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revision 1.80 by adcroft, Fri Aug 17 18:40:30 2001 UTC revision 1.117 by molod, Mon May 23 20:49:37 2005 UTC
# Line 1  Line 1 
1  C $Header$  C $Header$
2  C $Name$  C $Name$
3    
4    #include "PACKAGES_CONFIG.h"
5  #include "CPP_OPTIONS.h"  #include "CPP_OPTIONS.h"
6    
7    CBOP
8    C     !ROUTINE: DYNAMICS
9    C     !INTERFACE:
10        SUBROUTINE DYNAMICS(myTime, myIter, myThid)        SUBROUTINE DYNAMICS(myTime, myIter, myThid)
11  C     /==========================================================\  C     !DESCRIPTION: \bv
12  C     | SUBROUTINE DYNAMICS                                      |  C     *==========================================================*
13  C     | o Controlling routine for the explicit part of the model |  C     | SUBROUTINE DYNAMICS                                      
14  C     |   dynamics.                                              |  C     | o Controlling routine for the explicit part of the model  
15  C     |==========================================================|  C     |   dynamics.                                              
16  C     | This routine evaluates the "dynamics" terms for each     |  C     *==========================================================*
17  C     | block of ocean in turn. Because the blocks of ocean have |  C     | This routine evaluates the "dynamics" terms for each      
18  C     | overlap regions they are independent of one another.     |  C     | block of ocean in turn. Because the blocks of ocean have  
19  C     | If terms involving lateral integrals are needed in this  |  C     | overlap regions they are independent of one another.      
20  C     | routine care will be needed. Similarly finite-difference |  C     | If terms involving lateral integrals are needed in this  
21  C     | operations with stencils wider than the overlap region   |  C     | routine care will be needed. Similarly finite-difference  
22  C     | require special consideration.                           |  C     | operations with stencils wider than the overlap region    
23  C     | Notes                                                    |  C     | require special consideration.                            
24  C     | =====                                                    |  C     | The algorithm...
25  C     | C*P* comments indicating place holders for which code is |  C     |
26  C     |      presently being developed.                          |  C     | "Correction Step"
27  C     \==========================================================/  C     | =================
28    C     | Here we update the horizontal velocities with the surface
29    C     | pressure such that the resulting flow is either consistent
30    C     | with the free-surface evolution or the rigid-lid:
31    C     |   U[n] = U* + dt x d/dx P
32    C     |   V[n] = V* + dt x d/dy P
33    C     |
34    C     | "Calculation of Gs"
35    C     | ===================
36    C     | This is where all the accelerations and tendencies (ie.
37    C     | physics, parameterizations etc...) are calculated
38    C     |   rho = rho ( theta[n], salt[n] )
39    C     |   b   = b(rho, theta)
40    C     |   K31 = K31 ( rho )
41    C     |   Gu[n] = Gu( u[n], v[n], wVel, b, ... )
42    C     |   Gv[n] = Gv( u[n], v[n], wVel, b, ... )
43    C     |   Gt[n] = Gt( theta[n], u[n], v[n], wVel, K31, ... )
44    C     |   Gs[n] = Gs( salt[n], u[n], v[n], wVel, K31, ... )
45    C     |
46    C     | "Time-stepping" or "Prediction"
47    C     | ================================
48    C     | The models variables are stepped forward with the appropriate
49    C     | time-stepping scheme (currently we use Adams-Bashforth II)
50    C     | - For momentum, the result is always *only* a "prediction"
51    C     | in that the flow may be divergent and will be "corrected"
52    C     | later with a surface pressure gradient.
53    C     | - Normally for tracers the result is the new field at time
54    C     | level [n+1} *BUT* in the case of implicit diffusion the result
55    C     | is also *only* a prediction.
56    C     | - We denote "predictors" with an asterisk (*).
57    C     |   U* = U[n] + dt x ( 3/2 Gu[n] - 1/2 Gu[n-1] )
58    C     |   V* = V[n] + dt x ( 3/2 Gv[n] - 1/2 Gv[n-1] )
59    C     |   theta[n+1] = theta[n] + dt x ( 3/2 Gt[n] - 1/2 atG[n-1] )
60    C     |   salt[n+1] = salt[n] + dt x ( 3/2 Gt[n] - 1/2 atG[n-1] )
61    C     | With implicit diffusion:
62    C     |   theta* = theta[n] + dt x ( 3/2 Gt[n] - 1/2 atG[n-1] )
63    C     |   salt* = salt[n] + dt x ( 3/2 Gt[n] - 1/2 atG[n-1] )
64    C     |   (1 + dt * K * d_zz) theta[n] = theta*
65    C     |   (1 + dt * K * d_zz) salt[n] = salt*
66    C     |
67    C     *==========================================================*
68    C     \ev
69    C     !USES:
70        IMPLICIT NONE        IMPLICIT NONE
   
71  C     == Global variables ===  C     == Global variables ===
72  #include "SIZE.h"  #include "SIZE.h"
73  #include "EEPARAMS.h"  #include "EEPARAMS.h"
74  #include "PARAMS.h"  #include "PARAMS.h"
75  #include "DYNVARS.h"  #include "DYNVARS.h"
76  #include "GRID.h"  #ifdef ALLOW_CD_CODE
77  #ifdef ALLOW_PASSIVE_TRACER  #include "CD_CODE_VARS.h"
 #include "TR1.h"  
78  #endif  #endif
79    #include "GRID.h"
80  #ifdef ALLOW_AUTODIFF_TAMC  #ifdef ALLOW_AUTODIFF_TAMC
81  # include "tamc.h"  # include "tamc.h"
82  # include "tamc_keys.h"  # include "tamc_keys.h"
83  # include "FFIELDS.h"  # include "FFIELDS.h"
84    # include "EOS.h"
85  # ifdef ALLOW_KPP  # ifdef ALLOW_KPP
86  #  include "KPP.h"  #  include "KPP.h"
87  # endif  # endif
 # ifdef ALLOW_GMREDI  
 #  include "GMREDI.h"  
 # endif  
88  #endif /* ALLOW_AUTODIFF_TAMC */  #endif /* ALLOW_AUTODIFF_TAMC */
89    
90  #ifdef ALLOW_TIMEAVE  C     !CALLING SEQUENCE:
91  #include "TIMEAVE_STATV.h"  C     DYNAMICS()
92  #endif  C      |
93    C      |-- CALC_GRAD_PHI_SURF
94    C      |
95    C      |-- CALC_VISCOSITY
96    C      |
97    C      |-- CALC_PHI_HYD  
98    C      |
99    C      |-- MOM_FLUXFORM  
100    C      |
101    C      |-- MOM_VECINV    
102    C      |
103    C      |-- TIMESTEP      
104    C      |
105    C      |-- OBCS_APPLY_UV
106    C      |
107    C      |-- IMPLDIFF      
108    C      |
109    C      |-- OBCS_APPLY_UV
110    C      |
111    C      |-- CALL DEBUG_STATS_RL
112    
113    C     !INPUT/OUTPUT PARAMETERS:
114  C     == Routine arguments ==  C     == Routine arguments ==
115  C     myTime - Current time in simulation  C     myTime - Current time in simulation
116  C     myIter - Current iteration number in simulation  C     myIter - Current iteration number in simulation
# Line 57  C     myThid - Thread number for this in Line 119  C     myThid - Thread number for this in
119        INTEGER myIter        INTEGER myIter
120        INTEGER myThid        INTEGER myThid
121    
122    C     !LOCAL VARIABLES:
123  C     == Local variables  C     == Local variables
124  C     fVer[STUV]               o fVer: Vertical flux term - note fVer  C     fVer[UV]               o fVer: Vertical flux term - note fVer
125  C                                      is "pipelined" in the vertical  C                                    is "pipelined" in the vertical
126  C                                      so we need an fVer for each  C                                    so we need an fVer for each
127  C                                      variable.  C                                    variable.
128  C     rhoK, rhoKM1   - Density at current level, and level above  C     phiHydC    :: hydrostatic potential anomaly at cell center
129  C     phiHyd         - Hydrostatic part of the potential phiHydi.  C                   In z coords phiHyd is the hydrostatic potential
130  C                      In z coords phiHydiHyd is the hydrostatic  C                      (=pressure/rho0) anomaly
131  C                      Potential (=pressure/rho0) anomaly  C                   In p coords phiHyd is the geopotential height anomaly.
132  C                      In p coords phiHydiHyd is the geopotential  C     phiHydF    :: hydrostatic potential anomaly at middle between 2 centers
133  C                      surface height anomaly.  C     dPhiHydX,Y :: Gradient (X & Y directions) of hydrostatic potential anom.
134  C     phiSurfX, - gradient of Surface potentiel (Pressure/rho, ocean)  C     phiSurfX,  ::  gradient of Surface potential (Pressure/rho, ocean)
135  C     phiSurfY             or geopotentiel (atmos) in X and Y direction  C     phiSurfY             or geopotential (atmos) in X and Y direction
136    C     guDissip   :: dissipation tendency (all explicit terms), u component
137    C     gvDissip   :: dissipation tendency (all explicit terms), v component
138  C     iMin, iMax     - Ranges and sub-block indices on which calculations  C     iMin, iMax     - Ranges and sub-block indices on which calculations
139  C     jMin, jMax       are applied.  C     jMin, jMax       are applied.
140  C     bi, bj  C     bi, bj
# Line 78  C     kDown, km1       are switched with Line 143  C     kDown, km1       are switched with
143  C                      index into fVerTerm.  C                      index into fVerTerm.
144        _RL fVerU   (1-OLx:sNx+OLx,1-OLy:sNy+OLy,2)        _RL fVerU   (1-OLx:sNx+OLx,1-OLy:sNy+OLy,2)
145        _RL fVerV   (1-OLx:sNx+OLx,1-OLy:sNy+OLy,2)        _RL fVerV   (1-OLx:sNx+OLx,1-OLy:sNy+OLy,2)
146        _RL phiHyd  (1-OLx:sNx+OLx,1-OLy:sNy+OLy,Nr)        _RL phiHydF (1-OLx:sNx+OLx,1-OLy:sNy+OLy)
147        _RL rhokm1  (1-OLx:sNx+OLx,1-OLy:sNy+OLy)        _RL phiHydC (1-OLx:sNx+OLx,1-OLy:sNy+OLy)
148        _RL rhok    (1-OLx:sNx+OLx,1-OLy:sNy+OLy)        _RL dPhiHydX(1-Olx:sNx+Olx,1-Oly:sNy+Oly)
149          _RL dPhiHydY(1-Olx:sNx+Olx,1-Oly:sNy+Oly)
150        _RL phiSurfX(1-OLx:sNx+OLx,1-OLy:sNy+OLy)        _RL phiSurfX(1-OLx:sNx+OLx,1-OLy:sNy+OLy)
151        _RL phiSurfY(1-OLx:sNx+OLx,1-OLy:sNy+OLy)        _RL phiSurfY(1-OLx:sNx+OLx,1-OLy:sNy+OLy)
152          _RL guDissip(1-OLx:sNx+OLx,1-OLy:sNy+OLy)
153          _RL gvDissip(1-OLx:sNx+OLx,1-OLy:sNy+OLy)
154        _RL KappaRU (1-Olx:sNx+Olx,1-Oly:sNy+Oly,Nr)        _RL KappaRU (1-Olx:sNx+Olx,1-Oly:sNy+Oly,Nr)
155        _RL KappaRV (1-Olx:sNx+Olx,1-Oly:sNy+Oly,Nr)        _RL KappaRV (1-Olx:sNx+Olx,1-Oly:sNy+Oly,Nr)
       _RL sigmaX  (1-OLx:sNx+OLx,1-OLy:sNy+OLy,Nr)  
       _RL sigmaY  (1-OLx:sNx+OLx,1-OLy:sNy+OLy,Nr)  
       _RL sigmaR  (1-OLx:sNx+OLx,1-OLy:sNy+OLy,Nr)  
   
 C This is currently used by IVDC and Diagnostics  
       _RL ConvectCount (1-OLx:sNx+OLx,1-OLy:sNy+OLy,Nr)  
156    
157        INTEGER iMin, iMax        INTEGER iMin, iMax
158        INTEGER jMin, jMax        INTEGER jMin, jMax
# Line 98  C This is currently used by IVDC and Dia Line 160  C This is currently used by IVDC and Dia
160        INTEGER i, j        INTEGER i, j
161        INTEGER k, km1, kp1, kup, kDown        INTEGER k, km1, kp1, kup, kDown
162    
163  Cjmc : add for phiHyd output <- but not working if multi tile per CPU  #ifdef ALLOW_DIAGNOSTICS
164  c     CHARACTER*(MAX_LEN_MBUF) suff        _RL tmpFld  (1-OLx:sNx+OLx,1-OLy:sNy+OLy)
165  c     LOGICAL  DIFFERENT_MULTIPLE        LOGICAL  DIAGNOSTICS_IS_ON
166  c     EXTERNAL DIFFERENT_MULTIPLE        EXTERNAL DIAGNOSTICS_IS_ON
167  Cjmc(end)  #endif /* ALLOW_DIAGNOSTICS */
168    
169    
170  C---    The algorithm...  C---    The algorithm...
171  C  C
# Line 147  C         salt* = salt[n] + dt x ( 3/2 G Line 210  C         salt* = salt[n] + dt x ( 3/2 G
210  C         (1 + dt * K * d_zz) theta[n] = theta*  C         (1 + dt * K * d_zz) theta[n] = theta*
211  C         (1 + dt * K * d_zz) salt[n] = salt*  C         (1 + dt * K * d_zz) salt[n] = salt*
212  C---  C---
213    CEOP
214    
215  C--   Set up work arrays with valid (i.e. not NaN) values  C-- Call to routine for calculation of
216  C     These inital values do not alter the numerical results. They  C   Eliassen-Palm-flux-forced U-tendency,
217  C     just ensure that all memory references are to valid floating  C   if desired:
218  C     point numbers. This prevents spurious hardware signals due to  #ifdef INCLUDE_EP_FORCING_CODE
219  C     uninitialised but inert locations.        CALL CALC_EP_FORCING(myThid)
220        DO j=1-OLy,sNy+OLy  #endif
        DO i=1-OLx,sNx+OLx  
         DO k=1,Nr  
          phiHyd(i,j,k)  = 0. _d 0  
          KappaRU(i,j,k) = 0. _d 0  
          KappaRV(i,j,k) = 0. _d 0  
          sigmaX(i,j,k) = 0. _d 0  
          sigmaY(i,j,k) = 0. _d 0  
          sigmaR(i,j,k) = 0. _d 0  
         ENDDO  
         rhoKM1 (i,j) = 0. _d 0  
         rhok   (i,j) = 0. _d 0  
         phiSurfX(i,j) = 0. _d 0  
         phiSurfY(i,j) = 0. _d 0  
        ENDDO  
       ENDDO  
221    
222  #ifdef ALLOW_AUTODIFF_TAMC  #ifdef ALLOW_AUTODIFF_TAMC
223  C--   HPF directive to help TAMC  C--   HPF directive to help TAMC
# Line 180  CHPF$ INDEPENDENT Line 229  CHPF$ INDEPENDENT
229  #ifdef ALLOW_AUTODIFF_TAMC  #ifdef ALLOW_AUTODIFF_TAMC
230  C--    HPF directive to help TAMC  C--    HPF directive to help TAMC
231  CHPF$  INDEPENDENT, NEW (fVerU,fVerV  CHPF$  INDEPENDENT, NEW (fVerU,fVerV
232  CHPF$&                  ,phiHyd  CHPF$&                  ,phiHydF
233  CHPF$&                  ,KappaRU,KappaRV  CHPF$&                  ,KappaRU,KappaRV
234  CHPF$&                  )  CHPF$&                  )
235  #endif /* ALLOW_AUTODIFF_TAMC */  #endif /* ALLOW_AUTODIFF_TAMC */
# Line 190  CHPF$&                  ) Line 239  CHPF$&                  )
239  #ifdef ALLOW_AUTODIFF_TAMC  #ifdef ALLOW_AUTODIFF_TAMC
240            act1 = bi - myBxLo(myThid)            act1 = bi - myBxLo(myThid)
241            max1 = myBxHi(myThid) - myBxLo(myThid) + 1            max1 = myBxHi(myThid) - myBxLo(myThid) + 1
   
242            act2 = bj - myByLo(myThid)            act2 = bj - myByLo(myThid)
243            max2 = myByHi(myThid) - myByLo(myThid) + 1            max2 = myByHi(myThid) - myByLo(myThid) + 1
   
244            act3 = myThid - 1            act3 = myThid - 1
245            max3 = nTx*nTy            max3 = nTx*nTy
   
246            act4 = ikey_dynamics - 1            act4 = ikey_dynamics - 1
247              idynkey = (act1 + 1) + act2*max1
           ikey = (act1 + 1) + act2*max1  
248       &                      + act3*max1*max2       &                      + act3*max1*max2
249       &                      + act4*max1*max2*max3       &                      + act4*max1*max2*max3
250  #endif /* ALLOW_AUTODIFF_TAMC */  #endif /* ALLOW_AUTODIFF_TAMC */
251    
252  C--     Set up work arrays that need valid initial values  C--   Set up work arrays with valid (i.e. not NaN) values
253    C     These inital values do not alter the numerical results. They
254    C     just ensure that all memory references are to valid floating
255    C     point numbers. This prevents spurious hardware signals due to
256    C     uninitialised but inert locations.
257    
258            DO k=1,Nr
259             DO j=1-OLy,sNy+OLy
260              DO i=1-OLx,sNx+OLx
261               KappaRU(i,j,k) = 0. _d 0
262               KappaRV(i,j,k) = 0. _d 0
263    #ifdef ALLOW_AUTODIFF_TAMC
264    cph(
265    c--   need some re-initialisation here to break dependencies
266    cph)
267               gu(i,j,k,bi,bj) = 0. _d 0
268               gv(i,j,k,bi,bj) = 0. _d 0
269    #endif
270              ENDDO
271             ENDDO
272            ENDDO
273          DO j=1-OLy,sNy+OLy          DO j=1-OLy,sNy+OLy
274           DO i=1-OLx,sNx+OLx           DO i=1-OLx,sNx+OLx
275            fVerU  (i,j,1) = 0. _d 0            fVerU  (i,j,1) = 0. _d 0
276            fVerU  (i,j,2) = 0. _d 0            fVerU  (i,j,2) = 0. _d 0
277            fVerV  (i,j,1) = 0. _d 0            fVerV  (i,j,1) = 0. _d 0
278            fVerV  (i,j,2) = 0. _d 0            fVerV  (i,j,2) = 0. _d 0
279              phiHydF (i,j)  = 0. _d 0
280              phiHydC (i,j)  = 0. _d 0
281              dPhiHydX(i,j)  = 0. _d 0
282              dPhiHydY(i,j)  = 0. _d 0
283              phiSurfX(i,j)  = 0. _d 0
284              phiSurfY(i,j)  = 0. _d 0
285              guDissip(i,j)  = 0. _d 0
286              gvDissip(i,j)  = 0. _d 0
287           ENDDO           ENDDO
288          ENDDO          ENDDO
289    
290  C--     Start computation of dynamics  C--     Start computation of dynamics
291          iMin = 1-OLx+2          iMin = 0
292          iMax = sNx+OLx-1          iMax = sNx+1
293          jMin = 1-OLy+2          jMin = 0
294          jMax = sNy+OLy-1          jMax = sNy+1
295    
296  #ifdef ALLOW_AUTODIFF_TAMC  #ifdef ALLOW_AUTODIFF_TAMC
297  CADJ STORE uvel (:,:,:,bi,bj) = comlev1_bibj, key = ikey, byte = isbyte  CADJ STORE wvel (:,:,:,bi,bj) =
298  CADJ STORE vvel (:,:,:,bi,bj) = comlev1_bibj, key = ikey, byte = isbyte  CADJ &     comlev1_bibj, key = idynkey, byte = isbyte
 CADJ STORE wvel (:,:,:,bi,bj) = comlev1_bibj, key = ikey, byte = isbyte  
299  #endif /* ALLOW_AUTODIFF_TAMC */  #endif /* ALLOW_AUTODIFF_TAMC */
300    
301  C--     Explicit part of the Surface Potentiel Gradient (add in TIMESTEP)  C--     Explicit part of the Surface Potentiel Gradient (add in TIMESTEP)
# Line 236  C       (note: this loop will be replace Line 308  C       (note: this loop will be replace
308       I         myThid )                               I         myThid )                        
309          ENDIF          ENDIF
310    
311    #ifdef ALLOW_AUTODIFF_TAMC
312    CADJ STORE uvel (:,:,:,bi,bj) = comlev1_bibj, key=idynkey, byte=isbyte
313    CADJ STORE vvel (:,:,:,bi,bj) = comlev1_bibj, key=idynkey, byte=isbyte
314    #ifdef ALLOW_KPP
315    CADJ STORE KPPviscAz (:,:,:,bi,bj)
316    CADJ &                 = comlev1_bibj, key=idynkey, byte=isbyte
317    #endif /* ALLOW_KPP */
318    #endif /* ALLOW_AUTODIFF_TAMC */
319    
320  #ifdef  INCLUDE_CALC_DIFFUSIVITY_CALL  #ifdef  INCLUDE_CALC_DIFFUSIVITY_CALL
321  C--      Calculate the total vertical diffusivity  C--      Calculate the total vertical diffusivity
322          DO k=1,Nr          DO k=1,Nr
# Line 246  C--      Calculate the total vertical di Line 327  C--      Calculate the total vertical di
327         ENDDO         ENDDO
328  #endif  #endif
329    
330    #ifdef ALLOW_AUTODIFF_TAMC
331    CADJ STORE KappaRU(:,:,:)
332    CADJ &                 = comlev1_bibj, key=idynkey, byte=isbyte
333    CADJ STORE KappaRV(:,:,:)
334    CADJ &                 = comlev1_bibj, key=idynkey, byte=isbyte
335    #endif /* ALLOW_AUTODIFF_TAMC */
336    
337  C--     Start of dynamics loop  C--     Start of dynamics loop
338          DO k=1,Nr          DO k=1,Nr
339    
# Line 259  C--       kDown  Cycles through 2,1 to p Line 347  C--       kDown  Cycles through 2,1 to p
347            kDown= 1+MOD(k,2)            kDown= 1+MOD(k,2)
348    
349  #ifdef ALLOW_AUTODIFF_TAMC  #ifdef ALLOW_AUTODIFF_TAMC
350           kkey = (ikey-1)*Nr + k           kkey = (idynkey-1)*Nr + k
351    c
352    CADJ STORE totphihyd (:,:,k,bi,bj)
353    CADJ &     = comlev1_bibj_k, key=kkey, byte=isbyte
354    CADJ STORE theta (:,:,k,bi,bj)
355    CADJ &     = comlev1_bibj_k, key=kkey, byte=isbyte
356    CADJ STORE salt  (:,:,k,bi,bj)
357    CADJ &     = comlev1_bibj_k, key=kkey, byte=isbyte
358  #endif /* ALLOW_AUTODIFF_TAMC */  #endif /* ALLOW_AUTODIFF_TAMC */
359    
360  C--      Integrate hydrostatic balance for phiHyd with BC of  C--      Integrate hydrostatic balance for phiHyd with BC of
361  C        phiHyd(z=0)=0  C        phiHyd(z=0)=0
362  C        distinguishe between Stagger and Non Stagger time stepping           CALL CALC_PHI_HYD(
          IF (staggerTimeStep) THEN  
            CALL CALC_PHI_HYD(  
      I        bi,bj,iMin,iMax,jMin,jMax,k,  
      I        gTnm1, gSnm1,  
      U        phiHyd,  
      I        myThid )  
          ELSE  
            CALL CALC_PHI_HYD(  
363       I        bi,bj,iMin,iMax,jMin,jMax,k,       I        bi,bj,iMin,iMax,jMin,jMax,k,
364       I        theta, salt,       I        theta, salt,
365       U        phiHyd,       U        phiHydF,
366       I        myThid )       O        phiHydC, dPhiHydX, dPhiHydY,
367           ENDIF       I        myTime, myIter, myThid )
368    
369  C--      Calculate accelerations in the momentum equations (gU, gV, ...)  C--      Calculate accelerations in the momentum equations (gU, gV, ...)
370  C        and step forward storing the result in gUnm1, gVnm1, etc...  C        and step forward storing the result in gU, gV, etc...
371           IF ( momStepping ) THEN           IF ( momStepping ) THEN
372  #ifndef DISABLE_MOM_FLUXFORM  #ifdef ALLOW_MOM_FLUXFORM
373             IF (.NOT. vectorInvariantMomentum) CALL MOM_FLUXFORM(             IF (.NOT. vectorInvariantMomentum) CALL MOM_FLUXFORM(
374       I         bi,bj,iMin,iMax,jMin,jMax,k,kup,kDown,       I         bi,bj,iMin,iMax,jMin,jMax,k,kup,kDown,
375       I         phiHyd,KappaRU,KappaRV,       I         dPhiHydX,dPhiHydY,KappaRU,KappaRV,
376       U         fVerU, fVerV,       U         fVerU, fVerV,
377       I         myTime, myIter, myThid)       I         myTime, myIter, myThid)
378  #endif  #endif
379  #ifndef DISABLE_MOM_VECINV  #ifdef ALLOW_MOM_VECINV
380             IF (vectorInvariantMomentum) CALL MOM_VECINV(             IF (vectorInvariantMomentum) CALL MOM_VECINV(
381       I         bi,bj,iMin,iMax,jMin,jMax,k,kup,kDown,       I         bi,bj,iMin,iMax,jMin,jMax,k,kup,kDown,
382       I         phiHyd,KappaRU,KappaRV,       I         dPhiHydX,dPhiHydY,KappaRU,KappaRV,
383       U         fVerU, fVerV,       U         fVerU, fVerV,
384         O         guDissip, gvDissip,
385       I         myTime, myIter, myThid)       I         myTime, myIter, myThid)
386  #endif  #endif
387             CALL TIMESTEP(             CALL TIMESTEP(
388       I         bi,bj,iMin,iMax,jMin,jMax,k,       I         bi,bj,iMin,iMax,jMin,jMax,k,
389       I         phiHyd, phiSurfX, phiSurfY,       I         dPhiHydX,dPhiHydY, phiSurfX, phiSurfY,
390       I         myIter, myThid)       I         guDissip, gvDissip,
391         I         myTime, myIter, myThid)
392    
393  #ifdef   ALLOW_OBCS  #ifdef   ALLOW_OBCS
394  C--      Apply open boundary conditions  C--      Apply open boundary conditions
395           IF (useOBCS) THEN             IF (useOBCS) THEN
396             CALL OBCS_APPLY_UV( bi, bj, k, gUnm1, gVnm1, myThid )               CALL OBCS_APPLY_UV( bi, bj, k, gU, gV, myThid )
397           END IF             ENDIF
398  #endif   /* ALLOW_OBCS */  #endif   /* ALLOW_OBCS */
399    
 #ifdef   ALLOW_AUTODIFF_TAMC  
 #ifdef   INCLUDE_CD_CODE  
          ELSE  
            DO j=1-OLy,sNy+OLy  
              DO i=1-OLx,sNx+OLx  
                guCD(i,j,k,bi,bj) = 0.0  
                gvCD(i,j,k,bi,bj) = 0.0  
              END DO  
            END DO  
 #endif   /* INCLUDE_CD_CODE */  
 #endif   /* ALLOW_AUTODIFF_TAMC */  
400           ENDIF           ENDIF
401    
402    
403  C--     end of dynamics k loop (1:Nr)  C--     end of dynamics k loop (1:Nr)
404          ENDDO          ENDDO
405    
406    C--     Implicit Vertical advection & viscosity
407    #ifdef INCLUDE_IMPLVERTADV_CODE
408  C--     Implicit viscosity          IF ( momImplVertAdv ) THEN
409          IF (implicitViscosity.AND.momStepping) THEN            CALL MOM_U_IMPLICIT_R( kappaRU,
410         I                           bi, bj, myTime, myIter, myThid )
411              CALL MOM_V_IMPLICIT_R( kappaRV,
412         I                           bi, bj, myTime, myIter, myThid )
413            ELSEIF ( implicitViscosity ) THEN
414    #else /* INCLUDE_IMPLVERTADV_CODE */
415            IF     ( implicitViscosity ) THEN
416    #endif /* INCLUDE_IMPLVERTADV_CODE */
417  #ifdef    ALLOW_AUTODIFF_TAMC  #ifdef    ALLOW_AUTODIFF_TAMC
418            idkey = iikey + 3  CADJ STORE KappaRU(:,:,:) = comlev1_bibj , key=idynkey, byte=isbyte
419  CADJ STORE gUNm1(:,:,:,bi,bj) = comlev1_bibj , key=ikey, byte=isbyte  CADJ STORE gU(:,:,:,bi,bj) = comlev1_bibj , key=idynkey, byte=isbyte
420  #endif    /* ALLOW_AUTODIFF_TAMC */  #endif    /* ALLOW_AUTODIFF_TAMC */
421            CALL IMPLDIFF(            CALL IMPLDIFF(
422       I         bi, bj, iMin, iMax, jMin, jMax,       I         bi, bj, iMin, iMax, jMin, jMax,
423       I         deltaTmom, KappaRU,recip_HFacW,       I         0, KappaRU,recip_HFacW,
424       U         gUNm1,       U         gU,
425       I         myThid )       I         myThid )
426  #ifdef    ALLOW_AUTODIFF_TAMC  #ifdef    ALLOW_AUTODIFF_TAMC
427            idkey = iikey + 4  CADJ STORE KappaRV(:,:,:) = comlev1_bibj , key=idynkey, byte=isbyte
428  CADJ STORE gVNm1(:,:,:,bi,bj) = comlev1_bibj , key=ikey, byte=isbyte  CADJ STORE gV(:,:,:,bi,bj) = comlev1_bibj , key=idynkey, byte=isbyte
429  #endif    /* ALLOW_AUTODIFF_TAMC */  #endif    /* ALLOW_AUTODIFF_TAMC */
430            CALL IMPLDIFF(            CALL IMPLDIFF(
431       I         bi, bj, iMin, iMax, jMin, jMax,       I         bi, bj, iMin, iMax, jMin, jMax,
432       I         deltaTmom, KappaRV,recip_HFacS,       I         0, KappaRV,recip_HFacS,
433       U         gVNm1,       U         gV,
434       I         myThid )       I         myThid )
435            ENDIF
436    
437  #ifdef   ALLOW_OBCS  #ifdef   ALLOW_OBCS
438  C--      Apply open boundary conditions  C--      Apply open boundary conditions
439           IF (useOBCS) THEN          IF ( useOBCS .AND.(implicitViscosity.OR.momImplVertAdv) ) THEN
440             DO K=1,Nr             DO K=1,Nr
441               CALL OBCS_APPLY_UV( bi, bj, k, gUnm1, gVnm1, myThid )               CALL OBCS_APPLY_UV( bi, bj, k, gU, gV, myThid )
442             ENDDO             ENDDO
443           END IF          ENDIF
444  #endif   /* ALLOW_OBCS */  #endif   /* ALLOW_OBCS */
445    
446  #ifdef    INCLUDE_CD_CODE  #ifdef    ALLOW_CD_CODE
447            IF (implicitViscosity.AND.useCDscheme) THEN
448  #ifdef    ALLOW_AUTODIFF_TAMC  #ifdef    ALLOW_AUTODIFF_TAMC
449            idkey = iikey + 5  CADJ STORE vVelD(:,:,:,bi,bj) = comlev1_bibj , key=idynkey, byte=isbyte
 CADJ STORE vVelD(:,:,:,bi,bj) = comlev1_bibj , key=ikey, byte=isbyte  
450  #endif    /* ALLOW_AUTODIFF_TAMC */  #endif    /* ALLOW_AUTODIFF_TAMC */
451            CALL IMPLDIFF(            CALL IMPLDIFF(
452       I         bi, bj, iMin, iMax, jMin, jMax,       I         bi, bj, iMin, iMax, jMin, jMax,
453       I         deltaTmom, KappaRU,recip_HFacW,       I         0, KappaRU,recip_HFacW,
454       U         vVelD,       U         vVelD,
455       I         myThid )       I         myThid )
456  #ifdef    ALLOW_AUTODIFF_TAMC  #ifdef    ALLOW_AUTODIFF_TAMC
457            idkey = iikey + 6  CADJ STORE uVelD(:,:,:,bi,bj) = comlev1_bibj , key=idynkey, byte=isbyte
 CADJ STORE uVelD(:,:,:,bi,bj) = comlev1_bibj , key=ikey, byte=isbyte  
458  #endif    /* ALLOW_AUTODIFF_TAMC */  #endif    /* ALLOW_AUTODIFF_TAMC */
459            CALL IMPLDIFF(            CALL IMPLDIFF(
460       I         bi, bj, iMin, iMax, jMin, jMax,       I         bi, bj, iMin, iMax, jMin, jMax,
461       I         deltaTmom, KappaRV,recip_HFacS,       I         0, KappaRV,recip_HFacS,
462       U         uVelD,       U         uVelD,
463       I         myThid )       I         myThid )
 #endif    /* INCLUDE_CD_CODE */  
 C--     End If implicitViscosity.AND.momStepping  
464          ENDIF          ENDIF
465    #endif    /* ALLOW_CD_CODE */
466    C--     End implicit Vertical advection & viscosity
467    
 Cjmc : add for phiHyd output <- but not working if multi tile per CPU  
 c       IF ( DIFFERENT_MULTIPLE(dumpFreq,myTime+deltaTClock,myTime)  
 c    &  .AND. buoyancyRelation .eq. 'ATMOSPHERIC' ) THEN  
 c         WRITE(suff,'(I10.10)') myIter+1  
 c         CALL WRITE_FLD_XYZ_RL('PH.',suff,phiHyd,myIter+1,myThid)  
 c       ENDIF  
 Cjmc(end)  
   
 #ifdef ALLOW_TIMEAVE  
         IF (taveFreq.GT.0.) THEN  
           CALL TIMEAVE_CUMUL_1T(phiHydtave, phiHyd, Nr,  
      I                              deltaTclock, bi, bj, myThid)  
           IF (ivdc_kappa.NE.0.) THEN  
             CALL TIMEAVE_CUMULATE(ConvectCountTave, ConvectCount, Nr,  
      I                              deltaTclock, bi, bj, myThid)  
           ENDIF  
         ENDIF  
 #endif /* ALLOW_TIMEAVE */  
   
468         ENDDO         ENDDO
469        ENDDO        ENDDO
470    
471  #ifndef DISABLE_DEBUGMODE  #ifdef ALLOW_OBCS
472        If (debugMode) THEN        IF (useOBCS) THEN
473           CALL OBCS_PRESCRIBE_EXCHANGES(myThid)
474          ENDIF
475    #endif
476    
477    C---+----1----+----2----+----3----+----4----+----5----+----6----+----7-|--+----|
478    
479    Cml(
480    C     In order to compare the variance of phiHydLow of a p/z-coordinate
481    C     run with etaH of a z/p-coordinate run the drift of phiHydLow
482    C     has to be removed by something like the following subroutine:
483    C      CALL REMOVE_MEAN_RL( 1, phiHydLow, maskH, maskH, rA, drF,
484    C     &                'phiHydLow', myThid )
485    Cml)
486    
487    #ifdef ALLOW_DIAGNOSTICS
488          IF ( usediagnostics ) THEN
489    
490           CALL DIAGNOSTICS_FILL(totPhihyd,'PHIHYD  ',0,Nr,0,1,1,myThid)
491    
492           IF ( DIAGNOSTICS_IS_ON('PHIHYDSQ',myThid) ) THEN
493            DO bj = myByLo(myThid), myByHi(myThid)
494            DO bi = myBxLo(myThid), myBxHi(myThid)
495             DO k = 1,Nr
496              DO j = 1,sNy
497               DO i = 1,sNx
498                 tmpFld(i,j) = totPhihyd(i,j,k,bi,bj)*totPhihyd(i,j,k,bi,bj)
499               ENDDO
500              ENDDO
501              CALL DIAGNOSTICS_FILL(tmpFld,'PHIHYDSQ',k,1,2,bi,bj,myThid)
502             ENDDO
503            ENDDO
504            ENDDO
505           ENDIF
506    
507           CALL DIAGNOSTICS_FILL(phiHydLow,'PHIBOT  ',0,1,0,1,1,myThid)
508    
509           IF ( DIAGNOSTICS_IS_ON('PHIBOTSQ',myThid) ) THEN
510            DO bj = myByLo(myThid), myByHi(myThid)
511             DO bi = myBxLo(myThid), myBxHi(myThid)
512              DO j = 1,sNy
513               DO i = 1,sNx
514                 tmpFld(i,j) = phiHydLow(i,j,bi,bj)*phiHydLow(i,j,bi,bj)
515               ENDDO
516              ENDDO
517              CALL DIAGNOSTICS_FILL(tmpFld,'PHIBOTSQ',0,1,2,bi,bj,myThid)
518             ENDDO
519            ENDDO
520           ENDIF
521    
522          ENDIF
523    #endif /* ALLOW_DIAGNOSTICS */
524          
525    #ifdef ALLOW_DEBUG
526          If ( debugLevel .GE. debLevB ) THEN
527         CALL DEBUG_STATS_RL(1,EtaN,'EtaN (DYNAMICS)',myThid)         CALL DEBUG_STATS_RL(1,EtaN,'EtaN (DYNAMICS)',myThid)
528         CALL DEBUG_STATS_RL(Nr,uVel,'Uvel (DYNAMICS)',myThid)         CALL DEBUG_STATS_RL(Nr,uVel,'Uvel (DYNAMICS)',myThid)
529         CALL DEBUG_STATS_RL(Nr,vVel,'Vvel (DYNAMICS)',myThid)         CALL DEBUG_STATS_RL(Nr,vVel,'Vvel (DYNAMICS)',myThid)
530         CALL DEBUG_STATS_RL(Nr,wVel,'Wvel (DYNAMICS)',myThid)         CALL DEBUG_STATS_RL(Nr,wVel,'Wvel (DYNAMICS)',myThid)
531         CALL DEBUG_STATS_RL(Nr,theta,'Theta (DYNAMICS)',myThid)         CALL DEBUG_STATS_RL(Nr,theta,'Theta (DYNAMICS)',myThid)
532         CALL DEBUG_STATS_RL(Nr,salt,'Salt (DYNAMICS)',myThid)         CALL DEBUG_STATS_RL(Nr,salt,'Salt (DYNAMICS)',myThid)
533         CALL DEBUG_STATS_RL(Nr,Gu,'Gu (DYNAMICS)',myThid)         CALL DEBUG_STATS_RL(Nr,gU,'Gu (DYNAMICS)',myThid)
534         CALL DEBUG_STATS_RL(Nr,Gv,'Gv (DYNAMICS)',myThid)         CALL DEBUG_STATS_RL(Nr,gV,'Gv (DYNAMICS)',myThid)
535         CALL DEBUG_STATS_RL(Nr,Gt,'Gt (DYNAMICS)',myThid)         CALL DEBUG_STATS_RL(Nr,gT,'Gt (DYNAMICS)',myThid)
536         CALL DEBUG_STATS_RL(Nr,Gs,'Gs (DYNAMICS)',myThid)         CALL DEBUG_STATS_RL(Nr,gS,'Gs (DYNAMICS)',myThid)
537         CALL DEBUG_STATS_RL(Nr,GuNm1,'GuNm1 (DYNAMICS)',myThid)  #ifndef ALLOW_ADAMSBASHFORTH_3
538         CALL DEBUG_STATS_RL(Nr,GvNm1,'GvNm1 (DYNAMICS)',myThid)         CALL DEBUG_STATS_RL(Nr,guNm1,'GuNm1 (DYNAMICS)',myThid)
539         CALL DEBUG_STATS_RL(Nr,GtNm1,'GtNm1 (DYNAMICS)',myThid)         CALL DEBUG_STATS_RL(Nr,gvNm1,'GvNm1 (DYNAMICS)',myThid)
540         CALL DEBUG_STATS_RL(Nr,GsNm1,'GsNm1 (DYNAMICS)',myThid)         CALL DEBUG_STATS_RL(Nr,gtNm1,'GtNm1 (DYNAMICS)',myThid)
541           CALL DEBUG_STATS_RL(Nr,gsNm1,'GsNm1 (DYNAMICS)',myThid)
542    #endif
543        ENDIF        ENDIF
544  #endif  #endif
545    

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