/[MITgcm]/MITgcm/pkg/mom_vecinv/mom_vecinv.F
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Revision 1.49 - (hide annotations) (download)
Fri Sep 23 19:19:37 2005 UTC (18 years, 8 months ago) by jmc
Branch: MAIN
Changes since 1.48: +2 -2 lines
make the CALL consistent with changes in mom_calc_ke KEscheeme

1 jmc 1.49 C $Header: /u/gcmpack/MITgcm/pkg/mom_vecinv/mom_vecinv.F,v 1.48 2005/09/19 19:58:05 jmc Exp $
2 adcroft 1.2 C $Name: $
3 adcroft 1.1
4 adcroft 1.21 #include "MOM_VECINV_OPTIONS.h"
5 adcroft 1.1
6     SUBROUTINE MOM_VECINV(
7     I bi,bj,iMin,iMax,jMin,jMax,k,kUp,kDown,
8 jmc 1.43 I KappaRU, KappaRV,
9 adcroft 1.1 U fVerU, fVerV,
10 jmc 1.31 O guDiss, gvDiss,
11 jmc 1.15 I myTime, myIter, myThid)
12 adcroft 1.1 C /==========================================================\
13     C | S/R MOM_VECINV |
14     C | o Form the right hand-side of the momentum equation. |
15     C |==========================================================|
16     C | Terms are evaluated one layer at a time working from |
17     C | the bottom to the top. The vertically integrated |
18     C | barotropic flow tendency term is evluated by summing the |
19     C | tendencies. |
20     C | Notes: |
21     C | We have not sorted out an entirely satisfactory formula |
22     C | for the diffusion equation bc with lopping. The present |
23     C | form produces a diffusive flux that does not scale with |
24     C | open-area. Need to do something to solidfy this and to |
25     C | deal "properly" with thin walls. |
26     C \==========================================================/
27     IMPLICIT NONE
28    
29     C == Global variables ==
30     #include "SIZE.h"
31     #include "DYNVARS.h"
32     #include "EEPARAMS.h"
33     #include "PARAMS.h"
34 edhill 1.27 #ifdef ALLOW_MNC
35     #include "MNC_PARAMS.h"
36     #endif
37 adcroft 1.1 #include "GRID.h"
38 jmc 1.7 #ifdef ALLOW_TIMEAVE
39     #include "TIMEAVE_STATV.h"
40     #endif
41 adcroft 1.1
42     C == Routine arguments ==
43 jmc 1.31 C fVerU :: Flux of momentum in the vertical direction, out of the upper
44     C fVerV :: face of a cell K ( flux into the cell above ).
45     C guDiss :: dissipation tendency (all explicit terms), u component
46     C gvDiss :: dissipation tendency (all explicit terms), v component
47 adcroft 1.1 C bi, bj, iMin, iMax, jMin, jMax - Range of points for which calculation
48     C results will be set.
49     C kUp, kDown - Index for upper and lower layers.
50     C myThid - Instance number for this innvocation of CALC_MOM_RHS
51     _RL KappaRU(1-OLx:sNx+OLx,1-OLy:sNy+OLy,Nr)
52     _RL KappaRV(1-OLx:sNx+OLx,1-OLy:sNy+OLy,Nr)
53     _RL fVerU(1-OLx:sNx+OLx,1-OLy:sNy+OLy,2)
54     _RL fVerV(1-OLx:sNx+OLx,1-OLy:sNy+OLy,2)
55 jmc 1.31 _RL guDiss(1-OLx:sNx+OLx,1-OLy:sNy+OLy)
56     _RL gvDiss(1-OLx:sNx+OLx,1-OLy:sNy+OLy)
57 adcroft 1.1 INTEGER kUp,kDown
58 jmc 1.15 _RL myTime
59 adcroft 1.2 INTEGER myIter
60 adcroft 1.1 INTEGER myThid
61     INTEGER bi,bj,iMin,iMax,jMin,jMax
62    
63 edhill 1.11 #ifdef ALLOW_MOM_VECINV
64 jmc 1.7
65 adcroft 1.2 C == Functions ==
66 jmc 1.38 LOGICAL DIFFERENT_MULTIPLE
67     EXTERNAL DIFFERENT_MULTIPLE
68 adcroft 1.2
69 adcroft 1.1 C == Local variables ==
70     _RL vF (1-OLx:sNx+OLx,1-OLy:sNy+OLy)
71     _RL vrF (1-OLx:sNx+OLx,1-OLy:sNy+OLy)
72     _RL uCf (1-OLx:sNx+OLx,1-OLy:sNy+OLy)
73     _RL vCf (1-OLx:sNx+OLx,1-OLy:sNy+OLy)
74 jmc 1.29 c _RL mT (1-OLx:sNx+OLx,1-OLy:sNy+OLy)
75 adcroft 1.1 _RL del2u(1-OLx:sNx+OLx,1-OLy:sNy+OLy)
76     _RL del2v(1-OLx:sNx+OLx,1-OLy:sNy+OLy)
77 adcroft 1.3 _RL tension(1-OLx:sNx+OLx,1-OLy:sNy+OLy)
78     _RL strain(1-OLx:sNx+OLx,1-OLy:sNy+OLy)
79 adcroft 1.1 _RS hFacZ(1-OLx:sNx+OLx,1-OLy:sNy+OLy)
80     _RS r_hFacZ(1-OLx:sNx+OLx,1-OLy:sNy+OLy)
81     _RL uFld(1-OLx:sNx+OLx,1-OLy:sNy+OLy)
82     _RL vFld(1-OLx:sNx+OLx,1-OLy:sNy+OLy)
83     _RL dStar(1-OLx:sNx+OLx,1-OLy:sNy+OLy)
84     _RL zStar(1-OLx:sNx+OLx,1-OLy:sNy+OLy)
85     C I,J,K - Loop counters
86     INTEGER i,j,k
87     C xxxFac - On-off tracer parameters used for switching terms off.
88     _RL ArDudrFac
89 jmc 1.29 c _RL mtFacU
90 adcroft 1.1 _RL ArDvdrFac
91 jmc 1.29 c _RL mtFacV
92 adcroft 1.1 LOGICAL bottomDragTerms
93 jmc 1.15 LOGICAL writeDiag
94 adcroft 1.1 _RL KE(1-OLx:sNx+OLx,1-OLy:sNy+OLy)
95     _RL omega3(1-OLx:sNx+OLx,1-OLy:sNy+OLy)
96     _RL vort3(1-OLx:sNx+OLx,1-OLy:sNy+OLy)
97     _RL hDiv(1-OLx:sNx+OLx,1-OLy:sNy+OLy)
98    
99 edhill 1.25 #ifdef ALLOW_MNC
100     INTEGER offsets(9)
101     #endif
102    
103 heimbach 1.9 #ifdef ALLOW_AUTODIFF_TAMC
104     C-- only the kDown part of fverU/V is set in this subroutine
105     C-- the kUp is still required
106     C-- In the case of mom_fluxform Kup is set as well
107     C-- (at least in part)
108     fVerU(1,1,kUp) = fVerU(1,1,kUp)
109     fVerV(1,1,kUp) = fVerV(1,1,kUp)
110     #endif
111    
112 jmc 1.38 writeDiag = DIFFERENT_MULTIPLE(diagFreq, myTime, deltaTClock)
113 adcroft 1.1
114 edhill 1.24 #ifdef ALLOW_MNC
115     IF (useMNC .AND. snapshot_mnc .AND. writeDiag) THEN
116 edhill 1.25 IF ((bi .EQ. 1).AND.(bj .EQ. 1).AND.(k .EQ. 1)) THEN
117     CALL MNC_CW_SET_UDIM('mom_vi', -1, myThid)
118 edhill 1.39 CALL MNC_CW_RL_W_S('D','mom_vi',0,0,'T',myTime,myThid)
119 edhill 1.25 CALL MNC_CW_SET_UDIM('mom_vi', 0, myThid)
120 edhill 1.39 CALL MNC_CW_I_W_S('I','mom_vi',0,0,'iter',myIter,myThid)
121 edhill 1.25 ENDIF
122     DO i = 1,9
123     offsets(i) = 0
124     ENDDO
125     offsets(3) = k
126     C write(*,*) 'offsets = ',(offsets(i),i=1,9)
127 edhill 1.24 ENDIF
128     #endif /* ALLOW_MNC */
129    
130 adcroft 1.1 C Initialise intermediate terms
131     DO J=1-OLy,sNy+OLy
132     DO I=1-OLx,sNx+OLx
133 jmc 1.31 vF(i,j) = 0.
134     vrF(i,j) = 0.
135 adcroft 1.1 uCf(i,j) = 0.
136     vCf(i,j) = 0.
137 jmc 1.31 c mT(i,j) = 0.
138 adcroft 1.1 del2u(i,j) = 0.
139     del2v(i,j) = 0.
140     dStar(i,j) = 0.
141     zStar(i,j) = 0.
142 jmc 1.31 guDiss(i,j)= 0.
143     gvDiss(i,j)= 0.
144 adcroft 1.1 vort3(i,j) = 0.
145 jmc 1.31 omega3(i,j)= 0.
146     ke(i,j) = 0.
147 heimbach 1.8 #ifdef ALLOW_AUTODIFF_TAMC
148     strain(i,j) = 0. _d 0
149     tension(i,j) = 0. _d 0
150     #endif
151 adcroft 1.1 ENDDO
152     ENDDO
153    
154     C-- Term by term tracer parmeters
155     C o U momentum equation
156     ArDudrFac = vfFacMom*1.
157 jmc 1.29 c mTFacU = mtFacMom*1.
158 adcroft 1.1 C o V momentum equation
159     ArDvdrFac = vfFacMom*1.
160 jmc 1.29 c mTFacV = mtFacMom*1.
161 adcroft 1.1
162     IF ( no_slip_bottom
163     & .OR. bottomDragQuadratic.NE.0.
164     & .OR. bottomDragLinear.NE.0.) THEN
165     bottomDragTerms=.TRUE.
166     ELSE
167     bottomDragTerms=.FALSE.
168     ENDIF
169    
170     C-- Calculate open water fraction at vorticity points
171     CALL MOM_CALC_HFACZ(bi,bj,k,hFacZ,r_hFacZ,myThid)
172    
173     C Make local copies of horizontal flow field
174     DO j=1-OLy,sNy+OLy
175     DO i=1-OLx,sNx+OLx
176     uFld(i,j) = uVel(i,j,k,bi,bj)
177     vFld(i,j) = vVel(i,j,k,bi,bj)
178     ENDDO
179     ENDDO
180    
181 jmc 1.7 C note (jmc) : Dissipation and Vort3 advection do not necesary
182     C use the same maskZ (and hFacZ) => needs 2 call(s)
183     c CALL MOM_VI_HFACZ_DISS(bi,bj,k,hFacZ,r_hFacZ,myThid)
184    
185 jmc 1.49 CALL MOM_CALC_KE(bi,bj,k,0,uFld,vFld,KE,myThid)
186 adcroft 1.1
187 adcroft 1.17 CALL MOM_CALC_HDIV(bi,bj,k,2,uFld,vFld,hDiv,myThid)
188 adcroft 1.1
189 adcroft 1.18 CALL MOM_CALC_RELVORT3(bi,bj,k,uFld,vFld,hFacZ,vort3,myThid)
190 adcroft 1.1
191 baylor 1.47 CALL MOM_CALC_TENSION(bi,bj,k,uFld,vFld,tension,myThid)
192    
193     CALL MOM_CALC_STRAIN(bi,bj,k,uFld,vFld,hFacZ,strain,myThid)
194    
195 adcroft 1.20 IF (useAbsVorticity)
196     & CALL MOM_CALC_ABSVORT3(bi,bj,k,vort3,omega3,myThid)
197 adcroft 1.1
198     IF (momViscosity) THEN
199     C Calculate del^2 u and del^2 v for bi-harmonic term
200 jmc 1.30 IF ( (viscA4.NE.0. .AND. no_slip_sides)
201     & .OR. viscA4D.NE.0. .OR. viscA4Z.NE.0.
202 adcroft 1.19 & .OR. viscA4Grid.NE.0.
203     & .OR. viscC4leith.NE.0.
204 baylor 1.34 & .OR. viscC4leithD.NE.0.
205 baylor 1.47 & .OR. viscC4smag.NE.0.
206 adcroft 1.19 & ) THEN
207 adcroft 1.2 CALL MOM_VI_DEL2UV(bi,bj,k,hDiv,vort3,hFacZ,
208     O del2u,del2v,
209     & myThid)
210 jmc 1.48 CALL MOM_CALC_HDIV(bi,bj,k,2,del2u,del2v,dStar,myThid)
211     CALL MOM_CALC_RELVORT3(bi,bj,k,
212     & del2u,del2v,hFacZ,zStar,myThid)
213 adcroft 1.2 ENDIF
214 baylor 1.47
215 adcroft 1.1 C Calculate dissipation terms for U and V equations
216 baylor 1.47
217     C in terms of tension and strain
218     IF (useStrainTensionVisc) THEN
219     CALL MOM_HDISSIP(bi,bj,k,hDiv,vort3,tension,strain,KE,
220     I hFacZ,
221     O guDiss,gvDiss,
222     I myThid)
223     ELSE
224 adcroft 1.2 C in terms of vorticity and divergence
225 baylor 1.47 CALL MOM_VI_HDISSIP(bi,bj,k,hDiv,vort3,tension,strain,KE,
226     I hFacZ,dStar,zStar,
227 jmc 1.31 O guDiss,gvDiss,
228 baylor 1.47 & myThid)
229 adcroft 1.3 ENDIF
230 adcroft 1.1 ENDIF
231    
232 jmc 1.7 C- Return to standard hfacZ (min-4) and mask vort3 accordingly:
233     c CALL MOM_VI_MASK_VORT3(bi,bj,k,hFacZ,r_hFacZ,vort3,myThid)
234    
235 adcroft 1.1 C---- Zonal momentum equation starts here
236    
237     C-- Vertical flux (fVer is at upper face of "u" cell)
238    
239     C Eddy component of vertical flux (interior component only) -> vrF
240 jmc 1.31 IF (momViscosity.AND..NOT.implicitViscosity) THEN
241 jmc 1.44 CALL MOM_U_RVISCFLUX(bi,bj,k+1,uVel,KappaRU,vrF,myThid)
242 adcroft 1.1
243     C Combine fluxes
244 jmc 1.31 DO j=jMin,jMax
245     DO i=iMin,iMax
246     fVerU(i,j,kDown) = ArDudrFac*vrF(i,j)
247     ENDDO
248 adcroft 1.1 ENDDO
249    
250 jmc 1.31 C-- Tendency is minus divergence of the fluxes
251     DO j=2-Oly,sNy+Oly-1
252     DO i=2-Olx,sNx+Olx-1
253     guDiss(i,j) = guDiss(i,j)
254 adcroft 1.1 & -_recip_hFacW(i,j,k,bi,bj)*recip_drF(k)
255     & *recip_rAw(i,j,bi,bj)
256     & *(
257 jmc 1.42 & fVerU(i,j,kDown) - fVerU(i,j,kUp)
258     & )*rkSign
259 jmc 1.31 ENDDO
260 adcroft 1.1 ENDDO
261 jmc 1.31 ENDIF
262 adcroft 1.1
263     C-- No-slip and drag BCs appear as body forces in cell abutting topography
264     IF (momViscosity.AND.no_slip_sides) THEN
265     C- No-slip BCs impose a drag at walls...
266     CALL MOM_U_SIDEDRAG(bi,bj,k,uFld,del2u,hFacZ,vF,myThid)
267     DO j=jMin,jMax
268     DO i=iMin,iMax
269 jmc 1.31 guDiss(i,j) = guDiss(i,j)+vF(i,j)
270 adcroft 1.1 ENDDO
271     ENDDO
272     ENDIF
273 heimbach 1.8
274 adcroft 1.1 C- No-slip BCs impose a drag at bottom
275     IF (momViscosity.AND.bottomDragTerms) THEN
276     CALL MOM_U_BOTTOMDRAG(bi,bj,k,uFld,KE,KappaRU,vF,myThid)
277     DO j=jMin,jMax
278     DO i=iMin,iMax
279 jmc 1.31 guDiss(i,j) = guDiss(i,j)+vF(i,j)
280 adcroft 1.1 ENDDO
281     ENDDO
282     ENDIF
283    
284     C-- Metric terms for curvilinear grid systems
285     c IF (usingSphericalPolarMTerms) THEN
286     C o Spherical polar grid metric terms
287     c CALL MOM_U_METRIC_NH(bi,bj,k,uFld,wVel,mT,myThid)
288     c DO j=jMin,jMax
289     c DO i=iMin,iMax
290     c gU(i,j,k,bi,bj) = gU(i,j,k,bi,bj)+mTFacU*mT(i,j)
291     c ENDDO
292     c ENDDO
293     c ENDIF
294    
295     C---- Meridional momentum equation starts here
296    
297     C-- Vertical flux (fVer is at upper face of "v" cell)
298    
299     C Eddy component of vertical flux (interior component only) -> vrF
300 jmc 1.31 IF (momViscosity.AND..NOT.implicitViscosity) THEN
301 jmc 1.44 CALL MOM_V_RVISCFLUX(bi,bj,k+1,vVel,KappaRV,vrF,myThid)
302 adcroft 1.1
303     C Combine fluxes -> fVerV
304 jmc 1.31 DO j=jMin,jMax
305     DO i=iMin,iMax
306     fVerV(i,j,kDown) = ArDvdrFac*vrF(i,j)
307     ENDDO
308 adcroft 1.1 ENDDO
309    
310 jmc 1.31 C-- Tendency is minus divergence of the fluxes
311     DO j=jMin,jMax
312     DO i=iMin,iMax
313     gvDiss(i,j) = gvDiss(i,j)
314 adcroft 1.1 & -_recip_hFacS(i,j,k,bi,bj)*recip_drF(k)
315     & *recip_rAs(i,j,bi,bj)
316     & *(
317 jmc 1.42 & fVerV(i,j,kDown) - fVerV(i,j,kUp)
318     & )*rkSign
319 jmc 1.31 ENDDO
320 adcroft 1.1 ENDDO
321 jmc 1.31 ENDIF
322 adcroft 1.1
323     C-- No-slip and drag BCs appear as body forces in cell abutting topography
324     IF (momViscosity.AND.no_slip_sides) THEN
325     C- No-slip BCs impose a drag at walls...
326     CALL MOM_V_SIDEDRAG(bi,bj,k,vFld,del2v,hFacZ,vF,myThid)
327     DO j=jMin,jMax
328     DO i=iMin,iMax
329 jmc 1.31 gvDiss(i,j) = gvDiss(i,j)+vF(i,j)
330 adcroft 1.1 ENDDO
331     ENDDO
332     ENDIF
333     C- No-slip BCs impose a drag at bottom
334     IF (momViscosity.AND.bottomDragTerms) THEN
335     CALL MOM_V_BOTTOMDRAG(bi,bj,k,vFld,KE,KappaRV,vF,myThid)
336     DO j=jMin,jMax
337     DO i=iMin,iMax
338 jmc 1.31 gvDiss(i,j) = gvDiss(i,j)+vF(i,j)
339 adcroft 1.1 ENDDO
340     ENDDO
341     ENDIF
342    
343     C-- Metric terms for curvilinear grid systems
344     c IF (usingSphericalPolarMTerms) THEN
345     C o Spherical polar grid metric terms
346     c CALL MOM_V_METRIC_NH(bi,bj,k,vFld,wVel,mT,myThid)
347     c DO j=jMin,jMax
348     c DO i=iMin,iMax
349     c gV(i,j,k,bi,bj) = gV(i,j,k,bi,bj)+mTFacV*mT(i,j)
350     c ENDDO
351     c ENDDO
352     c ENDIF
353    
354 jmc 1.5 C-- Horizontal Coriolis terms
355 jmc 1.37 c IF (useCoriolis .AND. .NOT.useCDscheme
356     c & .AND. .NOT. useAbsVorticity) THEN
357     C- jmc: change it to keep the Coriolis terms when useAbsVorticity=T & momAdvection=F
358 jmc 1.46 IF ( useCoriolis .AND.
359 jmc 1.37 & .NOT.( useCDscheme .OR. useAbsVorticity.AND.momAdvection )
360     & ) THEN
361     IF (useAbsVorticity) THEN
362     CALL MOM_VI_U_CORIOLIS(bi,bj,K,vFld,omega3,hFacZ,r_hFacZ,
363     & uCf,myThid)
364     CALL MOM_VI_V_CORIOLIS(bi,bj,K,uFld,omega3,hFacZ,r_hFacZ,
365     & vCf,myThid)
366     ELSE
367     CALL MOM_VI_CORIOLIS(bi,bj,k,uFld,vFld,hFacZ,r_hFacZ,
368     & uCf,vCf,myThid)
369     ENDIF
370 jmc 1.5 DO j=jMin,jMax
371     DO i=iMin,iMax
372 jmc 1.43 gU(i,j,k,bi,bj) = uCf(i,j)
373     gV(i,j,k,bi,bj) = vCf(i,j)
374 jmc 1.5 ENDDO
375 adcroft 1.1 ENDDO
376 jmc 1.46
377 jmc 1.15 IF ( writeDiag ) THEN
378 edhill 1.24 IF (snapshot_mdsio) THEN
379     CALL WRITE_LOCAL_RL('fV','I10',1,uCf,bi,bj,k,myIter,myThid)
380     CALL WRITE_LOCAL_RL('fU','I10',1,vCf,bi,bj,k,myIter,myThid)
381     ENDIF
382     #ifdef ALLOW_MNC
383     IF (useMNC .AND. snapshot_mnc) THEN
384 edhill 1.25 CALL MNC_CW_RL_W_OFFSET('D','mom_vi',bi,bj, 'fV', uCf,
385     & offsets, myThid)
386     CALL MNC_CW_RL_W_OFFSET('D','mom_vi',bi,bj, 'fU', vCf,
387     & offsets, myThid)
388 edhill 1.24 ENDIF
389     #endif /* ALLOW_MNC */
390 jmc 1.15 ENDIF
391 jmc 1.46 #ifdef ALLOW_DIAGNOSTICS
392     IF ( useDiagnostics ) THEN
393     CALL DIAGNOSTICS_FILL(uCf,'Um_Cori ',k,1,2,bi,bj,myThid)
394     CALL DIAGNOSTICS_FILL(vCf,'Vm_Cori ',k,1,2,bi,bj,myThid)
395     ENDIF
396     #endif /* ALLOW_DIAGNOSTICS */
397    
398 jmc 1.31 ELSE
399     DO j=jMin,jMax
400     DO i=iMin,iMax
401 jmc 1.43 gU(i,j,k,bi,bj) = 0. _d 0
402     gV(i,j,k,bi,bj) = 0. _d 0
403 jmc 1.31 ENDDO
404     ENDDO
405 jmc 1.5 ENDIF
406 adcroft 1.1
407 jmc 1.5 IF (momAdvection) THEN
408 jmc 1.41 C-- Horizontal advection of relative (or absolute) vorticity
409     IF (highOrderVorticity.AND.useAbsVorticity) THEN
410     CALL MOM_VI_U_CORIOLIS_C4(bi,bj,k,vFld,omega3,r_hFacZ,
411 adcroft 1.20 & uCf,myThid)
412 jmc 1.40 ELSEIF (highOrderVorticity) THEN
413 jmc 1.41 CALL MOM_VI_U_CORIOLIS_C4(bi,bj,k,vFld,vort3, r_hFacZ,
414     & uCf,myThid)
415     ELSEIF (useAbsVorticity) THEN
416     CALL MOM_VI_U_CORIOLIS(bi,bj,K,vFld,omega3,hFacZ,r_hFacZ,
417 jmc 1.40 & uCf,myThid)
418 adcroft 1.20 ELSE
419 jmc 1.41 CALL MOM_VI_U_CORIOLIS(bi,bj,k,vFld,vort3, hFacZ,r_hFacZ,
420 adcroft 1.20 & uCf,myThid)
421     ENDIF
422 jmc 1.5 DO j=jMin,jMax
423     DO i=iMin,iMax
424     gU(i,j,k,bi,bj) = gU(i,j,k,bi,bj)+uCf(i,j)
425     ENDDO
426 adcroft 1.1 ENDDO
427 jmc 1.41 IF (highOrderVorticity.AND.useAbsVorticity) THEN
428     CALL MOM_VI_V_CORIOLIS_C4(bi,bj,K,uFld,omega3,r_hFacZ,
429 adcroft 1.20 & vCf,myThid)
430 jmc 1.40 ELSEIF (highOrderVorticity) THEN
431 jmc 1.41 CALL MOM_VI_V_CORIOLIS_C4(bi,bj,K,uFld,vort3, r_hFacZ,
432     & vCf,myThid)
433     ELSEIF (useAbsVorticity) THEN
434     CALL MOM_VI_V_CORIOLIS(bi,bj,K,uFld,omega3,hFacZ,r_hFacZ,
435 jmc 1.40 & vCf,myThid)
436 adcroft 1.20 ELSE
437 jmc 1.41 CALL MOM_VI_V_CORIOLIS(bi,bj,k,uFld,vort3, hFacZ,r_hFacZ,
438 adcroft 1.20 & vCf,myThid)
439     ENDIF
440 jmc 1.5 DO j=jMin,jMax
441     DO i=iMin,iMax
442     gV(i,j,k,bi,bj) = gV(i,j,k,bi,bj)+vCf(i,j)
443     ENDDO
444 adcroft 1.1 ENDDO
445    
446 jmc 1.15 IF ( writeDiag ) THEN
447 edhill 1.24 IF (snapshot_mdsio) THEN
448     CALL WRITE_LOCAL_RL('zV','I10',1,uCf,bi,bj,k,myIter,myThid)
449     CALL WRITE_LOCAL_RL('zU','I10',1,vCf,bi,bj,k,myIter,myThid)
450     ENDIF
451     #ifdef ALLOW_MNC
452     IF (useMNC .AND. snapshot_mnc) THEN
453 edhill 1.25 CALL MNC_CW_RL_W_OFFSET('D','mom_vi',bi,bj, 'zV', uCf,
454     & offsets, myThid)
455     CALL MNC_CW_RL_W_OFFSET('D','mom_vi',bi,bj, 'zU', vCf,
456     & offsets, myThid)
457 edhill 1.24 ENDIF
458     #endif /* ALLOW_MNC */
459 jmc 1.15 ENDIF
460 edhill 1.24
461 jmc 1.7 #ifdef ALLOW_TIMEAVE
462     IF (taveFreq.GT.0.) THEN
463     CALL TIMEAVE_CUMUL_1K1T(uZetatave,vCf,deltaTClock,
464     & Nr, k, bi, bj, myThid)
465     CALL TIMEAVE_CUMUL_1K1T(vZetatave,uCf,deltaTClock,
466     & Nr, k, bi, bj, myThid)
467     ENDIF
468 dimitri 1.13 #endif /* ALLOW_TIMEAVE */
469 jmc 1.46 #ifdef ALLOW_DIAGNOSTICS
470     IF ( useDiagnostics ) THEN
471     CALL DIAGNOSTICS_FILL(uCf,'Um_AdvZ3',k,1,2,bi,bj,myThid)
472     CALL DIAGNOSTICS_FILL(vCf,'Vm_AdvZ3',k,1,2,bi,bj,myThid)
473     ENDIF
474     #endif /* ALLOW_DIAGNOSTICS */
475 jmc 1.7
476 jmc 1.5 C-- Vertical shear terms (-w*du/dr & -w*dv/dr)
477 jmc 1.12 IF ( .NOT. momImplVertAdv ) THEN
478     CALL MOM_VI_U_VERTSHEAR(bi,bj,K,uVel,wVel,uCf,myThid)
479     DO j=jMin,jMax
480     DO i=iMin,iMax
481     gU(i,j,k,bi,bj) = gU(i,j,k,bi,bj)+uCf(i,j)
482     ENDDO
483 jmc 1.5 ENDDO
484 jmc 1.12 CALL MOM_VI_V_VERTSHEAR(bi,bj,K,vVel,wVel,vCf,myThid)
485     DO j=jMin,jMax
486     DO i=iMin,iMax
487     gV(i,j,k,bi,bj) = gV(i,j,k,bi,bj)+vCf(i,j)
488     ENDDO
489 jmc 1.5 ENDDO
490 jmc 1.46 #ifdef ALLOW_DIAGNOSTICS
491     IF ( useDiagnostics ) THEN
492     CALL DIAGNOSTICS_FILL(uCf,'Um_AdvRe',k,1,2,bi,bj,myThid)
493     CALL DIAGNOSTICS_FILL(vCf,'Vm_AdvRe',k,1,2,bi,bj,myThid)
494     ENDIF
495     #endif /* ALLOW_DIAGNOSTICS */
496 jmc 1.12 ENDIF
497 adcroft 1.1
498     C-- Bernoulli term
499 jmc 1.5 CALL MOM_VI_U_GRAD_KE(bi,bj,K,KE,uCf,myThid)
500     DO j=jMin,jMax
501     DO i=iMin,iMax
502     gU(i,j,k,bi,bj) = gU(i,j,k,bi,bj)+uCf(i,j)
503     ENDDO
504     ENDDO
505     CALL MOM_VI_V_GRAD_KE(bi,bj,K,KE,vCf,myThid)
506     DO j=jMin,jMax
507     DO i=iMin,iMax
508     gV(i,j,k,bi,bj) = gV(i,j,k,bi,bj)+vCf(i,j)
509     ENDDO
510 adcroft 1.1 ENDDO
511 jmc 1.15 IF ( writeDiag ) THEN
512 edhill 1.24 IF (snapshot_mdsio) THEN
513     CALL WRITE_LOCAL_RL('KEx','I10',1,uCf,bi,bj,k,myIter,myThid)
514     CALL WRITE_LOCAL_RL('KEy','I10',1,vCf,bi,bj,k,myIter,myThid)
515     ENDIF
516     #ifdef ALLOW_MNC
517     IF (useMNC .AND. snapshot_mnc) THEN
518 edhill 1.25 CALL MNC_CW_RL_W_OFFSET('D','mom_vi',bi,bj, 'KEx', uCf,
519     & offsets, myThid)
520     CALL MNC_CW_RL_W_OFFSET('D','mom_vi',bi,bj, 'KEy', vCf,
521     & offsets, myThid)
522     ENDIF
523 edhill 1.24 #endif /* ALLOW_MNC */
524 jmc 1.15 ENDIF
525    
526 jmc 1.5 C-- end if momAdvection
527     ENDIF
528    
529     C-- Set du/dt & dv/dt on boundaries to zero
530 adcroft 1.1 DO j=jMin,jMax
531     DO i=iMin,iMax
532 jmc 1.5 gU(i,j,k,bi,bj) = gU(i,j,k,bi,bj)*_maskW(i,j,k,bi,bj)
533     gV(i,j,k,bi,bj) = gV(i,j,k,bi,bj)*_maskS(i,j,k,bi,bj)
534 adcroft 1.1 ENDDO
535     ENDDO
536 jmc 1.5
537 jmc 1.22 #ifdef ALLOW_DEBUG
538     IF ( debugLevel .GE. debLevB
539     & .AND. k.EQ.4 .AND. myIter.EQ.nIter0
540     & .AND. nPx.EQ.1 .AND. nPy.EQ.1
541     & .AND. useCubedSphereExchange ) THEN
542 jmc 1.23 CALL DEBUG_CS_CORNER_UV( ' uDiss,vDiss from MOM_VECINV',
543 jmc 1.31 & guDiss,gvDiss, k, standardMessageUnit,bi,bj,myThid )
544 jmc 1.22 ENDIF
545     #endif /* ALLOW_DEBUG */
546 adcroft 1.2
547 jmc 1.15 IF ( writeDiag ) THEN
548 edhill 1.24 IF (snapshot_mdsio) THEN
549     CALL WRITE_LOCAL_RL('Ds','I10',1,strain,bi,bj,k,myIter,myThid)
550     CALL WRITE_LOCAL_RL('Dt','I10',1,tension,bi,bj,k,myIter,
551     & myThid)
552 jmc 1.31 CALL WRITE_LOCAL_RL('Du','I10',1,guDiss,bi,bj,k,myIter,myThid)
553     CALL WRITE_LOCAL_RL('Dv','I10',1,gvDiss,bi,bj,k,myIter,myThid)
554 edhill 1.24 CALL WRITE_LOCAL_RL('Z3','I10',1,vort3,bi,bj,k,myIter,myThid)
555     CALL WRITE_LOCAL_RL('W3','I10',1,omega3,bi,bj,k,myIter,myThid)
556     CALL WRITE_LOCAL_RL('KE','I10',1,KE,bi,bj,k,myIter,myThid)
557 jmc 1.46 CALL WRITE_LOCAL_RL('D','I10',1,hDiv,bi,bj,k,myIter,myThid)
558 edhill 1.24 ENDIF
559     #ifdef ALLOW_MNC
560     IF (useMNC .AND. snapshot_mnc) THEN
561 edhill 1.25 CALL MNC_CW_RL_W_OFFSET('D','mom_vi',bi,bj,'Ds',strain,
562     & offsets, myThid)
563     CALL MNC_CW_RL_W_OFFSET('D','mom_vi',bi,bj,'Dt',tension,
564     & offsets, myThid)
565 jmc 1.31 CALL MNC_CW_RL_W_OFFSET('D','mom_vi',bi,bj,'Du',guDiss,
566 edhill 1.25 & offsets, myThid)
567 jmc 1.31 CALL MNC_CW_RL_W_OFFSET('D','mom_vi',bi,bj,'Dv',gvDiss,
568 edhill 1.25 & offsets, myThid)
569     CALL MNC_CW_RL_W_OFFSET('D','mom_vi',bi,bj,'Z3',vort3,
570     & offsets, myThid)
571     CALL MNC_CW_RL_W_OFFSET('D','mom_vi',bi,bj,'W3',omega3,
572     & offsets, myThid)
573     CALL MNC_CW_RL_W_OFFSET('D','mom_vi',bi,bj,'KE',KE,
574     & offsets, myThid)
575 jmc 1.46 CALL MNC_CW_RL_W_OFFSET('D','mom_vi',bi,bj,'D', hDiv,
576 edhill 1.25 & offsets, myThid)
577 edhill 1.24 ENDIF
578     #endif /* ALLOW_MNC */
579 adcroft 1.1 ENDIF
580 jmc 1.41
581 jmc 1.46 #ifdef ALLOW_DIAGNOSTICS
582     IF ( useDiagnostics ) THEN
583     CALL DIAGNOSTICS_FILL(KE, 'momKE ',k,1,2,bi,bj,myThid)
584     CALL DIAGNOSTICS_FILL(hDiv, 'momHDiv ',k,1,2,bi,bj,myThid)
585     CALL DIAGNOSTICS_FILL(vort3, 'momVort3',k,1,2,bi,bj,myThid)
586     CALL DIAGNOSTICS_FILL(gU(1-Olx,1-Oly,k,bi,bj),
587     & 'Um_Advec',k,1,2,bi,bj,myThid)
588     CALL DIAGNOSTICS_FILL(gV(1-Olx,1-Oly,k,bi,bj),
589     & 'Vm_Advec',k,1,2,bi,bj,myThid)
590     IF (momViscosity) THEN
591     CALL DIAGNOSTICS_FILL(guDiss,'Um_Diss ',k,1,2,bi,bj,myThid)
592     CALL DIAGNOSTICS_FILL(gvDiss,'Vm_Diss ',k,1,2,bi,bj,myThid)
593     ENDIF
594     ENDIF
595     #endif /* ALLOW_DIAGNOSTICS */
596    
597 edhill 1.11 #endif /* ALLOW_MOM_VECINV */
598 adcroft 1.1
599     RETURN
600     END

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