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Revision 1.153 - (show annotations) (download)
Thu Nov 18 00:57:24 2010 UTC (13 years, 6 months ago) by jmc
Branch: MAIN
CVS Tags: checkpoint62s, checkpoint62r, checkpoint62q, checkpoint62p, checkpoint62o
Changes since 1.152: +5 -8 lines
switch some test on debugLevel value to debugMode test

1 C $Header: /u/gcmpack/MITgcm/model/src/dynamics.F,v 1.152 2010/11/17 06:05:29 jmc Exp $
2 C $Name: $
3
4 #include "PACKAGES_CONFIG.h"
5 #include "CPP_OPTIONS.h"
6 #ifdef ALLOW_OBCS
7 # include "OBCS_OPTIONS.h"
8 #endif
9
10 #undef DYNAMICS_GUGV_EXCH_CHECK
11
12 CBOP
13 C !ROUTINE: DYNAMICS
14 C !INTERFACE:
15 SUBROUTINE DYNAMICS(myTime, myIter, myThid)
16 C !DESCRIPTION: \bv
17 C *==========================================================*
18 C | SUBROUTINE DYNAMICS
19 C | o Controlling routine for the explicit part of the model
20 C | dynamics.
21 C *==========================================================*
22 C | This routine evaluates the "dynamics" terms for each
23 C | block of ocean in turn. Because the blocks of ocean have
24 C | overlap regions they are independent of one another.
25 C | If terms involving lateral integrals are needed in this
26 C | routine care will be needed. Similarly finite-difference
27 C | operations with stencils wider than the overlap region
28 C | require special consideration.
29 C | The algorithm...
30 C |
31 C | "Correction Step"
32 C | =================
33 C | Here we update the horizontal velocities with the surface
34 C | pressure such that the resulting flow is either consistent
35 C | with the free-surface evolution or the rigid-lid:
36 C | U[n] = U* + dt x d/dx P
37 C | V[n] = V* + dt x d/dy P
38 C | W[n] = W* + dt x d/dz P (NH mode)
39 C |
40 C | "Calculation of Gs"
41 C | ===================
42 C | This is where all the accelerations and tendencies (ie.
43 C | physics, parameterizations etc...) are calculated
44 C | rho = rho ( theta[n], salt[n] )
45 C | b = b(rho, theta)
46 C | K31 = K31 ( rho )
47 C | Gu[n] = Gu( u[n], v[n], wVel, b, ... )
48 C | Gv[n] = Gv( u[n], v[n], wVel, b, ... )
49 C | Gt[n] = Gt( theta[n], u[n], v[n], wVel, K31, ... )
50 C | Gs[n] = Gs( salt[n], u[n], v[n], wVel, K31, ... )
51 C |
52 C | "Time-stepping" or "Prediction"
53 C | ================================
54 C | The models variables are stepped forward with the appropriate
55 C | time-stepping scheme (currently we use Adams-Bashforth II)
56 C | - For momentum, the result is always *only* a "prediction"
57 C | in that the flow may be divergent and will be "corrected"
58 C | later with a surface pressure gradient.
59 C | - Normally for tracers the result is the new field at time
60 C | level [n+1} *BUT* in the case of implicit diffusion the result
61 C | is also *only* a prediction.
62 C | - We denote "predictors" with an asterisk (*).
63 C | U* = U[n] + dt x ( 3/2 Gu[n] - 1/2 Gu[n-1] )
64 C | V* = V[n] + dt x ( 3/2 Gv[n] - 1/2 Gv[n-1] )
65 C | theta[n+1] = theta[n] + dt x ( 3/2 Gt[n] - 1/2 atG[n-1] )
66 C | salt[n+1] = salt[n] + dt x ( 3/2 Gt[n] - 1/2 atG[n-1] )
67 C | With implicit diffusion:
68 C | theta* = theta[n] + dt x ( 3/2 Gt[n] - 1/2 atG[n-1] )
69 C | salt* = salt[n] + dt x ( 3/2 Gt[n] - 1/2 atG[n-1] )
70 C | (1 + dt * K * d_zz) theta[n] = theta*
71 C | (1 + dt * K * d_zz) salt[n] = salt*
72 C |
73 C *==========================================================*
74 C \ev
75 C !USES:
76 IMPLICIT NONE
77 C == Global variables ===
78 #include "SIZE.h"
79 #include "EEPARAMS.h"
80 #include "PARAMS.h"
81 #include "DYNVARS.h"
82 #ifdef ALLOW_CD_CODE
83 #include "CD_CODE_VARS.h"
84 #endif
85 #include "GRID.h"
86 #ifdef ALLOW_AUTODIFF_TAMC
87 # include "tamc.h"
88 # include "tamc_keys.h"
89 # include "FFIELDS.h"
90 # include "EOS.h"
91 # ifdef ALLOW_KPP
92 # include "KPP.h"
93 # endif
94 # ifdef ALLOW_PTRACERS
95 # include "PTRACERS_SIZE.h"
96 # include "PTRACERS_FIELDS.h"
97 # endif
98 # ifdef ALLOW_OBCS
99 # include "OBCS.h"
100 # ifdef ALLOW_PTRACERS
101 # include "OBCS_PTRACERS.h"
102 # endif
103 # endif
104 # ifdef ALLOW_MOM_FLUXFORM
105 # include "MOM_FLUXFORM.h"
106 # endif
107 #endif /* ALLOW_AUTODIFF_TAMC */
108
109 C !CALLING SEQUENCE:
110 C DYNAMICS()
111 C |
112 C |-- CALC_EP_FORCING
113 C |
114 C |-- CALC_GRAD_PHI_SURF
115 C |
116 C |-- CALC_VISCOSITY
117 C |
118 C |-- CALC_PHI_HYD
119 C |
120 C |-- MOM_FLUXFORM
121 C |
122 C |-- MOM_VECINV
123 C |
124 C |-- TIMESTEP
125 C |
126 C |-- OBCS_APPLY_UV
127 C |
128 C |-- MOM_U_IMPLICIT_R
129 C |-- MOM_V_IMPLICIT_R
130 C |
131 C |-- IMPLDIFF
132 C |
133 C |-- OBCS_APPLY_UV
134 C |
135 C |-- CALC_GW
136 C |
137 C |-- DIAGNOSTICS_FILL
138 C |-- DEBUG_STATS_RL
139
140 C !INPUT/OUTPUT PARAMETERS:
141 C == Routine arguments ==
142 C myTime :: Current time in simulation
143 C myIter :: Current iteration number in simulation
144 C myThid :: Thread number for this instance of the routine.
145 _RL myTime
146 INTEGER myIter
147 INTEGER myThid
148
149 C !FUNCTIONS:
150 #ifdef ALLOW_DIAGNOSTICS
151 LOGICAL DIAGNOSTICS_IS_ON
152 EXTERNAL DIAGNOSTICS_IS_ON
153 #endif
154
155 C !LOCAL VARIABLES:
156 C == Local variables
157 C fVer[UV] o fVer: Vertical flux term - note fVer
158 C is "pipelined" in the vertical
159 C so we need an fVer for each
160 C variable.
161 C phiHydC :: hydrostatic potential anomaly at cell center
162 C In z coords phiHyd is the hydrostatic potential
163 C (=pressure/rho0) anomaly
164 C In p coords phiHyd is the geopotential height anomaly.
165 C phiHydF :: hydrostatic potential anomaly at middle between 2 centers
166 C dPhiHydX,Y :: Gradient (X & Y directions) of hydrostatic potential anom.
167 C phiSurfX, :: gradient of Surface potential (Pressure/rho, ocean)
168 C phiSurfY or geopotential (atmos) in X and Y direction
169 C guDissip :: dissipation tendency (all explicit terms), u component
170 C gvDissip :: dissipation tendency (all explicit terms), v component
171 C KappaRU :: vertical viscosity
172 C KappaRV :: vertical viscosity
173 C iMin, iMax - Ranges and sub-block indices on which calculations
174 C jMin, jMax are applied.
175 C bi, bj
176 C k, kup, - Index for layer above and below. kup and kDown
177 C kDown, km1 are switched with layer to be the appropriate
178 C index into fVerTerm.
179 _RL fVerU (1-OLx:sNx+OLx,1-OLy:sNy+OLy,2)
180 _RL fVerV (1-OLx:sNx+OLx,1-OLy:sNy+OLy,2)
181 _RL phiHydF (1-OLx:sNx+OLx,1-OLy:sNy+OLy)
182 _RL phiHydC (1-OLx:sNx+OLx,1-OLy:sNy+OLy)
183 _RL dPhiHydX(1-Olx:sNx+Olx,1-Oly:sNy+Oly)
184 _RL dPhiHydY(1-Olx:sNx+Olx,1-Oly:sNy+Oly)
185 _RL phiSurfX(1-OLx:sNx+OLx,1-OLy:sNy+OLy)
186 _RL phiSurfY(1-OLx:sNx+OLx,1-OLy:sNy+OLy)
187 _RL guDissip(1-OLx:sNx+OLx,1-OLy:sNy+OLy)
188 _RL gvDissip(1-OLx:sNx+OLx,1-OLy:sNy+OLy)
189 _RL KappaRU (1-Olx:sNx+Olx,1-Oly:sNy+Oly,Nr)
190 _RL KappaRV (1-Olx:sNx+Olx,1-Oly:sNy+Oly,Nr)
191
192 INTEGER iMin, iMax
193 INTEGER jMin, jMax
194 INTEGER bi, bj
195 INTEGER i, j
196 INTEGER k, km1, kp1, kup, kDown
197
198 #ifdef ALLOW_DIAGNOSTICS
199 LOGICAL dPhiHydDiagIsOn
200 _RL tmpFac
201 #endif /* ALLOW_DIAGNOSTICS */
202
203
204 C--- The algorithm...
205 C
206 C "Correction Step"
207 C =================
208 C Here we update the horizontal velocities with the surface
209 C pressure such that the resulting flow is either consistent
210 C with the free-surface evolution or the rigid-lid:
211 C U[n] = U* + dt x d/dx P
212 C V[n] = V* + dt x d/dy P
213 C
214 C "Calculation of Gs"
215 C ===================
216 C This is where all the accelerations and tendencies (ie.
217 C physics, parameterizations etc...) are calculated
218 C rho = rho ( theta[n], salt[n] )
219 C b = b(rho, theta)
220 C K31 = K31 ( rho )
221 C Gu[n] = Gu( u[n], v[n], wVel, b, ... )
222 C Gv[n] = Gv( u[n], v[n], wVel, b, ... )
223 C Gt[n] = Gt( theta[n], u[n], v[n], wVel, K31, ... )
224 C Gs[n] = Gs( salt[n], u[n], v[n], wVel, K31, ... )
225 C
226 C "Time-stepping" or "Prediction"
227 C ================================
228 C The models variables are stepped forward with the appropriate
229 C time-stepping scheme (currently we use Adams-Bashforth II)
230 C - For momentum, the result is always *only* a "prediction"
231 C in that the flow may be divergent and will be "corrected"
232 C later with a surface pressure gradient.
233 C - Normally for tracers the result is the new field at time
234 C level [n+1} *BUT* in the case of implicit diffusion the result
235 C is also *only* a prediction.
236 C - We denote "predictors" with an asterisk (*).
237 C U* = U[n] + dt x ( 3/2 Gu[n] - 1/2 Gu[n-1] )
238 C V* = V[n] + dt x ( 3/2 Gv[n] - 1/2 Gv[n-1] )
239 C theta[n+1] = theta[n] + dt x ( 3/2 Gt[n] - 1/2 atG[n-1] )
240 C salt[n+1] = salt[n] + dt x ( 3/2 Gt[n] - 1/2 atG[n-1] )
241 C With implicit diffusion:
242 C theta* = theta[n] + dt x ( 3/2 Gt[n] - 1/2 atG[n-1] )
243 C salt* = salt[n] + dt x ( 3/2 Gt[n] - 1/2 atG[n-1] )
244 C (1 + dt * K * d_zz) theta[n] = theta*
245 C (1 + dt * K * d_zz) salt[n] = salt*
246 C---
247 CEOP
248
249 #ifdef ALLOW_DEBUG
250 IF (debugMode) CALL DEBUG_ENTER( 'DYNAMICS', myThid )
251 #endif
252
253 #ifdef ALLOW_DIAGNOSTICS
254 dPhiHydDiagIsOn = .FALSE.
255 IF ( useDiagnostics )
256 & dPhiHydDiagIsOn = DIAGNOSTICS_IS_ON( 'Um_dPHdx', myThid )
257 & .OR. DIAGNOSTICS_IS_ON( 'Vm_dPHdy', myThid )
258 #endif
259
260 C-- Call to routine for calculation of
261 C Eliassen-Palm-flux-forced U-tendency,
262 C if desired:
263 #ifdef INCLUDE_EP_FORCING_CODE
264 CALL CALC_EP_FORCING(myThid)
265 #endif
266
267 #ifdef ALLOW_AUTODIFF_TAMC
268 C-- HPF directive to help TAMC
269 CHPF$ INDEPENDENT
270 #endif /* ALLOW_AUTODIFF_TAMC */
271
272 DO bj=myByLo(myThid),myByHi(myThid)
273
274 #ifdef ALLOW_AUTODIFF_TAMC
275 C-- HPF directive to help TAMC
276 CHPF$ INDEPENDENT, NEW (fVerU,fVerV
277 CHPF$& ,phiHydF
278 CHPF$& ,KappaRU,KappaRV
279 CHPF$& )
280 #endif /* ALLOW_AUTODIFF_TAMC */
281
282 DO bi=myBxLo(myThid),myBxHi(myThid)
283
284 #ifdef ALLOW_AUTODIFF_TAMC
285 act1 = bi - myBxLo(myThid)
286 max1 = myBxHi(myThid) - myBxLo(myThid) + 1
287 act2 = bj - myByLo(myThid)
288 max2 = myByHi(myThid) - myByLo(myThid) + 1
289 act3 = myThid - 1
290 max3 = nTx*nTy
291 act4 = ikey_dynamics - 1
292 idynkey = (act1 + 1) + act2*max1
293 & + act3*max1*max2
294 & + act4*max1*max2*max3
295 #endif /* ALLOW_AUTODIFF_TAMC */
296
297 C-- Set up work arrays with valid (i.e. not NaN) values
298 C These inital values do not alter the numerical results. They
299 C just ensure that all memory references are to valid floating
300 C point numbers. This prevents spurious hardware signals due to
301 C uninitialised but inert locations.
302
303 #ifdef ALLOW_AUTODIFF_TAMC
304 DO k=1,Nr
305 DO j=1-OLy,sNy+OLy
306 DO i=1-OLx,sNx+OLx
307 KappaRU(i,j,k) = 0. _d 0
308 KappaRV(i,j,k) = 0. _d 0
309 cph(
310 c-- need some re-initialisation here to break dependencies
311 cph)
312 gU(i,j,k,bi,bj) = 0. _d 0
313 gV(i,j,k,bi,bj) = 0. _d 0
314 ENDDO
315 ENDDO
316 ENDDO
317 #endif /* ALLOW_AUTODIFF_TAMC */
318 DO j=1-OLy,sNy+OLy
319 DO i=1-OLx,sNx+OLx
320 fVerU (i,j,1) = 0. _d 0
321 fVerU (i,j,2) = 0. _d 0
322 fVerV (i,j,1) = 0. _d 0
323 fVerV (i,j,2) = 0. _d 0
324 phiHydF (i,j) = 0. _d 0
325 phiHydC (i,j) = 0. _d 0
326 #ifndef INCLUDE_PHIHYD_CALCULATION_CODE
327 dPhiHydX(i,j) = 0. _d 0
328 dPhiHydY(i,j) = 0. _d 0
329 #endif
330 phiSurfX(i,j) = 0. _d 0
331 phiSurfY(i,j) = 0. _d 0
332 guDissip(i,j) = 0. _d 0
333 gvDissip(i,j) = 0. _d 0
334 #ifdef ALLOW_AUTODIFF_TAMC
335 phiHydLow(i,j,bi,bj) = 0. _d 0
336 # if (defined NONLIN_FRSURF) && (defined ALLOW_MOM_FLUXFORM)
337 # ifndef DISABLE_RSTAR_CODE
338 dWtransC(i,j,bi,bj) = 0. _d 0
339 dWtransU(i,j,bi,bj) = 0. _d 0
340 dWtransV(i,j,bi,bj) = 0. _d 0
341 # endif
342 # endif
343 #endif
344 ENDDO
345 ENDDO
346
347 C-- Start computation of dynamics
348 iMin = 0
349 iMax = sNx+1
350 jMin = 0
351 jMax = sNy+1
352
353 #ifdef ALLOW_AUTODIFF_TAMC
354 CADJ STORE wvel (:,:,:,bi,bj) =
355 CADJ & comlev1_bibj, key=idynkey, byte=isbyte
356 #endif /* ALLOW_AUTODIFF_TAMC */
357
358 C-- Explicit part of the Surface Potentiel Gradient (add in TIMESTEP)
359 C (note: this loop will be replaced by CALL CALC_GRAD_ETA)
360 IF (implicSurfPress.NE.1.) THEN
361 CALL CALC_GRAD_PHI_SURF(
362 I bi,bj,iMin,iMax,jMin,jMax,
363 I etaN,
364 O phiSurfX,phiSurfY,
365 I myThid )
366 ENDIF
367
368 #ifdef ALLOW_AUTODIFF_TAMC
369 CADJ STORE uvel (:,:,:,bi,bj) = comlev1_bibj, key=idynkey, byte=isbyte
370 CADJ STORE vvel (:,:,:,bi,bj) = comlev1_bibj, key=idynkey, byte=isbyte
371 #ifdef ALLOW_KPP
372 CADJ STORE KPPviscAz (:,:,:,bi,bj)
373 CADJ & = comlev1_bibj, key=idynkey, byte=isbyte
374 #endif /* ALLOW_KPP */
375 #endif /* ALLOW_AUTODIFF_TAMC */
376
377 #ifdef INCLUDE_CALC_DIFFUSIVITY_CALL
378 C-- Calculate the total vertical viscosity
379 CALL CALC_VISCOSITY(
380 I bi,bj, iMin,iMax,jMin,jMax,
381 O KappaRU, KappaRV,
382 I myThid )
383 #else
384 DO k=1,Nr
385 DO j=1-OLy,sNy+OLy
386 DO i=1-OLx,sNx+OLx
387 KappaRU(i,j,k) = 0. _d 0
388 KappaRV(i,j,k) = 0. _d 0
389 ENDDO
390 ENDDO
391 ENDDO
392 #endif
393
394 #ifdef ALLOW_AUTODIFF_TAMC
395 CADJ STORE KappaRU(:,:,:)
396 CADJ & = comlev1_bibj, key=idynkey, byte=isbyte
397 CADJ STORE KappaRV(:,:,:)
398 CADJ & = comlev1_bibj, key=idynkey, byte=isbyte
399 #endif /* ALLOW_AUTODIFF_TAMC */
400
401 C-- Start of dynamics loop
402 DO k=1,Nr
403
404 C-- km1 Points to level above k (=k-1)
405 C-- kup Cycles through 1,2 to point to layer above
406 C-- kDown Cycles through 2,1 to point to current layer
407
408 km1 = MAX(1,k-1)
409 kp1 = MIN(k+1,Nr)
410 kup = 1+MOD(k+1,2)
411 kDown= 1+MOD(k,2)
412
413 #ifdef ALLOW_AUTODIFF_TAMC
414 kkey = (idynkey-1)*Nr + k
415 c
416 CADJ STORE totphihyd (:,:,k,bi,bj)
417 CADJ & = comlev1_bibj_k, key=kkey, byte=isbyte
418 CADJ STORE phihydlow (:,:,bi,bj)
419 CADJ & = comlev1_bibj_k, key=kkey, byte=isbyte
420 CADJ STORE theta (:,:,k,bi,bj)
421 CADJ & = comlev1_bibj_k, key=kkey, byte=isbyte
422 CADJ STORE salt (:,:,k,bi,bj)
423 CADJ & = comlev1_bibj_k, key=kkey, byte=isbyte
424 CADJ STORE gt(:,:,k,bi,bj)
425 CADJ & = comlev1_bibj_k, key=kkey, byte=isbyte
426 CADJ STORE gs(:,:,k,bi,bj)
427 CADJ & = comlev1_bibj_k, key=kkey, byte=isbyte
428 # ifdef NONLIN_FRSURF
429 cph-test
430 CADJ STORE phiHydC (:,:)
431 CADJ & = comlev1_bibj_k, key=kkey, byte=isbyte
432 CADJ STORE phiHydF (:,:)
433 CADJ & = comlev1_bibj_k, key=kkey, byte=isbyte
434 CADJ STORE gudissip (:,:)
435 CADJ & = comlev1_bibj_k, key=kkey, byte=isbyte
436 CADJ STORE gvdissip (:,:)
437 CADJ & = comlev1_bibj_k, key=kkey, byte=isbyte
438 CADJ STORE fVerU (:,:,:)
439 CADJ & = comlev1_bibj_k, key=kkey, byte=isbyte
440 CADJ STORE fVerV (:,:,:)
441 CADJ & = comlev1_bibj_k, key=kkey, byte=isbyte
442 CADJ STORE gu(:,:,k,bi,bj)
443 CADJ & = comlev1_bibj_k, key=kkey, byte=isbyte
444 CADJ STORE gv(:,:,k,bi,bj)
445 CADJ & = comlev1_bibj_k, key=kkey, byte=isbyte
446 # ifndef ALLOW_ADAMSBASHFORTH_3
447 CADJ STORE gunm1(:,:,k,bi,bj)
448 CADJ & = comlev1_bibj_k, key=kkey, byte=isbyte
449 CADJ STORE gvnm1(:,:,k,bi,bj)
450 CADJ & = comlev1_bibj_k, key=kkey, byte=isbyte
451 # else
452 CADJ STORE gunm(:,:,k,bi,bj,1)
453 CADJ & = comlev1_bibj_k, key=kkey, byte=isbyte
454 CADJ STORE gunm(:,:,k,bi,bj,2)
455 CADJ & = comlev1_bibj_k, key=kkey, byte=isbyte
456 CADJ STORE gvnm(:,:,k,bi,bj,1)
457 CADJ & = comlev1_bibj_k, key=kkey, byte=isbyte
458 CADJ STORE gvnm(:,:,k,bi,bj,2)
459 CADJ & = comlev1_bibj_k, key=kkey, byte=isbyte
460 # endif
461 # ifdef ALLOW_CD_CODE
462 CADJ STORE unm1(:,:,k,bi,bj)
463 CADJ & = comlev1_bibj_k, key=kkey, byte=isbyte
464 CADJ STORE vnm1(:,:,k,bi,bj)
465 CADJ & = comlev1_bibj_k, key=kkey, byte=isbyte
466 CADJ STORE uVelD(:,:,k,bi,bj)
467 CADJ & = comlev1_bibj_k, key=kkey, byte=isbyte
468 CADJ STORE vVelD(:,:,k,bi,bj)
469 CADJ & = comlev1_bibj_k, key=kkey, byte=isbyte
470 # endif
471 # endif
472 # ifdef ALLOW_DEPTH_CONTROL
473 CADJ STORE fVerU (:,:,:)
474 CADJ & = comlev1_bibj_k, key=kkey, byte=isbyte
475 CADJ STORE fVerV (:,:,:)
476 CADJ & = comlev1_bibj_k, key=kkey, byte=isbyte
477 # endif
478 #endif /* ALLOW_AUTODIFF_TAMC */
479
480 C-- Integrate hydrostatic balance for phiHyd with BC of
481 C phiHyd(z=0)=0
482 IF ( implicitIntGravWave ) THEN
483 CALL CALC_PHI_HYD(
484 I bi,bj,iMin,iMax,jMin,jMax,k,
485 I gT, gS,
486 U phiHydF,
487 O phiHydC, dPhiHydX, dPhiHydY,
488 I myTime, myIter, myThid )
489 ELSE
490 CALL CALC_PHI_HYD(
491 I bi,bj,iMin,iMax,jMin,jMax,k,
492 I theta, salt,
493 U phiHydF,
494 O phiHydC, dPhiHydX, dPhiHydY,
495 I myTime, myIter, myThid )
496 ENDIF
497 #ifdef ALLOW_DIAGNOSTICS
498 IF ( dPhiHydDiagIsOn ) THEN
499 tmpFac = -1. _d 0
500 CALL DIAGNOSTICS_SCALE_FILL( dPhiHydX, tmpFac, 1,
501 & 'Um_dPHdx', k, 1, 2, bi, bj, myThid )
502 CALL DIAGNOSTICS_SCALE_FILL( dPhiHydY, tmpFac, 1,
503 & 'Vm_dPHdy', k, 1, 2, bi, bj, myThid )
504 ENDIF
505 #endif /* ALLOW_DIAGNOSTICS */
506
507 C-- Calculate accelerations in the momentum equations (gU, gV, ...)
508 C and step forward storing the result in gU, gV, etc...
509 IF ( momStepping ) THEN
510 #ifdef ALLOW_AUTODIFF_TAMC
511 # if (defined NONLIN_FRSURF) && (defined ALLOW_MOM_FLUXFORM)
512 # ifndef DISABLE_RSTAR_CODE
513 CADJ STORE dWtransC(:,:,bi,bj)
514 CADJ & = comlev1_bibj_k, key=kkey, byte=isbyte
515 CADJ STORE dWtransU(:,:,bi,bj)
516 CADJ & = comlev1_bibj_k, key=kkey, byte=isbyte
517 CADJ STORE dWtransV(:,:,bi,bj)
518 CADJ & = comlev1_bibj_k, key=kkey, byte=isbyte
519 # endif
520 # endif
521 #endif
522 IF (.NOT. vectorInvariantMomentum) THEN
523 #ifdef ALLOW_MOM_FLUXFORM
524 C
525 CALL MOM_FLUXFORM(
526 I bi,bj,iMin,iMax,jMin,jMax,k,kup,kDown,
527 I KappaRU, KappaRV,
528 U fVerU, fVerV,
529 O guDissip, gvDissip,
530 I myTime, myIter, myThid)
531 #endif
532 ELSE
533 #ifdef ALLOW_MOM_VECINV
534 C
535 # ifdef ALLOW_AUTODIFF_TAMC
536 # ifdef NONLIN_FRSURF
537 CADJ STORE fVerU(:,:,:)
538 CADJ & = comlev1_bibj_k, key=kkey, byte=isbyte
539 CADJ STORE fVerV(:,:,:)
540 CADJ & = comlev1_bibj_k, key=kkey, byte=isbyte
541 # endif
542 # endif /* ALLOW_AUTODIFF_TAMC */
543 C
544 CALL MOM_VECINV(
545 I bi,bj,iMin,iMax,jMin,jMax,k,kup,kDown,
546 I KappaRU, KappaRV,
547 U fVerU, fVerV,
548 O guDissip, gvDissip,
549 I myTime, myIter, myThid)
550 #endif
551 ENDIF
552 C
553 CALL TIMESTEP(
554 I bi,bj,iMin,iMax,jMin,jMax,k,
555 I dPhiHydX,dPhiHydY, phiSurfX, phiSurfY,
556 I guDissip, gvDissip,
557 I myTime, myIter, myThid)
558
559 #ifdef ALLOW_OBCS
560 C-- Apply open boundary conditions
561 c IF (useOBCS) THEN
562 c CALL OBCS_APPLY_UV( bi, bj, k, gU, gV, myThid )
563 c ENDIF
564 #endif /* ALLOW_OBCS */
565
566 ENDIF
567
568 C-- end of dynamics k loop (1:Nr)
569 ENDDO
570
571 C-- Implicit Vertical advection & viscosity
572 #if (defined (INCLUDE_IMPLVERTADV_CODE) && \
573 defined (ALLOW_MOM_COMMON) && !(defined ALLOW_AUTODIFF_TAMC))
574 IF ( momImplVertAdv ) THEN
575 CALL MOM_U_IMPLICIT_R( kappaRU,
576 I bi, bj, myTime, myIter, myThid )
577 CALL MOM_V_IMPLICIT_R( kappaRV,
578 I bi, bj, myTime, myIter, myThid )
579 ELSEIF ( implicitViscosity ) THEN
580 #else /* INCLUDE_IMPLVERTADV_CODE */
581 IF ( implicitViscosity ) THEN
582 #endif /* INCLUDE_IMPLVERTADV_CODE */
583 #ifdef ALLOW_AUTODIFF_TAMC
584 CADJ STORE KappaRU(:,:,:) = comlev1_bibj , key=idynkey, byte=isbyte
585 CADJ STORE gU(:,:,:,bi,bj) = comlev1_bibj , key=idynkey, byte=isbyte
586 #endif /* ALLOW_AUTODIFF_TAMC */
587 CALL IMPLDIFF(
588 I bi, bj, iMin, iMax, jMin, jMax,
589 I -1, KappaRU,recip_HFacW,
590 U gU,
591 I myThid )
592 #ifdef ALLOW_AUTODIFF_TAMC
593 CADJ STORE KappaRV(:,:,:) = comlev1_bibj , key=idynkey, byte=isbyte
594 CADJ STORE gV(:,:,:,bi,bj) = comlev1_bibj , key=idynkey, byte=isbyte
595 #endif /* ALLOW_AUTODIFF_TAMC */
596 CALL IMPLDIFF(
597 I bi, bj, iMin, iMax, jMin, jMax,
598 I -2, KappaRV,recip_HFacS,
599 U gV,
600 I myThid )
601 ENDIF
602
603 #ifdef ALLOW_OBCS
604 C-- Apply open boundary conditions
605 c IF ( useOBCS .AND.(implicitViscosity.OR.momImplVertAdv) ) THEN
606 c DO K=1,Nr
607 c CALL OBCS_APPLY_UV( bi, bj, k, gU, gV, myThid )
608 c ENDDO
609 IF ( useOBCS ) THEN
610 CALL OBCS_APPLY_UV( bi, bj, 0, gU, gV, myThid )
611 ENDIF
612 #endif /* ALLOW_OBCS */
613
614 #ifdef ALLOW_CD_CODE
615 IF (implicitViscosity.AND.useCDscheme) THEN
616 #ifdef ALLOW_AUTODIFF_TAMC
617 CADJ STORE vVelD(:,:,:,bi,bj) = comlev1_bibj , key=idynkey, byte=isbyte
618 #endif /* ALLOW_AUTODIFF_TAMC */
619 CALL IMPLDIFF(
620 I bi, bj, iMin, iMax, jMin, jMax,
621 I 0, KappaRU,recip_HFacW,
622 U vVelD,
623 I myThid )
624 #ifdef ALLOW_AUTODIFF_TAMC
625 CADJ STORE uVelD(:,:,:,bi,bj) = comlev1_bibj , key=idynkey, byte=isbyte
626 #endif /* ALLOW_AUTODIFF_TAMC */
627 CALL IMPLDIFF(
628 I bi, bj, iMin, iMax, jMin, jMax,
629 I 0, KappaRV,recip_HFacS,
630 U uVelD,
631 I myThid )
632 ENDIF
633 #endif /* ALLOW_CD_CODE */
634 C-- End implicit Vertical advection & viscosity
635
636 C---+----1----+----2----+----3----+----4----+----5----+----6----+----7-|--+----|
637
638 #ifdef ALLOW_NONHYDROSTATIC
639 C-- Step forward W field in N-H algorithm
640 IF ( nonHydrostatic ) THEN
641 #ifdef ALLOW_DEBUG
642 IF (debugMode) CALL DEBUG_CALL('CALC_GW', myThid )
643 #endif
644 CALL TIMER_START('CALC_GW [DYNAMICS]',myThid)
645 CALL CALC_GW(
646 I bi,bj, KappaRU, KappaRV,
647 I myTime, myIter, myThid )
648 ENDIF
649 IF ( nonHydrostatic.OR.implicitIntGravWave )
650 & CALL TIMESTEP_WVEL( bi,bj, myTime, myIter, myThid )
651 IF ( nonHydrostatic )
652 & CALL TIMER_STOP ('CALC_GW [DYNAMICS]',myThid)
653 #endif
654
655 C---+----1----+----2----+----3----+----4----+----5----+----6----+----7-|--+----|
656
657 C- end of bi,bj loops
658 ENDDO
659 ENDDO
660
661 #ifdef ALLOW_OBCS
662 IF (useOBCS) THEN
663 CALL OBCS_PRESCRIBE_EXCHANGES(myThid)
664 ENDIF
665 #endif
666
667 Cml(
668 C In order to compare the variance of phiHydLow of a p/z-coordinate
669 C run with etaH of a z/p-coordinate run the drift of phiHydLow
670 C has to be removed by something like the following subroutine:
671 C CALL REMOVE_MEAN_RL( 1, phiHydLow, maskInC, maskInC, rA, drF,
672 C & 'phiHydLow', myTime, myThid )
673 Cml)
674
675 #ifdef ALLOW_DIAGNOSTICS
676 IF ( useDiagnostics ) THEN
677
678 CALL DIAGNOSTICS_FILL(totPhihyd,'PHIHYD ',0,Nr,0,1,1,myThid)
679 CALL DIAGNOSTICS_FILL(phiHydLow,'PHIBOT ',0, 1,0,1,1,myThid)
680
681 tmpFac = 1. _d 0
682 CALL DIAGNOSTICS_SCALE_FILL(totPhihyd,tmpFac,2,
683 & 'PHIHYDSQ',0,Nr,0,1,1,myThid)
684
685 CALL DIAGNOSTICS_SCALE_FILL(phiHydLow,tmpFac,2,
686 & 'PHIBOTSQ',0, 1,0,1,1,myThid)
687
688 ENDIF
689 #endif /* ALLOW_DIAGNOSTICS */
690
691 #ifdef ALLOW_DEBUG
692 IF ( debugLevel .GE. debLevB ) THEN
693 CALL DEBUG_STATS_RL(1,EtaN,'EtaN (DYNAMICS)',myThid)
694 CALL DEBUG_STATS_RL(Nr,uVel,'Uvel (DYNAMICS)',myThid)
695 CALL DEBUG_STATS_RL(Nr,vVel,'Vvel (DYNAMICS)',myThid)
696 CALL DEBUG_STATS_RL(Nr,wVel,'Wvel (DYNAMICS)',myThid)
697 CALL DEBUG_STATS_RL(Nr,theta,'Theta (DYNAMICS)',myThid)
698 CALL DEBUG_STATS_RL(Nr,salt,'Salt (DYNAMICS)',myThid)
699 CALL DEBUG_STATS_RL(Nr,gU,'Gu (DYNAMICS)',myThid)
700 CALL DEBUG_STATS_RL(Nr,gV,'Gv (DYNAMICS)',myThid)
701 CALL DEBUG_STATS_RL(Nr,gT,'Gt (DYNAMICS)',myThid)
702 CALL DEBUG_STATS_RL(Nr,gS,'Gs (DYNAMICS)',myThid)
703 #ifndef ALLOW_ADAMSBASHFORTH_3
704 CALL DEBUG_STATS_RL(Nr,guNm1,'GuNm1 (DYNAMICS)',myThid)
705 CALL DEBUG_STATS_RL(Nr,gvNm1,'GvNm1 (DYNAMICS)',myThid)
706 CALL DEBUG_STATS_RL(Nr,gtNm1,'GtNm1 (DYNAMICS)',myThid)
707 CALL DEBUG_STATS_RL(Nr,gsNm1,'GsNm1 (DYNAMICS)',myThid)
708 #endif
709 ENDIF
710 #endif
711
712 #ifdef DYNAMICS_GUGV_EXCH_CHECK
713 C- jmc: For safety checking only: This Exchange here should not change
714 C the solution. If solution changes, it means something is wrong,
715 C but it does not mean that it is less wrong with this exchange.
716 IF ( debugLevel .GT. debLevB ) THEN
717 CALL EXCH_UV_XYZ_RL(gU,gV,.TRUE.,myThid)
718 ENDIF
719 #endif
720
721 #ifdef ALLOW_DEBUG
722 IF (debugMode) CALL DEBUG_LEAVE( 'DYNAMICS', myThid )
723 #endif
724
725 RETURN
726 END

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