/[MITgcm]/MITgcm/model/src/dynamics.F
ViewVC logotype

Annotation of /MITgcm/model/src/dynamics.F

Parent Directory Parent Directory | Revision Log Revision Log | View Revision Graph Revision Graph


Revision 1.85 - (hide annotations) (download)
Fri Feb 15 21:29:04 2002 UTC (22 years, 3 months ago) by heimbach
Branch: MAIN
CVS Tags: checkpoint44e_post, checkpoint44f_post, chkpt44d_post, checkpoint44e_pre, checkpoint44h_pre, ecco_c44_e18, ecco_c44_e17, checkpoint44g_post, checkpoint44f_pre
Branch point for: release1_final
Changes since 1.84: +1 -7 lines
Removed arrays which are no longer needed.

1 heimbach 1.85 C $Header: /u/gcmpack/MITgcm/model/src/dynamics.F,v 1.84 2001/11/16 03:25:40 jmc Exp $
2 heimbach 1.78 C $Name: $
3 cnh 1.1
4 adcroft 1.24 #include "CPP_OPTIONS.h"
5 cnh 1.1
6 cnh 1.82 CBOP
7     C !ROUTINE: DYNAMICS
8     C !INTERFACE:
9 cnh 1.8 SUBROUTINE DYNAMICS(myTime, myIter, myThid)
10 cnh 1.82 C !DESCRIPTION: \bv
11     C *==========================================================*
12     C | SUBROUTINE DYNAMICS
13     C | o Controlling routine for the explicit part of the model
14     C | dynamics.
15     C *==========================================================*
16     C | This routine evaluates the "dynamics" terms for each
17     C | block of ocean in turn. Because the blocks of ocean have
18     C | overlap regions they are independent of one another.
19     C | If terms involving lateral integrals are needed in this
20     C | routine care will be needed. Similarly finite-difference
21     C | operations with stencils wider than the overlap region
22     C | require special consideration.
23     C | The algorithm...
24     C |
25     C | "Correction Step"
26     C | =================
27     C | Here we update the horizontal velocities with the surface
28     C | pressure such that the resulting flow is either consistent
29     C | with the free-surface evolution or the rigid-lid:
30     C | U[n] = U* + dt x d/dx P
31     C | V[n] = V* + dt x d/dy P
32     C |
33     C | "Calculation of Gs"
34     C | ===================
35     C | This is where all the accelerations and tendencies (ie.
36     C | physics, parameterizations etc...) are calculated
37     C | rho = rho ( theta[n], salt[n] )
38     C | b = b(rho, theta)
39     C | K31 = K31 ( rho )
40     C | Gu[n] = Gu( u[n], v[n], wVel, b, ... )
41     C | Gv[n] = Gv( u[n], v[n], wVel, b, ... )
42     C | Gt[n] = Gt( theta[n], u[n], v[n], wVel, K31, ... )
43     C | Gs[n] = Gs( salt[n], u[n], v[n], wVel, K31, ... )
44     C |
45     C | "Time-stepping" or "Prediction"
46     C | ================================
47     C | The models variables are stepped forward with the appropriate
48     C | time-stepping scheme (currently we use Adams-Bashforth II)
49     C | - For momentum, the result is always *only* a "prediction"
50     C | in that the flow may be divergent and will be "corrected"
51     C | later with a surface pressure gradient.
52     C | - Normally for tracers the result is the new field at time
53     C | level [n+1} *BUT* in the case of implicit diffusion the result
54     C | is also *only* a prediction.
55     C | - We denote "predictors" with an asterisk (*).
56     C | U* = U[n] + dt x ( 3/2 Gu[n] - 1/2 Gu[n-1] )
57     C | V* = V[n] + dt x ( 3/2 Gv[n] - 1/2 Gv[n-1] )
58     C | theta[n+1] = theta[n] + dt x ( 3/2 Gt[n] - 1/2 atG[n-1] )
59     C | salt[n+1] = salt[n] + dt x ( 3/2 Gt[n] - 1/2 atG[n-1] )
60     C | With implicit diffusion:
61     C | theta* = theta[n] + dt x ( 3/2 Gt[n] - 1/2 atG[n-1] )
62     C | salt* = salt[n] + dt x ( 3/2 Gt[n] - 1/2 atG[n-1] )
63     C | (1 + dt * K * d_zz) theta[n] = theta*
64     C | (1 + dt * K * d_zz) salt[n] = salt*
65     C |
66     C *==========================================================*
67     C \ev
68     C !USES:
69 adcroft 1.40 IMPLICIT NONE
70 cnh 1.1 C == Global variables ===
71     #include "SIZE.h"
72     #include "EEPARAMS.h"
73 adcroft 1.6 #include "PARAMS.h"
74 adcroft 1.3 #include "DYNVARS.h"
75 adcroft 1.42 #include "GRID.h"
76 heimbach 1.74 #ifdef ALLOW_PASSIVE_TRACER
77 heimbach 1.72 #include "TR1.h"
78 heimbach 1.74 #endif
79 heimbach 1.49 #ifdef ALLOW_AUTODIFF_TAMC
80 heimbach 1.53 # include "tamc.h"
81     # include "tamc_keys.h"
82 heimbach 1.67 # include "FFIELDS.h"
83     # ifdef ALLOW_KPP
84     # include "KPP.h"
85     # endif
86     # ifdef ALLOW_GMREDI
87     # include "GMREDI.h"
88     # endif
89 heimbach 1.53 #endif /* ALLOW_AUTODIFF_TAMC */
90 jmc 1.64 #ifdef ALLOW_TIMEAVE
91     #include "TIMEAVE_STATV.h"
92 jmc 1.62 #endif
93    
94 cnh 1.82 C !CALLING SEQUENCE:
95     C DYNAMICS()
96     C |
97     C |-- CALC_GRAD_PHI_SURF
98     C |
99     C |-- CALC_VISCOSITY
100     C |
101     C |-- CALC_PHI_HYD
102     C |
103     C |-- MOM_FLUXFORM
104     C |
105     C |-- MOM_VECINV
106     C |
107     C |-- TIMESTEP
108     C |
109     C |-- OBCS_APPLY_UV
110     C |
111     C |-- IMPLDIFF
112     C |
113     C |-- OBCS_APPLY_UV
114     C |
115     C |-- CALL TIMEAVE_CUMUL_1T
116     C |-- CALL DEBUG_STATS_RL
117    
118     C !INPUT/OUTPUT PARAMETERS:
119 cnh 1.1 C == Routine arguments ==
120 cnh 1.8 C myTime - Current time in simulation
121     C myIter - Current iteration number in simulation
122 cnh 1.1 C myThid - Thread number for this instance of the routine.
123 cnh 1.8 _RL myTime
124     INTEGER myIter
125 adcroft 1.47 INTEGER myThid
126 cnh 1.1
127 cnh 1.82 C !LOCAL VARIABLES:
128 cnh 1.1 C == Local variables
129 adcroft 1.58 C fVer[STUV] o fVer: Vertical flux term - note fVer
130 cnh 1.1 C is "pipelined" in the vertical
131     C so we need an fVer for each
132     C variable.
133 adcroft 1.58 C rhoK, rhoKM1 - Density at current level, and level above
134 cnh 1.31 C phiHyd - Hydrostatic part of the potential phiHydi.
135 cnh 1.38 C In z coords phiHydiHyd is the hydrostatic
136 jmc 1.65 C Potential (=pressure/rho0) anomaly
137 cnh 1.38 C In p coords phiHydiHyd is the geopotential
138 jmc 1.65 C surface height anomaly.
139 jmc 1.63 C phiSurfX, - gradient of Surface potentiel (Pressure/rho, ocean)
140     C phiSurfY or geopotentiel (atmos) in X and Y direction
141 cnh 1.30 C iMin, iMax - Ranges and sub-block indices on which calculations
142     C jMin, jMax are applied.
143 cnh 1.1 C bi, bj
144 heimbach 1.53 C k, kup, - Index for layer above and below. kup and kDown
145     C kDown, km1 are switched with layer to be the appropriate
146 cnh 1.38 C index into fVerTerm.
147 cnh 1.30 _RL fVerU (1-OLx:sNx+OLx,1-OLy:sNy+OLy,2)
148     _RL fVerV (1-OLx:sNx+OLx,1-OLy:sNy+OLy,2)
149 cnh 1.31 _RL phiHyd (1-OLx:sNx+OLx,1-OLy:sNy+OLy,Nr)
150 cnh 1.30 _RL rhokm1 (1-OLx:sNx+OLx,1-OLy:sNy+OLy)
151     _RL rhok (1-OLx:sNx+OLx,1-OLy:sNy+OLy)
152 jmc 1.63 _RL phiSurfX(1-OLx:sNx+OLx,1-OLy:sNy+OLy)
153     _RL phiSurfY(1-OLx:sNx+OLx,1-OLy:sNy+OLy)
154 adcroft 1.42 _RL KappaRU (1-Olx:sNx+Olx,1-Oly:sNy+Oly,Nr)
155     _RL KappaRV (1-Olx:sNx+Olx,1-Oly:sNy+Oly,Nr)
156 adcroft 1.12
157 cnh 1.1 INTEGER iMin, iMax
158     INTEGER jMin, jMax
159     INTEGER bi, bj
160     INTEGER i, j
161 heimbach 1.77 INTEGER k, km1, kp1, kup, kDown
162 cnh 1.1
163 jmc 1.62 Cjmc : add for phiHyd output <- but not working if multi tile per CPU
164     c CHARACTER*(MAX_LEN_MBUF) suff
165     c LOGICAL DIFFERENT_MULTIPLE
166     c EXTERNAL DIFFERENT_MULTIPLE
167     Cjmc(end)
168    
169 adcroft 1.11 C--- The algorithm...
170     C
171     C "Correction Step"
172     C =================
173     C Here we update the horizontal velocities with the surface
174     C pressure such that the resulting flow is either consistent
175     C with the free-surface evolution or the rigid-lid:
176     C U[n] = U* + dt x d/dx P
177     C V[n] = V* + dt x d/dy P
178     C
179     C "Calculation of Gs"
180     C ===================
181     C This is where all the accelerations and tendencies (ie.
182 heimbach 1.53 C physics, parameterizations etc...) are calculated
183 adcroft 1.11 C rho = rho ( theta[n], salt[n] )
184 cnh 1.27 C b = b(rho, theta)
185 adcroft 1.11 C K31 = K31 ( rho )
186 jmc 1.61 C Gu[n] = Gu( u[n], v[n], wVel, b, ... )
187     C Gv[n] = Gv( u[n], v[n], wVel, b, ... )
188     C Gt[n] = Gt( theta[n], u[n], v[n], wVel, K31, ... )
189     C Gs[n] = Gs( salt[n], u[n], v[n], wVel, K31, ... )
190 adcroft 1.11 C
191 adcroft 1.12 C "Time-stepping" or "Prediction"
192 adcroft 1.11 C ================================
193     C The models variables are stepped forward with the appropriate
194     C time-stepping scheme (currently we use Adams-Bashforth II)
195     C - For momentum, the result is always *only* a "prediction"
196     C in that the flow may be divergent and will be "corrected"
197     C later with a surface pressure gradient.
198     C - Normally for tracers the result is the new field at time
199     C level [n+1} *BUT* in the case of implicit diffusion the result
200     C is also *only* a prediction.
201     C - We denote "predictors" with an asterisk (*).
202     C U* = U[n] + dt x ( 3/2 Gu[n] - 1/2 Gu[n-1] )
203     C V* = V[n] + dt x ( 3/2 Gv[n] - 1/2 Gv[n-1] )
204     C theta[n+1] = theta[n] + dt x ( 3/2 Gt[n] - 1/2 atG[n-1] )
205     C salt[n+1] = salt[n] + dt x ( 3/2 Gt[n] - 1/2 atG[n-1] )
206 adcroft 1.12 C With implicit diffusion:
207 adcroft 1.11 C theta* = theta[n] + dt x ( 3/2 Gt[n] - 1/2 atG[n-1] )
208     C salt* = salt[n] + dt x ( 3/2 Gt[n] - 1/2 atG[n-1] )
209 adcroft 1.12 C (1 + dt * K * d_zz) theta[n] = theta*
210     C (1 + dt * K * d_zz) salt[n] = salt*
211 adcroft 1.11 C---
212 cnh 1.82 CEOP
213 adcroft 1.11
214 heimbach 1.76 C-- Set up work arrays with valid (i.e. not NaN) values
215     C These inital values do not alter the numerical results. They
216     C just ensure that all memory references are to valid floating
217     C point numbers. This prevents spurious hardware signals due to
218     C uninitialised but inert locations.
219     DO j=1-OLy,sNy+OLy
220     DO i=1-OLx,sNx+OLx
221     DO k=1,Nr
222     phiHyd(i,j,k) = 0. _d 0
223 heimbach 1.78 KappaRU(i,j,k) = 0. _d 0
224     KappaRV(i,j,k) = 0. _d 0
225 heimbach 1.76 ENDDO
226     rhoKM1 (i,j) = 0. _d 0
227     rhok (i,j) = 0. _d 0
228     phiSurfX(i,j) = 0. _d 0
229     phiSurfY(i,j) = 0. _d 0
230     ENDDO
231     ENDDO
232    
233     #ifdef ALLOW_AUTODIFF_TAMC
234     C-- HPF directive to help TAMC
235     CHPF$ INDEPENDENT
236     #endif /* ALLOW_AUTODIFF_TAMC */
237    
238 cnh 1.1 DO bj=myByLo(myThid),myByHi(myThid)
239 heimbach 1.76
240     #ifdef ALLOW_AUTODIFF_TAMC
241     C-- HPF directive to help TAMC
242     CHPF$ INDEPENDENT, NEW (fVerU,fVerV
243     CHPF$& ,phiHyd
244     CHPF$& ,KappaRU,KappaRV
245     CHPF$& )
246     #endif /* ALLOW_AUTODIFF_TAMC */
247    
248 cnh 1.1 DO bi=myBxLo(myThid),myBxHi(myThid)
249 heimbach 1.76
250     #ifdef ALLOW_AUTODIFF_TAMC
251     act1 = bi - myBxLo(myThid)
252     max1 = myBxHi(myThid) - myBxLo(myThid) + 1
253     act2 = bj - myByLo(myThid)
254     max2 = myByHi(myThid) - myByLo(myThid) + 1
255     act3 = myThid - 1
256     max3 = nTx*nTy
257     act4 = ikey_dynamics - 1
258     ikey = (act1 + 1) + act2*max1
259     & + act3*max1*max2
260     & + act4*max1*max2*max3
261     #endif /* ALLOW_AUTODIFF_TAMC */
262    
263     C-- Set up work arrays that need valid initial values
264     DO j=1-OLy,sNy+OLy
265     DO i=1-OLx,sNx+OLx
266     fVerU (i,j,1) = 0. _d 0
267     fVerU (i,j,2) = 0. _d 0
268     fVerV (i,j,1) = 0. _d 0
269     fVerV (i,j,2) = 0. _d 0
270     ENDDO
271     ENDDO
272 heimbach 1.49
273 jmc 1.63 C-- Start computation of dynamics
274     iMin = 1-OLx+2
275     iMax = sNx+OLx-1
276     jMin = 1-OLy+2
277     jMax = sNy+OLy-1
278    
279 heimbach 1.76 #ifdef ALLOW_AUTODIFF_TAMC
280     CADJ STORE wvel (:,:,:,bi,bj) = comlev1_bibj, key = ikey, byte = isbyte
281     #endif /* ALLOW_AUTODIFF_TAMC */
282    
283 jmc 1.65 C-- Explicit part of the Surface Potentiel Gradient (add in TIMESTEP)
284 jmc 1.63 C (note: this loop will be replaced by CALL CALC_GRAD_ETA)
285     IF (implicSurfPress.NE.1.) THEN
286 jmc 1.65 CALL CALC_GRAD_PHI_SURF(
287     I bi,bj,iMin,iMax,jMin,jMax,
288     I etaN,
289     O phiSurfX,phiSurfY,
290     I myThid )
291 jmc 1.63 ENDIF
292 heimbach 1.83
293     #ifdef ALLOW_AUTODIFF_TAMC
294     CADJ STORE uvel (:,:,:,bi,bj) = comlev1_bibj, key=ikey, byte=isbyte
295     CADJ STORE vvel (:,:,:,bi,bj) = comlev1_bibj, key=ikey, byte=isbyte
296     #ifdef ALLOW_KPP
297     CADJ STORE KPPviscAz (:,:,:,bi,bj)
298     CADJ & = comlev1_bibj, key=ikey, byte=isbyte
299     #endif /* ALLOW_KPP */
300     #endif /* ALLOW_AUTODIFF_TAMC */
301 adcroft 1.58
302 heimbach 1.77 #ifdef INCLUDE_CALC_DIFFUSIVITY_CALL
303     C-- Calculate the total vertical diffusivity
304     DO k=1,Nr
305     CALL CALC_VISCOSITY(
306     I bi,bj,iMin,iMax,jMin,jMax,k,
307     O KappaRU,KappaRV,
308     I myThid)
309     ENDDO
310     #endif
311    
312 adcroft 1.58 C-- Start of dynamics loop
313     DO k=1,Nr
314    
315     C-- km1 Points to level above k (=k-1)
316     C-- kup Cycles through 1,2 to point to layer above
317     C-- kDown Cycles through 2,1 to point to current layer
318    
319     km1 = MAX(1,k-1)
320 heimbach 1.77 kp1 = MIN(k+1,Nr)
321 adcroft 1.58 kup = 1+MOD(k+1,2)
322     kDown= 1+MOD(k,2)
323    
324 heimbach 1.76 #ifdef ALLOW_AUTODIFF_TAMC
325     kkey = (ikey-1)*Nr + k
326     #endif /* ALLOW_AUTODIFF_TAMC */
327    
328 adcroft 1.58 C-- Integrate hydrostatic balance for phiHyd with BC of
329     C phiHyd(z=0)=0
330     C distinguishe between Stagger and Non Stagger time stepping
331     IF (staggerTimeStep) THEN
332     CALL CALC_PHI_HYD(
333     I bi,bj,iMin,iMax,jMin,jMax,k,
334 adcroft 1.81 I gT, gS,
335 adcroft 1.58 U phiHyd,
336     I myThid )
337     ELSE
338     CALL CALC_PHI_HYD(
339     I bi,bj,iMin,iMax,jMin,jMax,k,
340     I theta, salt,
341     U phiHyd,
342     I myThid )
343     ENDIF
344    
345     C-- Calculate accelerations in the momentum equations (gU, gV, ...)
346     C and step forward storing the result in gUnm1, gVnm1, etc...
347     IF ( momStepping ) THEN
348 adcroft 1.79 #ifndef DISABLE_MOM_FLUXFORM
349     IF (.NOT. vectorInvariantMomentum) CALL MOM_FLUXFORM(
350 adcroft 1.58 I bi,bj,iMin,iMax,jMin,jMax,k,kup,kDown,
351     I phiHyd,KappaRU,KappaRV,
352     U fVerU, fVerV,
353 adcroft 1.80 I myTime, myIter, myThid)
354 adcroft 1.79 #endif
355     #ifndef DISABLE_MOM_VECINV
356     IF (vectorInvariantMomentum) CALL MOM_VECINV(
357     I bi,bj,iMin,iMax,jMin,jMax,k,kup,kDown,
358     I phiHyd,KappaRU,KappaRV,
359     U fVerU, fVerV,
360 adcroft 1.80 I myTime, myIter, myThid)
361 adcroft 1.79 #endif
362 adcroft 1.58 CALL TIMESTEP(
363 jmc 1.63 I bi,bj,iMin,iMax,jMin,jMax,k,
364     I phiHyd, phiSurfX, phiSurfY,
365 adcroft 1.58 I myIter, myThid)
366    
367     #ifdef ALLOW_OBCS
368     C-- Apply open boundary conditions
369     IF (useOBCS) THEN
370     CALL OBCS_APPLY_UV( bi, bj, k, gUnm1, gVnm1, myThid )
371     END IF
372     #endif /* ALLOW_OBCS */
373    
374     #ifdef ALLOW_AUTODIFF_TAMC
375     #ifdef INCLUDE_CD_CODE
376     ELSE
377     DO j=1-OLy,sNy+OLy
378     DO i=1-OLx,sNx+OLx
379     guCD(i,j,k,bi,bj) = 0.0
380     gvCD(i,j,k,bi,bj) = 0.0
381     END DO
382     END DO
383     #endif /* INCLUDE_CD_CODE */
384     #endif /* ALLOW_AUTODIFF_TAMC */
385     ENDIF
386    
387    
388     C-- end of dynamics k loop (1:Nr)
389     ENDDO
390    
391    
392    
393 adcroft 1.44 C-- Implicit viscosity
394 adcroft 1.58 IF (implicitViscosity.AND.momStepping) THEN
395     #ifdef ALLOW_AUTODIFF_TAMC
396     idkey = iikey + 3
397 heimbach 1.66 CADJ STORE gUNm1(:,:,:,bi,bj) = comlev1_bibj , key=ikey, byte=isbyte
398 adcroft 1.58 #endif /* ALLOW_AUTODIFF_TAMC */
399 adcroft 1.42 CALL IMPLDIFF(
400     I bi, bj, iMin, iMax, jMin, jMax,
401     I deltaTmom, KappaRU,recip_HFacW,
402     U gUNm1,
403     I myThid )
404 adcroft 1.58 #ifdef ALLOW_AUTODIFF_TAMC
405     idkey = iikey + 4
406 heimbach 1.66 CADJ STORE gVNm1(:,:,:,bi,bj) = comlev1_bibj , key=ikey, byte=isbyte
407 adcroft 1.58 #endif /* ALLOW_AUTODIFF_TAMC */
408 adcroft 1.42 CALL IMPLDIFF(
409     I bi, bj, iMin, iMax, jMin, jMax,
410     I deltaTmom, KappaRV,recip_HFacS,
411     U gVNm1,
412     I myThid )
413 heimbach 1.49
414 adcroft 1.58 #ifdef ALLOW_OBCS
415     C-- Apply open boundary conditions
416     IF (useOBCS) THEN
417     DO K=1,Nr
418     CALL OBCS_APPLY_UV( bi, bj, k, gUnm1, gVnm1, myThid )
419     ENDDO
420     END IF
421     #endif /* ALLOW_OBCS */
422 heimbach 1.49
423 adcroft 1.58 #ifdef INCLUDE_CD_CODE
424     #ifdef ALLOW_AUTODIFF_TAMC
425     idkey = iikey + 5
426 heimbach 1.66 CADJ STORE vVelD(:,:,:,bi,bj) = comlev1_bibj , key=ikey, byte=isbyte
427 adcroft 1.58 #endif /* ALLOW_AUTODIFF_TAMC */
428 adcroft 1.42 CALL IMPLDIFF(
429     I bi, bj, iMin, iMax, jMin, jMax,
430     I deltaTmom, KappaRU,recip_HFacW,
431     U vVelD,
432     I myThid )
433 adcroft 1.58 #ifdef ALLOW_AUTODIFF_TAMC
434     idkey = iikey + 6
435 heimbach 1.66 CADJ STORE uVelD(:,:,:,bi,bj) = comlev1_bibj , key=ikey, byte=isbyte
436 adcroft 1.58 #endif /* ALLOW_AUTODIFF_TAMC */
437 adcroft 1.42 CALL IMPLDIFF(
438     I bi, bj, iMin, iMax, jMin, jMax,
439     I deltaTmom, KappaRV,recip_HFacS,
440     U uVelD,
441     I myThid )
442 adcroft 1.58 #endif /* INCLUDE_CD_CODE */
443     C-- End If implicitViscosity.AND.momStepping
444 heimbach 1.53 ENDIF
445 cnh 1.1
446 jmc 1.62 Cjmc : add for phiHyd output <- but not working if multi tile per CPU
447     c IF ( DIFFERENT_MULTIPLE(dumpFreq,myTime+deltaTClock,myTime)
448     c & .AND. buoyancyRelation .eq. 'ATMOSPHERIC' ) THEN
449     c WRITE(suff,'(I10.10)') myIter+1
450     c CALL WRITE_FLD_XYZ_RL('PH.',suff,phiHyd,myIter+1,myThid)
451     c ENDIF
452     Cjmc(end)
453    
454 jmc 1.64 #ifdef ALLOW_TIMEAVE
455 jmc 1.62 IF (taveFreq.GT.0.) THEN
456 adcroft 1.68 CALL TIMEAVE_CUMUL_1T(phiHydtave, phiHyd, Nr,
457 jmc 1.64 I deltaTclock, bi, bj, myThid)
458 jmc 1.62 ENDIF
459 jmc 1.64 #endif /* ALLOW_TIMEAVE */
460 jmc 1.62
461 cnh 1.1 ENDDO
462     ENDDO
463 adcroft 1.69
464 adcroft 1.79 #ifndef DISABLE_DEBUGMODE
465 adcroft 1.70 If (debugMode) THEN
466 adcroft 1.69 CALL DEBUG_STATS_RL(1,EtaN,'EtaN (DYNAMICS)',myThid)
467 adcroft 1.73 CALL DEBUG_STATS_RL(Nr,uVel,'Uvel (DYNAMICS)',myThid)
468 adcroft 1.69 CALL DEBUG_STATS_RL(Nr,vVel,'Vvel (DYNAMICS)',myThid)
469     CALL DEBUG_STATS_RL(Nr,wVel,'Wvel (DYNAMICS)',myThid)
470     CALL DEBUG_STATS_RL(Nr,theta,'Theta (DYNAMICS)',myThid)
471     CALL DEBUG_STATS_RL(Nr,salt,'Salt (DYNAMICS)',myThid)
472     CALL DEBUG_STATS_RL(Nr,Gu,'Gu (DYNAMICS)',myThid)
473     CALL DEBUG_STATS_RL(Nr,Gv,'Gv (DYNAMICS)',myThid)
474     CALL DEBUG_STATS_RL(Nr,Gt,'Gt (DYNAMICS)',myThid)
475     CALL DEBUG_STATS_RL(Nr,Gs,'Gs (DYNAMICS)',myThid)
476     CALL DEBUG_STATS_RL(Nr,GuNm1,'GuNm1 (DYNAMICS)',myThid)
477     CALL DEBUG_STATS_RL(Nr,GvNm1,'GvNm1 (DYNAMICS)',myThid)
478     CALL DEBUG_STATS_RL(Nr,GtNm1,'GtNm1 (DYNAMICS)',myThid)
479     CALL DEBUG_STATS_RL(Nr,GsNm1,'GsNm1 (DYNAMICS)',myThid)
480 adcroft 1.70 ENDIF
481 adcroft 1.69 #endif
482 cnh 1.1
483     RETURN
484     END

  ViewVC Help
Powered by ViewVC 1.1.22