/[MITgcm]/MITgcm/model/src/config_summary.F
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Revision 1.137 - (hide annotations) (download)
Fri Jul 13 20:48:02 2012 UTC (11 years, 10 months ago) by jmc
Branch: MAIN
CVS Tags: checkpoint63q
Changes since 1.136: +14 -11 lines
add logical flag, true if using Cubed-Sphere Exch with CS-corners inside the domain

1 jmc 1.137 C $Header: /u/gcmpack/MITgcm/model/src/config_summary.F,v 1.136 2012/06/15 13:20:04 jmc Exp $
2 cnh 1.26 C $Name: $
3 cnh 1.1
4 jmc 1.67 #include "PACKAGES_CONFIG.h"
5 cnh 1.18 #include "CPP_OPTIONS.h"
6 jmc 1.133 #ifdef ALLOW_EXCH2
7     # include "W2_OPTIONS.h"
8     #endif /* ALLOW_EXCH2 */
9 cnh 1.1
10 edhill 1.57 C---+----1----+----2----+----3----+----4----+----5----+----6----+----7-|--+----|
11 cnh 1.30 CBOP
12     C !ROUTINE: CONFIG_SUMMARY
13 edhill 1.57
14 cnh 1.30 C !INTERFACE:
15 cnh 1.1 SUBROUTINE CONFIG_SUMMARY( myThid )
16 edhill 1.57
17     C !DESCRIPTION:
18     C This routine summarizes the model parameter settings by writing a
19     C tabulated list of the kernel model configuration variables. It
20     C describes all the parameter settings in force and the meaning and
21     C units of those parameters. Individal packages report a similar
22     C table for each package using the same format as employed here. If
23     C parameters are missing or incorrectly described or dimensioned
24     C please contact <MITgcm-support@mitgcm.org>
25 cnh 1.30
26     C !USES:
27 adcroft 1.19 IMPLICIT NONE
28 cnh 1.1 #include "SIZE.h"
29     #include "EEPARAMS.h"
30     #include "PARAMS.h"
31 jmc 1.133 #ifdef ALLOW_EXCH2
32     # include "W2_EXCH2_SIZE.h"
33     # include "W2_EXCH2_TOPOLOGY.h"
34     #endif /* ALLOW_EXCH2 */
35 jmc 1.67 #include "EOS.h"
36     #include "GRID.h"
37 jmc 1.133 #include "SET_GRID.h"
38 edhill 1.60 #ifdef ALLOW_MNC
39     #include "MNC_PARAMS.h"
40     #endif
41 cnh 1.1
42 cnh 1.30 C !INPUT/OUTPUT PARAMETERS:
43 edhill 1.57 C myThid :: Number of this instance of CONFIG_SUMMARY
44 cnh 1.1 INTEGER myThid
45 edhill 1.57 CEOP
46 cnh 1.1
47 jmc 1.94 C !FUNCTIONS:
48     INTEGER ILNBLNK
49     EXTERNAL ILNBLNK
50    
51 cnh 1.30 C !LOCAL VARIABLES:
52     C msgBuf :: Temp. for building output string.
53 jmc 1.102 C rUnits :: vertical coordinate units
54 jmc 1.106 C ioUnit :: Temp. for fortran I/O unit
55 jmc 1.122 C i, k :: Loop counters.
56 cnh 1.1 CHARACTER*(MAX_LEN_MBUF) msgBuf
57 jmc 1.102 CHARACTER*2 rUnits
58 jmc 1.125 CHARACTER*10 endList
59 jmc 1.106 INTEGER ioUnit
60 jmc 1.122 INTEGER i, k
61 jmc 1.116 _RL bufRL(Nr+1)
62 jmc 1.117 INTEGER buffI(1)
63 cnh 1.26 INTEGER coordLine
64     INTEGER tileLine
65 jmc 1.133 INTEGER gridNx, gridNy
66 cnh 1.1
67     _BARRIER
68 cnh 1.5 _BEGIN_MASTER(myThid)
69 cnh 1.1
70 jmc 1.106 ioUnit = standardMessageUnit
71 jmc 1.102 rUnits = ' m'
72 jmc 1.125 endList = ' ; '
73 jmc 1.102 IF ( usingPCoords ) rUnits = 'Pa'
74 jmc 1.133 #ifdef ALLOW_EXCH2
75     gridNx = exch2_mydNx(1)
76     gridNy = exch2_mydNy(1)
77     #else /* ALLOW_EXCH2 */
78     gridNx = Nx
79     gridNy = Ny
80     #endif /* ALLOW_EXCH2 */
81 jmc 1.102
82 cnh 1.1 WRITE(msgBuf,'(A)')
83     &'// ======================================================='
84 jmc 1.106 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
85 cnh 1.1 WRITE(msgBuf,'(A)') '// Model configuration'
86 jmc 1.106 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
87 cnh 1.1 WRITE(msgBuf,'(A)')
88     &'// ======================================================='
89 jmc 1.106 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
90 cnh 1.5
91 cnh 1.6 WRITE(msgBuf,'(A)') '// '
92 jmc 1.106 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
93 jmc 1.92 WRITE(msgBuf,'(A)')
94 cnh 1.17 & '// "Physical" paramters ( PARM01 in namelist ) '
95 jmc 1.106 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
96 cnh 1.6 WRITE(msgBuf,'(A)') '// '
97 jmc 1.106 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
98 jmc 1.97 CALL WRITE_0D_C( buoyancyRelation, -1, INDEX_NONE,
99     & 'buoyancyRelation =', ' /* Type of relation to get Buoyancy */')
100 jmc 1.62 CALL WRITE_0D_L( fluidIsAir, INDEX_NONE,
101 jmc 1.124 & 'fluidIsAir =', ' /* fluid major constituent is Air */')
102 jmc 1.62 CALL WRITE_0D_L( fluidIsWater, INDEX_NONE,
103 jmc 1.124 & 'fluidIsWater =', ' /* fluid major constituent is Water */')
104 jmc 1.62 CALL WRITE_0D_L( usingPCoords, INDEX_NONE,
105     & 'usingPCoords =', ' /* use p (or p*) vertical coordinate */')
106     CALL WRITE_0D_L( usingZCoords, INDEX_NONE,
107     & 'usingZCoords =', ' /* use z (or z*) vertical coordinate */')
108 jmc 1.116 CALL WRITE_1D_RL( tRef, Nr, INDEX_K, 'tRef =',
109 jmc 1.124 & ' /* Reference temperature profile ( oC or K ) */')
110 jmc 1.116 CALL WRITE_1D_RL( sRef, Nr, INDEX_K, 'sRef =',
111 jmc 1.124 & ' /* Reference salinity profile ( psu ) */')
112     CALL WRITE_0D_RL( viscAh, INDEX_NONE, 'viscAh = ',
113     & ' /* Lateral eddy viscosity ( m^2/s ) */')
114 jmc 1.92 IF ( viscAhD.NE.viscAh )
115 jmc 1.124 & CALL WRITE_0D_RL( viscAhD, INDEX_NONE, 'viscAhD = ',
116     & ' /* Lateral eddy viscosity (Divergence)( m^2/s ) */')
117 jmc 1.92 IF ( viscAhZ.NE.viscAh )
118 jmc 1.124 & CALL WRITE_0D_RL( viscAhZ, INDEX_NONE, 'viscAhZ = ',
119     & ' /* Lateral eddy viscosity (Vorticity) ( m^2/s ) */')
120     CALL WRITE_0D_RL( viscAhMax, INDEX_NONE, 'viscAhMax =',
121     & ' /* Maximum lateral eddy viscosity ( m^2/s ) */')
122     CALL WRITE_0D_RL( viscAhGrid, INDEX_NONE, 'viscAhGrid =',
123     & ' /* Grid dependent lateral eddy viscosity ( non-dim. ) */')
124     CALL WRITE_0D_L( useFullLeith, INDEX_NONE, 'useFullLeith =',
125     & ' /* Use Full Form of Leith Viscosity on/off flag*/')
126 baylor 1.78 CALL WRITE_0D_L( useStrainTensionVisc, INDEX_NONE,
127 jmc 1.124 & 'useStrainTensionVisc=',
128     & ' /* Use StrainTension Form of Viscous Operator flag*/')
129 baylor 1.79 CALL WRITE_0D_L( useAreaViscLength, INDEX_NONE,
130 jmc 1.124 & 'useAreaViscLength =',
131     & ' /* Use area for visc length instead of geom. mean*/')
132     CALL WRITE_0D_RL( viscC2leith, INDEX_NONE, 'viscC2leith =',
133     & ' /* Leith harmonic visc. factor (on grad(vort),non-dim.) */')
134     CALL WRITE_0D_RL( viscC2leithD, INDEX_NONE, 'viscC2leithD =',
135     & ' /* Leith harmonic viscosity factor (on grad(div),non-dim.)*/')
136     CALL WRITE_0D_RL( viscC2smag, INDEX_NONE, 'viscC2smag =',
137     & ' /* Smagorinsky harmonic viscosity factor (non-dim.) */')
138     CALL WRITE_0D_RL( viscA4, INDEX_NONE, 'viscA4 = ',
139     & ' /* Lateral biharmonic viscosity ( m^4/s ) */')
140 jmc 1.92 IF ( viscA4D.NE.viscA4 )
141 jmc 1.124 & CALL WRITE_0D_RL( viscA4D, INDEX_NONE, 'viscA4D = ',
142     & ' /* Lateral biharmonic viscosity (Divergence)( m^4/s ) */')
143 jmc 1.92 IF ( viscA4Z.NE.viscA4 )
144 jmc 1.124 & CALL WRITE_0D_RL( viscA4Z, INDEX_NONE, 'viscA4Z = ',
145     & ' /* Lateral biharmonic viscosity (Vorticity) ( m^4/s ) */')
146     CALL WRITE_0D_RL( viscA4Max, INDEX_NONE, 'viscA4Max =',
147     & ' /* Maximum biharmonic viscosity ( m^2/s ) */')
148     CALL WRITE_0D_RL( viscA4Grid, INDEX_NONE, 'viscA4Grid =',
149     & ' /* Grid dependent biharmonic viscosity ( non-dim. ) */')
150 jmc 1.115 CALL WRITE_0D_RL( viscC4leith, INDEX_NONE,'viscC4leith =',
151 jmc 1.124 & ' /* Leith biharm viscosity factor (on grad(vort), non-dim.)*/')
152 jmc 1.115 CALL WRITE_0D_RL( viscC4leithD, INDEX_NONE,'viscC4leithD =',
153 jmc 1.124 & ' /* Leith biharm viscosity factor (on grad(div), non-dim.) */')
154 jmc 1.115 CALL WRITE_0D_RL( viscC4Smag, INDEX_NONE,'viscC4Smag =',
155 jmc 1.124 & ' /* Smagorinsky biharm viscosity factor (non-dim) */')
156 heimbach 1.22 CALL WRITE_0D_L( no_slip_sides, INDEX_NONE,
157 adcroft 1.20 & 'no_slip_sides =', ' /* Viscous BCs: No-slip sides */')
158 jmc 1.115 CALL WRITE_0D_RL( sideDragFactor, INDEX_NONE, 'sideDragFactor =',
159 jmc 1.81 & ' /* side-drag scaling factor (non-dim) */')
160 jmc 1.118 CALL WRITE_1D_RL( viscArNr, Nr, INDEX_K, 'viscArNr =',
161     & ' /* vertical profile of vertical viscosity ('
162     & //rUnits//'^2/s )*/')
163 jmc 1.55 CALL WRITE_0D_L( no_slip_bottom, INDEX_NONE,
164     & 'no_slip_bottom =', ' /* Viscous BCs: No-slip bottom */')
165 jmc 1.115 CALL WRITE_0D_RL( bottomDragLinear, INDEX_NONE,
166 jmc 1.81 & 'bottomDragLinear =',
167 jmc 1.111 & ' /* linear bottom-drag coefficient ( m/s ) */')
168 jmc 1.115 CALL WRITE_0D_RL( bottomDragQuadratic, INDEX_NONE,
169 jmc 1.81 & 'bottomDragQuadratic =',
170 jmc 1.111 & ' /* quadratic bottom-drag coefficient (-) */')
171 jmc 1.115 CALL WRITE_0D_RL( diffKhT, INDEX_NONE,'diffKhT =',
172 cnh 1.5 &' /* Laplacian diffusion of heat laterally ( m^2/s ) */')
173 jmc 1.115 CALL WRITE_0D_RL( diffK4T, INDEX_NONE,'diffK4T =',
174 jmc 1.102 &' /* Biharmonic diffusion of heat laterally ( m^4/s ) */')
175 jmc 1.115 CALL WRITE_0D_RL( diffKhS, INDEX_NONE,'diffKhS =',
176 cnh 1.5 &' /* Laplacian diffusion of salt laterally ( m^2/s ) */')
177 jmc 1.115 CALL WRITE_0D_RL( diffK4S, INDEX_NONE,'diffK4S =',
178 jmc 1.102 &' /* Biharmonic diffusion of salt laterally ( m^4/s ) */')
179 jmc 1.116 CALL WRITE_1D_RL( diffKrNrT, Nr, INDEX_K, 'diffKrNrT =',
180 jmc 1.102 & ' /* vertical profile of vertical diffusion of Temp ('
181     & //rUnits//'^2/s )*/')
182 jmc 1.136 IF ( tempVertDiff4 )
183     & CALL WRITE_1D_RL( diffKr4T, Nr, INDEX_K, 'diffKr4T =',
184     & ' /* profile of vertical biharmonic diffusion of Temp ('
185     & //rUnits//'^4/s )*/')
186 jmc 1.116 CALL WRITE_1D_RL( diffKrNrS, Nr, INDEX_K, 'diffKrNrS =',
187 jmc 1.102 & ' /* vertical profile of vertical diffusion of Salt ('
188     & //rUnits//'^2/s )*/')
189 jmc 1.136 IF ( saltVertDiff4 )
190     & CALL WRITE_1D_RL( diffKr4S, Nr, INDEX_K, 'diffKr4S =',
191     & ' /* profile of vertical biharmonic diffusion of Salt ('
192     & //rUnits//'^4/s )*/')
193 jmc 1.115 CALL WRITE_0D_RL( diffKrBL79surf, INDEX_NONE,'diffKrBL79surf =',
194 jmc 1.102 & ' /* Surface diffusion for Bryan and Lewis 79 ( m^2/s ) */')
195 jmc 1.115 CALL WRITE_0D_RL( diffKrBL79deep, INDEX_NONE,'diffKrBL79deep =',
196 jmc 1.102 & ' /* Deep diffusion for Bryan and Lewis 1979 ( m^2/s ) */')
197 jmc 1.115 CALL WRITE_0D_RL( diffKrBL79scl, INDEX_NONE,'diffKrBL79scl =',
198 jmc 1.102 & ' /* Depth scale for Bryan and Lewis 1979 ( m ) */')
199 jmc 1.115 CALL WRITE_0D_RL( diffKrBL79Ho, INDEX_NONE,'diffKrBL79Ho =',
200 jmc 1.102 & ' /* Turning depth for Bryan and Lewis 1979 ( m ) */')
201 jmc 1.115 CALL WRITE_0D_RL( ivdc_kappa, INDEX_NONE,'ivdc_kappa =',
202 jmc 1.102 & ' /* Implicit Vertical Diffusivity for Convection ('
203 jmc 1.124 & //rUnits//'^2/s) */')
204 jmc 1.115 CALL WRITE_0D_RL( hMixCriteria, INDEX_NONE,'hMixCriteria=',
205 jmc 1.98 & ' /* Criteria for mixed-layer diagnostic */')
206 jmc 1.124 CALL WRITE_0D_RL( dRhoSmall, INDEX_NONE,'dRhoSmall =',
207 dfer 1.112 & ' /* Parameter for mixed-layer diagnostic */')
208 jmc 1.115 CALL WRITE_0D_RL( hMixSmooth, INDEX_NONE,'hMixSmooth=',
209 dfer 1.113 & ' /* Smoothing parameter for mixed-layer diagnostic */')
210 jmc 1.97 CALL WRITE_0D_C( eosType, 0, INDEX_NONE, 'eosType =',
211     & ' /* Type of Equation of State */')
212 jmc 1.134 IF ( eosType .EQ. 'LINEAR' ) THEN
213     CALL WRITE_0D_RL( tAlpha, INDEX_NONE,'tAlpha =',
214     & ' /* Linear EOS thermal expansion coefficient ( 1/oC ) */')
215     CALL WRITE_0D_RL( sBeta, INDEX_NONE,'sBeta =',
216     & ' /* Linear EOS haline contraction coefficient ( 1/psu ) */')
217     CALL WRITE_0D_RL( rhoNil, INDEX_NONE, 'rhoNil =',
218     & ' /* Reference density for Linear EOS ( kg/m^3 ) */')
219     ENDIF
220 cnh 1.16 IF ( eosType .EQ. 'POLY3' ) THEN
221 jmc 1.92 WRITE(msgBuf,'(A)')
222 cnh 1.17 & '// Polynomial EQS parameters ( from POLY3.COEFFS ) '
223 jmc 1.122 DO k = 1, Nr
224 cnh 1.16 WRITE(msgBuf,'(I3,13F8.3)')
225 jmc 1.122 & k,eosRefT(k),eosRefS(k),eosSig0(k), (eosC(i,k),i=1,9)
226 jmc 1.106 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
227 cnh 1.16 ENDDO
228     ENDIF
229 jmc 1.134 CALL WRITE_0D_RL( celsius2K, INDEX_NONE, 'celsius2K =',
230     & ' /* 0 degree Celsius converted to Kelvin ( K ) */')
231 jmc 1.62 IF ( fluidIsAir ) THEN
232 jmc 1.115 CALL WRITE_0D_RL( atm_Rd, INDEX_NONE, 'atm_Rd =',
233 jmc 1.37 & ' /* gas constant for dry air ( J/kg/K ) */')
234 jmc 1.115 CALL WRITE_0D_RL( atm_Cp, INDEX_NONE, 'atm_Cp =',
235 jmc 1.37 & ' /* specific heat (Cp) of dry air ( J/kg/K ) */')
236 jmc 1.115 CALL WRITE_0D_RL( atm_kappa, INDEX_NONE, 'atm_kappa =',
237 jmc 1.37 & ' /* kappa (=Rd/Cp ) of dry air */')
238 jmc 1.115 CALL WRITE_0D_RL( atm_Rq, INDEX_NONE, 'atm_Rq =',
239 jmc 1.42 & ' /* water vap. specific vol. anomaly relative to dry air */')
240 jmc 1.115 CALL WRITE_0D_RL( atm_Po, INDEX_NONE, 'atm_Po =',
241 jmc 1.37 & ' /* standard reference pressure ( Pa ) */')
242     CALL WRITE_0D_I( integr_GeoPot, INDEX_NONE, 'integr_GeoPot =',
243     & ' /* select how the geopotential is integrated */')
244 jmc 1.92 CALL WRITE_0D_I( selectFindRoSurf, INDEX_NONE,
245 jmc 1.37 & 'selectFindRoSurf=',
246     & ' /* select how Surf.Ref. pressure is defined */')
247     ENDIF
248 jmc 1.134 CALL WRITE_0D_RL( rhoConst, INDEX_NONE,'rhoConst =',
249     & ' /* Reference density (Boussinesq) ( kg/m^3 ) */')
250 jmc 1.116 CALL WRITE_1D_RL( rhoFacC, Nr, INDEX_K, 'rhoFacC = ',
251 jmc 1.93 & ' /* normalized Reference density @ cell-Center (-) */')
252 jmc 1.116 CALL WRITE_1D_RL( rhoFacF, Nr+1, INDEX_K, 'rhoFacF = ',
253 jmc 1.93 & ' /* normalized Reference density @ W-Interface (-) */')
254 jmc 1.115 CALL WRITE_0D_RL( rhoConstFresh, INDEX_NONE,'rhoConstFresh =',
255 jmc 1.134 & ' /* Fresh-water reference density ( kg/m^3 ) */')
256 jmc 1.115 CALL WRITE_0D_RL( gravity, INDEX_NONE,'gravity =',
257 cnh 1.6 &' /* Gravitational acceleration ( m/s^2 ) */')
258 jmc 1.115 CALL WRITE_0D_RL( gBaro, INDEX_NONE,'gBaro =',
259 jmc 1.29 &' /* Barotropic gravity ( m/s^2 ) */')
260 jmc 1.115 CALL WRITE_0D_RL(rotationPeriod,INDEX_NONE,'rotationPeriod =',
261 jmc 1.40 &' /* Rotation Period ( s ) */')
262 jmc 1.115 CALL WRITE_0D_RL( omega, INDEX_NONE,'omega =',
263 jmc 1.40 &' /* Angular velocity ( rad/s ) */')
264 jmc 1.115 CALL WRITE_0D_RL( f0, INDEX_NONE,'f0 =',
265 cnh 1.6 &' /* Reference coriolis parameter ( 1/s ) */')
266 jmc 1.115 CALL WRITE_0D_RL( beta, INDEX_NONE,'beta =',
267 cnh 1.6 &' /* Beta ( 1/(m.s) ) */')
268 jmc 1.125 CALL WRITE_0D_RL( fPrime, INDEX_NONE,'fPrime =',
269     &' /* Second coriolis parameter ( 1/s ) */')
270 jmc 1.124 CALL WRITE_0D_L( rigidLid, INDEX_NONE, 'rigidLid =',
271     &' /* Rigid lid on/off flag */')
272 heimbach 1.22 CALL WRITE_0D_L( implicitFreeSurface, INDEX_NONE,
273 cnh 1.8 & 'implicitFreeSurface =',
274     &' /* Implicit free surface on/off flag */')
275 jmc 1.124 CALL WRITE_0D_RL( freeSurfFac, INDEX_NONE,'freeSurfFac =',
276     &' /* Implicit free surface factor */')
277 jmc 1.115 CALL WRITE_0D_RL( implicSurfPress, INDEX_NONE,
278 jmc 1.124 & 'implicSurfPress =',
279     & ' /* Surface Pressure implicit factor (0-1)*/')
280 jmc 1.115 CALL WRITE_0D_RL( implicDiv2Dflow, INDEX_NONE,
281 jmc 1.124 & 'implicDiv2Dflow =',
282     & ' /* Barot. Flow Div. implicit factor (0-1)*/')
283 jmc 1.31 CALL WRITE_0D_L( uniformLin_PhiSurf, INDEX_NONE,
284 jmc 1.124 & 'uniformLin_PhiSurf =',
285     & ' /* use uniform Bo_surf on/off flag*/')
286 jmc 1.135 CALL WRITE_0D_L( uniformFreeSurfLev, INDEX_NONE,
287     & 'uniformFreeSurfLev =',
288     & ' /* free-surface level-index is uniform */')
289 jmc 1.124 CALL WRITE_0D_RL( hFacMin, INDEX_NONE, 'hFacMin = ',
290     & ' /* minimum partial cell factor (hFac) */')
291     CALL WRITE_0D_RL( hFacMin, INDEX_NONE, 'hFacMinDr =',
292     & ' /* minimum partial cell thickness ('//rUnits//') */')
293 jmc 1.135 CALL WRITE_0D_L( exactConserv, INDEX_NONE,
294     & 'exactConserv =',
295     & ' /* Exact Volume Conservation on/off flag*/')
296     CALL WRITE_0D_L( linFSConserveTr, INDEX_NONE,
297     & 'linFSConserveTr =',
298     & ' /* Tracer correction for Lin Free Surface on/off flag*/')
299 jmc 1.125 WRITE(msgBuf,'(2A)') 'nonlinFreeSurf =',
300     & ' /* Non-linear Free Surf. options (-1,0,1,2,3)*/'
301     CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
302     buffI(1) = nonlinFreeSurf
303     CALL PRINT_LIST_I( buffI, 1, 1, INDEX_NONE,
304     & .FALSE., .TRUE., ioUnit )
305 jmc 1.31 WRITE(msgBuf,'(2A)') ' -1,0= Off ; 1,2,3= On,',
306     & ' 2=+rescale gU,gV, 3=+update cg2d solv.'
307 jmc 1.106 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
308 jmc 1.125 CALL PRINT_MESSAGE(endList, ioUnit, SQUEEZE_RIGHT, myThid )
309 jmc 1.124 CALL WRITE_0D_RL( hFacInf, INDEX_NONE, 'hFacInf = ',
310     & ' /* lower threshold for hFac (nonlinFreeSurf only)*/')
311     CALL WRITE_0D_RL( hFacSup, INDEX_NONE, 'hFacSup = ',
312     & ' /* upper threshold for hFac (nonlinFreeSurf only)*/')
313 jmc 1.38 CALL WRITE_0D_I( select_rStar, INDEX_NONE,
314 jmc 1.124 & 'select_rStar =',
315     & ' /* r* Vertical coord. options (=0 r coord.; >0 uses r*)*/')
316 jmc 1.31 CALL WRITE_0D_L( useRealFreshWaterFlux, INDEX_NONE,
317 jmc 1.124 & 'useRealFreshWaterFlux =',
318     & ' /* Real Fresh Water Flux on/off flag*/')
319 jmc 1.115 CALL WRITE_0D_RL( temp_EvPrRn, INDEX_NONE,
320 jmc 1.124 & 'temp_EvPrRn =',
321     & ' /* Temp. of Evap/Prec/R (UNSET=use local T)(oC)*/')
322 jmc 1.115 CALL WRITE_0D_RL( salt_EvPrRn, INDEX_NONE,
323 jmc 1.124 & 'salt_EvPrRn =',
324     & ' /* Salin. of Evap/Prec/R (UNSET=use local S)(psu)*/')
325 jmc 1.135 CALL WRITE_0D_I( selectAddFluid, INDEX_NONE,
326     & 'selectAddFluid =',
327     & ' /* option for mass source/sink of fluid (=0: off) */')
328 dimitri 1.123 CALL WRITE_0D_RL( temp_addMass, INDEX_NONE,
329 jmc 1.124 & 'temp_addMass =',
330     & ' /* Temp. of addMass array (UNSET=use local T)(oC)*/')
331 dimitri 1.123 CALL WRITE_0D_RL( salt_addMass, INDEX_NONE,
332 jmc 1.124 & 'salt_addMass =',
333     & ' /* Salin. of addMass array (UNSET=use local S)(psu)*/')
334 jmc 1.110 IF ( .NOT.useRealFreshWaterFlux .OR. selectAddFluid.EQ.-1
335     & .OR. nonlinFreeSurf.LE.0 ) THEN
336 jmc 1.115 CALL WRITE_0D_RL( convertFW2Salt, INDEX_NONE,
337 jmc 1.124 & 'convertFW2Salt =',
338     & ' /* convert F.W. Flux to Salt Flux (-1=use local S)(psu)*/')
339 jmc 1.31 ENDIF
340    
341 jmc 1.86 CALL WRITE_0D_L( use3Dsolver, INDEX_NONE,
342     & 'use3Dsolver =', ' /* use 3-D pressure solver on/off flag */')
343 jmc 1.46 CALL WRITE_0D_L( nonHydrostatic, INDEX_NONE,
344     & 'nonHydrostatic =', ' /* Non-Hydrostatic on/off flag */')
345 jmc 1.115 CALL WRITE_0D_RL( nh_Am2, INDEX_NONE, 'nh_Am2 =',
346 jmc 1.81 & ' /* Non-Hydrostatic terms scaling factor */')
347 jmc 1.121 CALL WRITE_0D_RL( implicitNHPress, INDEX_NONE,
348     & 'implicitNHPress =',
349     & ' /* Non-Hyd Pressure implicit factor (0-1)*/')
350     CALL WRITE_0D_I( selectNHfreeSurf, INDEX_NONE,
351     & 'selectNHfreeSurf =',
352     & ' /* Non-Hyd (free-)Surface option */')
353 jmc 1.88 CALL WRITE_0D_L( quasiHydrostatic, INDEX_NONE,
354     & 'quasiHydrostatic =', ' /* Quasi-Hydrostatic on/off flag */')
355 jmc 1.131 CALL WRITE_0D_L( calc_wVelocity, INDEX_NONE, 'calc_wVelocity =',
356     & ' /* vertical velocity calculation on/off flag */')
357 heimbach 1.22 CALL WRITE_0D_L( momStepping, INDEX_NONE,
358 cnh 1.10 & 'momStepping =', ' /* Momentum equation on/off flag */')
359 jmc 1.89 CALL WRITE_0D_L( vectorInvariantMomentum, INDEX_NONE,
360     & 'vectorInvariantMomentum=',
361     & ' /* Vector-Invariant Momentum on/off */')
362 heimbach 1.22 CALL WRITE_0D_L( momAdvection, INDEX_NONE,
363 cnh 1.10 & 'momAdvection =', ' /* Momentum advection on/off flag */')
364 heimbach 1.22 CALL WRITE_0D_L( momViscosity, INDEX_NONE,
365 cnh 1.9 & 'momViscosity =', ' /* Momentum viscosity on/off flag */')
366 jmc 1.124 CALL WRITE_0D_L( momImplVertAdv, INDEX_NONE, 'momImplVertAdv=',
367     & ' /* Momentum implicit vert. advection on/off*/')
368 jmc 1.46 CALL WRITE_0D_L( implicitViscosity, INDEX_NONE,
369     & 'implicitViscosity =', ' /* Implicit viscosity on/off flag */')
370 jmc 1.88 CALL WRITE_0D_L( metricTerms, INDEX_NONE, 'metricTerms =',
371     & ' /* metric-Terms on/off flag */')
372     CALL WRITE_0D_L( useNHMTerms, INDEX_NONE, 'useNHMTerms =',
373     & ' /* Non-Hydrostatic Metric-Terms on/off */')
374 jmc 1.125 c------------
375     WRITE(msgBuf,'(2A)')
376     & 'selectCoriMap =', ' /* Coriolis Map options (0,1,2,3)*/'
377     CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
378     buffI(1) = selectCoriMap
379     CALL PRINT_LIST_I( buffI, 1, 1, INDEX_NONE,
380     & .FALSE., .TRUE., ioUnit )
381     WRITE(msgBuf,'(2A)') ' 0= f-Plane ; 1= Beta-Plane ;',
382     & ' 2= Spherical ; 3= read from file'
383     CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
384     CALL PRINT_MESSAGE(endList, ioUnit, SQUEEZE_RIGHT, myThid )
385     c------------
386 jmc 1.91 CALL WRITE_0D_L( use3dCoriolis, INDEX_NONE,
387     & 'use3dCoriolis =', ' /* 3-D Coriolis on/off flag */')
388 heimbach 1.22 CALL WRITE_0D_L( useCoriolis, INDEX_NONE,
389 cnh 1.9 & 'useCoriolis =', ' /* Coriolis on/off flag */')
390 jmc 1.46 CALL WRITE_0D_L( useCDscheme, INDEX_NONE,
391     & 'useCDscheme =', ' /* CD scheme on/off flag */')
392 jmc 1.129 CALL WRITE_0D_L( useEnergyConservingCoriolis, INDEX_NONE,
393     & 'useEnergyConservingCoriolis=',
394     & ' /* Flx-Form Coriolis scheme flag */')
395 jmc 1.46 CALL WRITE_0D_L( useJamartWetPoints, INDEX_NONE,
396     & 'useJamartWetPoints=',' /* Coriolis WetPoints method flag */')
397 adcroft 1.51 CALL WRITE_0D_L( useJamartMomAdv, INDEX_NONE,
398 jmc 1.129 & 'useJamartMomAdv=',' /* V.I Non-linear terms Jamart flag */')
399 jmc 1.106 CALL WRITE_0D_L( useAbsVorticity, INDEX_NONE,
400 jmc 1.129 & 'useAbsVorticity=',' /* V.I Works with f+zeta in Coriolis */')
401     WRITE(msgBuf,'(2A)') 'selectVortScheme=',
402     & ' /* V.I Scheme selector for Vorticity-Term */'
403 jmc 1.106 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
404 jmc 1.117 buffI(1) = selectVortScheme
405     CALL PRINT_LIST_I( buffI, 1, 1, INDEX_NONE,
406 jmc 1.106 & .FALSE., .TRUE., ioUnit )
407     WRITE(msgBuf,'(2A)') ' = 0 : enstrophy (Shallow-Water Eq.)',
408     & ' conserving scheme by Sadourny, JAS 75'
409     CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
410     WRITE(msgBuf,'(2A)') ' = 1 : same as 0 with modified hFac'
411     CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
412     WRITE(msgBuf,'(2A)') ' = 2 : energy conserving scheme',
413     & ' (used by Sadourny in JAS 75 paper)'
414     CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
415 jmc 1.109 WRITE(msgBuf,'(2A)') ' = 3 : energy (general)',
416     & ' and enstrophy (2D, nonDiv.) conserving scheme'
417     CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
418     WRITE(msgBuf,'(2A)') ' from Sadourny',
419     & ' (Burridge & Haseler, ECMWF Rep.4, 1977)'
420     CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
421 jmc 1.106 c WRITE(msgBuf,'(2A)') ' = 4 : energy (general)',
422     c & ' and enstrophy (2D, nonDiv.) conserving scheme'
423     c CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
424     c WRITE(msgBuf,'(2A)') ' from Arakawa & Lamb, 77'
425     c CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
426 jmc 1.125 CALL PRINT_MESSAGE(endList, ioUnit, SQUEEZE_RIGHT, myThid )
427 adcroft 1.49 CALL WRITE_0D_L( upwindVorticity, INDEX_NONE,
428 jmc 1.129 & 'upwindVorticity=',' /* V.I Upwind bias vorticity flag */')
429 adcroft 1.49 CALL WRITE_0D_L( highOrderVorticity, INDEX_NONE,
430 jmc 1.129 & 'highOrderVorticity=',' /* V.I High order vort. advect. flag */')
431 jmc 1.74 CALL WRITE_0D_L( upwindShear, INDEX_NONE,
432 jmc 1.129 & 'upwindShear=',' /* V.I Upwind vertical Shear advection flag */')
433 jmc 1.80 CALL WRITE_0D_I( selectKEscheme, INDEX_NONE,
434 jmc 1.129 & 'selectKEscheme=',' /* V.I Kinetic Energy scheme selector */')
435 heimbach 1.22 CALL WRITE_0D_L( momForcing, INDEX_NONE,
436 cnh 1.9 & 'momForcing =', ' /* Momentum forcing on/off flag */')
437 heimbach 1.22 CALL WRITE_0D_L( momPressureForcing, INDEX_NONE,
438 jmc 1.92 & 'momPressureForcing =',
439 cnh 1.17 & ' /* Momentum pressure term on/off flag */')
440 jmc 1.85 CALL WRITE_0D_L( implicitIntGravWave, INDEX_NONE,
441     & 'implicitIntGravWave=',
442     & ' /* Implicit Internal Gravity Wave flag */')
443 jmc 1.46 CALL WRITE_0D_L( staggerTimeStep, INDEX_NONE,
444 jmc 1.132 & 'staggerTimeStep = ',
445     & ' /* Stagger time stepping on/off flag */')
446     CALL WRITE_0D_L( doResetHFactors, INDEX_NONE,
447     & 'doResetHFactors =',
448     & ' /* reset thickness factors @ each time-step */')
449 jmc 1.92 CALL WRITE_0D_L( multiDimAdvection, INDEX_NONE,
450 jmc 1.46 & 'multiDimAdvection =',
451 jmc 1.132 & ' /* enable/disable Multi-Dim Advection */')
452 jmc 1.92 CALL WRITE_0D_L( useMultiDimAdvec, INDEX_NONE,
453 jmc 1.53 & 'useMultiDimAdvec =',
454     &' /* Multi-Dim Advection is/is-not used */')
455 jmc 1.46 CALL WRITE_0D_L( implicitDiffusion, INDEX_NONE,
456 jmc 1.124 & 'implicitDiffusion =',' /* Implicit Diffusion on/off flag */')
457 heimbach 1.22 CALL WRITE_0D_L( tempStepping, INDEX_NONE,
458 cnh 1.10 & 'tempStepping =', ' /* Temperature equation on/off flag */')
459 jmc 1.33 CALL WRITE_0D_L( tempAdvection, INDEX_NONE,
460     & 'tempAdvection=', ' /* Temperature advection on/off flag */')
461 jmc 1.46 CALL WRITE_0D_L( tempImplVertAdv,INDEX_NONE,'tempImplVertAdv =',
462 jmc 1.124 & ' /* Temp. implicit vert. advection on/off */')
463 jmc 1.33 CALL WRITE_0D_L( tempForcing, INDEX_NONE,
464     & 'tempForcing =', ' /* Temperature forcing on/off flag */')
465 jmc 1.107 CALL WRITE_0D_L( tempIsActiveTr, INDEX_NONE, 'tempIsActiveTr =',
466     & ' /* Temp. is a dynamically Active Tracer */')
467 jmc 1.33 CALL WRITE_0D_L( saltStepping, INDEX_NONE,
468     & 'saltStepping =', ' /* Salinity equation on/off flag */')
469     CALL WRITE_0D_L( saltAdvection, INDEX_NONE,
470     & 'saltAdvection=', ' /* Salinity advection on/off flag */')
471 jmc 1.46 CALL WRITE_0D_L( saltImplVertAdv,INDEX_NONE,'saltImplVertAdv =',
472 jmc 1.124 & ' /* Sali. implicit vert. advection on/off */')
473 jmc 1.33 CALL WRITE_0D_L( saltForcing, INDEX_NONE,
474     & 'saltForcing =', ' /* Salinity forcing on/off flag */')
475 jmc 1.107 CALL WRITE_0D_L( saltIsActiveTr, INDEX_NONE, 'saltIsActiveTr =',
476     & ' /* Salt is a dynamically Active Tracer */')
477 jmc 1.84 CALL WRITE_0D_I( readBinaryPrec, INDEX_NONE, ' readBinaryPrec =',
478     & ' /* Precision used for reading binary files */')
479     CALL WRITE_0D_I(writeBinaryPrec, INDEX_NONE, 'writeBinaryPrec =',
480     & ' /* Precision used for writing binary files */')
481     CALL WRITE_0D_L( globalFiles, INDEX_NONE,
482     & ' globalFiles =',' /* write "global" (=not per tile) files */')
483     CALL WRITE_0D_L( useSingleCpuIO, INDEX_NONE,
484     & ' useSingleCpuIO =', ' /* only master MPI process does I/O */')
485 jmc 1.130 WRITE(msgBuf,'(2A)') '/* debLev[*] :',
486     & ' level of debug & auxiliary message printing */'
487     CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
488     WRITE(msgBuf,'(A,I3,A)') 'debLevZero =', debLevZero,
489     & ' ; /* level of disabled aux. msg printing */'
490     CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
491     WRITE(msgBuf,'(A,I3,A)') ' debLevA =', debLevA,
492     & ' ; /* level of minimum aux. msg printing */'
493     CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
494     WRITE(msgBuf,'(A,I3,A)') ' debLevB =', debLevB,
495     & ' ; /* level of low aux. print (report read-file opening)*/'
496     CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
497     WRITE(msgBuf,'(A,I3,A)') ' debLevC =', debLevC,
498     & ' ; /* level of moderate debug prt (most pkgs debug msg) */'
499     CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
500     WRITE(msgBuf,'(A,I3,A)') ' debLevD =', debLevD,
501     & ' ; /* level of enhanced debug prt (add DEBUG_STATS prt) */'
502     CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
503     WRITE(msgBuf,'(A,I3,A)') ' debLevE =', debLevE,
504     & ' ; /* level of extensive debug printing */'
505     CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
506 jmc 1.76 CALL WRITE_0D_I( debugLevel, INDEX_NONE,
507 jmc 1.130 & 'debugLevel =', ' /* select debug printing level */')
508 jmc 1.124
509 cnh 1.6 WRITE(msgBuf,'(A)') '// '
510 jmc 1.106 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
511 jmc 1.92 WRITE(msgBuf,'(A)')
512 cnh 1.17 & '// Elliptic solver(s) paramters ( PARM02 in namelist ) '
513 jmc 1.106 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
514 cnh 1.6 WRITE(msgBuf,'(A)') '// '
515 jmc 1.106 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
516 heimbach 1.22 CALL WRITE_0D_I( cg2dMaxIters, INDEX_NONE,'cg2dMaxIters =',
517 cnh 1.6 &' /* Upper limit on 2d con. grad iterations */')
518 heimbach 1.22 CALL WRITE_0D_I( cg2dChkResFreq, INDEX_NONE,'cg2dChkResFreq =',
519 cnh 1.6 &' /* 2d con. grad convergence test frequency */')
520 jmc 1.115 CALL WRITE_0D_RL( cg2dTargetResidual, INDEX_NONE,
521 cnh 1.17 & 'cg2dTargetResidual =',
522 cnh 1.6 &' /* 2d con. grad target residual */')
523 jmc 1.115 CALL WRITE_0D_RL( cg2dTargetResWunit, INDEX_NONE,
524 jmc 1.54 & 'cg2dTargetResWunit =',
525     &' /* CG2d target residual [W units] */')
526     CALL WRITE_0D_I( cg2dPreCondFreq, INDEX_NONE,'cg2dPreCondFreq =',
527     &' /* Freq. for updating cg2d preconditioner */')
528 mlosch 1.120 CALL WRITE_0D_L( useSRCGSolver, INDEX_NONE,
529     & 'useSRCGSolver =', ' /* use single reduction CG solver(s) */')
530 jmc 1.130 CALL WRITE_0D_I( printResidualFreq, INDEX_NONE,
531     & 'printResidualFreq =', ' /* Freq. for printing CG residual */')
532 cnh 1.6
533     WRITE(msgBuf,'(A)') '// '
534 jmc 1.106 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
535 jmc 1.92 WRITE(msgBuf,'(A)')
536 cnh 1.17 & '// Time stepping paramters ( PARM03 in namelist ) '
537 jmc 1.106 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
538 cnh 1.6 WRITE(msgBuf,'(A)') '// '
539 jmc 1.106 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
540 jmc 1.115 CALL WRITE_0D_RL( deltaTmom, INDEX_NONE,'deltaTmom =',
541 cnh 1.6 &' /* Momentum equation timestep ( s ) */')
542 jmc 1.115 CALL WRITE_0D_RL( deltaTfreesurf,INDEX_NONE,'deltaTfreesurf =',
543 jmc 1.116 & ' /* FreeSurface equation timestep ( s ) */')
544     CALL WRITE_1D_RL( dTtracerLev, Nr, INDEX_K, 'dTtracerLev =',
545     & ' /* Tracer equation timestep ( s ) */')
546 jmc 1.115 CALL WRITE_0D_RL( deltaTClock, INDEX_NONE,'deltaTClock =',
547 cnh 1.12 &' /* Model clock timestep ( s ) */')
548 jmc 1.115 CALL WRITE_0D_RL( cAdjFreq, INDEX_NONE,'cAdjFreq =',
549 cnh 1.9 &' /* Convective adjustment interval ( s ) */')
550 jmc 1.87 CALL WRITE_0D_I( momForcingOutAB, INDEX_NONE, 'momForcingOutAB =',
551     & ' /* =1: take Momentum Forcing out of Adams-Bash. stepping */')
552     CALL WRITE_0D_I( tracForcingOutAB, INDEX_NONE,
553     & 'tracForcingOutAB =',
554     & ' /* =1: take T,S,pTr Forcing out of Adams-Bash. stepping */')
555 jmc 1.88 CALL WRITE_0D_L( momDissip_In_AB,INDEX_NONE,'momDissip_In_AB =',
556     & ' /* put Dissipation Tendency in Adams-Bash. stepping */')
557 jmc 1.82 CALL WRITE_0D_L( doAB_onGtGs, INDEX_NONE, 'doAB_onGtGs =',
558     & ' /* apply AB on Tendencies (rather than on T,S)*/')
559 jmc 1.115 CALL WRITE_0D_RL( abEps, INDEX_NONE,'abEps =',
560 jmc 1.73 &' /* Adams-Bashforth-2 stabilizing weight */')
561     #ifdef ALLOW_ADAMSBASHFORTH_3
562 jmc 1.115 CALL WRITE_0D_RL( alph_AB, INDEX_NONE,'alph_AB =',
563 jmc 1.73 &' /* Adams-Bashforth-3 primary factor */')
564 jmc 1.115 CALL WRITE_0D_RL( beta_AB, INDEX_NONE,'beta_AB =',
565 jmc 1.73 &' /* Adams-Bashforth-3 secondary factor */')
566     CALL WRITE_0D_L( startFromPickupAB2, INDEX_NONE,
567     & 'startFromPickupAB2=',' /* start from AB-2 pickup */')
568     #endif
569 jmc 1.41 IF (useCDscheme) THEN
570 jmc 1.115 CALL WRITE_0D_RL( tauCD, INDEX_NONE,'tauCD =',
571 cnh 1.6 &' /* CD coupling time-scale ( s ) */')
572 jmc 1.115 CALL WRITE_0D_RL( rCD, INDEX_NONE,'rCD =',
573 cnh 1.6 &' /* Normalised CD coupling parameter */')
574 jmc 1.119 CALL WRITE_0D_RL( epsAB_CD, INDEX_NONE,'epsAB_CD =',
575     & ' /* AB-2 stabilizing weight for CD-scheme*/')
576 jmc 1.41 ENDIF
577 jmc 1.122 i = ILNBLNK(pickupSuff)
578     IF ( i.GT.0 ) THEN
579 jmc 1.100 CALL WRITE_0D_C( pickupSuff, 0, INDEX_NONE,
580     & 'pickupSuff =', ' /* Suffix of pickup-file to restart from */')
581     ENDIF
582     CALL WRITE_0D_L( pickupStrictlyMatch, INDEX_NONE,
583     & 'pickupStrictlyMatch=',
584     & ' /* stop if pickup do not strictly match */')
585 jmc 1.126 CALL WRITE_0D_I( nIter0, INDEX_NONE, 'nIter0 =',
586     &' /* Run starting timestep number */')
587 jmc 1.100 CALL WRITE_0D_I( nTimeSteps, INDEX_NONE,'nTimeSteps =',
588 jmc 1.126 & ' /* Number of timesteps */')
589     CALL WRITE_0D_I( nEndIter, INDEX_NONE, 'nEndIter =',
590     &' /* Run ending timestep number */')
591 jmc 1.115 CALL WRITE_0D_RL( baseTime, INDEX_NONE,'baseTime =',
592 jmc 1.126 &' /* Model base time ( s ) */')
593 jmc 1.115 CALL WRITE_0D_RL( startTime, INDEX_NONE,'startTime =',
594 jmc 1.126 & ' /* Run start time ( s ) */')
595     CALL WRITE_0D_RL( endTime, INDEX_NONE,'endTime =',
596     &' /* Integration ending time ( s ) */')
597 jmc 1.115 CALL WRITE_0D_RL( pChkPtFreq, INDEX_NONE,'pChkPtFreq =',
598 jmc 1.126 & ' /* Permanent restart/pickup file interval ( s ) */')
599     CALL WRITE_0D_RL( chkPtFreq, INDEX_NONE,'chkPtFreq =',
600     & ' /* Rolling restart/pickup file interval ( s ) */')
601 edhill 1.57 CALL WRITE_0D_L(pickup_write_mdsio,INDEX_NONE,
602     & 'pickup_write_mdsio =', ' /* Model IO flag. */')
603     CALL WRITE_0D_L(pickup_read_mdsio,INDEX_NONE,
604     & 'pickup_read_mdsio =', ' /* Model IO flag. */')
605     #ifdef ALLOW_MNC
606     CALL WRITE_0D_L(pickup_write_mnc,INDEX_NONE,
607     & 'pickup_write_mnc =', ' /* Model IO flag. */')
608     CALL WRITE_0D_L(pickup_read_mnc,INDEX_NONE,
609     & 'pickup_read_mnc =', ' /* Model IO flag. */')
610     #endif
611     CALL WRITE_0D_L(pickup_write_immed,INDEX_NONE,
612     & 'pickup_write_immed =',' /* Model IO flag. */')
613 mlosch 1.104 CALL WRITE_0D_L(writePickupAtEnd,INDEX_NONE,
614     & 'writePickupAtEnd =',' /* Model IO flag. */')
615 jmc 1.115 CALL WRITE_0D_RL( dumpFreq, INDEX_NONE,'dumpFreq =',
616 cnh 1.6 &' /* Model state write out interval ( s ). */')
617 jmc 1.77 CALL WRITE_0D_L(dumpInitAndLast,INDEX_NONE,'dumpInitAndLast=',
618     & ' /* write out Initial & Last iter. model state */')
619 edhill 1.57 CALL WRITE_0D_L(snapshot_mdsio,INDEX_NONE,
620     & 'snapshot_mdsio =', ' /* Model IO flag. */')
621     #ifdef ALLOW_MNC
622     CALL WRITE_0D_L(snapshot_mnc,INDEX_NONE,
623     & 'snapshot_mnc =', ' /* Model IO flag. */')
624     #endif
625 jmc 1.115 CALL WRITE_0D_RL( monitorFreq, INDEX_NONE,'monitorFreq =',
626 edhill 1.56 &' /* Monitor output interval ( s ). */')
627 jmc 1.101 CALL WRITE_0D_I( monitorSelect, INDEX_NONE, 'monitorSelect =',
628     & ' /* select group of variables to monitor */')
629 edhill 1.58 CALL WRITE_0D_L(monitor_stdio,INDEX_NONE,
630     & 'monitor_stdio =', ' /* Model IO flag. */')
631 edhill 1.57 #ifdef ALLOW_MNC
632     CALL WRITE_0D_L(monitor_mnc,INDEX_NONE,
633     & 'monitor_mnc =', ' /* Model IO flag. */')
634     #endif
635 jmc 1.115 CALL WRITE_0D_RL( externForcingPeriod, INDEX_NONE,
636 jmc 1.43 & 'externForcingPeriod =', ' /* forcing period (s) */')
637 jmc 1.115 CALL WRITE_0D_RL( externForcingCycle, INDEX_NONE,
638 jmc 1.43 & 'externForcingCycle =', ' /* period of the cyle (s). */')
639 jmc 1.115 CALL WRITE_0D_RL( tauThetaClimRelax, INDEX_NONE,
640 jmc 1.43 & 'tauThetaClimRelax =', ' /* relaxation time scale (s) */')
641 jmc 1.115 CALL WRITE_0D_RL( tauSaltClimRelax, INDEX_NONE,
642 jmc 1.43 & 'tauSaltClimRelax =', ' /* relaxation time scale (s) */')
643 jmc 1.115 CALL WRITE_0D_RL( latBandClimRelax, INDEX_NONE,
644 jmc 1.43 & 'latBandClimRelax =', ' /* max. Lat. where relaxation */')
645 jmc 1.124
646 cnh 1.6 WRITE(msgBuf,'(A)') '// '
647 jmc 1.106 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
648 jmc 1.92 WRITE(msgBuf,'(A)')
649 cnh 1.17 & '// Gridding paramters ( PARM04 in namelist ) '
650 jmc 1.106 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
651 cnh 1.6 WRITE(msgBuf,'(A)') '// '
652 jmc 1.106 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
653 heimbach 1.22 CALL WRITE_0D_L( usingCartesianGrid, INDEX_NONE,
654 cnh 1.17 & 'usingCartesianGrid =',
655 jmc 1.93 & ' /* Cartesian coordinates flag ( True/False ) */')
656     CALL WRITE_0D_L( usingCylindricalGrid, INDEX_NONE,
657     & 'usingCylindricalGrid =',
658     & ' /* Cylindrical coordinates flag ( True/False ) */')
659 heimbach 1.22 CALL WRITE_0D_L( usingSphericalPolarGrid, INDEX_NONE,
660 cnh 1.17 & 'usingSphericalPolarGrid =',
661 jmc 1.93 & ' /* Spherical coordinates flag ( True/False ) */')
662     CALL WRITE_0D_L( usingCurvilinearGrid, INDEX_NONE,
663     & 'usingCurvilinearGrid =',
664     & ' /* Curvilinear coordinates flag ( True/False ) */')
665 jmc 1.124 CALL WRITE_0D_I( selectSigmaCoord, INDEX_NONE,
666     & 'selectSigmaCoord =',
667     & ' /* Hybrid-Sigma Vert. Coordinate option */')
668 jmc 1.115 CALL WRITE_0D_RL( Ro_SeaLevel, INDEX_NONE,'Ro_SeaLevel =',
669 jmc 1.102 & ' /* r(1) ( units of r == '//rUnits//' ) */')
670 jmc 1.124 CALL WRITE_0D_RL( rSigmaBnd, INDEX_NONE, 'rSigmaBnd =',
671     & ' /* r/sigma transition ( units of r == '//rUnits//' ) */')
672 jmc 1.115 CALL WRITE_0D_RL( rkSign, INDEX_NONE,'rkSign =',
673 jmc 1.75 &' /* index orientation relative to vertical coordinate */')
674 jmc 1.115 CALL WRITE_0D_RL( gravitySign, INDEX_NONE,'gravitySign =',
675 jmc 1.93 & ' /* gravity orientation relative to vertical coordinate */')
676 jmc 1.99 IF ( usingZCoords ) THEN
677 jmc 1.115 CALL WRITE_0D_RL( mass2rUnit, INDEX_NONE,'mass2rUnit =',
678 jmc 1.99 & ' /* convert mass per unit area [kg/m2] to r-units [m] */')
679 jmc 1.115 CALL WRITE_0D_RL( rUnit2mass, INDEX_NONE,'rUnit2mass =',
680 jmc 1.99 & ' /* convert r-units [m] to mass per unit area [kg/m2] */')
681     ENDIF
682     IF ( usingPCoords ) THEN
683 jmc 1.115 CALL WRITE_0D_RL( mass2rUnit, INDEX_NONE,'mass2rUnit =',
684 jmc 1.99 & ' /* convert mass per unit area [kg/m2] to r-units [Pa] */')
685 jmc 1.115 CALL WRITE_0D_RL( rUnit2mass, INDEX_NONE,'rUnit2mass =',
686 jmc 1.99 & ' /* convert r-units [Pa] to mass per unit area [kg/m2] */')
687     ENDIF
688 jmc 1.116 CALL WRITE_COPY1D_RS( bufRL, drC, Nr, INDEX_K, 'drC = ',
689 jmc 1.32 &' /* C spacing ( units of r ) */')
690 jmc 1.116 CALL WRITE_COPY1D_RS( bufRL, drF, Nr, INDEX_K, 'drF = ',
691 cnh 1.15 &' /* W spacing ( units of r ) */')
692 jmc 1.124 IF ( selectSigmaCoord.NE.0 ) THEN
693     CALL WRITE_COPY1D_RS( bufRL,dAHybSigF,Nr,INDEX_K,'dAHybSigF =',
694     & ' /* vertical increment of Hybrid-sigma Coeff. (-) */')
695     CALL WRITE_COPY1D_RS( bufRL,dBHybSigF,Nr,INDEX_K,'dBHybSigF =',
696     & ' /* vertical increment of Hybrid-sigma Coeff. (-) */')
697     ENDIF
698 jmc 1.137 IF ( usingCurvilinearGrid ) THEN
699     CALL WRITE_0D_RL( radius_fromHorizGrid, INDEX_NONE,
700     & 'radius_fromHorizGrid = ',
701     & '/* sphere Radius of input horiz. grid */')
702     ELSE
703 jmc 1.133 CALL WRITE_1D_RL( delX, gridNx, INDEX_I, 'delX = ',
704 jmc 1.116 & ' /* U spacing ( m - cartesian, degrees - spherical ) */')
705 jmc 1.133 CALL WRITE_1D_RL( delY, gridNy, INDEX_J, 'delY = ',
706 jmc 1.116 & ' /* V spacing ( m - cartesian, degrees - spherical ) */')
707 jmc 1.137 CALL WRITE_0D_RL( xgOrigin, INDEX_NONE,'xgOrigin = ',
708     & '/* X-axis origin of West edge (cartesian: m, lat-lon: deg) */')
709     CALL WRITE_0D_RL( ygOrigin, INDEX_NONE,'ygOrigin = ',
710     & '/* Y-axis origin of South edge (cartesian: m, lat-lon: deg) */')
711 jmc 1.116 ENDIF
712 jmc 1.115 CALL WRITE_0D_RL( rSphere, INDEX_NONE,'rSphere = ',
713 jmc 1.93 & ' /* Radius ( ignored - cartesian, m - spherical ) */')
714     CALL WRITE_0D_L(deepAtmosphere,INDEX_NONE, 'deepAtmosphere =',
715     & ' /* Deep/Shallow Atmosphere flag (True/False) */')
716 jmc 1.115 coordLine = 1
717     tileLine = 1
718     CALL WRITE_XY_XLINE_RS( xC, coordLine, tileLine, 'xC',
719     I ': P-point X coord ( deg. or m if cartesian)')
720     CALL WRITE_XY_YLINE_RS( yC, coordLine, tileLine, 'yC',
721     I ': P-point Y coord ( deg. or m if cartesian)')
722 jmc 1.116 CALL WRITE_COPY1D_RS( bufRL, rC, Nr, INDEX_K, 'rcoord =',
723     & ' /* P-point R coordinate ( units of r ) */')
724     CALL WRITE_COPY1D_RS( bufRL, rF,Nr+1,INDEX_K, 'rF = ',
725 jmc 1.32 &' /* W-Interf. R coordinate ( units of r ) */')
726 jmc 1.124 IF ( selectSigmaCoord.NE.0 ) THEN
727     CALL WRITE_COPY1D_RS(bufRL,aHybSigmF,Nr+1,INDEX_K,'aHybSigmF =',
728     & ' /* Hybrid-sigma vert. Coord coeff. @ W-Interface (-) */')
729     CALL WRITE_COPY1D_RS(bufRL,bHybSigmF,Nr+1,INDEX_K,'bHybSigmF =',
730     & ' /* Hybrid-sigma vert. Coord coeff. @ W-Interface (-) */')
731     ENDIF
732 jmc 1.116 CALL WRITE_1D_RL( deepFacC, Nr, INDEX_K, 'deepFacC = ',
733 jmc 1.93 & ' /* deep-model grid factor @ cell-Center (-) */')
734 jmc 1.116 CALL WRITE_1D_RL( deepFacF, Nr+1, INDEX_K, 'deepFacF = ',
735 jmc 1.93 & ' /* deep-model grid factor @ W-Interface (-) */')
736 jmc 1.116 CALL WRITE_1D_RL(rVel2wUnit,Nr+1, INDEX_K,'rVel2wUnit =',
737 jmc 1.96 & ' /* convert units: rVel -> wSpeed (=1 if z-coord)*/')
738 jmc 1.116 CALL WRITE_1D_RL(wUnit2rVel,Nr+1, INDEX_K,'wUnit2rVel =',
739 jmc 1.96 & ' /* convert units: wSpeed -> rVel (=1 if z-coord)*/')
740 jmc 1.116 CALL WRITE_1D_RL( dBdrRef, Nr, INDEX_K, 'dBdrRef =',
741 jmc 1.128 & ' /* Vertical grad. of reference buoyancy [(m/s/r)^2] */')
742 mlosch 1.103 CALL WRITE_0D_L( rotateGrid, INDEX_NONE,
743     & 'rotateGrid =',' /* use rotated grid ( True/False ) */')
744 jmc 1.115 CALL WRITE_0D_RL( phiEuler, INDEX_NONE,'phiEuler =',
745 mlosch 1.103 &' /* Euler angle, rotation about original z-coordinate [rad] */')
746 jmc 1.115 CALL WRITE_0D_RL( thetaEuler, INDEX_NONE,'thetaEuler =',
747 mlosch 1.103 & ' /* Euler angle, rotation about new x-coordinate [rad] */')
748 jmc 1.115 CALL WRITE_0D_RL( psiEuler, INDEX_NONE,'psiEuler =',
749 mlosch 1.103 & ' /* Euler angle, rotation about new z-coordinate [rad] */')
750 cnh 1.6
751 cnh 1.26 C Grid along selected grid lines
752     coordLine = 1
753     tileLine = 1
754 jmc 1.92 CALL WRITE_XY_XLINE_RS( dxF, coordLine, tileLine, 'dxF',
755     I '( units: m )' )
756     CALL WRITE_XY_YLINE_RS( dxF, coordLine, tileLine, 'dxF',
757     I '( units: m )' )
758     CALL WRITE_XY_XLINE_RS( dyF, coordLine, tileLine, 'dyF',
759     I '( units: m )' )
760     CALL WRITE_XY_YLINE_RS( dyF, coordLine, tileLine, 'dyF',
761     I '( units: m )' )
762     CALL WRITE_XY_XLINE_RS( dxG, coordLine, tileLine, 'dxG',
763     I '( units: m )' )
764     CALL WRITE_XY_YLINE_RS( dxG, coordLine, tileLine, 'dxG',
765     I '( units: m )' )
766     CALL WRITE_XY_XLINE_RS( dyG, coordLine, tileLine, 'dyG',
767     I '( units: m )' )
768     CALL WRITE_XY_YLINE_RS( dyG, coordLine, tileLine, 'dyG',
769     I '( units: m )' )
770     CALL WRITE_XY_XLINE_RS( dxC, coordLine, tileLine, 'dxC',
771     I '( units: m )' )
772     CALL WRITE_XY_YLINE_RS( dxC, coordLine, tileLine, 'dxC',
773     I '( units: m )' )
774     CALL WRITE_XY_XLINE_RS( dyC, coordLine, tileLine, 'dyC',
775     I '( units: m )' )
776     CALL WRITE_XY_YLINE_RS( dyC, coordLine, tileLine, 'dyC',
777     I '( units: m )' )
778     CALL WRITE_XY_XLINE_RS( dxV, coordLine, tileLine, 'dxV',
779     I '( units: m )' )
780     CALL WRITE_XY_YLINE_RS( dxV, coordLine, tileLine, 'dxV',
781     I '( units: m )' )
782     CALL WRITE_XY_XLINE_RS( dyU, coordLine, tileLine, 'dyU',
783     I '( units: m )' )
784     CALL WRITE_XY_YLINE_RS( dyU, coordLine, tileLine, 'dyU',
785     I '( units: m )' )
786     CALL WRITE_XY_XLINE_RS( rA , coordLine, tileLine, 'rA ',
787     I '( units: m^2 )' )
788     CALL WRITE_XY_YLINE_RS( rA , coordLine, tileLine, 'rA ',
789     I '( units: m^2 )' )
790     CALL WRITE_XY_XLINE_RS( rAw, coordLine, tileLine, 'rAw',
791     I '( units: m^2 )' )
792     CALL WRITE_XY_YLINE_RS( rAw, coordLine, tileLine, 'rAw',
793     I '( units: m^2 )' )
794     CALL WRITE_XY_XLINE_RS( rAs, coordLine, tileLine, 'rAs',
795     I '( units: m^2 )' )
796     CALL WRITE_XY_YLINE_RS( rAs, coordLine, tileLine, 'rAs',
797     I '( units: m^2 )' )
798    
799 jmc 1.115 CALL WRITE_0D_RL( globalArea, INDEX_NONE, 'globalArea =',
800 jmc 1.92 & ' /* Integrated horizontal Area (m^2) */')
801 jmc 1.137 IF ( useCubedSphereExchange ) THEN
802     CALL WRITE_0D_L( hasWetCSCorners,INDEX_NONE,'hasWetCSCorners =',
803     & ' /* Domain contains CS corners (True/False) */')
804     ENDIF
805 cnh 1.5
806 jmc 1.122 i = ILNBLNK(the_run_name)
807     IF ( i.GT.0 ) THEN
808     CALL WRITE_0D_C( the_run_name, i, INDEX_NONE,
809 jmc 1.97 & 'the_run_name = ', '/* Name of this simulation */' )
810 jmc 1.94 ENDIF
811    
812 jmc 1.83 WRITE(msgBuf,'(A)')
813     &'// ======================================================='
814 jmc 1.106 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
815 jmc 1.83 WRITE(msgBuf,'(A)') '// End of Model config. summary'
816 jmc 1.106 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
817 jmc 1.83 WRITE(msgBuf,'(A)')
818     &'// ======================================================='
819 jmc 1.106 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
820 cnh 1.1 WRITE(msgBuf,'(A)') ' '
821 jmc 1.106 CALL PRINT_MESSAGE( msgBuf, ioUnit, SQUEEZE_RIGHT, myThid )
822 cnh 1.5
823 cnh 1.1 _END_MASTER(myThid)
824     _BARRIER
825    
826     RETURN
827     END

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