wall clock time: 1.43766403198242188E-003
2476 (PID.TID 0000.0001) No. starts: 12
2477 (PID.TID 0000.0001) No. stops: 12
2478 (PID.TID 0000.0001) Seconds in section "MONITOR [FORWARD_STEP]":
2479 (PID.TID 0000.0001) User time: 9.99999999999090505E-003
2480 (PID.TID 0000.0001) System time: 0.0000000000000000
2481 (PID.TID 0000.0001) Wall clock time: 1.16543769836425781E-002
2482 (PID.TID 0000.0001) No. starts: 12
2483 (PID.TID 0000.0001) No. stops: 12
2484 (PID.TID 0000.0001) Seconds in section "DO_THE_MODEL_IO [FORWARD_STEP]":
2485 (PID.TID 0000.0001) User time: 3.00000000000011369E-002
2486 (PID.TID 0000.0001) System time: 0.0000000000000000
2487 (PID.TID 0000.0001) Wall clock time: 3.45630645751953125E-002
2488 (PID.TID 0000.0001) No. starts: 12
2489 (PID.TID 0000.0001) No. stops: 12
2490 (PID.TID 0000.0001) Seconds in section "DO_WRITE_PICKUP [FORWARD_STEP]":
2491 (PID.TID 0000.0001) User time: 1.00000000000051159E-002
2492 (PID.TID 0000.0001) System time: 0.0000000000000000
2493 (PID.TID 0000.0001) Wall clock time: 8.14938545227050781E-003
2494 (PID.TID 0000.0001) No. starts: 12
2495 (PID.TID 0000.0001) No. stops: 12
2496 (PID.TID 0000.0001) // ======================================================
2497 (PID.TID 0000.0001) // Tile <-> Tile communication statistics
2498 (PID.TID 0000.0001) // ======================================================
2499 (PID.TID 0000.0001) // o Tile number: 000001
2500 (PID.TID 0000.0001) // No. X exchanges = 0
2501 (PID.TID 0000.0001) // Max. X spins = 0
2502 (PID.TID 0000.0001) // Min. X spins = 1000000000
2503 (PID.TID 0000.0001) // Total. X spins = 0
2504 (PID.TID 0000.0001) // Avg. X spins = 0.00E+00
2505 (PID.TID 0000.0001) // No. Y exchanges = 0
2506 (PID.TID 0000.0001) // Max. Y spins = 0
2507 (PID.TID 0000.0001) // Min. Y spins = 1000000000
2508 (PID.TID 0000.0001) // Total. Y spins = 0
2509 (PID.TID 0000.0001) // Avg. Y spins = 0.00E+00
2510 (PID.TID 0000.0001) // o Tile number: 000002
2511 (PID.TID 0000.0001) // No. X exchanges = 0
2512 (PID.TID 0000.0001) // Max. X spins = 0
2513 (PID.TID 0000.0001) // Min. X spins = 1000000000
2514 (PID.TID 0000.0001) // Total. X spins = 0
2515 (PID.TID 0000.0001) // Avg. X spins = 0.00E+00
2516 (PID.TID 0000.0001) // No. Y exchanges = 0
2517 (PID.TID 0000.0001) // Max. Y spins = 0
2518 (PID.TID 0000.0001) // Min. Y spins = 1000000000
2519 (PID.TID 0000.0001) // Total. Y spins = 0
2520 (PID.TID 0000.0001) // Avg. Y spins = 0.00E+00
2521 (PID.TID 0000.0001) // o Tile number: 000003
2522 (PID.TID 0000.0001) // No. X exchanges = 0
2523 (PID.TID 0000.0001) // Max. X spins = 0
2524 (PID.TID 0000.0001) // Min. X spins = 1000000000
2525 (PID.TID 0000.0001) // Total. X spins = 0
2526 (PID.TID 0000.0001) // Avg. X spins = 0.00E+00
2527 (PID.TID 0000.0001) // No. Y exchanges = 0
2528 (PID.TID 0000.0001) // Max. Y spins = 0
2529 (PID.TID 0000.0001) // Min. Y spins = 1000000000
2530 (PID.TID 0000.0001) // Total. Y spins = 0
2531 (PID.TID 0000.0001) // Avg. Y spins = 0.00E+00
2532 (PID.TID 0000.0001) // o Tile number: 000004
2533 (PID.TID 0000.0001) // No. X exchanges = 0
2534 (PID.TID 0000.0001) // Max. X spins = 0
2535 (PID.TID 0000.0001) // Min. X spins = 1000000000
2536 (PID.TID 0000.0001) // Total. X spins = 0
2537 (PID.TID 0000.0001) // Avg. X spins = 0.00E+00
2538 (PID.TID 0000.0001) // No. Y exchanges = 0
2539 (PID.TID 0000.0001) // Max. Y spins = 0
2540 (PID.TID 0000.0001) // Min. Y spins = 1000000000
2541 (PID.TID 0000.0001) // Total. Y spins = 0
2542 (PID.TID 0000.0001) // Avg. Y spins = 0.00E+00
2543 (PID.TID 0000.0001) // o Thread number: 000001
2544 (PID.TID 0000.0001) // No. barriers = 73232
2545 (PID.TID 0000.0001) // Max. barrier spins = 1
2546 (PID.TID 0000.0001) // Min. barrier spins = 1
2547 (PID.TID 0000.0001) // Total barrier spins = 73232
2548 (PID.TID 0000.0001) // Avg. barrier spins = 1.00E+00
2549 PROGRAM MAIN: Execution ended Normally

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