/[MITgcm]/MITgcm/model/src/config_summary.F
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Contents of /MITgcm/model/src/config_summary.F

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Revision 1.8 - (show annotations) (download)
Mon May 25 16:17:36 1998 UTC (26 years ago) by cnh
Branch: MAIN
Changes since 1.7: +21 -1 lines
Added changes to support implicit free-surface.
 - included gBaro a "barotropic" gravity that can
   be set differently to the g.rhoprime gravity.
 - discovered and fixed coding error in dynamics
   loop. Per tile temporaries that needed correct
   initial values were not being reset for each tile.

1 C $Header: /u/gcmpack/models/MITgcmUV/model/src/config_summary.F,v 1.7 1998/05/21 18:25:48 cnh Exp $
2
3 #include "CPP_EEOPTIONS.h"
4
5 CStartOfInterface
6 SUBROUTINE CONFIG_SUMMARY( myThid )
7 C /==========================================================\
8 C | SUBROUTINE CONFIG_SUMMARY |
9 C | o Summarize model prognostic variables. |
10 C |==========================================================|
11 C | This routine writes a tabulated summary of the model |
12 C | configuration. |
13 C | Note |
14 C | 1. Under multi-process parallelism the summary |
15 C | is only given for the per-process data. |
16 C | 2. Under multi-threading the summary is produced by |
17 C | the master thread. This threads reads data managed by|
18 C | other threads. |
19 C \==========================================================/
20
21 C === Global variables ===
22 #include "SIZE.h"
23 #include "EEPARAMS.h"
24 #include "PARAMS.h"
25 #include "GRID.h"
26 #include "DYNVARS.h"
27
28 C == Routine arguments ==
29 C myThid - Number of this instance of CONFIG_SUMMARY
30 INTEGER myThid
31 CEndOfInterface
32
33 C == Local variables ==
34 CHARACTER*(MAX_LEN_MBUF) msgBuf
35 INTEGER I,J,K
36 INTEGER bi, bj
37 REAL xcoord(Nx)
38 REAL ycoord(Ny)
39 REAL zcoord(Nz)
40
41
42 _BARRIER
43 _BEGIN_MASTER(myThid)
44
45 WRITE(msgBuf,'(A)')
46 &'// ======================================================='
47 CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, SQUEEZE_RIGHT , 1)
48 WRITE(msgBuf,'(A)') '// Model configuration'
49 CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, SQUEEZE_RIGHT , 1)
50 WRITE(msgBuf,'(A)')
51 &'// ======================================================='
52 CALL PRINT_MESSAGE( msgBuf, standardMessageUnit,
53 & SQUEEZE_RIGHT , 1)
54
55 WRITE(msgBuf,'(A)') '// '
56 CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, SQUEEZE_RIGHT , 1)
57 WRITE(msgBuf,'(A)') '// "Physical" paramters ( PARM01 in namelist ) '
58 CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, SQUEEZE_RIGHT , 1)
59 WRITE(msgBuf,'(A)') '// '
60 CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, SQUEEZE_RIGHT , 1)
61 CALL WRITE_1D_R8( tRef, Nz, INDEX_K,'tRef =',
62 &' /* Reference temperature profile ( oC or oK ) */')
63 CALL WRITE_1D_R8( sRef, Nz, INDEX_K,'sRef =',
64 &' /* Reference salinity profile ( ppt ) */')
65 CALL WRITE_1D_R8( viscAh, 1, INDEX_NONE,'viscAh =',
66 &' /* Lateral eddy viscosity ( m^2/s ) */')
67 CALL WRITE_1D_R8( viscAz, 1, INDEX_NONE,'viscAz =',
68 &' /* Vertical eddy viscosity ( m^2/s ) */')
69 CALL WRITE_1D_R8( diffKhT, 1, INDEX_NONE,'diffKhT =',
70 &' /* Laplacian diffusion of heat laterally ( m^2/s ) */')
71 CALL WRITE_1D_R8( diffKzT, 1, INDEX_NONE,'diffKzT =',
72 &' /* Laplacian diffusion of heat vertically ( m^2/s ) */')
73 CALL WRITE_1D_R8( diffK4T, 1, INDEX_NONE,'diffK4T =',
74 &' /* Bihaarmonic diffusion of heat laterally ( m^4/s ) */')
75 CALL WRITE_1D_R8( diffKhS, 1, INDEX_NONE,'diffKhS =',
76 &' /* Laplacian diffusion of salt laterally ( m^2/s ) */')
77 CALL WRITE_1D_R8( diffKzS, 1, INDEX_NONE,'diffKzS =',
78 &' /* Laplacian diffusion of salt vertically ( m^2/s ) */')
79 CALL WRITE_1D_R8( diffK4S, 1, INDEX_NONE,'diffK4S =',
80 &' /* Bihaarmonic diffusion of salt laterally ( m^4/s ) */')
81 CALL WRITE_1D_R8( tAlpha,1, INDEX_NONE,'tAlpha =',
82 &' /* Linear EOS thermal expansion coefficient ( 1/degree ) */')
83 CALL WRITE_1D_R8( sBeta, 1, INDEX_NONE,'sBeta =',
84 &' /* Linear EOS haline contraction coefficient ( 1/ppt ) */')
85 CALL WRITE_1D_R8( rhonil,1, INDEX_NONE,'rhonil =',
86 &' /* Reference density ( kg/m^3 ) */')
87 CALL WRITE_1D_R8( gravity,1, INDEX_NONE,'gravity =',
88 &' /* Gravitational acceleration ( m/s^2 ) */')
89 CALL WRITE_1D_R8( gBaro,1, INDEX_NONE,'gBaro =',
90 &' /* Barotropic gravity ( m/s^2 ) */')
91 CALL WRITE_1D_R8( f0,1, INDEX_NONE,'f0 =',
92 &' /* Reference coriolis parameter ( 1/s ) */')
93 CALL WRITE_1D_R8( beta,1, INDEX_NONE,'beta =',
94 &' /* Beta ( 1/(m.s) ) */')
95 CALL WRITE_1D_R8( freeSurfFac,1, INDEX_NONE,'freeSurfFac =',
96 &' /* Implcit free surface factor */')
97 CALL WRITE_1D_L( implicitFreeSurface,1, INDEX_NONE,
98 & 'implicitFreeSurface =',
99 &' /* Implicit free surface on/off flag */')
100 CALL WRITE_1D_L( rigidLid,1, INDEX_NONE,
101 & 'rigidLid =',
102 &' /* Rigid lid on/off flag */')
103 CALL WRITE_1D_R8( GMMaxSlope,1, INDEX_NONE,'GMMaxSlope =',
104 &' /* Max. slope allowed in GM/Redi tensor */')
105 CALL WRITE_1D_R8( GMLength,1, INDEX_NONE,'GMLength =',
106 &' /* Length to use in Visbeck et al. formula for K (m) */')
107 CALL WRITE_1D_R8( GMAlpha,1, INDEX_NONE,'GMAlpha =',
108 &' /* alpha to use in Visbeck et al. formula for K */')
109 CALL WRITE_1D_R8( GMdepth,1, INDEX_NONE,'GMdepth =',
110 &' /* Depth to integrate for Visbeck et. al Richardson # (m) */')
111 CALL WRITE_1D_R8( GMkbackground,1, INDEX_NONE,'GMkbackground =',
112 &' /* background value of GM/Redi coefficient m^2/s */')
113 WRITE(msgBuf,'(A)') '// '
114 CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, SQUEEZE_RIGHT , 1)
115 WRITE(msgBuf,'(A)') '// Elliptic solver(s) paramters ( PARM02 in namelist ) '
116 CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, SQUEEZE_RIGHT , 1)
117 WRITE(msgBuf,'(A)') '// '
118 CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, SQUEEZE_RIGHT , 1)
119 CALL WRITE_1D_I( cg2dMaxIters,1, INDEX_NONE,'cg2dMaxIters =',
120 &' /* Upper limit on 2d con. grad iterations */')
121 CALL WRITE_1D_I( cg2dChkResFreq,1, INDEX_NONE,'cg2dChkResFreq =',
122 &' /* 2d con. grad convergence test frequency */')
123 CALL WRITE_1D_R8( cg2dTargetResidual,1, INDEX_NONE,'cg2dTargetResidual =',
124 &' /* 2d con. grad target residual */')
125
126 WRITE(msgBuf,'(A)') '// '
127 CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, SQUEEZE_RIGHT , 1)
128 WRITE(msgBuf,'(A)') '// Time stepping paramters ( PARM03 in namelist ) '
129 CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, SQUEEZE_RIGHT , 1)
130 WRITE(msgBuf,'(A)') '// '
131 CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, SQUEEZE_RIGHT , 1)
132 CALL WRITE_1D_I( nIter0,1, INDEX_NONE,'nIter0 =',
133 &' /* Base timestep number */')
134 CALL WRITE_1D_I( nTimeSteps,1, INDEX_NONE,'nTimeSteps =',
135 &' /* Number of timesteps */')
136 CALL WRITE_1D_R8( deltaTmom,1, INDEX_NONE,'deltatTmom =',
137 &' /* Momentum equation timestep ( s ) */')
138 CALL WRITE_1D_R8( deltaTtracer,1, INDEX_NONE,'deltatTtracer =',
139 &' /* Tracer equation timestep ( s ) */')
140 CALL WRITE_1D_R8( abEps,1, INDEX_NONE,'abEps =',
141 &' /* Adams-Bashforth stabilizing weight */')
142 CALL WRITE_1D_R8( tauCD,1, INDEX_NONE,'tauCD =',
143 &' /* CD coupling time-scale ( s ) */')
144 CALL WRITE_1D_R8( rCD,1, INDEX_NONE,'rCD =',
145 &' /* Normalised CD coupling parameter */')
146 CALL WRITE_1D_R8( startTime,1, INDEX_NONE,'startTime =',
147 &' /* Run start time ( s ). */')
148 CALL WRITE_1D_R8( endTime,1, INDEX_NONE,'endTime =',
149 &' /* Integration ending time ( s ). */')
150 CALL WRITE_1D_R8( pChkPtFreq,1, INDEX_NONE,'pChkPtFreq =',
151 &' /* Permanent restart/checkpoint file interval ( s ). */')
152 CALL WRITE_1D_R8( chkPtFreq,1, INDEX_NONE,'chkPtFreq =',
153 &' /* Rolling restart/checkpoint file interval ( s ). */')
154 CALL WRITE_1D_R8( dumpFreq,1, INDEX_NONE,'dumpFreq =',
155 &' /* Model state write out interval ( s ). */')
156
157 WRITE(msgBuf,'(A)') '// '
158 CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, SQUEEZE_RIGHT , 1)
159 WRITE(msgBuf,'(A)') '// Gridding paramters ( PARM04 in namelist ) '
160 CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, SQUEEZE_RIGHT , 1)
161 WRITE(msgBuf,'(A)') '// '
162 CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, SQUEEZE_RIGHT , 1)
163 CALL WRITE_1D_L( usingCartesianGrid,1, INDEX_NONE,'usingCartesianGrid =',
164 &' /* Cartesian coordinates flag ( True / False ) */')
165 CALL WRITE_1D_L( usingSphericalPolarGrid,1, INDEX_NONE,'usingSphericalPolarGrid =',
166 &' /* Spherical coordinates flag ( True / False ) */')
167 CALL WRITE_1D_R8( delZ,Nz, INDEX_K,'delZ = ',
168 &' /* W spacing ( m ) */')
169 CALL WRITE_1D_R8( delX, Nx, INDEX_I,'delX = ',
170 &' /* U spacing ( m - cartesian, degrees - spherical ) */')
171 CALL WRITE_1D_R8( delY, Ny, INDEX_J,'delY = ',
172 &' /* V spacing ( m - cartesian, degrees - spherical ) */')
173 CALL WRITE_1D_R8( phiMin, 1, INDEX_NONE,'phiMin = ',
174 &' /* Southern boundary ( ignored - cartesian, degrees - spherical ) */')
175 CALL WRITE_1D_R8( thetaMin, 1, INDEX_NONE,'thetaMin = ',
176 &' /* Western boundary ( ignored - cartesian, degrees - spherical ) */')
177 CALL WRITE_1D_R8( rSphere, 1, INDEX_NONE,'rSphere = ',
178 &' /* Radius ( ignored - cartesian, m - spherical ) */')
179 DO bi=1,nSx
180 DO I=1,sNx
181 xcoord((bi-1)*sNx+I) = xc(I,1,bi,1)
182 ENDDO
183 ENDDO
184 CALL WRITE_1D_R8( xcoord, Nx, INDEX_I,'xcoord = ',
185 &' /* P-point X coordinate ( m - cartesian, degrees - spherical ) */')
186 DO bj=1,nSy
187 DO J=1,sNy
188 ycoord((bj-1)*sNy+J) = yc(1,J,1,bj)
189 ENDDO
190 ENDDO
191 CALL WRITE_1D_R8( ycoord, Ny, INDEX_J,'ycoord = ',
192 &' /* P-point Y coordinate ( m - cartesian, degrees - spherical ) */')
193 DO K=1,Nz
194 zcoord(K) = zc(K)
195 ENDDO
196 CALL WRITE_1D_R8( zcoord, Nz, INDEX_K,'zcoord = ',
197 &' /* P-point Z coordinate ( m ) */')
198
199
200
201 WRITE(msgBuf,'(A)') ' '
202 CALL PRINT_MESSAGE( msgBuf, standardMessageUnit,
203 & SQUEEZE_RIGHT , 1)
204
205 _END_MASTER(myThid)
206 _BARRIER
207
208
209 RETURN
210 100 FORMAT(A,
211 &' '
212 &)
213 END
214

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