/[lmdze]/trunk/phylmd/cv_driver.f
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trunk/phylmd/cv_driver.f revision 97 by guez, Fri Apr 25 14:58:31 2014 UTC trunk/Sources/phylmd/cv_driver.f revision 187 by guez, Mon Mar 21 18:01:02 2016 UTC
# Line 4  module cv_driver_m Line 4  module cv_driver_m
4    
5  contains  contains
6    
7    SUBROUTINE cv_driver(len, nd, t1, q1, qs1, u1, v1, p1, ph1, iflag1, ft1, &    SUBROUTINE cv_driver(t1, q1, qs1, u1, v1, p1, ph1, iflag1, ft1, fq1, fu1, &
8         fq1, fu1, fv1, precip1, VPrecip1, cbmf1, sig1, w01, icb1, inb1, delt, &         fv1, precip1, VPrecip1, sig1, w01, icb1, inb1, delt, Ma1, upwd1, &
9         Ma1, upwd1, dnwd1, dnwd01, qcondc1, wd1, cape1, da1, phi1, mp1)         dnwd1, dnwd01, qcondc1, wd1, cape1, da1, phi1, mp1)
10    
11      ! From LMDZ4/libf/phylmd/cv_driver.F, version 1.3, 2005/04/15 12:36:17      ! From LMDZ4/libf/phylmd/cv_driver.F, version 1.3, 2005/04/15 12:36:17
12      ! Main driver for convection      ! Main driver for convection
# Line 14  contains Line 14  contains
14    
15      ! Several modules corresponding to different physical processes      ! Several modules corresponding to different physical processes
16    
17      ! Several versions of convect may be used:      use cv30_closure_m, only: cv30_closure
18      ! - iflag_con = 3: version lmd      use cv30_compress_m, only: cv30_compress
19      ! - iflag_con = 4: version 4.3b      use cv30_feed_m, only: cv30_feed
20        use cv30_mixing_m, only: cv30_mixing
21      use clesphys2, only: iflag_con      use cv30_param_m, only: cv30_param
22      use cv3_compress_m, only: cv3_compress      use cv30_prelim_m, only: cv30_prelim
23      use cv3_mixing_m, only: cv3_mixing      use cv30_tracer_m, only: cv30_tracer
24      use cv3_param_m, only: cv3_param      use cv30_uncompress_m, only: cv30_uncompress
25      use cv3_prelim_m, only: cv3_prelim      use cv30_undilute2_m, only: cv30_undilute2
26      use cv3_tracer_m, only: cv3_tracer      use cv30_unsat_m, only: cv30_unsat
27      use cv3_uncompress_m, only: cv3_uncompress      use cv30_yield_m, only: cv30_yield
     use cv3_unsat_m, only: cv3_unsat  
     use cv3_yield_m, only: cv3_yield  
     use cv_uncompress_m, only: cv_uncompress  
28      USE dimphy, ONLY: klev, klon      USE dimphy, ONLY: klev, klon
29    
30      integer, intent(in):: len ! first dimension      real, intent(in):: t1(klon, klev)
31      integer, intent(in):: nd ! vertical dimension      ! temperature (K), with first index corresponding to lowest model
32      real, intent(in):: t1(len, nd) ! temperature      ! level
33      real q1(len, nd) !           Input        specific hum  
34      real qs1(len, nd)      real, intent(in):: q1(klon, klev)
35      !      qs1           Real           Input        sat specific hum      ! Specific humidity, with first index corresponding to lowest
36      real, intent(in):: u1(len, nd)      ! model level. Must be defined at same grid levels as T1.
37      !      u1            Real           Input        u-wind  
38      real, intent(in):: v1(len, nd)      real, intent(in):: qs1(klon, klev)
39      !      v1            Real           Input        v-wind      ! Saturation specific humidity, with first index corresponding to
40      real p1(len, nd)      ! lowest model level. Must be defined at same grid levels as
41      !      p1            Real           Input        full level pressure      ! T1.
42      real ph1(len, nd + 1)  
43      !      ph1           Real           Input        half level pressure      real, intent(in):: u1(klon, klev), v1(klon, klev)
44      integer iflag1(len)      ! Zonal wind and meridional velocity (m/s), witth first index
45      !      iflag1        Integer        Output       flag for Emanuel conditions      ! corresponding with the lowest model level. Defined at same
46      real ft1(len, nd)      ! levels as T1.
47      !      ft1           Real           Output       temp tend  
48      real fq1(len, nd)      real, intent(in):: p1(klon, klev)
49      !      fq1           Real           Output       spec hum tend      ! Full level pressure (mb) of dimension KLEV, with first index
50      real fu1(len, nd)      ! corresponding to lowest model level. Must be defined at same
51      !      fu1           Real           Output       u-wind tend      ! grid levels as T1.
52      real fv1(len, nd)  
53      !      fv1           Real           Output       v-wind tend      real, intent(in):: ph1(klon, klev + 1)
54      real precip1(len)      ! Half level pressure (mb), with first index corresponding to
55      !      precip1       Real           Output       precipitation      ! lowest level. These pressures are defined at levels intermediate
56      real VPrecip1(len, nd+1)      ! between those of P1, T1, Q1 and QS1. The first value of PH
57      !      VPrecip1      Real           Output       vertical profile of precipitations      ! should be greater than (i.e. at a lower level than) the first
58      real cbmf1(len)      ! value of the array P1.
59      !      cbmf1         Real           Output       cloud base mass flux  
60        integer, intent(out):: iflag1(klon)
61        ! Flag for Emanuel conditions.
62    
63        ! 0: Moist convection occurs.
64    
65        ! 1: Moist convection occurs, but a CFL condition on the
66        ! subsidence warming is violated. This does not cause the scheme
67        ! to terminate.
68    
69        ! 2: Moist convection, but no precipitation because ep(inb) < 1e-4
70    
71        ! 3: No moist convection because new cbmf is 0 and old cbmf is 0.
72    
73        ! 4: No moist convection; atmosphere is not unstable
74    
75        ! 6: No moist convection because ihmin le minorig.
76    
77        ! 7: No moist convection because unreasonable parcel level
78        ! temperature or specific humidity.
79    
80        ! 8: No moist convection: lifted condensation level is above the
81        ! 200 mb level.
82    
83        ! 9: No moist convection: cloud base is higher then the level NL-1.
84    
85        real, intent(out):: ft1(klon, klev)
86        ! Temperature tendency (K/s), defined at same grid levels as T1,
87        ! Q1, QS1 and P1.
88    
89        real, intent(out):: fq1(klon, klev)
90        ! Specific humidity tendencies (s-1), defined at same grid levels
91        ! as T1, Q1, QS1 and P1.
92    
93        real, intent(out):: fu1(klon, klev), fv1(klon, klev)
94        ! Forcing (tendency) of zonal and meridional velocity (m/s^2),
95        ! defined at same grid levels as T1.
96    
97        real, intent(out):: precip1(klon) ! convective precipitation rate (mm/day)
98    
99        real, intent(out):: VPrecip1(klon, klev + 1)
100        ! vertical profile of convective precipitation (kg/m2/s)
101    
102      real, intent(inout):: sig1(klon, klev) ! section adiabatic updraft      real, intent(inout):: sig1(klon, klev) ! section adiabatic updraft
103    
104      real, intent(inout):: w01(klon, klev)      real, intent(inout):: w01(klon, klev)
105      ! vertical velocity within adiabatic updraft      ! vertical velocity within adiabatic updraft
106    
107      integer icb1(klon)      integer, intent(out):: icb1(klon)
108      integer inb1(klon)      integer, intent(inout):: inb1(klon)
109      real, intent(in):: delt      real, intent(in):: delt ! the model time step (sec) between calls
     !      delt          Real           Input        time step  
     real Ma1(len, nd)  
     !      Ma1           Real           Output       mass flux adiabatic updraft  
     real, intent(out):: upwd1(len, nd) ! total upward mass flux (adiab+mixed)  
     real, intent(out):: dnwd1(len, nd) ! saturated downward mass flux (mixed)  
     real, intent(out):: dnwd01(len, nd) ! unsaturated downward mass flux  
   
     real qcondc1(len, nd)     ! cld  
     !      qcondc1       Real           Output       in-cld mixing ratio of condensed water  
     real wd1(len)            ! gust  
     !      wd1           Real           Output       downdraft velocity scale for sfc fluxes  
     real cape1(len)  
     !      cape1         Real           Output       CAPE  
110    
111      real da1(len, nd), phi1(len, nd, nd), mp1(len, nd)      real Ma1(klon, klev) ! Output mass flux adiabatic updraft
112    
113      !-------------------------------------------------------------------      real, intent(out):: upwd1(klon, klev)
114      ! --- ARGUMENTS      ! total upward mass flux (adiab + mixed)
     !-------------------------------------------------------------------  
     ! --- On input:  
115    
116      !  t:   Array of absolute temperature (K) of dimension ND, with first      real, intent(out):: dnwd1(klon, klev) ! saturated downward mass flux (mixed)
117      !       index corresponding to lowest model level. Note that this array      real, intent(out):: dnwd01(klon, klev) ! unsaturated downward mass flux
     !       will be altered by the subroutine if dry convective adjustment  
     !       occurs and if IPBL is not equal to 0.  
   
     !  q:   Array of specific humidity (gm/gm) of dimension ND, with first  
     !       index corresponding to lowest model level. Must be defined  
     !       at same grid levels as T. Note that this array will be altered  
     !       if dry convective adjustment occurs and if IPBL is not equal to 0.  
   
     !  qs:  Array of saturation specific humidity of dimension ND, with first  
     !       index corresponding to lowest model level. Must be defined  
     !       at same grid levels as T. Note that this array will be altered  
     !       if dry convective adjustment occurs and if IPBL is not equal to 0.  
   
     !  u:   Array of zonal wind velocity (m/s) of dimension ND, witth first  
     !       index corresponding with the lowest model level. Defined at  
     !       same levels as T. Note that this array will be altered if  
     !       dry convective adjustment occurs and if IPBL is not equal to 0.  
   
     !  v:   Same as u but for meridional velocity.  
   
     !  p:   Array of pressure (mb) of dimension ND, with first  
     !       index corresponding to lowest model level. Must be defined  
     !       at same grid levels as T.  
   
     !  ph:  Array of pressure (mb) of dimension ND+1, with first index  
     !       corresponding to lowest level. These pressures are defined at  
     !       levels intermediate between those of P, T, Q and QS. The first  
     !       value of PH should be greater than (i.e. at a lower level than)  
     !       the first value of the array P.  
   
     !  nl:  The maximum number of levels to which convection can penetrate, plus 1.  
     !       NL MUST be less than or equal to ND-1.  
   
     !  delt: The model time step (sec) between calls to CONVECT  
   
     !----------------------------------------------------------------------------  
     ! ---   On Output:  
   
     !  iflag: An output integer whose value denotes the following:  
     !       VALUE   INTERPRETATION  
     !       -----   --------------  
     !         0     Moist convection occurs.  
     !         1     Moist convection occurs, but a CFL condition  
     !               on the subsidence warming is violated. This  
     !               does not cause the scheme to terminate.  
     !         2     Moist convection, but no precip because ep(inb) lt 0.0001  
     !         3     No moist convection because new cbmf is 0 and old cbmf is 0.  
     !         4     No moist convection; atmosphere is not  
     !               unstable  
     !         6     No moist convection because ihmin le minorig.  
     !         7     No moist convection because unreasonable  
     !               parcel level temperature or specific humidity.  
     !         8     No moist convection: lifted condensation  
     !               level is above the 200 mb level.  
     !         9     No moist convection: cloud base is higher  
     !               then the level NL-1.  
   
     !  ft:   Array of temperature tendency (K/s) of dimension ND, defined at same  
     !        grid levels as T, Q, QS and P.  
   
     !  fq:   Array of specific humidity tendencies ((gm/gm)/s) of dimension ND,  
     !        defined at same grid levels as T, Q, QS and P.  
   
     !  fu:   Array of forcing of zonal velocity (m/s^2) of dimension ND,  
     !        defined at same grid levels as T.  
   
     !  fv:   Same as FU, but for forcing of meridional velocity.  
   
     !  precip: Scalar convective precipitation rate (mm/day).  
   
     !  VPrecip: Vertical profile of convective precipitation (kg/m2/s).  
   
     !  wd:   A convective downdraft velocity scale. For use in surface  
     !        flux parameterizations. See convect.ps file for details.  
   
     !  tprime: A convective downdraft temperature perturbation scale (K).  
     !          For use in surface flux parameterizations. See convect.ps  
     !          file for details.  
   
     !  qprime: A convective downdraft specific humidity  
     !          perturbation scale (gm/gm).  
     !          For use in surface flux parameterizations. See convect.ps  
     !          file for details.  
   
     !  cbmf: The cloud base mass flux ((kg/m**2)/s). THIS SCALAR VALUE MUST  
     !        BE STORED BY THE CALLING PROGRAM AND RETURNED TO CONVECT AT  
     !        ITS NEXT CALL. That is, the value of CBMF must be "remembered"  
     !        by the calling program between calls to CONVECT.  
118    
119      !  det:   Array of detrainment mass flux of dimension ND.      real qcondc1(klon, klev) ! Output in-cld mixing ratio of condensed water
120    
121      !-------------------------------------------------------------------      real wd1(klon) ! gust
122        ! Output downdraft velocity scale for surface fluxes
123        ! A convective downdraft velocity scale. For use in surface
124        ! flux parameterizations. See convect.ps file for details.
125    
126      !  Local arrays      real cape1(klon) ! Output
127        real, intent(inout):: da1(klon, klev), phi1(klon, klev, klev)
128        real, intent(inout):: mp1(klon, klev)
129    
130      real da(len, nd), phi(len, nd, nd), mp(len, nd)      ! Local:
131    
132        real da(klon, klev), phi(klon, klev, klev), mp(klon, klev)
133    
134      integer i, k, il      integer i, k, il
135      integer icbmax      integer icbmax
# Line 213  contains Line 156  contains
156    
157      integer ncum      integer ncum
158    
159      ! (local) compressed fields:      ! Compressed fields:
   
     integer nloc  
     parameter (nloc = klon) ! pour l'instant  
160    
161      integer idcum(nloc)      integer idcum(klon)
162      integer iflag(nloc), nk(nloc), icb(nloc)      integer iflag(klon), nk(klon), icb(klon)
163      integer nent(nloc, klev)      integer nent(klon, klev)
164      integer icbs(nloc)      integer icbs(klon)
165      integer inb(nloc), inbis(nloc)      integer inb(klon)
166    
167      real cbmf(nloc), plcl(nloc), tnk(nloc), qnk(nloc), gznk(nloc)      real plcl(klon), tnk(klon), qnk(klon), gznk(klon)
168      real t(nloc, klev), q(nloc, klev), qs(nloc, klev)      real t(klon, klev), q(klon, klev), qs(klon, klev)
169      real u(nloc, klev), v(nloc, klev)      real u(klon, klev), v(klon, klev)
170      real gz(nloc, klev), h(nloc, klev), lv(nloc, klev), cpn(nloc, klev)      real gz(klon, klev), h(klon, klev), lv(klon, klev), cpn(klon, klev)
171      real p(nloc, klev), ph(nloc, klev+1), tv(nloc, klev), tp(nloc, klev)      real p(klon, klev), ph(klon, klev + 1), tv(klon, klev), tp(klon, klev)
172      real clw(nloc, klev)      real clw(klon, klev)
173      real dph(nloc, klev)      real pbase(klon), buoybase(klon), th(klon, klev)
174      real pbase(nloc), buoybase(nloc), th(nloc, klev)      real tvp(klon, klev)
175      real tvp(nloc, klev)      real sig(klon, klev), w0(klon, klev)
176      real sig(nloc, klev), w0(nloc, klev)      real hp(klon, klev), ep(klon, klev), sigp(klon, klev)
177      real hp(nloc, klev), ep(nloc, klev), sigp(nloc, klev)      real buoy(klon, klev)
178      real frac(nloc), buoy(nloc, klev)      real cape(klon)
179      real cape(nloc)      real m(klon, klev), ment(klon, klev, klev), qent(klon, klev, klev)
180      real m(nloc, klev), ment(nloc, klev, klev), qent(nloc, klev, klev)      real uent(klon, klev, klev), vent(klon, klev, klev)
181      real uent(nloc, klev, klev), vent(nloc, klev, klev)      real ments(klon, klev, klev), qents(klon, klev, klev)
182      real ments(nloc, klev, klev), qents(nloc, klev, klev)      real sij(klon, klev, klev), elij(klon, klev, klev)
183      real sij(nloc, klev, klev), elij(nloc, klev, klev)      real qp(klon, klev), up(klon, klev), vp(klon, klev)
184      real qp(nloc, klev), up(nloc, klev), vp(nloc, klev)      real wt(klon, klev), water(klon, klev), evap(klon, klev)
185      real wt(nloc, klev), water(nloc, klev), evap(nloc, klev)      real b(klon, klev), ft(klon, klev), fq(klon, klev)
186      real b(nloc, klev), ft(nloc, klev), fq(nloc, klev)      real fu(klon, klev), fv(klon, klev)
187      real fu(nloc, klev), fv(nloc, klev)      real upwd(klon, klev), dnwd(klon, klev), dnwd0(klon, klev)
188      real upwd(nloc, klev), dnwd(nloc, klev), dnwd0(nloc, klev)      real Ma(klon, klev), mike(klon, klev), tls(klon, klev)
189      real Ma(nloc, klev), mike(nloc, klev), tls(nloc, klev)      real tps(klon, klev)
190      real tps(nloc, klev), qprime(nloc), tprime(nloc)      real precip(klon)
191      real precip(nloc)      real VPrecip(klon, klev + 1)
192      real VPrecip(nloc, klev+1)      real qcondc(klon, klev) ! cld
193      real qcondc(nloc, klev)  ! cld      real wd(klon) ! gust
     real wd(nloc)           ! gust  
194    
195      !-------------------------------------------------------------------      !-------------------------------------------------------------------
     ! --- SET CONSTANTS AND PARAMETERS  
     !-------------------------------------------------------------------  
   
     ! -- set simulation flags:  
     !   (common cvflag)  
196    
197      CALL cv_flag      ! SET CONSTANTS AND PARAMETERS
   
     ! -- set thermodynamical constants:  
     !     (common cvthermo)  
198    
199        ! set thermodynamical constants:
200        ! (common cvthermo)
201      CALL cv_thermo      CALL cv_thermo
202    
203      ! -- set convect parameters      ! set convect parameters
204        ! includes microphysical parameters and parameters that
205      !     includes microphysical parameters and parameters that      ! control the rate of approach to quasi-equilibrium)
206      !     control the rate of approach to quasi-equilibrium)      ! (common cvparam)
207      !     (common cvparam)      CALL cv30_param(delt)
208    
209      if (iflag_con.eq.3) then      ! INITIALIZE OUTPUT ARRAYS AND PARAMETERS
210         CALL cv3_param(nd, delt)  
211      endif      do k = 1, klev
212           do i = 1, klon
213      if (iflag_con.eq.4) then            ft1(i, k) = 0.
214         CALL cv_param(nd)            fq1(i, k) = 0.
215      endif            fu1(i, k) = 0.
216              fv1(i, k) = 0.
217      !---------------------------------------------------------------------            tvp1(i, k) = 0.
218      ! --- INITIALIZE OUTPUT ARRAYS AND PARAMETERS            tp1(i, k) = 0.
219      !---------------------------------------------------------------------            clw1(i, k) = 0.
220              clw(i, k) = 0.
221      do k = 1, nd            gz1(i, k) = 0.
        do  i = 1, len  
           ft1(i, k) = 0.0  
           fq1(i, k) = 0.0  
           fu1(i, k) = 0.0  
           fv1(i, k) = 0.0  
           tvp1(i, k) = 0.0  
           tp1(i, k) = 0.0  
           clw1(i, k) = 0.0  
           !ym  
           clw(i, k) = 0.0  
           gz1(i, k)  =  0.  
222            VPrecip1(i, k) = 0.            VPrecip1(i, k) = 0.
223            Ma1(i, k) = 0.0            Ma1(i, k) = 0.
224            upwd1(i, k) = 0.0            upwd1(i, k) = 0.
225            dnwd1(i, k) = 0.0            dnwd1(i, k) = 0.
226            dnwd01(i, k) = 0.0            dnwd01(i, k) = 0.
227            qcondc1(i, k) = 0.0            qcondc1(i, k) = 0.
228         end do         end do
229      end do      end do
230    
231      do  i = 1, len      do i = 1, klon
232         precip1(i) = 0.0         precip1(i) = 0.
233         iflag1(i) = 0         iflag1(i) = 0
234         wd1(i) = 0.0         wd1(i) = 0.
235         cape1(i) = 0.0         cape1(i) = 0.
236         VPrecip1(i, nd+1) = 0.0         VPrecip1(i, klev + 1) = 0.
237      end do      end do
238    
239      if (iflag_con.eq.3) then      do il = 1, klon
240         do il = 1, len         sig1(il, klev) = sig1(il, klev) + 1.
241            sig1(il, nd) = sig1(il, nd) + 1.         sig1(il, klev) = min(sig1(il, klev), 12.1)
242            sig1(il, nd)  =  min(sig1(il, nd), 12.1)      enddo
243         enddo  
244      endif      ! CALCULATE ARRAYS OF GEOPOTENTIAL, HEAT CAPACITY & STATIC ENERGY
245        CALL cv30_prelim(klon, klev, klev + 1, t1, q1, p1, ph1, lv1, cpn1, tv1, &
246      !--------------------------------------------------------------------           gz1, h1, hm1, th1)
247      ! --- CALCULATE ARRAYS OF GEOPOTENTIAL, HEAT CAPACITY & STATIC ENERGY  
248      !--------------------------------------------------------------------      ! CONVECTIVE FEED
249        CALL cv30_feed(klon, klev, t1, q1, qs1, p1, ph1, gz1, nk1, icb1, &
250      if (iflag_con.eq.3) then           icbmax, iflag1, tnk1, qnk1, gznk1, plcl1) ! klev->na
251         CALL cv3_prelim(len, nd, nd + 1, t1, q1, p1, ph1, lv1, cpn1, tv1, gz1, &  
252              h1, hm1, th1)      ! UNDILUTE (ADIABATIC) UPDRAFT / 1st part
253      endif      ! (up through ICB for convect4, up through ICB + 1 for convect3)
254        ! Calculates the lifted parcel virtual temperature at nk, the
255      if (iflag_con.eq.4) then      ! actual temperature, and the adiabatic liquid water content.
256         CALL cv_prelim(len, nd, nd + 1, t1, q1, p1, ph1 &      CALL cv30_undilute1(klon, klev, t1, q1, qs1, gz1, plcl1, p1, nk1, icb1, &
257              , lv1, cpn1, tv1, gz1, h1, hm1)           tp1, tvp1, clw1, icbs1) ! klev->na
258      endif  
259        ! TRIGGERING
260      !--------------------------------------------------------------------      CALL cv30_trigger(klon, klev, icb1, plcl1, p1, th1, tv1, tvp1, pbase1, &
261      ! --- CONVECTIVE FEED           buoybase1, iflag1, sig1, w01) ! klev->na
     !--------------------------------------------------------------------  
   
     if (iflag_con.eq.3) then  
        CALL cv3_feed(len, nd, t1, q1, qs1, p1, ph1, hm1, gz1            &  
             , nk1, icb1, icbmax, iflag1, tnk1, qnk1, gznk1, plcl1) ! nd->na  
     endif  
   
     if (iflag_con.eq.4) then  
        CALL cv_feed(len, nd, t1, q1, qs1, p1, hm1, gz1 &  
             , nk1, icb1, icbmax, iflag1, tnk1, qnk1, gznk1, plcl1)  
     endif  
   
     !--------------------------------------------------------------------  
     ! --- UNDILUTE (ADIABATIC) UPDRAFT / 1st part  
     ! (up through ICB for convect4, up through ICB+1 for convect3)  
     !     Calculates the lifted parcel virtual temperature at nk, the  
     !     actual temperature, and the adiabatic liquid water content.  
     !--------------------------------------------------------------------  
   
     if (iflag_con.eq.3) then  
        CALL cv3_undilute1(len, nd, t1, q1, qs1, gz1, plcl1, p1, nk1, icb1   &  
             , tp1, tvp1, clw1, icbs1) ! nd->na  
     endif  
   
     if (iflag_con.eq.4) then  
        CALL cv_undilute1(len, nd, t1, q1, qs1, gz1, p1, nk1, icb1, icbmax &  
             , tp1, tvp1, clw1)  
     endif  
   
     !-------------------------------------------------------------------  
     ! --- TRIGGERING  
     !-------------------------------------------------------------------  
   
     if (iflag_con.eq.3) then  
        CALL cv3_trigger(len, nd, icb1, plcl1, p1, th1, tv1, tvp1, pbase1, &  
             buoybase1, iflag1, sig1, w01) ! nd->na  
     endif  
   
     if (iflag_con.eq.4) then  
        CALL cv_trigger(len, nd, icb1, cbmf1, tv1, tvp1, iflag1)  
     endif  
262    
263      ! --- IF THIS POINT IS REACHED, MOIST CONVECTIVE ADJUSTMENT IS NECESSARY      ! Moist convective adjustment is necessary
264    
265      ncum = 0      ncum = 0
266      do  i = 1, len      do i = 1, klon
267         if(iflag1(i).eq.0)then         if (iflag1(i) == 0) then
268            ncum = ncum+1            ncum = ncum + 1
269            idcum(ncum) = i            idcum(ncum) = i
270         endif         endif
271      end do      end do
272    
273      !       print*, 'klon, ncum = ', len, ncum      IF (ncum > 0) THEN
274           ! COMPRESS THE FIELDS
275      IF (ncum.gt.0) THEN         ! (-> vectorization over convective gridpoints)
276           CALL cv30_compress(klon, klon, ncum, klev, iflag1, nk1, icb1, icbs1, &
277         !^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^              plcl1, tnk1, qnk1, gznk1, pbase1, buoybase1, t1, q1, qs1, u1, &
278         ! --- COMPRESS THE FIELDS              v1, gz1, th1, h1, lv1, cpn1, p1, ph1, tv1, tp1, tvp1, clw1, &
279         !        (-> vectorization over convective gridpoints)              sig1, w01, iflag, nk, icb, icbs, plcl, tnk, qnk, gznk, pbase, &
280         !^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^              buoybase, t, q, qs, u, v, gz, th, h, lv, cpn, p, ph, tv, tp, &
281                tvp, clw, sig, w0)
282         if (iflag_con.eq.3) then  
283            CALL cv3_compress(len, nloc, ncum, nd, iflag1, nk1, icb1, icbs1, &         CALL cv30_undilute2(ncum, icb, icbs, nk, tnk, qnk, gznk, t, qs, gz, p, &
284                 plcl1, tnk1, qnk1, gznk1, pbase1, buoybase1, t1, q1, qs1, u1, &              h, tv, lv, pbase, buoybase, plcl, inb(:ncum), tp, tvp, clw, hp, &
285                 v1, gz1, th1, h1, lv1, cpn1, p1, ph1, tv1, tp1, tvp1, clw1, &              ep, sigp, buoy)
286                 sig1, w01, iflag, nk, icb, icbs, plcl, tnk, qnk, gznk, pbase, &  
287                 buoybase, t, q, qs, u, v, gz, th, h, lv, cpn, p, ph, tv, tp, &         ! CLOSURE
288                 tvp, clw, sig, w0)         CALL cv30_closure(klon, ncum, klev, icb, inb, pbase, p, ph, tv, &
289         endif              buoy, sig, w0, cape, m) ! na->klev
290    
291         if (iflag_con.eq.4) then         ! MIXING
292            CALL cv_compress( len, nloc, ncum, nd &         CALL cv30_mixing(klon, ncum, klev, klev, icb, nk, inb, t, q, qs, u, &
293                 , iflag1, nk1, icb1 &              v, h, lv, hp, ep, clw, m, sig, ment, qent, uent, vent, nent, &
294                 , cbmf1, plcl1, tnk1, qnk1, gznk1 &              sij, elij, ments, qents)
295                 , t1, q1, qs1, u1, v1, gz1 &  
296                 , h1, lv1, cpn1, p1, ph1, tv1, tp1, tvp1, clw1 &         ! Unsaturated (precipitating) downdrafts
297                 , iflag, nk, icb &         CALL cv30_unsat(ncum, icb(:ncum), inb(:ncum), t, q, qs, gz, u, v, p, &
298                 , cbmf, plcl, tnk, qnk, gznk &              ph, th, tv, lv, cpn, ep, sigp, clw, m, ment, elij, delt, plcl, &
299                 , t, q, qs, u, v, gz, h, lv, cpn, p, ph, tv, tp, tvp, clw  &              mp, qp, up, vp, wt, water, evap, b(:ncum, :))
300                 , dph )  
301         endif         ! Yield (tendencies, precipitation, variables of interface with
302           ! other processes, etc)
303         !-------------------------------------------------------------------         CALL cv30_yield(klon, ncum, klev, klev, icb, inb, delt, t, q, u, v, &
304         ! --- UNDILUTE (ADIABATIC) UPDRAFT / second part :              gz, p, ph, h, hp, lv, cpn, th, ep, clw, m, tp, mp, qp, up, vp, &
305         ! ---   FIND THE REST OF THE LIFTED PARCEL TEMPERATURES              wt, water, evap, b, ment, qent, uent, vent, nent, elij, sig, &
306         ! ---   &              tv, tvp, iflag, precip, VPrecip, ft, fq, fu, fv, upwd, dnwd, &
307         ! ---   COMPUTE THE PRECIPITATION EFFICIENCIES AND THE              dnwd0, ma, mike, tls, tps, qcondc, wd)! na->klev
308         ! ---   FRACTION OF PRECIPITATION FALLING OUTSIDE OF CLOUD  
309         ! ---   &         ! passive tracers
310         ! ---   FIND THE LEVEL OF NEUTRAL BUOYANCY         CALL cv30_tracer(klon, ncum, klev, ment, sij, da, phi)
311         !-------------------------------------------------------------------  
312           ! UNCOMPRESS THE FIELDS
313         if (iflag_con.eq.3) then  
314            CALL cv3_undilute2(nloc, ncum, nd, icb, icbs, nk         &         ! set iflag1 = 42 for non convective points
315                 , tnk, qnk, gznk, t, q, qs, gz &         iflag1 = 42
316                 , p, h, tv, lv, pbase, buoybase, plcl &  
317                 , inb, tp, tvp, clw, hp, ep, sigp, buoy) !na->nd         CALL cv30_uncompress(idcum(:ncum), iflag, precip, VPrecip, sig, w0, &
318         endif              ft, fq, fu, fv, inb, Ma, upwd, dnwd, dnwd0, qcondc, wd, cape, &
319                da, phi, mp, iflag1, precip1, VPrecip1, sig1, w01, ft1, fq1, &
320         if (iflag_con.eq.4) then              fu1, fv1, inb1, Ma1, upwd1, dnwd1, dnwd01, qcondc1, wd1, &
321            CALL cv_undilute2(nloc, ncum, nd, icb, nk &              cape1, da1, phi1, mp1)
322                 , tnk, qnk, gznk, t, q, qs, gz &      ENDIF
                , p, dph, h, tv, lv &  
                , inb, inbis, tp, tvp, clw, hp, ep, sigp, frac)  
        endif  
   
        !-------------------------------------------------------------------  
        ! --- CLOSURE  
        !-------------------------------------------------------------------  
   
        if (iflag_con.eq.3) then  
           CALL cv3_closure(nloc, ncum, nd, icb, inb               &  
                , pbase, p, ph, tv, buoy &  
                , sig, w0, cape, m) ! na->nd  
        endif  
   
        if (iflag_con.eq.4) then  
           CALL cv_closure(nloc, ncum, nd, nk, icb &  
                , tv, tvp, p, ph, dph, plcl, cpn &  
                , iflag, cbmf)  
        endif  
   
        !-------------------------------------------------------------------  
        ! --- MIXING  
        !-------------------------------------------------------------------  
   
        if (iflag_con.eq.3) then  
           CALL cv3_mixing(nloc, ncum, nd, nd, icb, nk, inb, ph, t, q, &  
                qs, u, v, h, lv, qnk, hp, tv, tvp, ep, clw, m, sig, ment, &  
                qent, uent, vent, nent, sij, elij, ments, qents)  
        endif  
   
        if (iflag_con.eq.4) then  
           CALL cv_mixing(nloc, ncum, nd, icb, nk, inb, inbis &  
                , ph, t, q, qs, u, v, h, lv, qnk &  
                , hp, tv, tvp, ep, clw, cbmf &  
                , m, ment, qent, uent, vent, nent, sij, elij)  
        endif  
   
        !-------------------------------------------------------------------  
        ! --- UNSATURATED (PRECIPITATING) DOWNDRAFTS  
        !-------------------------------------------------------------------  
   
        if (iflag_con.eq.3) then  
           CALL cv3_unsat(nloc, ncum, nd, nd, icb, inb     &  
                , t, q, qs, gz, u, v, p, ph &  
                , th, tv, lv, cpn, ep, sigp, clw &  
                , m, ment, elij, delt, plcl &  
                , mp, qp, up, vp, wt, water, evap, b)! na->nd  
        endif  
   
        if (iflag_con.eq.4) then  
           CALL cv_unsat(nloc, ncum, nd, inb, t, q, qs, gz, u, v, p, ph &  
                , h, lv, ep, sigp, clw, m, ment, elij &  
                , iflag, mp, qp, up, vp, wt, water, evap)  
        endif  
   
        !-------------------------------------------------------------------  
        ! --- YIELD  
        !     (tendencies, precipitation, variables of interface with other  
        !      processes, etc)  
        !-------------------------------------------------------------------  
   
        if (iflag_con.eq.3) then  
           CALL cv3_yield(nloc, ncum, nd, nd             &  
                , icb, inb, delt &  
                , t, q, u, v, gz, p, ph, h, hp, lv, cpn, th &  
                , ep, clw, m, tp, mp, qp, up, vp &  
                , wt, water, evap, b &  
                , ment, qent, uent, vent, nent, elij, sig &  
                , tv, tvp &  
                , iflag, precip, VPrecip, ft, fq, fu, fv &  
                , upwd, dnwd, dnwd0, ma, mike, tls, tps, qcondc, wd)! na->nd  
        endif  
   
        if (iflag_con.eq.4) then  
           CALL cv_yield(nloc, ncum, nd, nk, icb, inb, delt &  
                , t, q, u, v, gz, p, ph, h, hp, lv, cpn &  
                , ep, clw, frac, m, mp, qp, up, vp &  
                , wt, water, evap &  
                , ment, qent, uent, vent, nent, elij &  
                , tv, tvp &  
                , iflag, wd, qprime, tprime &  
                , precip, cbmf, ft, fq, fu, fv, Ma, qcondc)  
        endif  
   
        !^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^  
        ! --- passive tracers  
        !^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^  
   
        if (iflag_con.eq.3) then  
           CALL cv3_tracer(nloc, len, ncum, nd, nd, &  
                ment, sij, da, phi)  
        endif  
   
        !^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^  
        ! --- UNCOMPRESS THE FIELDS  
        !^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^  
        ! set iflag1  = 42 for non convective points  
        do  i = 1, len  
           iflag1(i) = 42  
        end do  
   
        if (iflag_con.eq.3) then  
           CALL cv3_uncompress(nloc, len, ncum, nd, idcum &  
                , iflag &  
                , precip, VPrecip, sig, w0 &  
                , ft, fq, fu, fv &  
                , inb  &  
                , Ma, upwd, dnwd, dnwd0, qcondc, wd, cape &  
                , da, phi, mp &  
                , iflag1 &  
                , precip1, VPrecip1, sig1, w01 &  
                , ft1, fq1, fu1, fv1 &  
                , inb1 &  
                , Ma1, upwd1, dnwd1, dnwd01, qcondc1, wd1, cape1  &  
                , da1, phi1, mp1)  
        endif  
   
        if (iflag_con.eq.4) then  
           CALL cv_uncompress(nloc, len, ncum, nd, idcum &  
                , iflag &  
                , precip, cbmf &  
                , ft, fq, fu, fv &  
                , Ma, qcondc             &  
                , iflag1 &  
                , precip1, cbmf1 &  
                , ft1, fq1, fu1, fv1 &  
                , Ma1, qcondc1 )  
        endif  
     ENDIF ! ncum>0  
323    
324    end SUBROUTINE cv_driver    end SUBROUTINE cv_driver
325    

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