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, & |
8 |
fq1, fu1, fv1, precip1, VPrecip1, cbmf1, sig1, w01, icb1, inb1, delt, & |
fq1, fu1, fv1, precip1, VPrecip1, cbmf1, sig1, w01, icb1, inb1, delt, & |
9 |
Ma1, upwd1, dnwd1, dnwd01, qcondc1, wd1, cape1, da1, phi1, mp1) |
Ma1, upwd1, dnwd1, dnwd01, qcondc1, wd1, cape1, da1, phi1, mp1) |
10 |
|
|
14 |
|
|
15 |
! Several modules corresponding to different physical processes |
! Several modules corresponding to different physical processes |
16 |
|
|
|
! Several versions of convect may be used: |
|
|
! - iflag_con = 3: version lmd |
|
|
! - iflag_con = 4: version 4.3b |
|
|
|
|
|
use clesphys2, only: iflag_con |
|
17 |
use cv3_compress_m, only: cv3_compress |
use cv3_compress_m, only: cv3_compress |
18 |
|
use cv3_feed_m, only: cv3_feed |
19 |
use cv3_mixing_m, only: cv3_mixing |
use cv3_mixing_m, only: cv3_mixing |
20 |
use cv3_param_m, only: cv3_param |
use cv3_param_m, only: cv3_param |
21 |
use cv3_prelim_m, only: cv3_prelim |
use cv3_prelim_m, only: cv3_prelim |
23 |
use cv3_uncompress_m, only: cv3_uncompress |
use cv3_uncompress_m, only: cv3_uncompress |
24 |
use cv3_unsat_m, only: cv3_unsat |
use cv3_unsat_m, only: cv3_unsat |
25 |
use cv3_yield_m, only: cv3_yield |
use cv3_yield_m, only: cv3_yield |
|
use cv_uncompress_m, only: cv_uncompress |
|
26 |
USE dimphy, ONLY: klev, klon |
USE dimphy, ONLY: klev, klon |
27 |
|
|
28 |
integer, intent(in):: len ! first dimension |
real, intent(in):: t1(klon, klev) ! temperature |
29 |
integer, intent(in):: nd ! vertical dimension |
real, intent(in):: q1(klon, klev) ! specific hum |
30 |
real, intent(in):: t1(len, nd) ! temperature |
real, intent(in):: qs1(klon, klev) ! sat specific hum |
31 |
real q1(len, nd) ! Input specific hum |
real, intent(in):: u1(klon, klev) ! u-wind |
32 |
real qs1(len, nd) |
real, intent(in):: v1(klon, klev) ! v-wind |
33 |
! qs1 Real Input sat specific hum |
real, intent(in):: p1(klon, klev) ! full level pressure |
34 |
real, intent(in):: u1(len, nd) |
real, intent(in):: ph1(klon, klev + 1) ! half level pressure |
35 |
! u1 Real Input u-wind |
integer, intent(out):: iflag1(klon) ! flag for Emanuel conditions |
36 |
real, intent(in):: v1(len, nd) |
real, intent(out):: ft1(klon, klev) ! temp tend |
37 |
! v1 Real Input v-wind |
real, intent(out):: fq1(klon, klev) ! spec hum tend |
38 |
real p1(len, nd) |
real, intent(out):: fu1(klon, klev) ! u-wind tend |
39 |
! p1 Real Input full level pressure |
real, intent(out):: fv1(klon, klev) ! v-wind tend |
40 |
real ph1(len, nd + 1) |
real, intent(out):: precip1(klon) ! precipitation |
41 |
! ph1 Real Input half level pressure |
|
42 |
integer iflag1(len) |
real, intent(out):: VPrecip1(klon, klev + 1) |
43 |
! iflag1 Integer Output flag for Emanuel conditions |
! vertical profile of precipitation |
44 |
real ft1(len, nd) |
|
45 |
! ft1 Real Output temp tend |
real, intent(inout):: cbmf1(klon) ! cloud base mass flux |
|
real fq1(len, nd) |
|
|
! fq1 Real Output spec hum tend |
|
|
real fu1(len, nd) |
|
|
! fu1 Real Output u-wind tend |
|
|
real fv1(len, nd) |
|
|
! fv1 Real Output v-wind tend |
|
|
real precip1(len) |
|
|
! precip1 Real Output precipitation |
|
|
real VPrecip1(len, nd+1) |
|
|
! VPrecip1 Real Output vertical profile of precipitations |
|
|
real cbmf1(len) |
|
|
! cbmf1 Real Output cloud base mass flux |
|
46 |
real, intent(inout):: sig1(klon, klev) ! section adiabatic updraft |
real, intent(inout):: sig1(klon, klev) ! section adiabatic updraft |
47 |
|
|
48 |
real, intent(inout):: w01(klon, klev) |
real, intent(inout):: w01(klon, klev) |
49 |
! vertical velocity within adiabatic updraft |
! vertical velocity within adiabatic updraft |
50 |
|
|
51 |
integer icb1(klon) |
integer, intent(out):: icb1(klon) |
52 |
integer inb1(klon) |
integer, intent(inout):: inb1(klon) |
53 |
real, intent(in):: delt |
real, intent(in):: delt ! time step |
54 |
! delt Real Input time step |
real Ma1(klon, klev) |
55 |
real Ma1(len, nd) |
! Ma1 Real Output mass flux adiabatic updraft |
56 |
! Ma1 Real Output mass flux adiabatic updraft |
|
57 |
real, intent(out):: upwd1(len, nd) ! total upward mass flux (adiab+mixed) |
real, intent(out):: upwd1(klon, klev) |
58 |
real, intent(out):: dnwd1(len, nd) ! saturated downward mass flux (mixed) |
! total upward mass flux (adiab + mixed) |
59 |
real, intent(out):: dnwd01(len, nd) ! unsaturated downward mass flux |
|
60 |
|
real, intent(out):: dnwd1(klon, klev) ! saturated downward mass flux (mixed) |
61 |
real qcondc1(len, nd) ! cld |
real, intent(out):: dnwd01(klon, klev) ! unsaturated downward mass flux |
62 |
! qcondc1 Real Output in-cld mixing ratio of condensed water |
|
63 |
real wd1(len) ! gust |
real qcondc1(klon, klev) ! cld |
64 |
! wd1 Real Output downdraft velocity scale for sfc fluxes |
! qcondc1 Real Output in-cld mixing ratio of condensed water |
65 |
real cape1(len) |
real wd1(klon) ! gust |
66 |
! cape1 Real Output CAPE |
! wd1 Real Output downdraft velocity scale for sfc fluxes |
67 |
|
real cape1(klon) |
68 |
real, intent(inout):: da1(len, nd), phi1(len, nd, nd), mp1(len, nd) |
! cape1 Real Output CAPE |
69 |
|
|
70 |
!------------------------------------------------------------------- |
real, intent(inout):: da1(klon, klev), phi1(klon, klev, klev) |
71 |
! --- ARGUMENTS |
real, intent(inout):: mp1(klon, klev) |
72 |
!------------------------------------------------------------------- |
|
73 |
! --- On input: |
! ARGUMENTS |
74 |
|
|
75 |
! t: Array of absolute temperature (K) of dimension ND, with first |
! On input: |
76 |
! index corresponding to lowest model level. Note that this array |
|
77 |
! will be altered by the subroutine if dry convective adjustment |
! t: Array of absolute temperature (K) of dimension KLEV, with first |
78 |
! occurs and if IPBL is not equal to 0. |
! index corresponding to lowest model level. Note that this array |
79 |
|
! will be altered by the subroutine if dry convective adjustment |
80 |
! q: Array of specific humidity (gm/gm) of dimension ND, with first |
! occurs and if IPBL is not equal to 0. |
81 |
! index corresponding to lowest model level. Must be defined |
|
82 |
! at same grid levels as T. Note that this array will be altered |
! q: Array of specific humidity (gm/gm) of dimension KLEV, with first |
83 |
! if dry convective adjustment occurs and if IPBL is not equal to 0. |
! index corresponding to lowest model level. Must be defined |
84 |
|
! at same grid levels as T. Note that this array will be altered |
85 |
! qs: Array of saturation specific humidity of dimension ND, with first |
! if dry convective adjustment occurs and if IPBL is not equal to 0. |
86 |
! index corresponding to lowest model level. Must be defined |
|
87 |
! at same grid levels as T. Note that this array will be altered |
! qs: Array of saturation specific humidity of dimension KLEV, with first |
88 |
! if dry convective adjustment occurs and if IPBL is not equal to 0. |
! index corresponding to lowest model level. Must be defined |
89 |
|
! at same grid levels as T. Note that this array will be altered |
90 |
! u: Array of zonal wind velocity (m/s) of dimension ND, witth first |
! if dry convective adjustment occurs and if IPBL is not equal to 0. |
91 |
! index corresponding with the lowest model level. Defined at |
|
92 |
! same levels as T. Note that this array will be altered if |
! u: Array of zonal wind velocity (m/s) of dimension KLEV, witth first |
93 |
! dry convective adjustment occurs and if IPBL is not equal to 0. |
! index corresponding with the lowest model level. Defined at |
94 |
|
! same levels as T. Note that this array will be altered if |
95 |
! v: Same as u but for meridional velocity. |
! dry convective adjustment occurs and if IPBL is not equal to 0. |
96 |
|
|
97 |
! p: Array of pressure (mb) of dimension ND, with first |
! v: Same as u but for meridional velocity. |
98 |
! index corresponding to lowest model level. Must be defined |
|
99 |
! at same grid levels as T. |
! p: Array of pressure (mb) of dimension KLEV, with first |
100 |
|
! index corresponding to lowest model level. Must be defined |
101 |
! ph: Array of pressure (mb) of dimension ND+1, with first index |
! at same grid levels as T. |
102 |
! corresponding to lowest level. These pressures are defined at |
|
103 |
! levels intermediate between those of P, T, Q and QS. The first |
! ph: Array of pressure (mb) of dimension KLEV + 1, with first index |
104 |
! value of PH should be greater than (i.e. at a lower level than) |
! corresponding to lowest level. These pressures are defined at |
105 |
! the first value of the array P. |
! levels intermediate between those of P, T, Q and QS. The first |
106 |
|
! value of PH should be greater than (i.e. at a lower level than) |
107 |
! nl: The maximum number of levels to which convection can penetrate, plus 1. |
! the first value of the array P. |
108 |
! NL MUST be less than or equal to ND-1. |
|
109 |
|
! nl: The maximum number of levels to which convection can penetrate, plus 1 |
110 |
! delt: The model time step (sec) between calls to CONVECT |
! NL MUST be less than or equal to KLEV-1. |
111 |
|
|
112 |
!---------------------------------------------------------------------------- |
! delt: The model time step (sec) between calls to CONVECT |
113 |
! --- On Output: |
|
114 |
|
! On Output: |
115 |
! iflag: An output integer whose value denotes the following: |
|
116 |
! VALUE INTERPRETATION |
! iflag: An output integer whose value denotes the following: |
117 |
! ----- -------------- |
! VALUE INTERPRETATION |
118 |
! 0 Moist convection occurs. |
! ----- -------------- |
119 |
! 1 Moist convection occurs, but a CFL condition |
! 0 Moist convection occurs. |
120 |
! on the subsidence warming is violated. This |
! 1 Moist convection occurs, but a CFL condition |
121 |
! does not cause the scheme to terminate. |
! on the subsidence warming is violated. This |
122 |
! 2 Moist convection, but no precip because ep(inb) lt 0.0001 |
! does not cause the scheme to terminate. |
123 |
! 3 No moist convection because new cbmf is 0 and old cbmf is 0. |
! 2 Moist convection, but no precip because ep(inb) lt 0.0001 |
124 |
! 4 No moist convection; atmosphere is not |
! 3 No moist convection because new cbmf is 0 and old cbmf is 0. |
125 |
! unstable |
! 4 No moist convection; atmosphere is not |
126 |
! 6 No moist convection because ihmin le minorig. |
! unstable |
127 |
! 7 No moist convection because unreasonable |
! 6 No moist convection because ihmin le minorig. |
128 |
! parcel level temperature or specific humidity. |
! 7 No moist convection because unreasonable |
129 |
! 8 No moist convection: lifted condensation |
! parcel level temperature or specific humidity. |
130 |
! level is above the 200 mb level. |
! 8 No moist convection: lifted condensation |
131 |
! 9 No moist convection: cloud base is higher |
! level is above the 200 mb level. |
132 |
! then the level NL-1. |
! 9 No moist convection: cloud base is higher |
133 |
|
! then the level NL-1. |
134 |
! ft: Array of temperature tendency (K/s) of dimension ND, defined at same |
|
135 |
! grid levels as T, Q, QS and P. |
! ft: Array of temperature tendency (K/s) of dimension KLEV, defined at same |
136 |
|
! grid levels as T, Q, QS and P. |
137 |
! fq: Array of specific humidity tendencies ((gm/gm)/s) of dimension ND, |
|
138 |
! defined at same grid levels as T, Q, QS and P. |
! fq: Array of specific humidity tendencies ((gm/gm)/s) of dimension KLEV, |
139 |
|
! defined at same grid levels as T, Q, QS and P. |
140 |
! fu: Array of forcing of zonal velocity (m/s^2) of dimension ND, |
|
141 |
! defined at same grid levels as T. |
! fu: Array of forcing of zonal velocity (m/s^2) of dimension KLEV, |
142 |
|
! defined at same grid levels as T. |
143 |
! fv: Same as FU, but for forcing of meridional velocity. |
|
144 |
|
! fv: Same as FU, but for forcing of meridional velocity. |
145 |
! precip: Scalar convective precipitation rate (mm/day). |
|
146 |
|
! precip: Scalar convective precipitation rate (mm/day). |
147 |
! VPrecip: Vertical profile of convective precipitation (kg/m2/s). |
|
148 |
|
! VPrecip: Vertical profile of convective precipitation (kg/m2/s). |
149 |
! wd: A convective downdraft velocity scale. For use in surface |
|
150 |
! flux parameterizations. See convect.ps file for details. |
! wd: A convective downdraft velocity scale. For use in surface |
151 |
|
! flux parameterizations. See convect.ps file for details. |
152 |
! tprime: A convective downdraft temperature perturbation scale (K). |
|
153 |
! For use in surface flux parameterizations. See convect.ps |
! tprime: A convective downdraft temperature perturbation scale (K). |
154 |
! file for details. |
! For use in surface flux parameterizations. See convect.ps |
155 |
|
! file for details. |
156 |
! qprime: A convective downdraft specific humidity |
|
157 |
! perturbation scale (gm/gm). |
! qprime: A convective downdraft specific humidity |
158 |
! For use in surface flux parameterizations. See convect.ps |
! perturbation scale (gm/gm). |
159 |
! file for details. |
! For use in surface flux parameterizations. See convect.ps |
160 |
|
! file for details. |
161 |
! cbmf: The cloud base mass flux ((kg/m**2)/s). THIS SCALAR VALUE MUST |
|
162 |
! BE STORED BY THE CALLING PROGRAM AND RETURNED TO CONVECT AT |
! cbmf: The cloud base mass flux ((kg/m**2)/s). THIS SCALAR VALUE MUST |
163 |
! ITS NEXT CALL. That is, the value of CBMF must be "remembered" |
! BE STORED BY THE CALLING PROGRAM AND RETURNED TO CONVECT AT |
164 |
! by the calling program between calls to CONVECT. |
! ITS NEXT CALL. That is, the value of CBMF must be "remembered" |
165 |
|
! by the calling program between calls to CONVECT. |
166 |
|
|
167 |
! det: Array of detrainment mass flux of dimension ND. |
! det: Array of detrainment mass flux of dimension KLEV. |
|
|
|
|
!------------------------------------------------------------------- |
|
168 |
|
|
169 |
! Local arrays |
! Local arrays |
170 |
|
|
171 |
real da(len, nd), phi(len, nd, nd), mp(len, nd) |
real da(klon, klev), phi(klon, klev, klev), mp(klon, klev) |
172 |
|
|
173 |
integer i, k, il |
integer i, k, il |
174 |
integer icbmax |
integer icbmax |
197 |
|
|
198 |
! (local) compressed fields: |
! (local) compressed fields: |
199 |
|
|
200 |
integer nloc |
integer idcum(klon) |
201 |
parameter (nloc = klon) ! pour l'instant |
integer iflag(klon), nk(klon), icb(klon) |
202 |
|
integer nent(klon, klev) |
203 |
|
integer icbs(klon) |
204 |
|
integer inb(klon), inbis(klon) |
205 |
|
|
206 |
|
real plcl(klon), tnk(klon), qnk(klon), gznk(klon) |
207 |
|
real t(klon, klev), q(klon, klev), qs(klon, klev) |
208 |
|
real u(klon, klev), v(klon, klev) |
209 |
|
real gz(klon, klev), h(klon, klev), lv(klon, klev), cpn(klon, klev) |
210 |
|
real p(klon, klev), ph(klon, klev + 1), tv(klon, klev), tp(klon, klev) |
211 |
|
real clw(klon, klev) |
212 |
|
real dph(klon, klev) |
213 |
|
real pbase(klon), buoybase(klon), th(klon, klev) |
214 |
|
real tvp(klon, klev) |
215 |
|
real sig(klon, klev), w0(klon, klev) |
216 |
|
real hp(klon, klev), ep(klon, klev), sigp(klon, klev) |
217 |
|
real frac(klon), buoy(klon, klev) |
218 |
|
real cape(klon) |
219 |
|
real m(klon, klev), ment(klon, klev, klev), qent(klon, klev, klev) |
220 |
|
real uent(klon, klev, klev), vent(klon, klev, klev) |
221 |
|
real ments(klon, klev, klev), qents(klon, klev, klev) |
222 |
|
real sij(klon, klev, klev), elij(klon, klev, klev) |
223 |
|
real qp(klon, klev), up(klon, klev), vp(klon, klev) |
224 |
|
real wt(klon, klev), water(klon, klev), evap(klon, klev) |
225 |
|
real b(klon, klev), ft(klon, klev), fq(klon, klev) |
226 |
|
real fu(klon, klev), fv(klon, klev) |
227 |
|
real upwd(klon, klev), dnwd(klon, klev), dnwd0(klon, klev) |
228 |
|
real Ma(klon, klev), mike(klon, klev), tls(klon, klev) |
229 |
|
real tps(klon, klev), qprime(klon), tprime(klon) |
230 |
|
real precip(klon) |
231 |
|
real VPrecip(klon, klev + 1) |
232 |
|
real qcondc(klon, klev) ! cld |
233 |
|
real wd(klon) ! gust |
234 |
|
|
|
integer idcum(nloc) |
|
|
integer iflag(nloc), nk(nloc), icb(nloc) |
|
|
integer nent(nloc, klev) |
|
|
integer icbs(nloc) |
|
|
integer inb(nloc), inbis(nloc) |
|
|
|
|
|
real cbmf(nloc), plcl(nloc), tnk(nloc), qnk(nloc), gznk(nloc) |
|
|
real t(nloc, klev), q(nloc, klev), qs(nloc, klev) |
|
|
real u(nloc, klev), v(nloc, klev) |
|
|
real gz(nloc, klev), h(nloc, klev), lv(nloc, klev), cpn(nloc, klev) |
|
|
real p(nloc, klev), ph(nloc, klev+1), tv(nloc, klev), tp(nloc, klev) |
|
|
real clw(nloc, klev) |
|
|
real dph(nloc, klev) |
|
|
real pbase(nloc), buoybase(nloc), th(nloc, klev) |
|
|
real tvp(nloc, klev) |
|
|
real sig(nloc, klev), w0(nloc, klev) |
|
|
real hp(nloc, klev), ep(nloc, klev), sigp(nloc, klev) |
|
|
real frac(nloc), buoy(nloc, klev) |
|
|
real cape(nloc) |
|
|
real m(nloc, klev), ment(nloc, klev, klev), qent(nloc, klev, klev) |
|
|
real uent(nloc, klev, klev), vent(nloc, klev, klev) |
|
|
real ments(nloc, klev, klev), qents(nloc, klev, klev) |
|
|
real sij(nloc, klev, klev), elij(nloc, klev, klev) |
|
|
real qp(nloc, klev), up(nloc, klev), vp(nloc, klev) |
|
|
real wt(nloc, klev), water(nloc, klev), evap(nloc, klev) |
|
|
real b(nloc, klev), ft(nloc, klev), fq(nloc, klev) |
|
|
real fu(nloc, klev), fv(nloc, klev) |
|
|
real upwd(nloc, klev), dnwd(nloc, klev), dnwd0(nloc, klev) |
|
|
real Ma(nloc, klev), mike(nloc, klev), tls(nloc, klev) |
|
|
real tps(nloc, klev), qprime(nloc), tprime(nloc) |
|
|
real precip(nloc) |
|
|
real VPrecip(nloc, klev+1) |
|
|
real qcondc(nloc, klev) ! cld |
|
|
real wd(nloc) ! gust |
|
|
|
|
|
!------------------------------------------------------------------- |
|
|
! --- SET CONSTANTS AND PARAMETERS |
|
235 |
!------------------------------------------------------------------- |
!------------------------------------------------------------------- |
236 |
|
|
237 |
! -- set simulation flags: |
! SET CONSTANTS AND PARAMETERS |
238 |
! (common cvflag) |
|
239 |
|
! set simulation flags: |
240 |
|
! (common cvflag) |
241 |
|
|
242 |
CALL cv_flag |
CALL cv_flag |
243 |
|
|
244 |
! -- set thermodynamical constants: |
! set thermodynamical constants: |
245 |
! (common cvthermo) |
! (common cvthermo) |
246 |
|
|
247 |
CALL cv_thermo |
CALL cv_thermo |
248 |
|
|
249 |
! -- set convect parameters |
! set convect parameters |
250 |
|
|
251 |
|
! includes microphysical parameters and parameters that |
252 |
|
! control the rate of approach to quasi-equilibrium) |
253 |
|
! (common cvparam) |
254 |
|
|
255 |
|
CALL cv3_param(klev, delt) |
256 |
|
|
257 |
! includes microphysical parameters and parameters that |
! INITIALIZE OUTPUT ARRAYS AND PARAMETERS |
|
! control the rate of approach to quasi-equilibrium) |
|
|
! (common cvparam) |
|
|
|
|
|
if (iflag_con.eq.3) then |
|
|
CALL cv3_param(nd, delt) |
|
|
endif |
|
|
|
|
|
if (iflag_con.eq.4) then |
|
|
CALL cv_param(nd) |
|
|
endif |
|
|
|
|
|
!--------------------------------------------------------------------- |
|
|
! --- INITIALIZE OUTPUT ARRAYS AND PARAMETERS |
|
|
!--------------------------------------------------------------------- |
|
258 |
|
|
259 |
do k = 1, nd |
do k = 1, klev |
260 |
do i = 1, len |
do i = 1, klon |
261 |
ft1(i, k) = 0.0 |
ft1(i, k) = 0.0 |
262 |
fq1(i, k) = 0.0 |
fq1(i, k) = 0.0 |
263 |
fu1(i, k) = 0.0 |
fu1(i, k) = 0.0 |
267 |
clw1(i, k) = 0.0 |
clw1(i, k) = 0.0 |
268 |
!ym |
!ym |
269 |
clw(i, k) = 0.0 |
clw(i, k) = 0.0 |
270 |
gz1(i, k) = 0. |
gz1(i, k) = 0. |
271 |
VPrecip1(i, k) = 0. |
VPrecip1(i, k) = 0. |
272 |
Ma1(i, k) = 0.0 |
Ma1(i, k) = 0.0 |
273 |
upwd1(i, k) = 0.0 |
upwd1(i, k) = 0.0 |
277 |
end do |
end do |
278 |
end do |
end do |
279 |
|
|
280 |
do i = 1, len |
do i = 1, klon |
281 |
precip1(i) = 0.0 |
precip1(i) = 0.0 |
282 |
iflag1(i) = 0 |
iflag1(i) = 0 |
283 |
wd1(i) = 0.0 |
wd1(i) = 0.0 |
284 |
cape1(i) = 0.0 |
cape1(i) = 0.0 |
285 |
VPrecip1(i, nd+1) = 0.0 |
VPrecip1(i, klev + 1) = 0.0 |
286 |
end do |
end do |
287 |
|
|
288 |
if (iflag_con.eq.3) then |
do il = 1, klon |
289 |
do il = 1, len |
sig1(il, klev) = sig1(il, klev) + 1. |
290 |
sig1(il, nd) = sig1(il, nd) + 1. |
sig1(il, klev) = min(sig1(il, klev), 12.1) |
291 |
sig1(il, nd) = min(sig1(il, nd), 12.1) |
enddo |
|
enddo |
|
|
endif |
|
|
|
|
|
!-------------------------------------------------------------------- |
|
|
! --- CALCULATE ARRAYS OF GEOPOTENTIAL, HEAT CAPACITY & STATIC ENERGY |
|
|
!-------------------------------------------------------------------- |
|
|
|
|
|
if (iflag_con.eq.3) then |
|
|
CALL cv3_prelim(len, nd, nd + 1, t1, q1, p1, ph1, lv1, cpn1, tv1, gz1, & |
|
|
h1, hm1, th1) |
|
|
endif |
|
|
|
|
|
if (iflag_con.eq.4) then |
|
|
CALL cv_prelim(len, nd, nd + 1, t1, q1, p1, ph1 & |
|
|
, lv1, cpn1, tv1, gz1, h1, hm1) |
|
|
endif |
|
|
|
|
|
!-------------------------------------------------------------------- |
|
|
! --- CONVECTIVE FEED |
|
|
!-------------------------------------------------------------------- |
|
|
|
|
|
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 |
|
292 |
|
|
293 |
!------------------------------------------------------------------- |
! CALCULATE ARRAYS OF GEOPOTENTIAL, HEAT CAPACITY & STATIC ENERGY |
294 |
! --- TRIGGERING |
|
295 |
!------------------------------------------------------------------- |
CALL cv3_prelim(klon, klev, klev + 1, t1, q1, p1, ph1, lv1, cpn1, tv1, & |
296 |
|
gz1, h1, hm1, th1) |
297 |
|
|
298 |
|
! CONVECTIVE FEED |
299 |
|
|
300 |
|
CALL cv3_feed(klon, klev, t1, q1, qs1, p1, ph1, gz1, nk1, icb1, & |
301 |
|
icbmax, iflag1, tnk1, qnk1, gznk1, plcl1) ! klev->na |
302 |
|
|
303 |
if (iflag_con.eq.3) then |
! UNDILUTE (ADIABATIC) UPDRAFT / 1st part |
304 |
CALL cv3_trigger(len, nd, icb1, plcl1, p1, th1, tv1, tvp1, pbase1, & |
! (up through ICB for convect4, up through ICB + 1 for convect3) |
305 |
buoybase1, iflag1, sig1, w01) ! nd->na |
! Calculates the lifted parcel virtual temperature at nk, the |
306 |
endif |
! actual temperature, and the adiabatic liquid water content. |
|
|
|
|
if (iflag_con.eq.4) then |
|
|
CALL cv_trigger(len, nd, icb1, cbmf1, tv1, tvp1, iflag1) |
|
|
endif |
|
307 |
|
|
308 |
! --- IF THIS POINT IS REACHED, MOIST CONVECTIVE ADJUSTMENT IS NECESSARY |
CALL cv3_undilute1(klon, klev, t1, q1, qs1, gz1, plcl1, p1, nk1, icb1, & |
309 |
|
tp1, tvp1, clw1, icbs1) ! klev->na |
310 |
|
|
311 |
|
! TRIGGERING |
312 |
|
|
313 |
|
CALL cv3_trigger(klon, klev, icb1, plcl1, p1, th1, tv1, tvp1, pbase1, & |
314 |
|
buoybase1, iflag1, sig1, w01) ! klev->na |
315 |
|
|
316 |
|
! Moist convective adjustment is necessary |
317 |
|
|
318 |
ncum = 0 |
ncum = 0 |
319 |
do i = 1, len |
do i = 1, klon |
320 |
if(iflag1(i).eq.0)then |
if (iflag1(i) == 0) then |
321 |
ncum = ncum+1 |
ncum = ncum + 1 |
322 |
idcum(ncum) = i |
idcum(ncum) = i |
323 |
endif |
endif |
324 |
end do |
end do |
325 |
|
|
326 |
IF (ncum.gt.0) THEN |
IF (ncum > 0) THEN |
327 |
|
! COMPRESS THE FIELDS |
328 |
|
! (-> vectorization over convective gridpoints) |
329 |
|
|
330 |
!^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ |
CALL cv3_compress(klon, klon, ncum, klev, iflag1, nk1, icb1, icbs1, & |
331 |
! --- COMPRESS THE FIELDS |
plcl1, tnk1, qnk1, gznk1, pbase1, buoybase1, t1, q1, qs1, u1, & |
332 |
! (-> vectorization over convective gridpoints) |
v1, gz1, th1, h1, lv1, cpn1, p1, ph1, tv1, tp1, tvp1, clw1, & |
333 |
!^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ |
sig1, w01, iflag, nk, icb, icbs, plcl, tnk, qnk, gznk, pbase, & |
334 |
|
buoybase, t, q, qs, u, v, gz, th, h, lv, cpn, p, ph, tv, tp, & |
335 |
if (iflag_con.eq.3) then |
tvp, clw, sig, w0) |
|
CALL cv3_compress(len, nloc, ncum, nd, 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) |
|
|
endif |
|
336 |
|
|
337 |
if (iflag_con.eq.4) then |
! UNDILUTE (ADIABATIC) UPDRAFT / second part : |
338 |
CALL cv_compress( len, nloc, ncum, nd & |
! FIND THE REST OF THE LIFTED PARCEL TEMPERATURES |
339 |
, iflag1, nk1, icb1 & |
! & |
340 |
, cbmf1, plcl1, tnk1, qnk1, gznk1 & |
! COMPUTE THE PRECIPITATION EFFICIENCIES AND THE |
341 |
, t1, q1, qs1, u1, v1, gz1 & |
! FRACTION OF PRECIPITATION FALLING OUTSIDE OF CLOUD |
342 |
, h1, lv1, cpn1, p1, ph1, tv1, tp1, tvp1, clw1 & |
! & |
343 |
, iflag, nk, icb & |
! FIND THE LEVEL OF NEUTRAL BUOYANCY |
|
, cbmf, plcl, tnk, qnk, gznk & |
|
|
, t, q, qs, u, v, gz, h, lv, cpn, p, ph, tv, tp, tvp, clw & |
|
|
, dph ) |
|
|
endif |
|
344 |
|
|
345 |
!------------------------------------------------------------------- |
CALL cv3_undilute2(klon, ncum, klev, icb, icbs, nk, tnk, qnk, gznk, & |
346 |
! --- UNDILUTE (ADIABATIC) UPDRAFT / second part : |
t, qs, gz, p, h, tv, lv, pbase, buoybase, plcl, inb, tp, & |
347 |
! --- FIND THE REST OF THE LIFTED PARCEL TEMPERATURES |
tvp, clw, hp, ep, sigp, buoy) !na->klev |
|
! --- & |
|
|
! --- COMPUTE THE PRECIPITATION EFFICIENCIES AND THE |
|
|
! --- FRACTION OF PRECIPITATION FALLING OUTSIDE OF CLOUD |
|
|
! --- & |
|
|
! --- FIND THE LEVEL OF NEUTRAL BUOYANCY |
|
|
!------------------------------------------------------------------- |
|
|
|
|
|
if (iflag_con.eq.3) then |
|
|
CALL cv3_undilute2(nloc, ncum, nd, icb, icbs, nk & |
|
|
, tnk, qnk, gznk, t, q, qs, gz & |
|
|
, p, h, tv, lv, pbase, buoybase, plcl & |
|
|
, inb, tp, tvp, clw, hp, ep, sigp, buoy) !na->nd |
|
|
endif |
|
348 |
|
|
349 |
if (iflag_con.eq.4) then |
! CLOSURE |
|
CALL cv_undilute2(nloc, ncum, nd, icb, nk & |
|
|
, tnk, qnk, gznk, t, q, qs, gz & |
|
|
, p, dph, h, tv, lv & |
|
|
, inb, inbis, tp, tvp, clw, hp, ep, sigp, frac) |
|
|
endif |
|
350 |
|
|
351 |
!------------------------------------------------------------------- |
CALL cv3_closure(klon, ncum, klev, icb, inb, pbase, p, ph, tv, & |
352 |
! --- CLOSURE |
buoy, sig, w0, cape, m) ! na->klev |
|
!------------------------------------------------------------------- |
|
|
|
|
|
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 |
|
353 |
|
|
354 |
if (iflag_con.eq.4) then |
! MIXING |
|
CALL cv_closure(nloc, ncum, nd, nk, icb & |
|
|
, tv, tvp, p, ph, dph, plcl, cpn & |
|
|
, iflag, cbmf) |
|
|
endif |
|
355 |
|
|
356 |
!------------------------------------------------------------------- |
CALL cv3_mixing(klon, ncum, klev, klev, icb, nk, inb, t, q, qs, u, & |
357 |
! --- MIXING |
v, h, lv, hp, ep, clw, m, sig, ment, qent, uent, vent, nent, & |
358 |
!------------------------------------------------------------------- |
sij, elij, ments, qents) |
|
|
|
|
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 |
|
359 |
|
|
360 |
if (iflag_con.eq.4) then |
! UNSATURATED (PRECIPITATING) DOWNDRAFTS |
|
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 |
|
361 |
|
|
362 |
!------------------------------------------------------------------- |
CALL cv3_unsat(klon, ncum, klev, klev, icb, inb, t, q, qs, gz, u, & |
363 |
! --- UNSATURATED (PRECIPITATING) DOWNDRAFTS |
v, p, ph, th, tv, lv, cpn, ep, sigp, clw, m, ment, elij, delt, & |
364 |
!------------------------------------------------------------------- |
plcl, mp, qp, up, vp, wt, water, evap, b)! na->klev |
|
|
|
|
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 |
|
365 |
|
|
366 |
if (iflag_con.eq.4) then |
! YIELD |
367 |
CALL cv_unsat(nloc, ncum, nd, inb, t, q, qs, gz, u, v, p, ph & |
! (tendencies, precipitation, variables of interface with other |
368 |
, h, lv, ep, sigp, clw, m, ment, elij & |
! processes, etc) |
|
, iflag, mp, qp, up, vp, wt, water, evap) |
|
|
endif |
|
369 |
|
|
370 |
!------------------------------------------------------------------- |
CALL cv3_yield(klon, ncum, klev, klev, icb, inb, delt, t, q, u, v, & |
371 |
! --- YIELD |
gz, p, ph, h, hp, lv, cpn, th, ep, clw, m, tp, mp, qp, up, vp, & |
372 |
! (tendencies, precipitation, variables of interface with other |
wt, water, evap, b, ment, qent, uent, vent, nent, elij, sig, & |
373 |
! processes, etc) |
tv, tvp, iflag, precip, VPrecip, ft, fq, fu, fv, upwd, dnwd, & |
374 |
!------------------------------------------------------------------- |
dnwd0, ma, mike, tls, tps, qcondc, wd)! na->klev |
|
|
|
|
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 |
|
375 |
|
|
376 |
if (iflag_con.eq.4) then |
! passive tracers |
|
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 |
|
377 |
|
|
378 |
!^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ |
CALL cv3_tracer(klon, ncum, klev, ment, sij, da, phi) |
379 |
! --- passive tracers |
|
380 |
!^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ |
! UNCOMPRESS THE FIELDS |
|
|
|
|
if (iflag_con.eq.3) then |
|
|
CALL cv3_tracer(nloc, len, ncum, nd, nd, & |
|
|
ment, sij, da, phi) |
|
|
endif |
|
381 |
|
|
382 |
!^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ |
! set iflag1 = 42 for non convective points |
383 |
! --- UNCOMPRESS THE FIELDS |
do i = 1, klon |
|
!^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ |
|
|
! set iflag1 = 42 for non convective points |
|
|
do i = 1, len |
|
384 |
iflag1(i) = 42 |
iflag1(i) = 42 |
385 |
end do |
end do |
386 |
|
|
387 |
if (iflag_con.eq.3) then |
CALL cv3_uncompress(idcum(:ncum), iflag, precip, VPrecip, sig, w0, & |
388 |
CALL cv3_uncompress(nloc, len, ncum, nd, idcum, iflag, precip, & |
ft, fq, fu, fv, inb, Ma, upwd, dnwd, dnwd0, qcondc, wd, cape, & |
389 |
VPrecip, sig, w0, ft, fq, fu, fv, inb, Ma, upwd, dnwd, dnwd0, & |
da, phi, mp, iflag1, precip1, VPrecip1, sig1, w01, ft1, fq1, & |
390 |
qcondc, wd, cape, da, phi, mp, iflag1, precip1, VPrecip1, & |
fu1, fv1, inb1, Ma1, upwd1, dnwd1, dnwd01, qcondc1, wd1, & |
391 |
sig1, w01, ft1, fq1, fu1, fv1, inb1, Ma1, upwd1, dnwd1, & |
cape1, da1, phi1, mp1) |
|
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 |
|
392 |
ENDIF ! ncum>0 |
ENDIF ! ncum>0 |
393 |
|
|
394 |
end SUBROUTINE cv_driver |
end SUBROUTINE cv_driver |