source: LMDZ5/trunk/libf/phylmd/cva_driver.F90 @ 2393

Last change on this file since 2393 was 2393, checked in by jyg, 9 years ago

Add various intializations of arrays in lmdz1d.F90
and in the convection scheme. Add output variables
for boundary layer splitting.

  • Property copyright set to
    Name of program: LMDZ
    Creation date: 1984
    Version: LMDZ5
    License: CeCILL version 2
    Holder: Laboratoire de m\'et\'eorologie dynamique, CNRS, UMR 8539
    See the license file in the root directory
  • Property svn:eol-style set to native
  • Property svn:keywords set to Author Date Id Revision
File size: 46.3 KB
Line 
1
2! $Id: cva_driver.F90 2393 2015-11-18 11:25:20Z jyg $
3
4SUBROUTINE cva_driver(len, nd, ndp1, ntra, nloc, k_upper, &
5                      iflag_con, iflag_mix, iflag_ice_thermo, iflag_clos, ok_conserv_q, &
6!!                      delt, t1, q1, qs1, t1_wake, q1_wake, qs1_wake, s1_wake, &  ! jyg
7                      delt, comp_threshold, &                                      ! jyg
8                      t1, q1, qs1, t1_wake, q1_wake, qs1_wake, s1_wake, &          ! jyg
9                      u1, v1, tra1, &
10                      p1, ph1, &
11                      Ale1, Alp1, omega1, &
12                      sig1feed1, sig2feed1, wght1, &
13                      iflag1, ft1, fq1, fu1, fv1, ftra1, &
14                      precip1, kbas1, ktop1, &
15                      cbmf1, plcl1, plfc1, wbeff1, &
16                      sig1, w01, & !input/output
17                      ptop21, sigd1, &
18                      ma1, mip1, Vprecip1, Vprecipi1, upwd1, dnwd1, dnwd01, &      ! jyg
19                      qcondc1, wd1, &
20                      cape1, cin1, tvp1, &
21                      ftd1, fqd1, &
22                      Plim11, Plim21, asupmax1, supmax01, asupmaxmin1, &
23                      lalim_conv1, &
24!!                      da1,phi1,mp1,phi21,d1a1,dam1,sigij1,clw1, &        ! RomP
25!!                      elij1,evap1,ep1,epmlmMm1,eplaMm1, &                ! RomP
26                      da1, phi1, mp1, phi21, d1a1, dam1, sigij1, wghti1, & ! RomP, RL
27                      clw1, elij1, evap1, ep1, epmlmMm1, eplaMm1, &        ! RomP, RL
28                      wdtrainA1, wdtrainM1, qtc1, sigt1, tau_cld_cv, &
29                      coefw_cld_cv)                                        ! RomP, AJ
30! **************************************************************
31! *
32! CV_DRIVER                                                   *
33! *
34! *
35! written by   : Sandrine Bony-Lena , 17/05/2003, 11.19.41    *
36! modified by :                                               *
37! **************************************************************
38! **************************************************************
39
40  USE dimphy
41  USE print_control_mod, ONLY: prt_level, lunout
42  IMPLICIT NONE
43
44! .............................START PROLOGUE............................
45
46
47! All argument names (except len,nd,ntra,nloc,delt and the flags) have a "1" appended.
48! The "1" is removed for the corresponding compressed variables.
49! PARAMETERS:
50! Name            Type         Usage            Description
51! ----------      ----------     -------  ----------------------------
52
53! len           Integer        Input        first (i) dimension
54! nd            Integer        Input        vertical (k) dimension
55! ndp1          Integer        Input        nd + 1
56! ntra          Integer        Input        number of tracors
57! nloc          Integer        Input        dimension of arrays for compressed fields
58! k_upper       Integer        Input        upmost level for vertical loops
59! iflag_con     Integer        Input        version of convect (3/4)
60! iflag_mix     Integer        Input        version of mixing  (0/1/2)
61! iflag_ice_thermo Integer        Input        accounting for ice thermodynamics (0/1)
62! iflag_clos    Integer        Input        version of closure (0/1)
63! tau_cld_cv    Real           Input        characteristic time of dissipation of mixing fluxes
64! coefw_cld_cv  Real           Input        coefficient for updraft velocity in convection
65! ok_conserv_q  Logical        Input        when true corrections for water conservation are swtiched on
66! delt          Real           Input        time step
67! comp_threshold Real           Input       threshold on the fraction of convective points below which
68!                                            fields  are compressed
69! t1            Real           Input        temperature (sat draught envt)
70! q1            Real           Input        specific hum (sat draught envt)
71! qs1           Real           Input        sat specific hum (sat draught envt)
72! t1_wake       Real           Input        temperature (unsat draught envt)
73! q1_wake       Real           Input        specific hum(unsat draught envt)
74! qs1_wake      Real           Input        sat specific hum(unsat draughts envt)
75! s1_wake       Real           Input        fractionnal area covered by wakes
76! u1            Real           Input        u-wind
77! v1            Real           Input        v-wind
78! tra1          Real           Input        tracors
79! p1            Real           Input        full level pressure
80! ph1           Real           Input        half level pressure
81! ALE1          Real           Input        Available lifting Energy
82! ALP1          Real           Input        Available lifting Power
83! sig1feed1     Real           Input        sigma coord at lower bound of feeding layer
84! sig2feed1     Real           Input        sigma coord at upper bound of feeding layer
85! wght1         Real           Input        weight density determining the feeding mixture
86! iflag1        Integer        Output       flag for Emanuel conditions
87! ft1           Real           Output       temp tend
88! fq1           Real           Output       spec hum tend
89! fu1           Real           Output       u-wind tend
90! fv1           Real           Output       v-wind tend
91! ftra1         Real           Output       tracor tend
92! precip1       Real           Output       precipitation
93! kbas1         Integer        Output       cloud base level
94! ktop1         Integer        Output       cloud top level
95! cbmf1         Real           Output       cloud base mass flux
96! sig1          Real           In/Out       section adiabatic updraft
97! w01           Real           In/Out       vertical velocity within adiab updraft
98! ptop21        Real           In/Out       top of entraining zone
99! Ma1           Real           Output       mass flux adiabatic updraft
100! mip1          Real           Output       mass flux shed by the adiabatic updraft
101! Vprecip1      Real           Output       vertical profile of total precipitation
102! Vprecipi1     Real           Output       vertical profile of ice precipitation
103! upwd1         Real           Output       total upward mass flux (adiab+mixed)
104! dnwd1         Real           Output       saturated downward mass flux (mixed)
105! dnwd01        Real           Output       unsaturated downward mass flux
106! qcondc1       Real           Output       in-cld mixing ratio of condensed water
107! wd1           Real           Output       downdraft velocity scale for sfc fluxes
108! cape1         Real           Output       CAPE
109! cin1          Real           Output       CIN
110! tvp1          Real           Output       adiab lifted parcell virt temp
111! ftd1          Real           Output       precip temp tend
112! fqt1          Real           Output       precip spec hum tend
113! Plim11        Real           Output
114! Plim21        Real           Output
115! asupmax1      Real           Output
116! supmax01      Real           Output
117! asupmaxmin1   Real           Output
118
119! ftd1          Real           Output  Array of temperature tendency due to precipitations (K/s) of dimension ND,
120!                                      defined at same grid levels as T, Q, QS and P.
121
122! fqd1          Real           Output  Array of specific humidity tendencies due to precipitations ((gm/gm)/s)
123!                                      of dimension ND, defined at same grid levels as T, Q, QS and P.
124
125! wdtrainA1     Real           Output   precipitation detrained from adiabatic draught;
126!                                         used in tracer transport (cvltr)
127! wdtrainM1     Real           Output   precipitation detrained from mixed draughts;
128!                                         used in tracer transport (cvltr)
129! da1           Real           Output     used in tracer transport (cvltr)
130! phi1          Real           Output     used in tracer transport (cvltr)
131! mp1           Real           Output     used in tracer transport (cvltr)
132! qtc1          Real           Output     specific humidity in convection
133! sigt1         Real           Output     surface fraction in adiabatic updrafts                                         
134! phi21         Real           Output     used in tracer transport (cvltr)
135                                         
136! d1a1          Real           Output     used in tracer transport (cvltr)
137! dam1          Real           Output     used in tracer transport (cvltr)
138                                         
139! epmlmMm1      Real           Output     used in tracer transport (cvltr)
140! eplaMm1       Real           Output     used in tracer transport (cvltr)
141                                         
142! evap1         Real           Output   
143! ep1           Real           Output   
144! sigij1        Real           Output     used in tracer transport (cvltr)
145! elij1         Real           Output
146! wghti1        Real           Output   final weight of the feeding layers,
147!                                         used in tracer transport (cvltr)
148
149
150! S. Bony, Mar 2002:
151! * Several modules corresponding to different physical processes
152! * Several versions of convect may be used:
153!         - iflag_con=3: version lmd  (previously named convect3)
154!         - iflag_con=4: version 4.3b (vect. version, previously convect1/2)
155! + tard: - iflag_con=5: version lmd with ice (previously named convectg)
156! S. Bony, Oct 2002:
157! * Vectorization of convect3 (ie version lmd)
158
159! ..............................END PROLOGUE.............................
160
161
162
163! Input
164  INTEGER, INTENT (IN)                               :: len
165  INTEGER, INTENT (IN)                               :: nd
166  INTEGER, INTENT (IN)                               :: ndp1
167  INTEGER, INTENT (IN)                               :: ntra
168  INTEGER, INTENT(IN)                                :: nloc ! (nloc=klon)  pour l'instant
169  INTEGER, INTENT (IN)                               :: k_upper
170  INTEGER, INTENT (IN)                               :: iflag_con
171  INTEGER, INTENT (IN)                               :: iflag_mix
172  INTEGER, INTENT (IN)                               :: iflag_ice_thermo
173  INTEGER, INTENT (IN)                               :: iflag_clos
174  LOGICAL, INTENT (IN)                               :: ok_conserv_q
175  REAL, INTENT (IN)                                  :: tau_cld_cv
176  REAL, INTENT (IN)                                  :: coefw_cld_cv
177  REAL, INTENT (IN)                                  :: delt
178  REAL, INTENT (IN)                                  :: comp_threshold
179  REAL, DIMENSION (len, nd), INTENT (IN)             :: t1
180  REAL, DIMENSION (len, nd), INTENT (IN)             :: q1
181  REAL, DIMENSION (len, nd), INTENT (IN)             :: qs1
182  REAL, DIMENSION (len, nd), INTENT (IN)             :: t1_wake
183  REAL, DIMENSION (len, nd), INTENT (IN)             :: q1_wake
184  REAL, DIMENSION (len, nd), INTENT (IN)             :: qs1_wake
185  REAL, DIMENSION (len), INTENT (IN)                 :: s1_wake
186  REAL, DIMENSION (len, nd), INTENT (IN)             :: u1
187  REAL, DIMENSION (len, nd), INTENT (IN)             :: v1
188  REAL, DIMENSION (len, nd, ntra), INTENT (IN)       :: tra1
189  REAL, DIMENSION (len, nd), INTENT (IN)             :: p1
190  REAL, DIMENSION (len, ndp1), INTENT (IN)           :: ph1
191  REAL, DIMENSION (len), INTENT (IN)                 :: Ale1
192  REAL, DIMENSION (len), INTENT (IN)                 :: Alp1
193  REAL, DIMENSION (len, nd), INTENT (IN)             :: omega1
194  REAL, INTENT (IN)                                  :: sig1feed1 ! pressure at lower bound of feeding layer
195  REAL, INTENT (IN)                                  :: sig2feed1 ! pressure at upper bound of feeding layer
196  REAL, DIMENSION (nd), INTENT (IN)                  :: wght1     ! weight density determining the feeding mixture
197  INTEGER, DIMENSION (len), INTENT (IN)              :: lalim_conv1
198
199! Input/Output
200  REAL, DIMENSION (len, nd), INTENT (INOUT)          :: sig1
201  REAL, DIMENSION (len, nd), INTENT (INOUT)          :: w01
202
203! Output
204  INTEGER, DIMENSION (len), INTENT (OUT)             :: iflag1
205  REAL, DIMENSION (len, nd), INTENT (OUT)            :: ft1
206  REAL, DIMENSION (len, nd), INTENT (OUT)            :: fq1
207  REAL, DIMENSION (len, nd), INTENT (OUT)            :: fu1
208  REAL, DIMENSION (len, nd), INTENT (OUT)            :: fv1
209  REAL, DIMENSION (len, nd, ntra), INTENT (OUT)      :: ftra1
210  REAL, DIMENSION (len), INTENT (OUT)                :: precip1
211  INTEGER, DIMENSION (len), INTENT (OUT)             :: kbas1
212  INTEGER, DIMENSION (len), INTENT (OUT)             :: ktop1
213  REAL, DIMENSION (len), INTENT (OUT)                :: cbmf1
214  REAL, DIMENSION (len), INTENT (OUT)                :: plcl1
215  REAL, DIMENSION (len), INTENT (OUT)                :: plfc1
216  REAL, DIMENSION (len), INTENT (OUT)                :: wbeff1
217  REAL, DIMENSION (len), INTENT (OUT)                :: ptop21
218  REAL, DIMENSION (len), INTENT (OUT)                :: sigd1
219  REAL, DIMENSION (len, nd), INTENT (OUT)            :: ma1
220  REAL, DIMENSION (len, nd), INTENT (OUT)            :: mip1
221! real Vprecip1(len,nd)
222  REAL, DIMENSION (len, ndp1), INTENT (OUT)          :: vprecip1
223  REAL, DIMENSION (len, ndp1), INTENT (OUT)          :: vprecipi1
224  REAL, DIMENSION (len, nd), INTENT (OUT)            :: upwd1
225  REAL, DIMENSION (len, nd), INTENT (OUT)            :: dnwd1
226  REAL, DIMENSION (len, nd), INTENT (OUT)            :: dnwd01
227  REAL, DIMENSION (len, nd), INTENT (OUT)            :: qcondc1         ! cld
228  REAL, DIMENSION (len), INTENT (OUT)                :: wd1             ! gust
229  REAL, DIMENSION (len), INTENT (OUT)                :: cape1
230  REAL, DIMENSION (len), INTENT (OUT)                :: cin1
231  REAL, DIMENSION (len, nd), INTENT (OUT)            :: tvp1
232
233!AC!
234!!      real da1(len,nd),phi1(len,nd,nd)
235!!      real da(len,nd),phi(len,nd,nd)
236!AC!
237  REAL, DIMENSION (len, nd), INTENT (OUT)            :: ftd1
238  REAL, DIMENSION (len, nd), INTENT (OUT)            :: fqd1
239  REAL, DIMENSION (len), INTENT (OUT)                :: Plim11
240  REAL, DIMENSION (len), INTENT (OUT)                :: Plim21
241  REAL, DIMENSION (len, nd), INTENT (OUT)            :: asupmax1
242  REAL, DIMENSION (len), INTENT (OUT)                :: supmax01
243  REAL, DIMENSION (len), INTENT (OUT)                :: asupmaxmin1
244  REAL, DIMENSION (len, nd), INTENT (OUT)            :: qtc1            ! cld
245  REAL, DIMENSION (len, nd), INTENT (OUT)            :: sigt1           ! cld
246
247! RomP >>>
248  REAL, DIMENSION (len, nd), INTENT (OUT)            :: wdtrainA1, wdtrainM1
249  REAL, DIMENSION (len, nd), INTENT (OUT)            :: da1, mp1
250  REAL, DIMENSION (len, nd, nd), INTENT (OUT)        :: phi1
251  REAL, DIMENSION (len, nd, nd), INTENT (OUT)        :: epmlmMm1
252  REAL, DIMENSION (len, nd), INTENT (OUT)            :: eplaMm1
253  REAL, DIMENSION (len, nd), INTENT (OUT)            :: evap1, ep1
254  REAL, DIMENSION (len, nd, nd), INTENT (OUT)        :: sigij1, elij1
255!JYG,RL
256  REAL, DIMENSION (len, nd), INTENT (OUT)            :: wghti1      ! final weight of the feeding layers
257!JYG,RL
258  REAL, DIMENSION (len, nd, nd), INTENT (OUT)        :: phi21
259  REAL, DIMENSION (len, nd), INTENT (OUT)            :: d1a1, dam1
260! RomP <<<
261
262! -------------------------------------------------------------------
263! Prolog by Kerry Emanuel.
264! -------------------------------------------------------------------
265! --- ARGUMENTS
266! -------------------------------------------------------------------
267! --- On input:
268
269! t:   Array of absolute temperature (K) of dimension ND, with first
270! index corresponding to lowest model level. Note that this array
271! will be altered by the subroutine if dry convective adjustment
272! occurs and if IPBL is not equal to 0.
273
274! q:   Array of specific humidity (gm/gm) of dimension ND, with first
275! index corresponding to lowest model level. Must be defined
276! at same grid levels as T. Note that this array will be altered
277! if dry convective adjustment occurs and if IPBL is not equal to 0.
278
279! qs:  Array of saturation specific humidity of dimension ND, with first
280! index corresponding to lowest model level. Must be defined
281! at same grid levels as T. Note that this array will be altered
282! if dry convective adjustment occurs and if IPBL is not equal to 0.
283
284! t_wake: Array of absolute temperature (K), seen by unsaturated draughts,
285! of dimension ND, with first index corresponding to lowest model level.
286
287! q_wake: Array of specific humidity (gm/gm), seen by unsaturated draughts,
288! of dimension ND, with first index corresponding to lowest model level.
289! Must be defined at same grid levels as T.
290
291! qs_wake: Array of saturation specific humidity, seen by unsaturated draughts,
292! of dimension ND, with first index corresponding to lowest model level.
293! Must be defined at same grid levels as T.
294
295! s_wake: Array of fractionnal area occupied by the wakes.
296
297! u:   Array of zonal wind velocity (m/s) of dimension ND, witth first
298! index corresponding with the lowest model level. Defined at
299! same levels as T. Note that this array will be altered if
300! dry convective adjustment occurs and if IPBL is not equal to 0.
301
302! v:   Same as u but for meridional velocity.
303
304! tra: Array of passive tracer mixing ratio, of dimensions (ND,NTRA),
305! where NTRA is the number of different tracers. If no
306! convective tracer transport is needed, define a dummy
307! input array of dimension (ND,1). Tracers are defined at
308! same vertical levels as T. Note that this array will be altered
309! if dry convective adjustment occurs and if IPBL is not equal to 0.
310
311! p:   Array of pressure (mb) of dimension ND, with first
312! index corresponding to lowest model level. Must be defined
313! at same grid levels as T.
314
315! ph:  Array of pressure (mb) of dimension ND+1, with first index
316! corresponding to lowest level. These pressures are defined at
317! levels intermediate between those of P, T, Q and QS. The first
318! value of PH should be greater than (i.e. at a lower level than)
319! the first value of the array P.
320
321! ALE:  Available lifting Energy
322
323! ALP:  Available lifting Power
324
325! nl:  The maximum number of levels to which convection can penetrate, plus 1.
326!       NL MUST be less than or equal to ND-1.
327
328! delt: The model time step (sec) between calls to CONVECT
329
330! ----------------------------------------------------------------------------
331! ---   On Output:
332
333! iflag: An output integer whose value denotes the following:
334!       VALUE   INTERPRETATION
335!       -----   --------------
336!         0     Moist convection occurs.
337!         1     Moist convection occurs, but a CFL condition
338!               on the subsidence warming is violated. This
339!               does not cause the scheme to terminate.
340!         2     Moist convection, but no precip because ep(inb) lt 0.0001
341!         3     No moist convection because new cbmf is 0 and old cbmf is 0.
342!         4     No moist convection; atmosphere is not
343!               unstable
344!         6     No moist convection because ihmin le minorig.
345!         7     No moist convection because unreasonable
346!               parcel level temperature or specific humidity.
347!         8     No moist convection: lifted condensation
348!               level is above the 200 mb level.
349!         9     No moist convection: cloud base is higher
350!               then the level NL-1.
351
352! ft:   Array of temperature tendency (K/s) of dimension ND, defined at same
353!       grid levels as T, Q, QS and P.
354
355! fq:   Array of specific humidity tendencies ((gm/gm)/s) of dimension ND,
356!       defined at same grid levels as T, Q, QS and P.
357
358! fu:   Array of forcing of zonal velocity (m/s^2) of dimension ND,
359!      defined at same grid levels as T.
360
361! fv:   Same as FU, but for forcing of meridional velocity.
362
363! ftra: Array of forcing of tracer content, in tracer mixing ratio per
364!       second, defined at same levels as T. Dimensioned (ND,NTRA).
365
366! precip: Scalar convective precipitation rate (mm/day).
367
368! wd:   A convective downdraft velocity scale. For use in surface
369!       flux parameterizations. See convect.ps file for details.
370
371! tprime: A convective downdraft temperature perturbation scale (K).
372!         For use in surface flux parameterizations. See convect.ps
373!         file for details.
374
375! qprime: A convective downdraft specific humidity
376!         perturbation scale (gm/gm).
377!         For use in surface flux parameterizations. See convect.ps
378!         file for details.
379
380! cbmf: The cloud base mass flux ((kg/m**2)/s). THIS SCALAR VALUE MUST
381!       BE STORED BY THE CALLING PROGRAM AND RETURNED TO CONVECT AT
382!       ITS NEXT CALL. That is, the value of CBMF must be "remembered"
383!       by the calling program between calls to CONVECT.
384
385! det:   Array of detrainment mass flux of dimension ND.
386! -------------------------------------------------------------------
387
388! Local (non compressed) arrays
389
390
391  INTEGER i, k, n, il, j
392  INTEGER nword1, nword2, nword3, nword4
393  INTEGER icbmax
394  INTEGER nk1(klon)
395  INTEGER icb1(klon)
396  INTEGER icbs1(klon)
397
398  LOGICAL ok_inhib ! True => possible inhibition of convection by dryness
399  LOGICAL, SAVE :: debut = .TRUE.
400!$OMP THREADPRIVATE(debut)
401
402  REAL coef_convective(len)   ! = 1 for convective points, = 0 otherwise
403  REAL tnk1(klon)
404  REAL thnk1(klon)
405  REAL qnk1(klon)
406  REAL gznk1(klon)
407  REAL pnk1(klon)
408  REAL qsnk1(klon)
409  REAL unk1(klon)
410  REAL vnk1(klon)
411  REAL cpnk1(klon)
412  REAL hnk1(klon)
413  REAL pbase1(klon)
414  REAL buoybase1(klon)
415
416  REAL lf1(klon, klev), lf1_wake(klon, klev)
417  REAL lv1(klon, klev), lv1_wake(klon, klev)
418  REAL cpn1(klon, klev), cpn1_wake(klon, klev)
419  REAL tv1(klon, klev), tv1_wake(klon, klev)
420  REAL gz1(klon, klev), gz1_wake(klon, klev)
421  REAL hm1(klon, klev), hm1_wake(klon, klev)
422  REAL h1(klon, klev), h1_wake(klon, klev)
423  REAL tp1(klon, klev)
424  REAL clw1(klon, klev)
425  REAL th1(klon, klev), th1_wake(klon, klev)
426
427  REAL bid(klon, klev) ! dummy array
428
429  INTEGER ncum
430
431  INTEGER j1feed(klon)
432  INTEGER j2feed(klon)
433  REAL p1feed1(len) ! pressure at lower bound of feeding layer
434  REAL p2feed1(len) ! pressure at upper bound of feeding layer
435!JYG,RL
436!!      real wghti1(len,nd) ! weights of the feeding layers
437!JYG,RL
438
439! (local) compressed fields:
440
441
442  INTEGER idcum(nloc)
443!jyg<
444  LOGICAL compress    ! True if compression occurs
445!>jyg
446  INTEGER iflag(nloc), nk(nloc), icb(nloc)
447  INTEGER nent(nloc, klev)
448  INTEGER icbs(nloc)
449  INTEGER inb(nloc), inbis(nloc)
450
451  REAL cbmf(nloc), plcl(nloc), plfc(nloc), wbeff(nloc)
452  REAL t(nloc, klev), q(nloc, klev), qs(nloc, klev)
453  REAL t_wake(nloc, klev), q_wake(nloc, klev), qs_wake(nloc, klev)
454  REAL s_wake(nloc)
455  REAL u(nloc, klev), v(nloc, klev)
456  REAL gz(nloc, klev), h(nloc, klev), hm(nloc, klev)
457  REAL h_wake(nloc, klev), hm_wake(nloc, klev)
458  REAL lv(nloc, klev), lf(nloc, klev), cpn(nloc, klev)
459  REAL lv_wake(nloc, klev), lf_wake(nloc, klev), cpn_wake(nloc, klev)
460  REAL p(nloc, klev), ph(nloc, klev+1), tv(nloc, klev), tp(nloc, klev)
461  REAL tv_wake(nloc, klev)
462  REAL clw(nloc, klev)
463  REAL dph(nloc, klev)
464  REAL pbase(nloc), buoybase(nloc), th(nloc, klev)
465  REAL th_wake(nloc, klev)
466  REAL tvp(nloc, klev)
467  REAL sig(nloc, klev), w0(nloc, klev), ptop2(nloc)
468  REAL hp(nloc, klev), ep(nloc, klev), sigp(nloc, klev)
469  REAL buoy(nloc, klev)
470  REAL cape(nloc)
471  REAL cin(nloc)
472  REAL m(nloc, klev)
473  REAL ment(nloc, klev, klev), sigij(nloc, klev, klev)
474  REAL qent(nloc, klev, klev)
475  REAL hent(nloc, klev, klev)
476  REAL uent(nloc, klev, klev), vent(nloc, klev, klev)
477  REAL ments(nloc, klev, klev), qents(nloc, klev, klev)
478  REAL elij(nloc, klev, klev)
479  REAL supmax(nloc, klev)
480  REAL Ale(nloc), Alp(nloc), coef_clos(nloc)
481  REAL omega(nloc,klev)
482  REAL sigd(nloc)
483! real mp(nloc,klev), qp(nloc,klev), up(nloc,klev), vp(nloc,klev)
484! real wt(nloc,klev), water(nloc,klev), evap(nloc,klev), ice(nloc,klev)
485! real b(nloc,klev), sigd(nloc)
486! save mp,qp,up,vp,wt,water,evap,b
487  REAL, SAVE, ALLOCATABLE :: mp(:, :), qp(:, :), up(:, :), vp(:, :)
488  REAL, SAVE, ALLOCATABLE :: wt(:, :), water(:, :), evap(:, :)
489  REAL, SAVE, ALLOCATABLE :: ice(:, :), fondue(:, :), b(:, :)
490  REAL, SAVE, ALLOCATABLE :: frac(:, :), faci(:, :)
491!$OMP THREADPRIVATE(mp,qp,up,vp,wt,water,evap,ice,fondue,b,frac,faci)
492  REAL ft(nloc, klev), fq(nloc, klev)
493  REAL ftd(nloc, klev), fqd(nloc, klev)
494  REAL fu(nloc, klev), fv(nloc, klev)
495  REAL upwd(nloc, klev), dnwd(nloc, klev), dnwd0(nloc, klev)
496  REAL ma(nloc, klev), mip(nloc, klev)
497!!  REAL tls(nloc, klev), tps(nloc, klev)                 ! unused . jyg
498  REAL qprime(nloc), tprime(nloc)
499  REAL precip(nloc)
500! real Vprecip(nloc,klev)
501  REAL vprecip(nloc, klev+1)
502  REAL vprecipi(nloc, klev+1)
503  REAL tra(nloc, klev, ntra), trap(nloc, klev, ntra)
504  REAL ftra(nloc, klev, ntra), traent(nloc, klev, klev, ntra)
505  REAL qcondc(nloc, klev)      ! cld
506  REAL wd(nloc)                ! gust
507  REAL Plim1(nloc), plim2(nloc)
508  REAL asupmax(nloc, klev)
509  REAL supmax0(nloc)
510  REAL asupmaxmin(nloc)
511
512  REAL tnk(nloc), qnk(nloc), gznk(nloc)
513  REAL wghti(nloc, nd)
514  REAL hnk(nloc), unk(nloc), vnk(nloc)
515
516  REAL qtc(nloc, klev)         ! cld
517  REAL sigt(nloc, klev)        ! cld
518 
519! RomP >>>
520  REAL wdtrainA(nloc, klev), wdtrainM(nloc, klev)
521  REAL da(len, nd), phi(len, nd, nd)
522  REAL epmlmMm(nloc, klev, klev), eplaMm(nloc, klev)
523  REAL phi2(len, nd, nd)
524  REAL d1a(len, nd), dam(len, nd)
525! RomP <<<
526
527  LOGICAL, SAVE :: first = .TRUE.
528!$OMP THREADPRIVATE(first)
529  CHARACTER (LEN=20) :: modname = 'cva_driver'
530  CHARACTER (LEN=80) :: abort_message
531
532  INTEGER,SAVE                                       :: igout=1
533!$OMP THREADPRIVATE(igout)
534
535
536! print *, 't1, t1_wake ',(k,t1(1,k),t1_wake(1,k),k=1,klev)
537! print *, 'q1, q1_wake ',(k,q1(1,k),q1_wake(1,k),k=1,klev)
538
539! -------------------------------------------------------------------
540! --- SET CONSTANTS AND PARAMETERS
541! -------------------------------------------------------------------
542
543  IF (first) THEN
544    ALLOCATE (mp(nloc,klev), qp(nloc,klev), up(nloc,klev))
545    ALLOCATE (vp(nloc,klev), wt(nloc,klev), water(nloc,klev))
546    ALLOCATE (ice(nloc,klev), fondue(nloc,klev))
547    ALLOCATE (evap(nloc,klev), b(nloc,klev))
548    ALLOCATE (frac(nloc,klev), faci(nloc,klev))
549    first = .FALSE.
550  END IF
551! -- set simulation flags:
552! (common cvflag)
553
554  CALL cv_flag(iflag_ice_thermo)
555
556! -- set thermodynamical constants:
557! (common cvthermo)
558
559  CALL cv_thermo(iflag_con)
560
561! -- set convect parameters
562
563! includes microphysical parameters and parameters that
564! control the rate of approach to quasi-equilibrium)
565! (common cvparam)
566
567  IF (iflag_con==3) THEN
568    CALL cv3_param(nd, k_upper, delt)
569
570  END IF
571
572  IF (iflag_con==4) THEN
573    CALL cv_param(nd)
574  END IF
575
576! ---------------------------------------------------------------------
577! --- INITIALIZE OUTPUT ARRAYS AND PARAMETERS
578! ---------------------------------------------------------------------
579  nword1 = len
580  nword2 = len*nd
581  nword3 = len*nd*ntra
582  nword4 = len*nd*nd
583
584  iflag1(:) = 0
585  ktop1(:) = 0
586  kbas1(:) = 0
587  ft1(:, :) = 0.0
588  fq1(:, :) = 0.0
589  fu1(:, :) = 0.0
590  fv1(:, :) = 0.0
591  ftra1(:, :, :) = 0.
592  precip1(:) = 0.
593  cbmf1(:) = 0.
594  plcl1(:) = 0.
595  plfc1(:) = 0.
596  wbeff1(:) = 0.
597  ptop21(:) = 0.
598  sigd1(:) = 0.
599  ma1(:, :) = 0.
600  mip1(:, :) = 0.
601  vprecip1(:, :) = 0.
602  vprecipi1(:, :) = 0.
603  upwd1(:, :) = 0.
604  dnwd1(:, :) = 0.
605  dnwd01(:, :) = 0.
606  qcondc1(:, :) = 0.
607  wd1(:) = 0.
608  cape1(:) = 0.
609  cin1(:) = 0.
610  tvp1(:, :) = 0.
611  ftd1(:, :) = 0.
612  fqd1(:, :) = 0.
613  Plim11(:) = 0.
614  Plim21(:) = 0.
615  asupmax1(:, :) = 0.
616  supmax01(:) = 0.
617  asupmaxmin1(:) = 0.
618
619  DO il = 1, len
620    cin1(il) = -100000.
621    cape1(il) = -1.
622  END DO
623
624  IF (iflag_con==3) THEN
625    DO il = 1, len
626      sig1(il, nd) = sig1(il, nd) + 1.
627      sig1(il, nd) = amin1(sig1(il,nd), 12.1)
628    END DO
629  END IF
630
631! RomP >>>
632  sigt1(:, :) = 0.
633  qtc1(:, :) = 0.
634  wdtrainA1(:, :) = 0.
635  wdtrainM1(:, :) = 0.
636  da1(:, :) = 0.
637  phi1(:, :, :) = 0.
638  epmlmMm1(:, :, :) = 0.
639  eplaMm1(:, :) = 0.
640  mp1(:, :) = 0.
641  evap1(:, :) = 0.
642  ep1(:, :) = 0.
643  sigij1(:, :, :) = 0.
644  elij1(:, :, :) = 0.
645  wghti1(:,:) = 0.
646  phi21(:, :, :) = 0.
647  d1a1(:, :) = 0.
648  dam1(:, :) = 0.
649! RomP <<<
650! ---------------------------------------------------------------------
651! --- INITIALIZE LOCAL ARRAYS AND PARAMETERS
652! ---------------------------------------------------------------------
653
654  DO il = 1, nloc
655    coef_clos(il) = 1.
656  END DO
657
658! --------------------------------------------------------------------
659! --- CALCULATE ARRAYS OF GEOPOTENTIAL, HEAT CAPACITY & STATIC ENERGY
660! --------------------------------------------------------------------
661
662  IF (iflag_con==3) THEN
663
664    IF (debut) THEN
665      PRINT *, 'Emanuel version 3 nouvelle'
666    END IF
667! print*,'t1, q1 ',t1,q1
668    CALL cv3_prelim(len, nd, ndp1, t1, q1, p1, ph1, &           ! nd->na
669                    lv1, lf1, cpn1, tv1, gz1, h1, hm1, th1)
670
671
672    CALL cv3_prelim(len, nd, ndp1, t1_wake, q1_wake, p1, ph1, & ! nd->na
673                    lv1_wake, lf1_wake, cpn1_wake, tv1_wake, gz1_wake, &
674                    h1_wake, bid, th1_wake)
675
676  END IF
677
678  IF (iflag_con==4) THEN
679    PRINT *, 'Emanuel version 4 '
680    CALL cv_prelim(len, nd, ndp1, t1, q1, p1, ph1, &
681                   lv1, cpn1, tv1, gz1, h1, hm1)
682  END IF
683
684! --------------------------------------------------------------------
685! --- CONVECTIVE FEED
686! --------------------------------------------------------------------
687
688! compute feeding layer potential temperature and mixing ratio :
689
690! get bounds of feeding layer
691
692! test niveaux couche alimentation KE
693  IF (sig1feed1==sig2feed1) THEN
694    WRITE (lunout, *) 'impossible de choisir sig1feed=sig2feed'
695    WRITE (lunout, *) 'changer la valeur de sig2feed dans physiq.def'
696    abort_message = ''
697    CALL abort_physic(modname, abort_message, 1)
698  END IF
699
700  DO i = 1, len
701    p1feed1(i) = sig1feed1*ph1(i, 1)
702    p2feed1(i) = sig2feed1*ph1(i, 1)
703!test maf
704!   p1feed1(i)=ph1(i,1)
705!   p2feed1(i)=ph1(i,2)
706!   p2feed1(i)=ph1(i,3)
707!testCR: on prend la couche alim des thermiques
708!   p2feed1(i)=ph1(i,lalim_conv1(i)+1)
709!   print*,'lentr=',lentr(i),ph1(i,lentr(i)+1),ph1(i,2)
710  END DO
711
712  IF (iflag_con==3) THEN
713  END IF
714  DO i = 1, len
715! print*,'avant cv3_feed Plim',p1feed1(i),p2feed1(i)
716  END DO
717  IF (iflag_con==3) THEN
718
719! print*, 'IFLAG1 avant cv3_feed'
720! print*,'len,nd',len,nd
721! write(*,'(64i1)') iflag1(2:klon-1)
722
723    CALL cv3_feed(len, nd, ok_conserv_q, &                 ! nd->na
724                  t1, q1, u1, v1, p1, ph1, hm1, gz1, &
725                  p1feed1, p2feed1, wght1, &
726                  wghti1, tnk1, thnk1, qnk1, qsnk1, unk1, vnk1, &
727                  cpnk1, hnk1, nk1, icb1, icbmax, iflag1, gznk1, plcl1)
728  END IF
729
730! print*, 'IFLAG1 apres cv3_feed'
731! print*,'len,nd',len,nd
732! write(*,'(64i1)') iflag1(2:klon-1)
733
734  IF (iflag_con==4) THEN
735    CALL cv_feed(len, nd, t1, q1, qs1, p1, hm1, gz1, &
736                 nk1, icb1, icbmax, iflag1, tnk1, qnk1, gznk1, plcl1)
737  END IF
738
739! print *, 'cv3_feed-> iflag1, plcl1 ',iflag1(1),plcl1(1)
740
741! --------------------------------------------------------------------
742! --- UNDILUTE (ADIABATIC) UPDRAFT / 1st part
743! (up through ICB for convect4, up through ICB+1 for convect3)
744! Calculates the lifted parcel virtual temperature at nk, the
745! actual temperature, and the adiabatic liquid water content.
746! --------------------------------------------------------------------
747
748  IF (iflag_con==3) THEN
749
750    CALL cv3_undilute1(len, nd, t1, qs1, gz1, plcl1, p1, icb1, tnk1, qnk1, & ! nd->na
751                       gznk1, tp1, tvp1, clw1, icbs1)
752  END IF
753
754
755  IF (iflag_con==4) THEN
756    CALL cv_undilute1(len, nd, t1, q1, qs1, gz1, p1, nk1, icb1, icbmax, &
757                      tp1, tvp1, clw1)
758  END IF
759
760! -------------------------------------------------------------------
761! --- TRIGGERING
762! -------------------------------------------------------------------
763
764! print *,' avant triggering, iflag_con ',iflag_con
765
766  IF (iflag_con==3) THEN
767
768    CALL cv3_trigger(len, nd, icb1, plcl1, p1, th1, tv1, tvp1, thnk1, & ! nd->na
769                      pbase1, buoybase1, iflag1, sig1, w01)
770
771
772! print*, 'IFLAG1 apres cv3_triger'
773! print*,'len,nd',len,nd
774! write(*,'(64i1)') iflag1(2:klon-1)
775
776! call dump2d(iim,jjm-1,sig1(2)
777  END IF
778
779  IF (iflag_con==4) THEN
780    CALL cv_trigger(len, nd, icb1, cbmf1, tv1, tvp1, iflag1)
781  END IF
782
783
784! =====================================================================
785! --- IF THIS POINT IS REACHED, MOIST CONVECTIVE ADJUSTMENT IS NECESSARY
786! =====================================================================
787
788!  Determine the number "ncum" of convective gridpoints, the list "idcum" of convective
789!  gridpoints and the weights "coef_convective" (= 1. for convective gridpoints and = 0.
790!  elsewhere).
791  ncum = 0
792  coef_convective(:) = 0.
793  DO i = 1, len
794    IF (iflag1(i)==0) THEN
795      coef_convective(i) = 1.
796      ncum = ncum + 1
797      idcum(ncum) = i
798    END IF
799  END DO
800
801! print*,'klon, ncum = ',len,ncum
802
803  IF (ncum>0) THEN
804
805! ^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
806! --- COMPRESS THE FIELDS
807!       (-> vectorization over convective gridpoints)
808! ^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
809
810    IF (iflag_con==3) THEN
811! print*,'ncum tv1 ',ncum,tv1
812! print*,'tvp1 ',tvp1
813!jyg<
814!   If the fraction of convective points is larger than comp_threshold, then compression
815!   is assumed useless.
816!
817  compress = ncum .lt. len*comp_threshold
818!
819  IF (.not. compress) THEN
820    DO i = 1,len
821      idcum(i) = i
822    ENDDO
823  ENDIF
824!
825!>jyg
826      CALL cv3a_compress(len, nloc, ncum, nd, ntra, compress, &
827                         iflag1, nk1, icb1, icbs1, &
828                         plcl1, tnk1, qnk1, gznk1, hnk1, unk1, vnk1, &
829                         wghti1, pbase1, buoybase1, &
830                         t1, q1, qs1, t1_wake, q1_wake, qs1_wake, s1_wake, &
831                         u1, v1, gz1, th1, th1_wake, &
832                         tra1, &
833                         h1, lv1, lf1, cpn1, p1, ph1, tv1, tp1, tvp1, clw1, &
834                         h1_wake, lv1_wake, lf1_wake, cpn1_wake, tv1_wake, &
835                         sig1, w01, ptop21, &
836                         Ale1, Alp1, omega1, &
837                         iflag, nk, icb, icbs, &
838                         plcl, tnk, qnk, gznk, hnk, unk, vnk, &
839                         wghti, pbase, buoybase, &
840                         t, q, qs, t_wake, q_wake, qs_wake, s_wake, &
841                         u, v, gz, th, th_wake, &
842                         tra, &
843                         h, lv, lf, cpn, p, ph, tv, tp, tvp, clw, &
844                         h_wake, lv_wake, lf_wake, cpn_wake, tv_wake, &
845                         sig, w0, ptop2, &
846                         Ale, Alp, omega)
847
848! print*,'tv ',tv
849! print*,'tvp ',tvp
850
851    END IF
852
853    IF (iflag_con==4) THEN
854      CALL cv_compress(len, nloc, ncum, nd, &
855                       iflag1, nk1, icb1, &
856                       cbmf1, plcl1, tnk1, qnk1, gznk1, &
857                       t1, q1, qs1, u1, v1, gz1, &
858                       h1, lv1, cpn1, p1, ph1, tv1, tp1, tvp1, clw1, &
859                       iflag, nk, icb, &
860                       cbmf, plcl, tnk, qnk, gznk, &
861                       t, q, qs, u, v, gz, h, lv, cpn, p, ph, tv, tp, tvp, clw, &
862                       dph)
863    END IF
864
865! -------------------------------------------------------------------
866! --- UNDILUTE (ADIABATIC) UPDRAFT / second part :
867! ---   FIND THE REST OF THE LIFTED PARCEL TEMPERATURES
868! ---   &
869! ---   COMPUTE THE PRECIPITATION EFFICIENCIES AND THE
870! ---   FRACTION OF PRECIPITATION FALLING OUTSIDE OF CLOUD
871! ---   &
872! ---   FIND THE LEVEL OF NEUTRAL BUOYANCY
873! -------------------------------------------------------------------
874
875    IF (iflag_con==3) THEN
876      CALL cv3_undilute2(nloc, ncum, nd, icb, icbs, nk, &              !na->nd
877                         tnk, qnk, gznk, hnk, t, q, qs, gz, &
878                         p, h, tv, lv, lf, pbase, buoybase, plcl, &
879                         inb, tp, tvp, clw, hp, ep, sigp, buoy, &
880                         frac)
881    END IF
882
883    IF (iflag_con==4) THEN
884      CALL cv_undilute2(nloc, ncum, nd, icb, nk, &
885                        tnk, qnk, gznk, t, q, qs, gz, &
886                        p, dph, h, tv, lv, &
887                        inb, inbis, tp, tvp, clw, hp, ep, sigp, frac)
888    END IF
889
890! -------------------------------------------------------------------
891! --- MIXING(1)   (if iflag_mix .ge. 1)
892! -------------------------------------------------------------------
893    IF (iflag_con==3) THEN
894      IF ((iflag_ice_thermo==1) .AND. (iflag_mix/=0)) THEN
895        WRITE (*, *) ' iflag_ice_thermo==1 requires iflag_mix==0', ' but iflag_mix=', iflag_mix, &
896          '. Might as well stop here.'
897        STOP
898      END IF
899      IF (iflag_mix>=1) THEN
900        CALL zilch(supmax, nloc*klev)
901        CALL cv3p_mixing(nloc, ncum, nd, nd, ntra, icb, nk, inb, &           ! na->nd
902                         ph, t, q, qs, u, v, tra, h, lv, qnk, &
903                         unk, vnk, hp, tv, tvp, ep, clw, sig, &
904                         ment, qent, hent, uent, vent, nent, &
905                         sigij, elij, supmax, ments, qents, traent)
906! print*, 'cv3p_mixing-> supmax ', (supmax(1,k), k=1,nd)
907
908      ELSE
909        CALL zilch(supmax, nloc*klev)
910      END IF
911    END IF
912! -------------------------------------------------------------------
913! --- CLOSURE
914! -------------------------------------------------------------------
915
916
917    IF (iflag_con==3) THEN
918      IF (iflag_clos==0) THEN
919        CALL cv3_closure(nloc, ncum, nd, icb, inb, &           ! na->nd
920                         pbase, p, ph, tv, buoy, &
921                         sig, w0, cape, m, iflag)
922      END IF   ! iflag_clos==0
923
924      ok_inhib = iflag_mix == 2
925
926      IF (iflag_clos==1) THEN
927        PRINT *, ' pas d appel cv3p_closure'
928! c        CALL cv3p_closure(nloc,ncum,nd,icb,inb              ! na->nd
929! c    :                       ,pbase,plcl,p,ph,tv,tvp,buoy
930! c    :                       ,supmax
931! c    o                       ,sig,w0,ptop2,cape,cin,m)
932      END IF   ! iflag_clos==1
933
934      IF (iflag_clos==2) THEN
935        CALL cv3p1_closure(nloc, ncum, nd, icb, inb, &         ! na->nd
936                           pbase, plcl, p, ph, tv, tvp, buoy, &
937                           supmax, ok_inhib, Ale, Alp, omega, &
938                           sig, w0, ptop2, cape, cin, m, iflag, coef_clos, &
939                           Plim1, plim2, asupmax, supmax0, &
940                           asupmaxmin, cbmf, plfc, wbeff)
941        if (prt_level >= 10) &
942             PRINT *, 'cv3p1_closure-> plfc,wbeff ', plfc(1), wbeff(1)
943      END IF   ! iflag_clos==2
944
945      IF (iflag_clos==3) THEN
946        CALL cv3p2_closure(nloc, ncum, nd, icb, inb, &         ! na->nd
947                           pbase, plcl, p, ph, tv, tvp, buoy, &
948                           supmax, ok_inhib, Ale, Alp, omega, &
949                           sig, w0, ptop2, cape, cin, m, iflag, coef_clos, &
950                           Plim1, plim2, asupmax, supmax0, &
951                           asupmaxmin, cbmf, plfc, wbeff)
952        if (prt_level >= 10) &
953             PRINT *, 'cv3p2_closure-> plfc,wbeff ', plfc(1), wbeff(1)
954      END IF   ! iflag_clos==3
955    END IF ! iflag_con==3
956
957    IF (iflag_con==4) THEN
958      CALL cv_closure(nloc, ncum, nd, nk, icb, &
959                         tv, tvp, p, ph, dph, plcl, cpn, &
960                         iflag, cbmf)
961    END IF
962
963! print *,'cv_closure-> cape ',cape(1)
964
965! -------------------------------------------------------------------
966! --- MIXING(2)
967! -------------------------------------------------------------------
968
969    IF (iflag_con==3) THEN
970      IF (iflag_mix==0) THEN
971        CALL cv3_mixing(nloc, ncum, nd, nd, ntra, icb, nk, inb, &             ! na->nd
972                        ph, t, q, qs, u, v, tra, h, lv, lf, frac, qnk, &
973                        unk, vnk, hp, tv, tvp, ep, clw, m, sig, &
974                        ment, qent, uent, vent, nent, sigij, elij, ments, qents, traent)
975        CALL zilch(hent, nloc*klev*klev)
976      ELSE
977        CALL cv3_mixscale(nloc, ncum, nd, ment, m)
978        IF (debut) THEN
979          PRINT *, ' cv3_mixscale-> '
980        END IF !(debut) THEN
981      END IF
982    END IF
983
984    IF (iflag_con==4) THEN
985      CALL cv_mixing(nloc, ncum, nd, icb, nk, inb, inbis, &
986                     ph, t, q, qs, u, v, h, lv, qnk, &
987                     hp, tv, tvp, ep, clw, cbmf, &
988                     m, ment, qent, uent, vent, nent, sigij, elij)
989    END IF                                                                                         
990
991    IF (debut) THEN
992      PRINT *, ' cv_mixing ->'
993    END IF !(debut) THEN
994! do i = 1,nd
995! print*,'cv_mixing-> i,ment ',i,(ment(1,i,j),j=1,nd)
996! enddo
997
998! -------------------------------------------------------------------
999! --- UNSATURATED (PRECIPITATING) DOWNDRAFTS
1000! -------------------------------------------------------------------
1001    IF (iflag_con==3) THEN
1002      IF (debut) THEN
1003        PRINT *, ' cva_driver -> cv3_unsat '
1004      END IF !(debut) THEN
1005
1006      CALL cv3_unsat(nloc, ncum, nd, nd, ntra, icb, inb, iflag, &              ! na->nd
1007                     t_wake, q_wake, qs_wake, gz, u, v, tra, p, ph, &
1008                     th_wake, tv_wake, lv_wake, lf_wake, cpn_wake, &
1009                     ep, sigp, clw, &
1010                     m, ment, elij, delt, plcl, coef_clos, &
1011                     mp, qp, up, vp, trap, wt, water, evap, fondue, ice, &
1012                     faci, b, sigd, &
1013                     wdtrainA, wdtrainM)                                       ! RomP
1014!
1015      IF (prt_level >= 10) THEN
1016        Print *, 'cva_driver after cv3_unsat:mp , water, ice, evap, fondue '
1017        DO k = 1,nd
1018        write (6, '(i4,5(1x,e13.6))'), &
1019          k, mp(idcum(igout),k), water(idcum(igout),k), ice(idcum(igout),k), &
1020           evap(idcum(igout),k), fondue(idcum(igout),k)
1021        ENDDO
1022        Print *, 'cva_driver after cv3_unsat: wdtrainA, wdtrainM '
1023        DO k = 1,nd
1024        write (6, '(i4,2(1x,e13.6))'), &
1025           k, wdtrainA(idcum(igout),k), wdtrainM(idcum(igout),k)
1026        ENDDO
1027      ENDIF
1028!
1029    END IF  !(iflag_con==3)
1030
1031    IF (iflag_con==4) THEN
1032      CALL cv_unsat(nloc, ncum, nd, inb, t, q, qs, gz, u, v, p, ph, &
1033                     h, lv, ep, sigp, clw, m, ment, elij, &
1034                     iflag, mp, qp, up, vp, wt, water, evap)
1035    END IF
1036
1037    IF (debut) THEN
1038      PRINT *, 'cv_unsat-> '
1039    END IF !(debut) THEN
1040
1041! print *,'cv_unsat-> mp ',mp
1042! print *,'cv_unsat-> water ',water
1043! -------------------------------------------------------------------
1044! --- YIELD
1045! (tendencies, precipitation, variables of interface with other
1046! processes, etc)
1047! -------------------------------------------------------------------
1048
1049    IF (iflag_con==3) THEN
1050
1051      CALL cv3_yield(nloc, ncum, nd, nd, ntra, ok_conserv_q, &                      ! na->nd
1052                     icb, inb, delt, &
1053                     t, q, t_wake, q_wake, s_wake, u, v, tra, &
1054                     gz, p, ph, h, hp, lv, lf, cpn, th, th_wake, &
1055                     ep, clw, m, tp, mp, qp, up, vp, trap, &
1056                     wt, water, ice, evap, fondue, faci, b, sigd, &
1057                     ment, qent, hent, iflag_mix, uent, vent, &
1058                     nent, elij, traent, sig, &
1059                     tv, tvp, wghti, &
1060                     iflag, precip, Vprecip, Vprecipi, ft, fq, fu, fv, ftra, &      ! jyg
1061                     cbmf, upwd, dnwd, dnwd0, ma, mip, &
1062!!                     tls, tps, &                            ! useless . jyg
1063                     qcondc, wd, &
1064                     ftd, fqd, qnk, qtc, sigt, tau_cld_cv, coefw_cld_cv)
1065!
1066      IF (debut) THEN
1067        PRINT *, ' cv3_yield -> fqd(1) = ', fqd(idcum(igout), 1)
1068      END IF !(debut) THEN
1069!   
1070      IF (prt_level >= 10) THEN
1071        Print *, 'cva_driver after cv3_yield:ft(1) , ftd(1) ', &
1072                    ft(idcum(igout),1), ftd(idcum(igout),1)
1073        Print *, 'cva_driver after cv3_yield:fq(1) , fqd(1) ', &
1074                    fq(idcum(igout),1), fqd(idcum(igout),1)
1075      ENDIF
1076!   
1077    END IF
1078
1079    IF (iflag_con==4) THEN
1080      CALL cv_yield(nloc, ncum, nd, nk, icb, inb, delt, &
1081                     t, q, u, v, &
1082                     gz, p, ph, h, hp, lv, cpn, &
1083                     ep, clw, frac, m, mp, qp, up, vp, &
1084                     wt, water, evap, &
1085                     ment, qent, uent, vent, nent, elij, &
1086                     tv, tvp, &
1087                     iflag, wd, qprime, tprime, &
1088                     precip, cbmf, ft, fq, fu, fv, ma, qcondc)
1089    END IF
1090
1091!AC!
1092!^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
1093!--- passive tracers
1094!^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
1095
1096    IF (iflag_con==3) THEN
1097!RomP >>>
1098      CALL cv3_tracer(nloc, len, ncum, nd, nd, &
1099                     ment, sigij, da, phi, phi2, d1a, dam, &
1100                     ep, vprecip, elij, clw, epmlmMm, eplaMm, &
1101                     icb, inb)
1102!RomP <<<
1103    END IF
1104
1105!AC!
1106
1107! ^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
1108! --- UNCOMPRESS THE FIELDS
1109! ^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
1110
1111
1112    IF (iflag_con==3) THEN
1113      CALL cv3a_uncompress(nloc, len, ncum, nd, ntra, idcum, compress, &
1114                           iflag, icb, inb, &
1115                           precip, cbmf, plcl, plfc, wbeff, sig, w0, ptop2, &
1116                           ft, fq, fu, fv, ftra, &
1117                           sigd, ma, mip, vprecip, vprecipi, upwd, dnwd, dnwd0, &
1118                           qcondc, wd, cape, cin, &
1119                           tvp, &
1120                           ftd, fqd, &
1121                           Plim1, plim2, asupmax, supmax0, &
1122                           asupmaxmin, &
1123                           da, phi, mp, phi2, d1a, dam, sigij, &         ! RomP
1124                           clw, elij, evap, ep, epmlmMm, eplaMm, &       ! RomP
1125                           wdtrainA, wdtrainM, &                         ! RomP
1126                           qtc, sigt, &
1127                           iflag1, kbas1, ktop1, &
1128                           precip1, cbmf1, plcl1, plfc1, wbeff1, sig1, w01, ptop21, &
1129                           ft1, fq1, fu1, fv1, ftra1, &
1130                           sigd1, ma1, mip1, vprecip1, vprecipi1, upwd1, dnwd1, dnwd01, &
1131                           qcondc1, wd1, cape1, cin1, &
1132                           tvp1, &
1133                           ftd1, fqd1, &
1134                           Plim11, plim21, asupmax1, supmax01, &
1135                           asupmaxmin1, &
1136                           da1, phi1, mp1, phi21, d1a1, dam1, sigij1,  & ! RomP
1137                           clw1, elij1, evap1, ep1, epmlmMm1, eplaMm1, & ! RomP
1138                           wdtrainA1, wdtrainM1,                       & ! RomP
1139                           qtc1, sigt1)
1140    END IF
1141
1142    IF (iflag_con==4) THEN
1143      CALL cv_uncompress(nloc, len, ncum, nd, idcum, &
1144                           iflag, &
1145                           precip, cbmf, &
1146                           ft, fq, fu, fv, &
1147                           ma, qcondc, &
1148                           iflag1, &
1149                           precip1,cbmf1, &
1150                           ft1, fq1, fu1, fv1, &
1151                           ma1, qcondc1)
1152    END IF
1153
1154  END IF ! ncum>0
1155
1156!
1157! In order take into account the possibility of changing the compression,
1158! reset m, sig and w0 to zero for non-convective points.
1159  DO k = 1,nd-1
1160        sig1(:, k) = sig1(:, k)*coef_convective(:)
1161        w01(:, k)  = w01(:, k)*coef_convective(:)
1162  ENDDO
1163
1164  IF (debut) THEN
1165    PRINT *, ' cv_uncompress -> '
1166    debut = .FALSE.
1167  END IF  !(debut) THEN
1168
1169
1170  RETURN
1171END SUBROUTINE cva_driver
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