/[lmdze]/trunk/Sources/phylmd/cv_driver.f
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revision 187 by guez, Mon Mar 21 18:01:02 2016 UTC revision 201 by guez, Mon Jun 6 17:42:15 2016 UTC
# Line 5  module cv_driver_m Line 5  module cv_driver_m
5  contains  contains
6    
7    SUBROUTINE cv_driver(t1, q1, qs1, u1, v1, p1, ph1, iflag1, ft1, fq1, fu1, &    SUBROUTINE cv_driver(t1, q1, qs1, u1, v1, p1, ph1, iflag1, ft1, fq1, fu1, &
8         fv1, precip1, VPrecip1, sig1, w01, icb1, inb1, delt, Ma1, upwd1, &         fv1, precip1, VPrecip1, sig1, w01, icb1, inb1, Ma1, upwd1, dnwd1, &
9         dnwd1, dnwd01, qcondc1, wd1, cape1, da1, phi1, mp1)         dnwd01, qcondc1, 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        use comconst, only: dtphys
18      use cv30_closure_m, only: cv30_closure      use cv30_closure_m, only: cv30_closure
19      use cv30_compress_m, only: cv30_compress      use cv30_compress_m, only: cv30_compress
20      use cv30_feed_m, only: cv30_feed      use cv30_feed_m, only: cv30_feed
21      use cv30_mixing_m, only: cv30_mixing      use cv30_mixing_m, only: cv30_mixing
22      use cv30_param_m, only: cv30_param      use cv30_param_m, only: cv30_param, nl
23      use cv30_prelim_m, only: cv30_prelim      use cv30_prelim_m, only: cv30_prelim
24      use cv30_tracer_m, only: cv30_tracer      use cv30_tracer_m, only: cv30_tracer
25        use cv30_trigger_m, only: cv30_trigger
26      use cv30_uncompress_m, only: cv30_uncompress      use cv30_uncompress_m, only: cv30_uncompress
27        use cv30_undilute1_m, only: cv30_undilute1
28      use cv30_undilute2_m, only: cv30_undilute2      use cv30_undilute2_m, only: cv30_undilute2
29      use cv30_unsat_m, only: cv30_unsat      use cv30_unsat_m, only: cv30_unsat
30      use cv30_yield_m, only: cv30_yield      use cv30_yield_m, only: cv30_yield
31      USE dimphy, ONLY: klev, klon      USE dimphy, ONLY: klev, klon
32    
33      real, intent(in):: t1(klon, klev)      real, intent(in):: t1(klon, klev) ! temperature, in K
34      ! temperature (K), with first index corresponding to lowest model      real, intent(in):: q1(klon, klev) ! specific humidity
35      ! level      real, intent(in):: qs1(klon, klev) ! saturation specific humidity
   
     real, intent(in):: q1(klon, klev)  
     ! Specific humidity, with first index corresponding to lowest  
     ! model level. Must be defined at same grid levels as T1.  
   
     real, intent(in):: qs1(klon, klev)  
     ! Saturation specific humidity, with first index corresponding to  
     ! lowest model level. Must be defined at same grid levels as  
     ! T1.  
36    
37      real, intent(in):: u1(klon, klev), v1(klon, klev)      real, intent(in):: u1(klon, klev), v1(klon, klev)
38      ! Zonal wind and meridional velocity (m/s), witth first index      ! zonal wind and meridional velocity (m/s)
39      ! corresponding with the lowest model level. Defined at same  
40      ! levels as T1.      real, intent(in):: p1(klon, klev) ! full level pressure, in hPa
   
     real, intent(in):: p1(klon, klev)  
     ! Full level pressure (mb) of dimension KLEV, with first index  
     ! corresponding to lowest model level. Must be defined at same  
     ! grid levels as T1.  
41    
42      real, intent(in):: ph1(klon, klev + 1)      real, intent(in):: ph1(klon, klev + 1)
43      ! Half level pressure (mb), with first index corresponding to      ! Half level pressure, in hPa. These pressures are defined at levels
44      ! lowest level. These pressures are defined at levels intermediate      ! intermediate between those of P1, T1, Q1 and QS1. The first
45      ! between those of P1, T1, Q1 and QS1. The first value of PH      ! value of PH should be greater than (i.e. at a lower level than)
46      ! should be greater than (i.e. at a lower level than) the first      ! the first value of the array P1.
     ! value of the array P1.  
47    
48      integer, intent(out):: iflag1(klon)      integer, intent(out):: iflag1(:) ! (klon)
49      ! Flag for Emanuel conditions.      ! Flag for Emanuel conditions.
50    
51      ! 0: Moist convection occurs.      ! 0: Moist convection occurs.
# Line 70  contains Line 58  contains
58    
59      ! 3: No moist convection because new cbmf is 0 and old cbmf is 0.      ! 3: No moist convection because new cbmf is 0 and old cbmf is 0.
60    
61      ! 4: No moist convection; atmosphere is not unstable      ! 4: No moist convection; atmosphere is not unstable.
62    
63      ! 6: No moist convection because ihmin le minorig.      ! 6: No moist convection because ihmin <= minorig.
64    
65      ! 7: No moist convection because unreasonable parcel level      ! 7: No moist convection because unreasonable parcel level
66      ! temperature or specific humidity.      ! temperature or specific humidity.
67    
68      ! 8: No moist convection: lifted condensation level is above the      ! 8: No moist convection: lifted condensation level is above the
69      ! 200 mb level.      ! 200 mbar level.
   
     ! 9: No moist convection: cloud base is higher then the level NL-1.  
70    
71      real, intent(out):: ft1(klon, klev)      ! 9: No moist convection: cloud base is higher than the level NL-1.
     ! Temperature tendency (K/s), defined at same grid levels as T1,  
     ! Q1, QS1 and P1.  
72    
73      real, intent(out):: fq1(klon, klev)      real, intent(out):: ft1(klon, klev) ! temperature tendency (K/s)
74      ! Specific humidity tendencies (s-1), defined at same grid levels      real, intent(out):: fq1(klon, klev) ! specific humidity tendency (s-1)
     ! as T1, Q1, QS1 and P1.  
75    
76      real, intent(out):: fu1(klon, klev), fv1(klon, klev)      real, intent(out):: fu1(klon, klev), fv1(klon, klev)
77      ! Forcing (tendency) of zonal and meridional velocity (m/s^2),      ! forcing (tendency) of zonal and meridional velocity (m/s^2)
     ! defined at same grid levels as T1.  
78    
79      real, intent(out):: precip1(klon) ! convective precipitation rate (mm/day)      real, intent(out):: precip1(klon) ! convective precipitation rate (mm/day)
80    
81      real, intent(out):: VPrecip1(klon, klev + 1)      real, intent(out):: VPrecip1(klon, klev + 1)
82      ! vertical profile of convective precipitation (kg/m2/s)      ! vertical profile of convective precipitation (kg/m2/s)
83    
84      real, intent(inout):: sig1(klon, klev) ! section adiabatic updraft      real, intent(inout):: sig1(klon, klev) ! section of adiabatic updraft
85    
86      real, intent(inout):: w01(klon, klev)      real, intent(inout):: w01(klon, klev)
87      ! vertical velocity within adiabatic updraft      ! vertical velocity within adiabatic updraft
88    
89      integer, intent(out):: icb1(klon)      integer, intent(out):: icb1(klon)
90      integer, intent(inout):: inb1(klon)      integer, intent(inout):: inb1(klon)
91      real, intent(in):: delt ! the model time step (sec) between calls      real, intent(out):: Ma1(klon, klev) ! mass flux of adiabatic updraft
   
     real Ma1(klon, klev) ! Output mass flux adiabatic updraft  
92    
93      real, intent(out):: upwd1(klon, klev)      real, intent(out):: upwd1(klon, klev)
94      ! total upward mass flux (adiab + mixed)      ! total upward mass flux (adiabatic + mixed)
95    
96      real, intent(out):: dnwd1(klon, klev) ! saturated downward mass flux (mixed)      real, intent(out):: dnwd1(klon, klev) ! saturated downward mass flux (mixed)
97      real, intent(out):: dnwd01(klon, klev) ! unsaturated downward mass flux      real, intent(out):: dnwd01(klon, klev) ! unsaturated downward mass flux
98    
99      real qcondc1(klon, klev) ! Output in-cld mixing ratio of condensed water      real, intent(out):: qcondc1(klon, klev)
100        ! in-cloud mixing ratio of condensed water
101    
102      real wd1(klon) ! gust      real, intent(out):: cape1(klon)
     ! Output downdraft velocity scale for surface fluxes  
     ! A convective downdraft velocity scale. For use in surface  
     ! flux parameterizations. See convect.ps file for details.  
   
     real cape1(klon) ! Output  
103      real, intent(inout):: da1(klon, klev), phi1(klon, klev, klev)      real, intent(inout):: da1(klon, klev), phi1(klon, klev, klev)
104      real, intent(inout):: mp1(klon, klev)      real, intent(inout):: mp1(klon, klev)
105    
106      ! Local:      ! Local:
107    
108      real da(klon, klev), phi(klon, klev, klev), mp(klon, klev)      real da(klon, klev), phi(klon, klev, klev)
109        real, allocatable:: mp(:, :) ! (ncum, nl)
110      integer i, k, il      integer i, k, il
     integer icbmax  
     integer nk1(klon)  
111      integer icbs1(klon)      integer icbs1(klon)
   
112      real plcl1(klon)      real plcl1(klon)
113      real tnk1(klon)      real tnk1(klon)
114      real qnk1(klon)      real qnk1(klon)
# Line 143  contains Line 116  contains
116      real pbase1(klon)      real pbase1(klon)
117      real buoybase1(klon)      real buoybase1(klon)
118    
119      real lv1(klon, klev)      real lv1(klon, nl)
120      real cpn1(klon, klev)      ! specific latent heat of vaporization of water, in J kg-1
121    
122        real cpn1(klon, nl)
123        ! specific heat capacity at constant pressure of humid air, in J K-1 kg-1
124    
125      real tv1(klon, klev)      real tv1(klon, klev)
126      real gz1(klon, klev)      real gz1(klon, klev)
127      real hm1(klon, klev)      real hm1(klon, klev)
# Line 152  contains Line 129  contains
129      real tp1(klon, klev)      real tp1(klon, klev)
130      real tvp1(klon, klev)      real tvp1(klon, klev)
131      real clw1(klon, klev)      real clw1(klon, klev)
132      real th1(klon, klev)      real th1(klon, nl) ! potential temperature, in K
   
133      integer ncum      integer ncum
134    
135      ! Compressed fields:      ! Compressed fields:
136        integer, allocatable:: idcum(:), iflag(:) ! (ncum)
137      integer idcum(klon)      integer, allocatable:: icb(:) ! (ncum)
     integer iflag(klon), nk(klon), icb(klon)  
138      integer nent(klon, klev)      integer nent(klon, klev)
139      integer icbs(klon)      integer icbs(klon)
     integer inb(klon)  
140    
141      real plcl(klon), tnk(klon), qnk(klon), gznk(klon)      integer, allocatable:: inb(:) ! (ncum)
142        ! first model level above the level of neutral buoyancy of the
143        ! parcel (1 <= inb <= nl - 1)
144    
145        real, allocatable:: plcl(:) ! (ncum)
146        real tnk(klon), qnk(klon), gznk(klon)
147      real t(klon, klev), q(klon, klev), qs(klon, klev)      real t(klon, klev), q(klon, klev), qs(klon, klev)
148      real u(klon, klev), v(klon, klev)      real u(klon, klev), v(klon, klev)
149      real gz(klon, klev), h(klon, klev), lv(klon, klev), cpn(klon, klev)      real gz(klon, klev), h(klon, klev)
150      real p(klon, klev), ph(klon, klev + 1), tv(klon, klev), tp(klon, klev)  
151        real, allocatable:: lv(:, :) ! (ncum, nl)
152        ! specific latent heat of vaporization of water, in J kg-1
153    
154        real, allocatable:: cpn(:, :) ! (ncum, nl)
155        ! specific heat capacity at constant pressure of humid air, in J K-1 kg-1
156    
157        real p(klon, klev) ! pressure at full level, in hPa
158        real ph(klon, klev + 1), tv(klon, klev), tp(klon, klev)
159      real clw(klon, klev)      real clw(klon, klev)
160      real pbase(klon), buoybase(klon), th(klon, klev)      real pbase(klon), buoybase(klon)
161        real, allocatable:: th(:, :) ! (ncum, nl)
162      real tvp(klon, klev)      real tvp(klon, klev)
163      real sig(klon, klev), w0(klon, klev)      real sig(klon, klev), w0(klon, klev)
164      real hp(klon, klev), ep(klon, klev), sigp(klon, klev)      real hp(klon, klev), ep(klon, klev)
165      real buoy(klon, klev)      real buoy(klon, klev)
166      real cape(klon)      real cape(klon)
167      real m(klon, klev), ment(klon, klev, klev), qent(klon, klev, klev)      real m(klon, klev), ment(klon, klev, klev), qent(klon, klev, klev)
# Line 181  contains Line 169  contains
169      real ments(klon, klev, klev), qents(klon, klev, klev)      real ments(klon, klev, klev), qents(klon, klev, klev)
170      real sij(klon, klev, klev), elij(klon, klev, klev)      real sij(klon, klev, klev), elij(klon, klev, klev)
171      real qp(klon, klev), up(klon, klev), vp(klon, klev)      real qp(klon, klev), up(klon, klev), vp(klon, klev)
172      real wt(klon, klev), water(klon, klev), evap(klon, klev)      real wt(klon, klev), water(klon, klev)
173      real b(klon, klev), ft(klon, klev), fq(klon, klev)      real, allocatable:: evap(:, :) ! (ncum, nl)
174        real, allocatable:: b(:, :) ! (ncum, nl - 1)
175        real ft(klon, klev), fq(klon, klev)
176      real fu(klon, klev), fv(klon, klev)      real fu(klon, klev), fv(klon, klev)
177      real upwd(klon, klev), dnwd(klon, klev), dnwd0(klon, klev)      real upwd(klon, klev), dnwd(klon, klev), dnwd0(klon, klev)
178      real Ma(klon, klev), mike(klon, klev), tls(klon, klev)      real Ma(klon, klev), mike(klon, klev), tls(klon, klev)
# Line 190  contains Line 180  contains
180      real precip(klon)      real precip(klon)
181      real VPrecip(klon, klev + 1)      real VPrecip(klon, klev + 1)
182      real qcondc(klon, klev) ! cld      real qcondc(klon, klev) ! cld
     real wd(klon) ! gust  
183    
184      !-------------------------------------------------------------------      !-------------------------------------------------------------------
185    
186      ! SET CONSTANTS AND PARAMETERS      ! SET CONSTANTS AND PARAMETERS
187        CALL cv30_param
     ! set thermodynamical constants:  
     ! (common cvthermo)  
     CALL cv_thermo  
   
     ! set convect parameters  
     ! includes microphysical parameters and parameters that  
     ! control the rate of approach to quasi-equilibrium)  
     ! (common cvparam)  
     CALL cv30_param(delt)  
188    
189      ! INITIALIZE OUTPUT ARRAYS AND PARAMETERS      ! INITIALIZE OUTPUT ARRAYS AND PARAMETERS
190    
# Line 228  contains Line 208  contains
208         end do         end do
209      end do      end do
210    
211      do i = 1, klon      precip1 = 0.
212         precip1(i) = 0.      cape1 = 0.
213         iflag1(i) = 0      VPrecip1(:, klev + 1) = 0.
        wd1(i) = 0.  
        cape1(i) = 0.  
        VPrecip1(i, klev + 1) = 0.  
     end do  
214    
215      do il = 1, klon      do il = 1, klon
216         sig1(il, klev) = sig1(il, klev) + 1.         sig1(il, klev) = sig1(il, klev) + 1.
217         sig1(il, klev) = min(sig1(il, klev), 12.1)         sig1(il, klev) = min(sig1(il, klev), 12.1)
218      enddo      enddo
219    
220      ! CALCULATE ARRAYS OF GEOPOTENTIAL, HEAT CAPACITY & STATIC ENERGY      CALL cv30_prelim(t1, q1, p1, ph1, lv1, cpn1, tv1, gz1, h1, hm1, th1)
221      CALL cv30_prelim(klon, klev, klev + 1, t1, q1, p1, ph1, lv1, cpn1, tv1, &      CALL cv30_feed(t1, q1, qs1, p1, ph1, gz1, icb1, iflag1, tnk1, qnk1, &
222           gz1, h1, hm1, th1)           gznk1, plcl1)
223        CALL cv30_undilute1(t1, q1, qs1, gz1, plcl1, p1, icb1, tp1, tvp1, clw1, &
224      ! CONVECTIVE FEED           icbs1)
225      CALL cv30_feed(klon, klev, t1, q1, qs1, p1, ph1, gz1, nk1, icb1, &      CALL cv30_trigger(icb1, plcl1, p1, th1, tv1, tvp1, pbase1, buoybase1, &
226           icbmax, iflag1, tnk1, qnk1, gznk1, plcl1) ! klev->na           iflag1, sig1, w01)
   
     ! 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.  
     CALL cv30_undilute1(klon, klev, t1, q1, qs1, gz1, plcl1, p1, nk1, icb1, &  
          tp1, tvp1, clw1, icbs1) ! klev->na  
   
     ! TRIGGERING  
     CALL cv30_trigger(klon, klev, icb1, plcl1, p1, th1, tv1, tvp1, pbase1, &  
          buoybase1, iflag1, sig1, w01) ! klev->na  
   
     ! Moist convective adjustment is necessary  
   
     ncum = 0  
     do i = 1, klon  
        if (iflag1(i) == 0) then  
           ncum = ncum + 1  
           idcum(ncum) = i  
        endif  
     end do  
227    
228      IF (ncum > 0) THEN      ncum = count(iflag1 == 0)
        ! COMPRESS THE FIELDS  
        ! (-> vectorization over convective gridpoints)  
        CALL cv30_compress(klon, klon, ncum, klev, iflag1, nk1, icb1, icbs1, &  
             plcl1, tnk1, qnk1, gznk1, pbase1, buoybase1, t1, q1, qs1, u1, &  
             v1, gz1, th1, h1, lv1, cpn1, p1, ph1, tv1, tp1, tvp1, clw1, &  
             sig1, w01, iflag, nk, icb, icbs, plcl, tnk, qnk, gznk, pbase, &  
             buoybase, t, q, qs, u, v, gz, th, h, lv, cpn, p, ph, tv, tp, &  
             tvp, clw, sig, w0)  
   
        CALL cv30_undilute2(ncum, icb, icbs, nk, tnk, qnk, gznk, t, qs, gz, p, &  
             h, tv, lv, pbase, buoybase, plcl, inb(:ncum), tp, tvp, clw, hp, &  
             ep, sigp, buoy)  
   
        ! CLOSURE  
        CALL cv30_closure(klon, ncum, klev, icb, inb, pbase, p, ph, tv, &  
             buoy, sig, w0, cape, m) ! na->klev  
   
        ! MIXING  
        CALL cv30_mixing(klon, ncum, klev, klev, icb, nk, inb, t, q, qs, u, &  
             v, h, lv, hp, ep, clw, m, sig, ment, qent, uent, vent, nent, &  
             sij, elij, ments, qents)  
   
        ! Unsaturated (precipitating) downdrafts  
        CALL cv30_unsat(ncum, icb(:ncum), inb(:ncum), 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(:ncum, :))  
   
        ! Yield (tendencies, precipitation, variables of interface with  
        ! other processes, etc)  
        CALL cv30_yield(klon, ncum, klev, klev, 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->klev  
229    
230         ! passive tracers      IF (ncum > 0) THEN
231           ! Moist convective adjustment is necessary
232           allocate(idcum(ncum), plcl(ncum), inb(ncum))
233           allocate(b(ncum, nl - 1), evap(ncum, nl), icb(ncum), iflag(ncum))
234           allocate(th(ncum, nl), lv(ncum, nl), cpn(ncum, nl), mp(ncum, nl))
235           idcum = pack((/(i, i = 1, klon)/), iflag1 == 0)
236           CALL cv30_compress(idcum, iflag1, icb1, icbs1, plcl1, tnk1, qnk1, &
237                gznk1, pbase1, buoybase1, t1, q1, qs1, u1, v1, gz1, th1, h1, lv1, &
238                cpn1, p1, ph1, tv1, tp1, tvp1, clw1, sig1, w01, icb, icbs, plcl, &
239                tnk, qnk, gznk, pbase, buoybase, t, q, qs, u, v, gz, th, h, lv, &
240                cpn, p, ph, tv, tp, tvp, clw, sig, w0)
241           CALL cv30_undilute2(icb, icbs(:ncum), tnk, qnk, gznk, t, qs, gz, p, h, &
242                tv, lv, pbase(:ncum), buoybase(:ncum), plcl, inb, tp, tvp, &
243                clw, hp, ep, buoy)
244           CALL cv30_closure(icb, inb, pbase, p, ph(:ncum, :), tv, buoy, &
245                sig, w0, cape, m)
246           CALL cv30_mixing(icb, inb, t, q, qs, u, v, h, lv, &
247                hp, ep, clw, m, sig, ment, qent, uent, vent, nent, sij, elij, &
248                ments, qents)
249           CALL cv30_unsat(icb, inb, t(:ncum, :nl), q(:ncum, :nl), &
250                qs(:ncum, :nl), gz, u(:ncum, :nl), v(:ncum, :nl), p, &
251                ph(:ncum, :), th(:ncum, :nl - 1), tv, lv, cpn, ep(:ncum, :), &
252                clw(:ncum, :), m(:ncum, :), ment(:ncum, :, :), elij(:ncum, :, :), &
253                dtphys, plcl, mp, qp(:ncum, :nl), up(:ncum, :nl), vp(:ncum, :nl), &
254                wt(:ncum, :nl), water(:ncum, :nl), evap, b)
255           CALL cv30_yield(icb, inb, dtphys, t, q, u, v, gz, p, ph, h, hp, &
256                lv, cpn, th, ep, clw, m, tp, mp, qp, up, vp(:ncum, 2:nl), &
257                wt(:ncum, :nl - 1), water(:ncum, :nl), evap, b, ment, qent, uent, &
258                vent, nent, elij, sig, tv, tvp, iflag, precip, VPrecip, ft, fq, &
259                fu, fv, upwd, dnwd, dnwd0, ma, mike, tls, tps, qcondc)
260         CALL cv30_tracer(klon, ncum, klev, ment, sij, da, phi)         CALL cv30_tracer(klon, ncum, klev, ment, sij, da, phi)
261           CALL cv30_uncompress(idcum, iflag, precip, VPrecip, sig, w0, ft, fq, &
262         ! UNCOMPRESS THE FIELDS              fu, fv, inb, Ma, upwd, dnwd, dnwd0, qcondc, cape, da, phi, mp, &
263                iflag1, precip1, VPrecip1, sig1, w01, ft1, fq1, fu1, fv1, inb1, &
264         ! set iflag1 = 42 for non convective points              Ma1, upwd1, dnwd1, dnwd01, qcondc1, cape1, da1, phi1, mp1)
        iflag1 = 42  
   
        CALL cv30_uncompress(idcum(:ncum), 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)  
265      ENDIF      ENDIF
266    
267    end SUBROUTINE cv_driver    end SUBROUTINE cv_driver

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