/[MITgcm]/MITgcm/model/src/config_summary.F
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Revision 1.149 - (show annotations) (download)
Mon Apr 27 15:44:37 2015 UTC (9 years ago) by jmc
Branch: MAIN
CVS Tags: checkpoint65r, checkpoint65p, checkpoint65q, checkpoint65n, checkpoint65l, checkpoint65m, checkpoint65o
Changes since 1.148: +6 -3 lines
adjust POLY3 coeffs summary

1 C $Header: /u/gcmpack/MITgcm/model/src/config_summary.F,v 1.148 2015/01/03 23:56:41 jmc Exp $
2 C $Name: $
3
4 #include "PACKAGES_CONFIG.h"
5 #include "CPP_OPTIONS.h"
6 #ifdef ALLOW_EXCH2
7 # include "W2_OPTIONS.h"
8 #endif /* ALLOW_EXCH2 */
9 #ifdef ALLOW_MOM_COMMON
10 # include "MOM_COMMON_OPTIONS.h"
11 #endif
12
13 C---+----1----+----2----+----3----+----4----+----5----+----6----+----7-|--+----|
14 CBOP
15 C !ROUTINE: CONFIG_SUMMARY
16
17 C !INTERFACE:
18 SUBROUTINE CONFIG_SUMMARY( myThid )
19
20 C !DESCRIPTION:
21 C This routine summarizes the model parameter settings by writing a
22 C tabulated list of the kernel model configuration variables. It
23 C describes all the parameter settings in force and the meaning and
24 C units of those parameters. Individal packages report a similar
25 C table for each package using the same format as employed here. If
26 C parameters are missing or incorrectly described or dimensioned
27 C please contact <MITgcm-support@mitgcm.org>
28
29 C !USES:
30 IMPLICIT NONE
31 #include "SIZE.h"
32 #include "EEPARAMS.h"
33 #include "PARAMS.h"
34 #ifdef ALLOW_EXCH2
35 # include "W2_EXCH2_SIZE.h"
36 # include "W2_EXCH2_TOPOLOGY.h"
37 #endif /* ALLOW_EXCH2 */
38 #include "EOS.h"
39 #include "GRID.h"
40 #ifdef ALLOW_MOM_COMMON
41 # include "MOM_VISC.h"
42 #endif
43 C- need to put SET_GRID in last position for module conversion with OpenAD
44 #include "SET_GRID.h"
45 #ifdef ALLOW_MNC
46 #include "MNC_PARAMS.h"
47 #endif
48
49 C !INPUT/OUTPUT PARAMETERS:
50 C myThid :: Number of this instance of CONFIG_SUMMARY
51 INTEGER myThid
52 CEOP
53
54 C !FUNCTIONS:
55 INTEGER ILNBLNK
56 EXTERNAL ILNBLNK
57
58 C !LOCAL VARIABLES:
59 C msgBuf :: Temp. for building output string.
60 C rUnits :: vertical coordinate units
61 C ioUnit :: Temp. for fortran I/O unit
62 C i, k :: Loop counters.
63 CHARACTER*(MAX_LEN_MBUF) msgBuf
64 CHARACTER*2 rUnits
65 CHARACTER*10 endList
66 INTEGER ioUnit
67 INTEGER i, k
68 _RL bufRL(Nr+1)
69 INTEGER buffI(1)
70 INTEGER coordLine
71 INTEGER tileLine
72 INTEGER gridNx, gridNy
73
74 _BARRIER
75 _BEGIN_MASTER(myThid)
76
77 ioUnit = standardMessageUnit
78 rUnits = ' m'
79 endList = ' ; '
80 IF ( usingPCoords ) rUnits = 'Pa'
81 #ifdef ALLOW_EXCH2
82 gridNx = exch2_mydNx(1)
83 gridNy = exch2_mydNy(1)
84 #else /* ALLOW_EXCH2 */
85 gridNx = Nx
86 gridNy = Ny
87 #endif /* ALLOW_EXCH2 */
88
89 WRITE(msgBuf,'(A)')
90 &'// ======================================================='
91 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
92 WRITE(msgBuf,'(A)') '// Model configuration'
93 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
94 WRITE(msgBuf,'(A)')
95 &'// ======================================================='
96 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
97
98 WRITE(msgBuf,'(A)') '// '
99 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
100 WRITE(msgBuf,'(A)')
101 & '// "Physical" paramters ( PARM01 in namelist ) '
102 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
103 WRITE(msgBuf,'(A)') '// '
104 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
105 CALL WRITE_0D_C( buoyancyRelation, -1, INDEX_NONE,
106 & 'buoyancyRelation =', ' /* Type of relation to get Buoyancy */')
107 CALL WRITE_0D_L( fluidIsAir, INDEX_NONE,
108 & 'fluidIsAir =', ' /* fluid major constituent is Air */')
109 CALL WRITE_0D_L( fluidIsWater, INDEX_NONE,
110 & 'fluidIsWater =', ' /* fluid major constituent is Water */')
111 CALL WRITE_0D_L( usingPCoords, INDEX_NONE,
112 & 'usingPCoords =', ' /* use p (or p*) vertical coordinate */')
113 CALL WRITE_0D_L( usingZCoords, INDEX_NONE,
114 & 'usingZCoords =', ' /* use z (or z*) vertical coordinate */')
115 CALL WRITE_1D_RL( tRef, Nr, INDEX_K, 'tRef =',
116 & ' /* Reference temperature profile ( oC or K ) */')
117 CALL WRITE_1D_RL( sRef, Nr, INDEX_K, 'sRef =',
118 & ' /* Reference salinity profile ( psu ) */')
119 C- Horizontal viscosity parameters:
120 #ifdef ALLOW_MOM_COMMON
121 CALL WRITE_0D_L( useStrainTensionVisc, INDEX_NONE,
122 & 'useStrainTensionVisc=',
123 & ' /* Use StrainTension Form of Viscous Operator */')
124 CALL WRITE_0D_L( useVariableVisc, INDEX_NONE,
125 & 'useVariableVisc =', ' /* Use variable horizontal viscosity */')
126 CALL WRITE_0D_L( useHarmonicVisc, INDEX_NONE,
127 & 'useHarmonicVisc =', ' /* Use harmonic horizontal viscosity */')
128 CALL WRITE_0D_L( useBiharmonicVisc, INDEX_NONE,
129 & 'useBiharmonicVisc=', ' /* Use biharmonic horiz. viscosity */')
130 CALL WRITE_0D_L( useSmag3D, INDEX_NONE,
131 & 'useSmag3D =', ' /* Use isotropic 3-D Smagorinsky viscosity */')
132 IF ( useSmag3D )
133 & CALL WRITE_0D_RL( smag3D_coeff, INDEX_NONE, 'smag3D_coeff =',
134 & ' /* Smagorinsky 3-D coefficient (Cs^2) (-) */')
135 CALL WRITE_0D_RL( viscAh, INDEX_NONE, 'viscAh = ',
136 & ' /* Lateral harmonic viscosity ( m^2/s ) */')
137 IF ( viscAhD.NE.viscAh )
138 & CALL WRITE_0D_RL( viscAhD, INDEX_NONE, 'viscAhD = ',
139 & ' /* Lateral harmonic viscosity (Divergence)( m^2/s ) */')
140 IF ( viscAhZ.NE.viscAh )
141 & CALL WRITE_0D_RL( viscAhZ, INDEX_NONE, 'viscAhZ = ',
142 & ' /* Lateral harmonic viscosity (Vorticity) ( m^2/s ) */')
143 IF ( nonHydrostatic )
144 & CALL WRITE_0D_RL( viscAhW, INDEX_NONE, 'viscAhW = ',
145 & ' /* Lateral harmonic viscosity in W eq. ( m^2/s ) */')
146 IF ( useVariableVisc ) THEN
147 CALL WRITE_0D_RL( viscAhMax, INDEX_NONE, 'viscAhMax =',
148 & ' /* Maximum lateral harmonic viscosity ( m^2/s ) */')
149 CALL WRITE_0D_RL( viscAhGrid, INDEX_NONE, 'viscAhGrid =',
150 & ' /* Grid dependent lateral harmonic viscosity ( non-dim. ) */')
151 CALL WRITE_0D_L( useFullLeith, INDEX_NONE, 'useFullLeith =',
152 & ' /* Use Full Form of Leith Viscosity on/off flag*/')
153 CALL WRITE_0D_L( useAreaViscLength, INDEX_NONE,
154 & 'useAreaViscLength =',
155 & ' /* Use area for visc length instead of geom. mean*/')
156 CALL WRITE_0D_RL( viscC2leith, INDEX_NONE, 'viscC2leith =',
157 & ' /* Leith harmonic visc. factor (on grad(vort),non-dim.) */')
158 CALL WRITE_0D_RL( viscC2leithD, INDEX_NONE, 'viscC2leithD =',
159 & ' /* Leith harmonic viscosity factor (on grad(div),non-dim.)*/')
160 CALL WRITE_0D_RL( viscC2smag, INDEX_NONE, 'viscC2smag =',
161 & ' /* Smagorinsky harmonic viscosity factor (non-dim.) */')
162 ENDIF
163 CALL WRITE_0D_RL( viscA4, INDEX_NONE, 'viscA4 = ',
164 & ' /* Lateral biharmonic viscosity ( m^4/s ) */')
165 IF ( viscA4D.NE.viscA4 )
166 & CALL WRITE_0D_RL( viscA4D, INDEX_NONE, 'viscA4D = ',
167 & ' /* Lateral biharmonic viscosity (Divergence)( m^4/s ) */')
168 IF ( viscA4Z.NE.viscA4 )
169 & CALL WRITE_0D_RL( viscA4Z, INDEX_NONE, 'viscA4Z = ',
170 & ' /* Lateral biharmonic viscosity (Vorticity) ( m^4/s ) */')
171 IF ( nonHydrostatic )
172 & CALL WRITE_0D_RL( viscA4W, INDEX_NONE, 'viscA4W = ',
173 & ' /* Lateral biharmonic viscosity in W eq. ( m^2/s ) */')
174 IF ( useVariableVisc ) THEN
175 CALL WRITE_0D_RL( viscA4Max, INDEX_NONE, 'viscA4Max =',
176 & ' /* Maximum biharmonic viscosity ( m^2/s ) */')
177 CALL WRITE_0D_RL( viscA4Grid, INDEX_NONE, 'viscA4Grid =',
178 & ' /* Grid dependent biharmonic viscosity ( non-dim. ) */')
179 CALL WRITE_0D_RL( viscC4leith, INDEX_NONE,'viscC4leith =',
180 & ' /* Leith biharm viscosity factor (on grad(vort), non-dim.)*/')
181 CALL WRITE_0D_RL( viscC4leithD, INDEX_NONE,'viscC4leithD =',
182 & ' /* Leith biharm viscosity factor (on grad(div), non-dim.) */')
183 CALL WRITE_0D_RL( viscC4Smag, INDEX_NONE,'viscC4Smag =',
184 & ' /* Smagorinsky biharm viscosity factor (non-dim) */')
185 ENDIF
186 CALL WRITE_0D_L( no_slip_sides, INDEX_NONE,
187 & 'no_slip_sides =', ' /* Viscous BCs: No-slip sides */')
188 CALL WRITE_0D_RL( sideDragFactor, INDEX_NONE, 'sideDragFactor =',
189 & ' /* side-drag scaling factor (non-dim) */')
190 C- Vertical viscosity parameters:
191 CALL WRITE_1D_RL( viscArNr, Nr, INDEX_K, 'viscArNr =',
192 & ' /* vertical profile of vertical viscosity ('
193 & //rUnits//'^2/s )*/')
194 CALL WRITE_0D_L( no_slip_bottom, INDEX_NONE,
195 & 'no_slip_bottom =', ' /* Viscous BCs: No-slip bottom */')
196 CALL WRITE_0D_L( bottomVisc_pCell, INDEX_NONE,
197 & 'bottomVisc_pCell =', ' /* Partial-cell in bottom Visc. BC */')
198 CALL WRITE_0D_RL( bottomDragLinear, INDEX_NONE,
199 & 'bottomDragLinear =',
200 & ' /* linear bottom-drag coefficient ( m/s ) */')
201 CALL WRITE_0D_RL( bottomDragQuadratic, INDEX_NONE,
202 & 'bottomDragQuadratic =',
203 & ' /* quadratic bottom-drag coefficient (-) */')
204 CALL WRITE_0D_I( selectBotDragQuadr, INDEX_NONE,
205 & 'selectBotDragQuadr =',
206 & ' /* select quadratic bottom drag options */')
207 #endif /* ALLOW_MOM_COMMON */
208 CALL WRITE_0D_RL( diffKhT, INDEX_NONE,'diffKhT =',
209 &' /* Laplacian diffusion of heat laterally ( m^2/s ) */')
210 CALL WRITE_0D_RL( diffK4T, INDEX_NONE,'diffK4T =',
211 &' /* Biharmonic diffusion of heat laterally ( m^4/s ) */')
212 CALL WRITE_0D_RL( diffKhS, INDEX_NONE,'diffKhS =',
213 &' /* Laplacian diffusion of salt laterally ( m^2/s ) */')
214 CALL WRITE_0D_RL( diffK4S, INDEX_NONE,'diffK4S =',
215 &' /* Biharmonic diffusion of salt laterally ( m^4/s ) */')
216 CALL WRITE_1D_RL( diffKrNrT, Nr, INDEX_K, 'diffKrNrT =',
217 & ' /* vertical profile of vertical diffusion of Temp ('
218 & //rUnits//'^2/s )*/')
219 IF ( tempVertDiff4 )
220 & CALL WRITE_1D_RL( diffKr4T, Nr, INDEX_K, 'diffKr4T =',
221 & ' /* profile of vertical biharmonic diffusion of Temp ('
222 & //rUnits//'^4/s )*/')
223 CALL WRITE_1D_RL( diffKrNrS, Nr, INDEX_K, 'diffKrNrS =',
224 & ' /* vertical profile of vertical diffusion of Salt ('
225 & //rUnits//'^2/s )*/')
226 IF ( saltVertDiff4 )
227 & CALL WRITE_1D_RL( diffKr4S, Nr, INDEX_K, 'diffKr4S =',
228 & ' /* profile of vertical biharmonic diffusion of Salt ('
229 & //rUnits//'^4/s )*/')
230 CALL WRITE_0D_RL( diffKrBL79surf, INDEX_NONE,'diffKrBL79surf =',
231 & ' /* Surface diffusion for Bryan and Lewis 79 ( m^2/s ) */')
232 CALL WRITE_0D_RL( diffKrBL79deep, INDEX_NONE,'diffKrBL79deep =',
233 & ' /* Deep diffusion for Bryan and Lewis 1979 ( m^2/s ) */')
234 CALL WRITE_0D_RL( diffKrBL79scl, INDEX_NONE,'diffKrBL79scl =',
235 & ' /* Depth scale for Bryan and Lewis 1979 ( m ) */')
236 CALL WRITE_0D_RL( diffKrBL79Ho, INDEX_NONE,'diffKrBL79Ho =',
237 & ' /* Turning depth for Bryan and Lewis 1979 ( m ) */')
238 CALL WRITE_0D_RL( ivdc_kappa, INDEX_NONE,'ivdc_kappa =',
239 & ' /* Implicit Vertical Diffusivity for Convection ('
240 & //rUnits//'^2/s) */')
241 CALL WRITE_0D_RL( hMixCriteria, INDEX_NONE,'hMixCriteria=',
242 & ' /* Criteria for mixed-layer diagnostic */')
243 CALL WRITE_0D_RL( dRhoSmall, INDEX_NONE,'dRhoSmall =',
244 & ' /* Parameter for mixed-layer diagnostic */')
245 CALL WRITE_0D_RL( hMixSmooth, INDEX_NONE,'hMixSmooth=',
246 & ' /* Smoothing parameter for mixed-layer diagnostic */')
247 CALL WRITE_0D_C( eosType, 0, INDEX_NONE, 'eosType =',
248 & ' /* Type of Equation of State */')
249 IF ( eosType .EQ. 'LINEAR' ) THEN
250 CALL WRITE_0D_RL( tAlpha, INDEX_NONE,'tAlpha =',
251 & ' /* Linear EOS thermal expansion coefficient ( 1/oC ) */')
252 CALL WRITE_0D_RL( sBeta, INDEX_NONE,'sBeta =',
253 & ' /* Linear EOS haline contraction coefficient ( 1/psu ) */')
254 CALL WRITE_0D_RL( rhoNil, INDEX_NONE, 'rhoNil =',
255 & ' /* Reference density for Linear EOS ( kg/m^3 ) */')
256 ENDIF
257 IF ( eosType .EQ. 'POLY3 ' ) THEN
258 WRITE(msgBuf,'(A)')
259 & 'Polynomial EQS parameters ( from POLY3.COEFFS ):'
260 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
261 DO k = 1, Nr
262 WRITE(msgBuf,'(I3,13F8.3)')
263 & k,eosRefT(k),eosRefS(k),eosSig0(k), (eosC(i,k),i=1,9)
264 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
265 ENDDO
266 WRITE(msgBuf,'(A)') ' ;'
267 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
268 ENDIF
269 IF ( fluidIsWater ) THEN
270 CALL WRITE_0D_RL( HeatCapacity_Cp, INDEX_NONE,
271 & 'HeatCapacity_Cp =',
272 & ' /* Specific heat capacity ( J/kg/K ) */')
273 ENDIF
274 CALL WRITE_0D_RL( celsius2K, INDEX_NONE, 'celsius2K =',
275 & ' /* 0 degree Celsius converted to Kelvin ( K ) */')
276 IF ( fluidIsAir ) THEN
277 CALL WRITE_0D_RL( atm_Rd, INDEX_NONE, 'atm_Rd = ',
278 & ' /* gas constant for dry air ( J/kg/K ) */')
279 CALL WRITE_0D_RL( atm_Cp, INDEX_NONE, 'atm_Cp = ',
280 & ' /* specific heat (Cp) of dry air ( J/kg/K ) */')
281 CALL WRITE_0D_RL( atm_kappa, INDEX_NONE, 'atm_kappa =',
282 & ' /* kappa (=Rd/Cp ) of dry air */')
283 CALL WRITE_0D_RL( atm_Rq, INDEX_NONE, 'atm_Rq = ',
284 & ' /* water vap. specific vol. anomaly relative to dry air */')
285 CALL WRITE_0D_RL( atm_Po, INDEX_NONE, 'atm_Po = ',
286 & ' /* standard reference pressure ( Pa ) */')
287 CALL WRITE_0D_RL( thetaConst, INDEX_NONE, 'thetaConst=',
288 & ' /* constant reference for potential temperature ( K ) */')
289 CALL WRITE_0D_I( integr_GeoPot, INDEX_NONE, 'integr_GeoPot =',
290 & ' /* select how the geopotential is integrated */')
291 CALL WRITE_0D_I( selectFindRoSurf, INDEX_NONE,
292 & 'selectFindRoSurf=',
293 & ' /* select how Surf.Ref. pressure is defined */')
294 ENDIF
295 CALL WRITE_0D_RL( rhoConst, INDEX_NONE,'rhoConst =',
296 & ' /* Reference density (Boussinesq) ( kg/m^3 ) */')
297 CALL WRITE_1D_RL( rhoFacC, Nr, INDEX_K, 'rhoFacC = ',
298 & ' /* normalized Reference density @ cell-Center (-) */')
299 CALL WRITE_1D_RL( rhoFacF, Nr+1, INDEX_K, 'rhoFacF = ',
300 & ' /* normalized Reference density @ W-Interface (-) */')
301 CALL WRITE_0D_RL( rhoConstFresh, INDEX_NONE,'rhoConstFresh =',
302 & ' /* Fresh-water reference density ( kg/m^3 ) */')
303 CALL WRITE_0D_RL( gravity, INDEX_NONE,'gravity =',
304 &' /* Gravitational acceleration ( m/s^2 ) */')
305 CALL WRITE_0D_RL( gBaro, INDEX_NONE,'gBaro =',
306 &' /* Barotropic gravity ( m/s^2 ) */')
307 CALL WRITE_0D_RL(rotationPeriod,INDEX_NONE,'rotationPeriod =',
308 &' /* Rotation Period ( s ) */')
309 CALL WRITE_0D_RL( omega, INDEX_NONE,'omega =',
310 &' /* Angular velocity ( rad/s ) */')
311 CALL WRITE_0D_RL( f0, INDEX_NONE,'f0 =',
312 &' /* Reference coriolis parameter ( 1/s ) */')
313 CALL WRITE_0D_RL( beta, INDEX_NONE,'beta =',
314 &' /* Beta ( 1/(m.s) ) */')
315 CALL WRITE_0D_RL( fPrime, INDEX_NONE,'fPrime =',
316 &' /* Second coriolis parameter ( 1/s ) */')
317 CALL WRITE_0D_L( rigidLid, INDEX_NONE, 'rigidLid =',
318 &' /* Rigid lid on/off flag */')
319 CALL WRITE_0D_L( implicitFreeSurface, INDEX_NONE,
320 & 'implicitFreeSurface =',
321 &' /* Implicit free surface on/off flag */')
322 CALL WRITE_0D_RL( freeSurfFac, INDEX_NONE,'freeSurfFac =',
323 &' /* Implicit free surface factor */')
324 CALL WRITE_0D_RL( implicSurfPress, INDEX_NONE,
325 & 'implicSurfPress =',
326 & ' /* Surface Pressure implicit factor (0-1)*/')
327 CALL WRITE_0D_RL( implicDiv2Dflow, INDEX_NONE,
328 & 'implicDiv2Dflow =',
329 & ' /* Barot. Flow Div. implicit factor (0-1)*/')
330 CALL WRITE_0D_L( uniformLin_PhiSurf, INDEX_NONE,
331 & 'uniformLin_PhiSurf =',
332 & ' /* use uniform Bo_surf on/off flag*/')
333 CALL WRITE_0D_L( uniformFreeSurfLev, INDEX_NONE,
334 & 'uniformFreeSurfLev =',
335 & ' /* free-surface level-index is uniform */')
336 CALL WRITE_0D_RL( hFacMin, INDEX_NONE, 'hFacMin = ',
337 & ' /* minimum partial cell factor (hFac) */')
338 CALL WRITE_0D_RL( hFacMinDr, INDEX_NONE, 'hFacMinDr =',
339 & ' /* minimum partial cell thickness ('//rUnits//') */')
340 CALL WRITE_0D_L( exactConserv, INDEX_NONE,
341 & 'exactConserv =',
342 & ' /* Exact Volume Conservation on/off flag*/')
343 CALL WRITE_0D_L( linFSConserveTr, INDEX_NONE,
344 & 'linFSConserveTr =',
345 & ' /* Tracer correction for Lin Free Surface on/off flag*/')
346 WRITE(msgBuf,'(2A)') 'nonlinFreeSurf =',
347 & ' /* Non-linear Free Surf. options (-1,0,1,2,3)*/'
348 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
349 buffI(1) = nonlinFreeSurf
350 CALL PRINT_LIST_I( buffI, 1, 1, INDEX_NONE,
351 & .FALSE., .TRUE., ioUnit )
352 WRITE(msgBuf,'(2A)') ' -1,0= Off ; 1,2,3= On,',
353 & ' 2=+rescale gU,gV, 3=+update cg2d solv.'
354 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
355 CALL PRINT_MESSAGE(endList, ioUnit, SQUEEZE_RIGHT, myThid )
356 CALL WRITE_0D_RL( hFacInf, INDEX_NONE, 'hFacInf = ',
357 & ' /* lower threshold for hFac (nonlinFreeSurf only)*/')
358 CALL WRITE_0D_RL( hFacSup, INDEX_NONE, 'hFacSup = ',
359 & ' /* upper threshold for hFac (nonlinFreeSurf only)*/')
360 CALL WRITE_0D_I( select_rStar, INDEX_NONE,
361 & 'select_rStar =',
362 & ' /* r* Vertical coord. options (=0 r coord.; >0 uses r*)*/')
363 CALL WRITE_0D_L( useRealFreshWaterFlux, INDEX_NONE,
364 & 'useRealFreshWaterFlux =',
365 & ' /* Real Fresh Water Flux on/off flag*/')
366 CALL WRITE_0D_RL( temp_EvPrRn, INDEX_NONE,
367 & 'temp_EvPrRn =',
368 & ' /* Temp. of Evap/Prec/R (UNSET=use local T)(oC)*/')
369 CALL WRITE_0D_RL( salt_EvPrRn, INDEX_NONE,
370 & 'salt_EvPrRn =',
371 & ' /* Salin. of Evap/Prec/R (UNSET=use local S)(psu)*/')
372 CALL WRITE_0D_I( selectAddFluid, INDEX_NONE,
373 & 'selectAddFluid =',
374 & ' /* option for mass source/sink of fluid (=0: off) */')
375 CALL WRITE_0D_RL( temp_addMass, INDEX_NONE,
376 & 'temp_addMass =',
377 & ' /* Temp. of addMass array (UNSET=use local T)(oC)*/')
378 CALL WRITE_0D_RL( salt_addMass, INDEX_NONE,
379 & 'salt_addMass =',
380 & ' /* Salin. of addMass array (UNSET=use local S)(psu)*/')
381 IF ( .NOT.useRealFreshWaterFlux .OR. selectAddFluid.EQ.-1
382 & .OR. nonlinFreeSurf.LE.0 ) THEN
383 CALL WRITE_0D_RL( convertFW2Salt, INDEX_NONE,
384 & 'convertFW2Salt =',
385 & ' /* convert F.W. Flux to Salt Flux (-1=use local S)(psu)*/')
386 ENDIF
387
388 CALL WRITE_0D_L( use3Dsolver, INDEX_NONE,
389 & 'use3Dsolver =', ' /* use 3-D pressure solver on/off flag */')
390 CALL WRITE_0D_L( nonHydrostatic, INDEX_NONE,
391 & 'nonHydrostatic =', ' /* Non-Hydrostatic on/off flag */')
392 CALL WRITE_0D_RL( nh_Am2, INDEX_NONE, 'nh_Am2 =',
393 & ' /* Non-Hydrostatic terms scaling factor */')
394 CALL WRITE_0D_RL( implicitNHPress, INDEX_NONE,
395 & 'implicitNHPress =',
396 & ' /* Non-Hyd Pressure implicit factor (0-1)*/')
397 CALL WRITE_0D_I( selectNHfreeSurf, INDEX_NONE,
398 & 'selectNHfreeSurf =',
399 & ' /* Non-Hyd (free-)Surface option */')
400 CALL WRITE_0D_L( quasiHydrostatic, INDEX_NONE,
401 & 'quasiHydrostatic =', ' /* Quasi-Hydrostatic on/off flag */')
402 CALL WRITE_0D_L( calc_wVelocity, INDEX_NONE, 'calc_wVelocity =',
403 & ' /* vertical velocity calculation on/off flag */')
404 CALL WRITE_0D_L( momStepping, INDEX_NONE,
405 & 'momStepping =', ' /* Momentum equation on/off flag */')
406 CALL WRITE_0D_L( vectorInvariantMomentum, INDEX_NONE,
407 & 'vectorInvariantMomentum=',
408 & ' /* Vector-Invariant Momentum on/off */')
409 CALL WRITE_0D_L( momAdvection, INDEX_NONE,
410 & 'momAdvection =', ' /* Momentum advection on/off flag */')
411 CALL WRITE_0D_L( momViscosity, INDEX_NONE,
412 & 'momViscosity =', ' /* Momentum viscosity on/off flag */')
413 CALL WRITE_0D_L( momImplVertAdv, INDEX_NONE, 'momImplVertAdv=',
414 & ' /* Momentum implicit vert. advection on/off*/')
415 CALL WRITE_0D_L( implicitViscosity, INDEX_NONE,
416 & 'implicitViscosity =', ' /* Implicit viscosity on/off flag */')
417 CALL WRITE_0D_L( implBottomFriction, INDEX_NONE,
418 & 'implBottomFriction=',
419 & ' /* Implicit bottom friction on/off flag */')
420 CALL WRITE_0D_L( metricTerms, INDEX_NONE, 'metricTerms =',
421 & ' /* metric-Terms on/off flag */')
422 CALL WRITE_0D_L( useNHMTerms, INDEX_NONE, 'useNHMTerms =',
423 & ' /* Non-Hydrostatic Metric-Terms on/off */')
424 c------------
425 WRITE(msgBuf,'(2A)')
426 & 'selectCoriMap =', ' /* Coriolis Map options (0,1,2,3)*/'
427 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
428 buffI(1) = selectCoriMap
429 CALL PRINT_LIST_I( buffI, 1, 1, INDEX_NONE,
430 & .FALSE., .TRUE., ioUnit )
431 WRITE(msgBuf,'(2A)') ' 0= f-Plane ; 1= Beta-Plane ;',
432 & ' 2= Spherical ; 3= read from file'
433 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
434 CALL PRINT_MESSAGE(endList, ioUnit, SQUEEZE_RIGHT, myThid )
435 c------------
436 CALL WRITE_0D_L( use3dCoriolis, INDEX_NONE,
437 & 'use3dCoriolis =', ' /* 3-D Coriolis on/off flag */')
438 CALL WRITE_0D_L( useCoriolis, INDEX_NONE,
439 & 'useCoriolis =', ' /* Coriolis on/off flag */')
440 CALL WRITE_0D_L( useCDscheme, INDEX_NONE,
441 & 'useCDscheme =', ' /* CD scheme on/off flag */')
442 CALL WRITE_0D_L( useEnergyConservingCoriolis, INDEX_NONE,
443 & 'useEnergyConservingCoriolis=',
444 & ' /* Flx-Form Coriolis scheme flag */')
445 CALL WRITE_0D_L( useJamartWetPoints, INDEX_NONE,
446 & 'useJamartWetPoints=',' /* Coriolis WetPoints method flag */')
447 CALL WRITE_0D_L( useJamartMomAdv, INDEX_NONE,
448 & 'useJamartMomAdv=',' /* V.I Non-linear terms Jamart flag */')
449 CALL WRITE_0D_L( useAbsVorticity, INDEX_NONE,
450 & 'useAbsVorticity=',' /* V.I Works with f+zeta in Coriolis */')
451 WRITE(msgBuf,'(2A)') 'selectVortScheme=',
452 & ' /* V.I Scheme selector for Vorticity-Term */'
453 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
454 buffI(1) = selectVortScheme
455 CALL PRINT_LIST_I( buffI, 1, 1, INDEX_NONE,
456 & .FALSE., .TRUE., ioUnit )
457 WRITE(msgBuf,'(2A)') ' = 0 : enstrophy (Shallow-Water Eq.)',
458 & ' conserving scheme by Sadourny, JAS 75'
459 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
460 WRITE(msgBuf,'(2A)') ' = 1 : same as 0 with modified hFac'
461 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
462 WRITE(msgBuf,'(2A)') ' = 2 : energy conserving scheme',
463 & ' (used by Sadourny in JAS 75 paper)'
464 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
465 WRITE(msgBuf,'(2A)') ' = 3 : energy (general)',
466 & ' and enstrophy (2D, nonDiv.) conserving scheme'
467 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
468 WRITE(msgBuf,'(2A)') ' from Sadourny',
469 & ' (Burridge & Haseler, ECMWF Rep.4, 1977)'
470 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
471 c WRITE(msgBuf,'(2A)') ' = 4 : energy (general)',
472 c & ' and enstrophy (2D, nonDiv.) conserving scheme'
473 c CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
474 c WRITE(msgBuf,'(2A)') ' from Arakawa & Lamb, 77'
475 c CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
476 CALL PRINT_MESSAGE(endList, ioUnit, SQUEEZE_RIGHT, myThid )
477 CALL WRITE_0D_L( upwindVorticity, INDEX_NONE,
478 & 'upwindVorticity=',' /* V.I Upwind bias vorticity flag */')
479 CALL WRITE_0D_L( highOrderVorticity, INDEX_NONE,
480 & 'highOrderVorticity=',' /* V.I High order vort. advect. flag */')
481 CALL WRITE_0D_L( upwindShear, INDEX_NONE,
482 & 'upwindShear=',' /* V.I Upwind vertical Shear advection flag */')
483 CALL WRITE_0D_I( selectKEscheme, INDEX_NONE,
484 & 'selectKEscheme=',' /* V.I Kinetic Energy scheme selector */')
485 CALL WRITE_0D_L( momForcing, INDEX_NONE,
486 & 'momForcing =', ' /* Momentum forcing on/off flag */')
487 CALL WRITE_0D_L( momPressureForcing, INDEX_NONE,
488 & 'momPressureForcing =',
489 & ' /* Momentum pressure term on/off flag */')
490 CALL WRITE_0D_L( implicitIntGravWave, INDEX_NONE,
491 & 'implicitIntGravWave=',
492 & ' /* Implicit Internal Gravity Wave flag */')
493 CALL WRITE_0D_L( staggerTimeStep, INDEX_NONE,
494 & 'staggerTimeStep = ',
495 & ' /* Stagger time stepping on/off flag */')
496 CALL WRITE_0D_L( doResetHFactors, INDEX_NONE,
497 & 'doResetHFactors =',
498 & ' /* reset thickness factors @ each time-step */')
499 CALL WRITE_0D_L( multiDimAdvection, INDEX_NONE,
500 & 'multiDimAdvection =',
501 & ' /* enable/disable Multi-Dim Advection */')
502 CALL WRITE_0D_L( useMultiDimAdvec, INDEX_NONE,
503 & 'useMultiDimAdvec =',
504 &' /* Multi-Dim Advection is/is-not used */')
505 CALL WRITE_0D_L( implicitDiffusion, INDEX_NONE,
506 & 'implicitDiffusion =',' /* Implicit Diffusion on/off flag */')
507 CALL WRITE_0D_L( tempStepping, INDEX_NONE,
508 & 'tempStepping =', ' /* Temperature equation on/off flag */')
509 CALL WRITE_0D_L( tempAdvection, INDEX_NONE,
510 & 'tempAdvection =', ' /* Temperature advection on/off flag */')
511 CALL WRITE_0D_L( tempImplVertAdv,INDEX_NONE,'tempImplVertAdv =',
512 & ' /* Temp. implicit vert. advection on/off */')
513 CALL WRITE_0D_L( tempForcing, INDEX_NONE,
514 & 'tempForcing =', ' /* Temperature forcing on/off flag */')
515 #ifdef ALLOW_FRICTION_HEATING
516 CALL WRITE_0D_L( addFrictionHeating, INDEX_NONE,
517 & 'addFrictionHeating=',' /* account for frictional heating */')
518 #endif
519 #ifdef ALLOW_BALANCE_FLUXES
520 CALL WRITE_0D_L( balanceQnet, INDEX_NONE, 'balanceQnet =',
521 & ' /* balance net heat-flux on/off flag */')
522 #endif
523 CALL WRITE_0D_L( doThetaClimRelax, INDEX_NONE,
524 & 'doThetaClimRelax =', ' /* apply SST relaxation on/off flag */')
525 #ifdef ALLOW_BALANCE_RELAX
526 CALL WRITE_0D_L( balanceThetaClimRelax, INDEX_NONE,
527 & 'balanceThetaClimRelax=',
528 & ' /* balance SST relaxation on/off flag */')
529 #endif
530 CALL WRITE_0D_L( tempIsActiveTr, INDEX_NONE, 'tempIsActiveTr =',
531 & ' /* Temp. is a dynamically Active Tracer */')
532 CALL WRITE_0D_L( saltStepping, INDEX_NONE,
533 & 'saltStepping =', ' /* Salinity equation on/off flag */')
534 CALL WRITE_0D_L( saltAdvection, INDEX_NONE,
535 & 'saltAdvection =', ' /* Salinity advection on/off flag */')
536 CALL WRITE_0D_L( saltImplVertAdv,INDEX_NONE,'saltImplVertAdv =',
537 & ' /* Sali. implicit vert. advection on/off */')
538 CALL WRITE_0D_L( saltForcing, INDEX_NONE,
539 & 'saltForcing =', ' /* Salinity forcing on/off flag */')
540 #ifdef ALLOW_BALANCE_FLUXES
541 CALL WRITE_0D_L( balanceQnet, INDEX_NONE, 'balanceEmPmR =',
542 & ' /* balance net fresh-water flux on/off flag */')
543 #endif
544 CALL WRITE_0D_L( doSaltClimRelax, INDEX_NONE,
545 & 'doSaltClimRelax =', ' /* apply SSS relaxation on/off flag */')
546 #ifdef ALLOW_BALANCE_RELAX
547 CALL WRITE_0D_L( balanceSaltClimRelax, INDEX_NONE,
548 & 'balanceSaltClimRelax=',
549 & ' /* balance SSS relaxation on/off flag */')
550 #endif
551 CALL WRITE_0D_L( saltIsActiveTr, INDEX_NONE, 'saltIsActiveTr =',
552 & ' /* Salt is a dynamically Active Tracer */')
553 CALL WRITE_0D_I( readBinaryPrec, INDEX_NONE, ' readBinaryPrec =',
554 & ' /* Precision used for reading binary files */')
555 CALL WRITE_0D_I(writeBinaryPrec, INDEX_NONE, 'writeBinaryPrec =',
556 & ' /* Precision used for writing binary files */')
557 CALL WRITE_0D_L( globalFiles, INDEX_NONE,
558 & ' globalFiles =',' /* write "global" (=not per tile) files */')
559 CALL WRITE_0D_L( useSingleCpuIO, INDEX_NONE,
560 & ' useSingleCpuIO =', ' /* only master MPI process does I/O */')
561 CALL WRITE_0D_L( useSingleCpuInput, INDEX_NONE,
562 & ' useSingleCpuInput =', ' /* only master process reads input */')
563 WRITE(msgBuf,'(2A)') '/* debLev[*] :',
564 & ' level of debug & auxiliary message printing */'
565 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
566 WRITE(msgBuf,'(A,I3,A)') 'debLevZero =', debLevZero,
567 & ' ; /* level of disabled aux. msg printing */'
568 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
569 WRITE(msgBuf,'(A,I3,A)') ' debLevA =', debLevA,
570 & ' ; /* level of minimum aux. msg printing */'
571 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
572 WRITE(msgBuf,'(A,I3,A)') ' debLevB =', debLevB,
573 & ' ; /* level of low aux. print (report read-file opening)*/'
574 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
575 WRITE(msgBuf,'(A,I3,A)') ' debLevC =', debLevC,
576 & ' ; /* level of moderate debug prt (most pkgs debug msg) */'
577 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
578 WRITE(msgBuf,'(A,I3,A)') ' debLevD =', debLevD,
579 & ' ; /* level of enhanced debug prt (add DEBUG_STATS prt) */'
580 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
581 WRITE(msgBuf,'(A,I3,A)') ' debLevE =', debLevE,
582 & ' ; /* level of extensive debug printing */'
583 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
584 CALL WRITE_0D_I( debugLevel, INDEX_NONE,
585 & 'debugLevel =', ' /* select debug printing level */')
586
587 WRITE(msgBuf,'(A)') '// '
588 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
589 WRITE(msgBuf,'(A)')
590 & '// Elliptic solver(s) paramters ( PARM02 in namelist ) '
591 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
592 WRITE(msgBuf,'(A)') '// '
593 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
594 CALL WRITE_0D_I( cg2dMaxIters, INDEX_NONE,'cg2dMaxIters =',
595 &' /* Upper limit on 2d con. grad iterations */')
596 CALL WRITE_0D_I( cg2dChkResFreq, INDEX_NONE,'cg2dChkResFreq =',
597 &' /* 2d con. grad convergence test frequency */')
598 CALL WRITE_0D_I( cg2dUseMinResSol, INDEX_NONE,
599 & 'cg2dUseMinResSol=',
600 & ' /* use cg2d last-iter(=0) / min-resid.(=1) solution */')
601 CALL WRITE_0D_RL( cg2dTargetResidual, INDEX_NONE,
602 & 'cg2dTargetResidual =',
603 &' /* 2d con. grad target residual */')
604 CALL WRITE_0D_RL( cg2dTargetResWunit, INDEX_NONE,
605 & 'cg2dTargetResWunit =',
606 &' /* CG2d target residual [W units] */')
607 CALL WRITE_0D_I( cg2dPreCondFreq, INDEX_NONE,'cg2dPreCondFreq =',
608 &' /* Freq. for updating cg2d preconditioner */')
609 CALL WRITE_0D_L( useSRCGSolver, INDEX_NONE,
610 & 'useSRCGSolver =', ' /* use single reduction CG solver(s) */')
611 CALL WRITE_0D_I( printResidualFreq, INDEX_NONE,
612 & 'printResidualFreq =', ' /* Freq. for printing CG residual */')
613
614 WRITE(msgBuf,'(A)') '// '
615 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
616 WRITE(msgBuf,'(A)')
617 & '// Time stepping paramters ( PARM03 in namelist ) '
618 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
619 WRITE(msgBuf,'(A)') '// '
620 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
621 CALL WRITE_0D_RL( deltaTMom, INDEX_NONE,'deltaTMom =',
622 &' /* Momentum equation timestep ( s ) */')
623 CALL WRITE_0D_RL( deltaTFreeSurf,INDEX_NONE,'deltaTFreeSurf =',
624 & ' /* FreeSurface equation timestep ( s ) */')
625 CALL WRITE_1D_RL( dTtracerLev, Nr, INDEX_K, 'dTtracerLev =',
626 & ' /* Tracer equation timestep ( s ) */')
627 CALL WRITE_0D_RL( deltaTClock, INDEX_NONE,'deltaTClock =',
628 &' /* Model clock timestep ( s ) */')
629 CALL WRITE_0D_RL( cAdjFreq, INDEX_NONE,'cAdjFreq =',
630 &' /* Convective adjustment interval ( s ) */')
631 CALL WRITE_0D_I( momForcingOutAB, INDEX_NONE, 'momForcingOutAB =',
632 & ' /* =1: take Momentum Forcing out of Adams-Bash. stepping */')
633 CALL WRITE_0D_I( tracForcingOutAB, INDEX_NONE,
634 & 'tracForcingOutAB =',
635 & ' /* =1: take T,S,pTr Forcing out of Adams-Bash. stepping */')
636 CALL WRITE_0D_L( momDissip_In_AB,INDEX_NONE,'momDissip_In_AB =',
637 & ' /* put Dissipation Tendency in Adams-Bash. stepping */')
638 CALL WRITE_0D_L( doAB_onGtGs, INDEX_NONE, 'doAB_onGtGs =',
639 & ' /* apply AB on Tendencies (rather than on T,S)*/')
640 CALL WRITE_0D_RL( abEps, INDEX_NONE,'abEps =',
641 &' /* Adams-Bashforth-2 stabilizing weight */')
642 #ifdef ALLOW_ADAMSBASHFORTH_3
643 CALL WRITE_0D_RL( alph_AB, INDEX_NONE,'alph_AB =',
644 &' /* Adams-Bashforth-3 primary factor */')
645 CALL WRITE_0D_RL( beta_AB, INDEX_NONE,'beta_AB =',
646 &' /* Adams-Bashforth-3 secondary factor */')
647 CALL WRITE_0D_L( startFromPickupAB2, INDEX_NONE,
648 & 'startFromPickupAB2=',' /* start from AB-2 pickup */')
649 #endif
650 IF (useCDscheme) THEN
651 CALL WRITE_0D_RL( tauCD, INDEX_NONE,'tauCD =',
652 &' /* CD coupling time-scale ( s ) */')
653 CALL WRITE_0D_RL( rCD, INDEX_NONE,'rCD =',
654 &' /* Normalised CD coupling parameter */')
655 CALL WRITE_0D_RL( epsAB_CD, INDEX_NONE,'epsAB_CD =',
656 & ' /* AB-2 stabilizing weight for CD-scheme*/')
657 ENDIF
658 i = ILNBLNK(pickupSuff)
659 IF ( i.GT.0 ) THEN
660 CALL WRITE_0D_C( pickupSuff, 0, INDEX_NONE,
661 & 'pickupSuff =', ' /* Suffix of pickup-file to restart from */')
662 ENDIF
663 CALL WRITE_0D_L( pickupStrictlyMatch, INDEX_NONE,
664 & 'pickupStrictlyMatch=',
665 & ' /* stop if pickup do not strictly match */')
666 CALL WRITE_0D_I( nIter0, INDEX_NONE, 'nIter0 =',
667 &' /* Run starting timestep number */')
668 CALL WRITE_0D_I( nTimeSteps, INDEX_NONE,'nTimeSteps =',
669 & ' /* Number of timesteps */')
670 CALL WRITE_0D_I( nEndIter, INDEX_NONE, 'nEndIter =',
671 &' /* Run ending timestep number */')
672 CALL WRITE_0D_RL( baseTime, INDEX_NONE,'baseTime =',
673 &' /* Model base time ( s ) */')
674 CALL WRITE_0D_RL( startTime, INDEX_NONE,'startTime =',
675 & ' /* Run start time ( s ) */')
676 CALL WRITE_0D_RL( endTime, INDEX_NONE,'endTime =',
677 &' /* Integration ending time ( s ) */')
678 CALL WRITE_0D_RL( pChkPtFreq, INDEX_NONE,'pChkPtFreq =',
679 & ' /* Permanent restart/pickup file interval ( s ) */')
680 CALL WRITE_0D_RL( chkPtFreq, INDEX_NONE,'chkPtFreq =',
681 & ' /* Rolling restart/pickup file interval ( s ) */')
682 CALL WRITE_0D_L(pickup_write_mdsio,INDEX_NONE,
683 & 'pickup_write_mdsio =', ' /* Model IO flag. */')
684 CALL WRITE_0D_L(pickup_read_mdsio,INDEX_NONE,
685 & 'pickup_read_mdsio =', ' /* Model IO flag. */')
686 #ifdef ALLOW_MNC
687 CALL WRITE_0D_L(pickup_write_mnc,INDEX_NONE,
688 & 'pickup_write_mnc =', ' /* Model IO flag. */')
689 CALL WRITE_0D_L(pickup_read_mnc,INDEX_NONE,
690 & 'pickup_read_mnc =', ' /* Model IO flag. */')
691 #endif
692 CALL WRITE_0D_L(pickup_write_immed,INDEX_NONE,
693 & 'pickup_write_immed =',' /* Model IO flag. */')
694 CALL WRITE_0D_L(writePickupAtEnd,INDEX_NONE,
695 & 'writePickupAtEnd =',' /* Model IO flag. */')
696 CALL WRITE_0D_RL( dumpFreq, INDEX_NONE,'dumpFreq =',
697 &' /* Model state write out interval ( s ). */')
698 CALL WRITE_0D_L(dumpInitAndLast,INDEX_NONE,'dumpInitAndLast=',
699 & ' /* write out Initial & Last iter. model state */')
700 CALL WRITE_0D_L(snapshot_mdsio,INDEX_NONE,
701 & 'snapshot_mdsio =', ' /* Model IO flag. */')
702 #ifdef ALLOW_MNC
703 CALL WRITE_0D_L(snapshot_mnc,INDEX_NONE,
704 & 'snapshot_mnc =', ' /* Model IO flag. */')
705 #endif
706 CALL WRITE_0D_RL( monitorFreq, INDEX_NONE,'monitorFreq =',
707 &' /* Monitor output interval ( s ). */')
708 CALL WRITE_0D_I( monitorSelect, INDEX_NONE, 'monitorSelect =',
709 & ' /* select group of variables to monitor */')
710 CALL WRITE_0D_L(monitor_stdio,INDEX_NONE,
711 & 'monitor_stdio =', ' /* Model IO flag. */')
712 #ifdef ALLOW_MNC
713 CALL WRITE_0D_L(monitor_mnc,INDEX_NONE,
714 & 'monitor_mnc =', ' /* Model IO flag. */')
715 #endif
716 CALL WRITE_0D_RL( externForcingPeriod, INDEX_NONE,
717 & 'externForcingPeriod =', ' /* forcing period (s) */')
718 CALL WRITE_0D_RL( externForcingCycle, INDEX_NONE,
719 & 'externForcingCycle =', ' /* period of the cyle (s). */')
720 CALL WRITE_0D_RL( tauThetaClimRelax, INDEX_NONE,
721 & 'tauThetaClimRelax =', ' /* relaxation time scale (s) */')
722 CALL WRITE_0D_RL( tauSaltClimRelax, INDEX_NONE,
723 & 'tauSaltClimRelax =', ' /* relaxation time scale (s) */')
724 CALL WRITE_0D_RL( latBandClimRelax, INDEX_NONE,
725 & 'latBandClimRelax =', ' /* max. Lat. where relaxation */')
726
727 WRITE(msgBuf,'(A)') '// '
728 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
729 WRITE(msgBuf,'(A)')
730 & '// Gridding paramters ( PARM04 in namelist ) '
731 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
732 WRITE(msgBuf,'(A)') '// '
733 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
734 CALL WRITE_0D_L( usingCartesianGrid, INDEX_NONE,
735 & 'usingCartesianGrid =',
736 & ' /* Cartesian coordinates flag ( True/False ) */')
737 CALL WRITE_0D_L( usingCylindricalGrid, INDEX_NONE,
738 & 'usingCylindricalGrid =',
739 & ' /* Cylindrical coordinates flag ( True/False ) */')
740 CALL WRITE_0D_L( usingSphericalPolarGrid, INDEX_NONE,
741 & 'usingSphericalPolarGrid =',
742 & ' /* Spherical coordinates flag ( True/False ) */')
743 CALL WRITE_0D_L( usingCurvilinearGrid, INDEX_NONE,
744 & 'usingCurvilinearGrid =',
745 & ' /* Curvilinear coordinates flag ( True/False ) */')
746 CALL WRITE_0D_I( selectSigmaCoord, INDEX_NONE,
747 & 'selectSigmaCoord =',
748 & ' /* Hybrid-Sigma Vert. Coordinate option */')
749 CALL WRITE_0D_RL( Ro_SeaLevel, INDEX_NONE,'Ro_SeaLevel =',
750 & ' /* r(1) ( units of r == '//rUnits//' ) */')
751 CALL WRITE_0D_RL( rSigmaBnd, INDEX_NONE, 'rSigmaBnd =',
752 & ' /* r/sigma transition ( units of r == '//rUnits//' ) */')
753 CALL WRITE_0D_RL( rkSign, INDEX_NONE,'rkSign =',
754 &' /* index orientation relative to vertical coordinate */')
755 CALL WRITE_0D_RL( gravitySign, INDEX_NONE,'gravitySign =',
756 & ' /* gravity orientation relative to vertical coordinate */')
757 IF ( usingZCoords ) THEN
758 CALL WRITE_0D_RL( mass2rUnit, INDEX_NONE,'mass2rUnit =',
759 & ' /* convert mass per unit area [kg/m2] to r-units [m] */')
760 CALL WRITE_0D_RL( rUnit2mass, INDEX_NONE,'rUnit2mass =',
761 & ' /* convert r-units [m] to mass per unit area [kg/m2] */')
762 ENDIF
763 IF ( usingPCoords ) THEN
764 CALL WRITE_0D_RL( mass2rUnit, INDEX_NONE,'mass2rUnit =',
765 & ' /* convert mass per unit area [kg/m2] to r-units [Pa] */')
766 CALL WRITE_0D_RL( rUnit2mass, INDEX_NONE,'rUnit2mass =',
767 & ' /* convert r-units [Pa] to mass per unit area [kg/m2] */')
768 ENDIF
769 CALL WRITE_COPY1D_RS( bufRL, drC,Nr+1,INDEX_K, 'drC = ',
770 &' /* C spacing ( units of r ) */')
771 CALL WRITE_COPY1D_RS( bufRL, drF, Nr, INDEX_K, 'drF = ',
772 &' /* W spacing ( units of r ) */')
773 IF ( selectSigmaCoord.NE.0 ) THEN
774 CALL WRITE_COPY1D_RS( bufRL,dAHybSigF,Nr,INDEX_K,'dAHybSigF =',
775 & ' /* vertical increment of Hybrid-sigma Coeff. (-) */')
776 CALL WRITE_COPY1D_RS( bufRL,dBHybSigF,Nr,INDEX_K,'dBHybSigF =',
777 & ' /* vertical increment of Hybrid-sigma Coeff. (-) */')
778 ENDIF
779 IF ( usingCurvilinearGrid ) THEN
780 CALL WRITE_0D_RL( radius_fromHorizGrid, INDEX_NONE,
781 & 'radius_fromHorizGrid = ',
782 & '/* sphere Radius of input horiz. grid */')
783 ELSE
784 CALL WRITE_1D_RL( delX, gridNx, INDEX_I, 'delX = ',
785 & ' /* U spacing ( m - cartesian, degrees - spherical ) */')
786 CALL WRITE_1D_RL( delY, gridNy, INDEX_J, 'delY = ',
787 & ' /* V spacing ( m - cartesian, degrees - spherical ) */')
788 CALL WRITE_0D_RL( xgOrigin, INDEX_NONE,'xgOrigin = ',
789 & '/* X-axis origin of West edge (cartesian: m, lat-lon: deg) */')
790 CALL WRITE_0D_RL( ygOrigin, INDEX_NONE,'ygOrigin = ',
791 & '/* Y-axis origin of South edge (cartesian: m, lat-lon: deg) */')
792 ENDIF
793 CALL WRITE_0D_RL( rSphere, INDEX_NONE,'rSphere = ',
794 & ' /* Radius ( ignored - cartesian, m - spherical ) */')
795 CALL WRITE_0D_L(deepAtmosphere,INDEX_NONE, 'deepAtmosphere =',
796 & ' /* Deep/Shallow Atmosphere flag (True/False) */')
797 coordLine = 1
798 tileLine = 1
799 CALL WRITE_XY_XLINE_RS( xC, coordLine, tileLine, 'xC',
800 I ': P-point X coord ( deg. or m if cartesian)')
801 CALL WRITE_XY_YLINE_RS( yC, coordLine, tileLine, 'yC',
802 I ': P-point Y coord ( deg. or m if cartesian)')
803 CALL WRITE_COPY1D_RS( bufRL, rC, Nr, INDEX_K, 'rcoord =',
804 & ' /* P-point R coordinate ( units of r ) */')
805 CALL WRITE_COPY1D_RS( bufRL, rF,Nr+1,INDEX_K, 'rF = ',
806 &' /* W-Interf. R coordinate ( units of r ) */')
807 IF ( selectSigmaCoord.NE.0 ) THEN
808 CALL WRITE_COPY1D_RS(bufRL,aHybSigmF,Nr+1,INDEX_K,'aHybSigmF =',
809 & ' /* Hybrid-sigma vert. Coord coeff. @ W-Interface (-) */')
810 CALL WRITE_COPY1D_RS(bufRL,bHybSigmF,Nr+1,INDEX_K,'bHybSigmF =',
811 & ' /* Hybrid-sigma vert. Coord coeff. @ W-Interface (-) */')
812 ENDIF
813 CALL WRITE_1D_RL( deepFacC, Nr, INDEX_K, 'deepFacC = ',
814 & ' /* deep-model grid factor @ cell-Center (-) */')
815 CALL WRITE_1D_RL( deepFacF, Nr+1, INDEX_K, 'deepFacF = ',
816 & ' /* deep-model grid factor @ W-Interface (-) */')
817 CALL WRITE_1D_RL(rVel2wUnit,Nr+1, INDEX_K,'rVel2wUnit =',
818 & ' /* convert units: rVel -> wSpeed (=1 if z-coord)*/')
819 CALL WRITE_1D_RL(wUnit2rVel,Nr+1, INDEX_K,'wUnit2rVel =',
820 & ' /* convert units: wSpeed -> rVel (=1 if z-coord)*/')
821 CALL WRITE_1D_RL( dBdrRef, Nr, INDEX_K, 'dBdrRef =',
822 & ' /* Vertical grad. of reference buoyancy [(m/s/r)^2] */')
823 CALL WRITE_0D_L( rotateGrid, INDEX_NONE,
824 & 'rotateGrid =',' /* use rotated grid ( True/False ) */')
825 CALL WRITE_0D_RL( phiEuler, INDEX_NONE,'phiEuler =',
826 &' /* Euler angle, rotation about original z-coordinate [rad] */')
827 CALL WRITE_0D_RL( thetaEuler, INDEX_NONE,'thetaEuler =',
828 & ' /* Euler angle, rotation about new x-coordinate [rad] */')
829 CALL WRITE_0D_RL( psiEuler, INDEX_NONE,'psiEuler =',
830 & ' /* Euler angle, rotation about new z-coordinate [rad] */')
831
832 C Grid along selected grid lines
833 coordLine = 1
834 tileLine = 1
835 CALL WRITE_XY_XLINE_RS( dxF, coordLine, tileLine, 'dxF',
836 I '( units: m )' )
837 CALL WRITE_XY_YLINE_RS( dxF, coordLine, tileLine, 'dxF',
838 I '( units: m )' )
839 CALL WRITE_XY_XLINE_RS( dyF, coordLine, tileLine, 'dyF',
840 I '( units: m )' )
841 CALL WRITE_XY_YLINE_RS( dyF, coordLine, tileLine, 'dyF',
842 I '( units: m )' )
843 CALL WRITE_XY_XLINE_RS( dxG, coordLine, tileLine, 'dxG',
844 I '( units: m )' )
845 CALL WRITE_XY_YLINE_RS( dxG, coordLine, tileLine, 'dxG',
846 I '( units: m )' )
847 CALL WRITE_XY_XLINE_RS( dyG, coordLine, tileLine, 'dyG',
848 I '( units: m )' )
849 CALL WRITE_XY_YLINE_RS( dyG, coordLine, tileLine, 'dyG',
850 I '( units: m )' )
851 CALL WRITE_XY_XLINE_RS( dxC, coordLine, tileLine, 'dxC',
852 I '( units: m )' )
853 CALL WRITE_XY_YLINE_RS( dxC, coordLine, tileLine, 'dxC',
854 I '( units: m )' )
855 CALL WRITE_XY_XLINE_RS( dyC, coordLine, tileLine, 'dyC',
856 I '( units: m )' )
857 CALL WRITE_XY_YLINE_RS( dyC, coordLine, tileLine, 'dyC',
858 I '( units: m )' )
859 CALL WRITE_XY_XLINE_RS( dxV, coordLine, tileLine, 'dxV',
860 I '( units: m )' )
861 CALL WRITE_XY_YLINE_RS( dxV, coordLine, tileLine, 'dxV',
862 I '( units: m )' )
863 CALL WRITE_XY_XLINE_RS( dyU, coordLine, tileLine, 'dyU',
864 I '( units: m )' )
865 CALL WRITE_XY_YLINE_RS( dyU, coordLine, tileLine, 'dyU',
866 I '( units: m )' )
867 CALL WRITE_XY_XLINE_RS( rA , coordLine, tileLine, 'rA ',
868 I '( units: m^2 )' )
869 CALL WRITE_XY_YLINE_RS( rA , coordLine, tileLine, 'rA ',
870 I '( units: m^2 )' )
871 CALL WRITE_XY_XLINE_RS( rAw, coordLine, tileLine, 'rAw',
872 I '( units: m^2 )' )
873 CALL WRITE_XY_YLINE_RS( rAw, coordLine, tileLine, 'rAw',
874 I '( units: m^2 )' )
875 CALL WRITE_XY_XLINE_RS( rAs, coordLine, tileLine, 'rAs',
876 I '( units: m^2 )' )
877 CALL WRITE_XY_YLINE_RS( rAs, coordLine, tileLine, 'rAs',
878 I '( units: m^2 )' )
879
880 CALL WRITE_0D_RL( globalArea, INDEX_NONE, 'globalArea =',
881 & ' /* Integrated horizontal Area (m^2) */')
882 IF ( useCubedSphereExchange ) THEN
883 CALL WRITE_0D_L( hasWetCSCorners,INDEX_NONE,'hasWetCSCorners =',
884 & ' /* Domain contains CS corners (True/False) */')
885 ENDIF
886
887 i = ILNBLNK(the_run_name)
888 IF ( i.GT.0 ) THEN
889 CALL WRITE_0D_C( the_run_name, i, INDEX_NONE,
890 & 'the_run_name = ', '/* Name of this simulation */' )
891 ENDIF
892
893 WRITE(msgBuf,'(A)')
894 &'// ======================================================='
895 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
896 WRITE(msgBuf,'(A)') '// End of Model config. summary'
897 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
898 WRITE(msgBuf,'(A)')
899 &'// ======================================================='
900 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
901 WRITE(msgBuf,'(A)') ' '
902 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
903
904 _END_MASTER(myThid)
905 _BARRIER
906
907 RETURN
908 END

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