1 |
module etat0_mod |
module etat0_m |
|
|
|
|
use indicesol, only: nbsrf |
|
|
use dimphy, only: klon |
|
2 |
|
|
3 |
IMPLICIT NONE |
IMPLICIT NONE |
4 |
|
|
|
REAL pctsrf(klon, nbsrf) |
|
|
! ("pctsrf(i, :)" is the composition of the surface at horizontal |
|
|
! position "i") |
|
|
|
|
|
private nbsrf, klon |
|
|
|
|
5 |
contains |
contains |
6 |
|
|
7 |
SUBROUTINE etat0 |
SUBROUTINE etat0(phis, pctsrf) |
8 |
|
|
9 |
! From "etat0_netcdf.F", version 1.3 2005/05/25 13:10:09 |
! From "etat0_netcdf.F", version 1.3, 2005/05/25 13:10:09 |
10 |
|
|
11 |
use caldyn0_m, only: caldyn0 |
use caldyn0_m, only: caldyn0 |
12 |
use comconst, only: dtvr, daysec, cpp, kappa |
use comconst, only: cpp, kappa, iniconst |
13 |
use comgeom, only: rlatu, rlonv, rlonu, rlatv, aire_2d, apoln, apols, & |
use comgeom, only: aire_2d, apoln, apols, cu_2d, cv_2d, inigeom |
14 |
cu_2d, cv_2d |
use conf_gcm_m, only: nday |
15 |
use conf_gcm_m, only: day_step, iphysiq, dayref, anneeref |
use dimensions, only: iim, jjm, llm, nqmx |
16 |
use dimens_m, only: iim, jjm, llm, nqmx |
use dimphy, only: klon |
|
use dimphy, only: zmasq |
|
17 |
use dimsoil, only: nsoilmx |
use dimsoil, only: nsoilmx |
18 |
use disvert_m, only: ap, bp, preff, pa |
use disvert_m, only: ap, bp, preff, pa, disvert |
19 |
|
use dynetat0_m, only: day_ref, annee_ref, xprimp025, xprimm025, rlatu1, & |
20 |
|
rlatu2, rlatu, rlatv, yprimu1, yprimu2, rlonu, rlonv, xprimu, xprimv |
21 |
use dynredem0_m, only: dynredem0 |
use dynredem0_m, only: dynredem0 |
22 |
use dynredem1_m, only: dynredem1 |
use dynredem1_m, only: dynredem1 |
23 |
use exner_hyb_m, only: exner_hyb |
use exner_hyb_m, only: exner_hyb |
24 |
|
use fxhyp_m, only: fxhyp |
25 |
|
use fyhyp_m, only: fyhyp |
26 |
use geopot_m, only: geopot |
use geopot_m, only: geopot |
27 |
use grid_atob, only: grille_m |
use grille_m_m, only: grille_m |
28 |
use grid_change, only: init_dyn_phy, dyn_phy |
use grid_change, only: init_dyn_phy, dyn_phy |
29 |
use histclo_m, only: histclo |
use indicesol, only: is_oce, is_sic, is_ter, is_lic, epsfra, nbsrf |
|
use indicesol, only: is_oce, is_sic, is_ter, is_lic, epsfra |
|
30 |
use iniadvtrac_m, only: iniadvtrac |
use iniadvtrac_m, only: iniadvtrac |
|
use inidissip_m, only: inidissip |
|
31 |
use inifilr_m, only: inifilr |
use inifilr_m, only: inifilr |
|
use inigeom_m, only: inigeom |
|
32 |
use massdair_m, only: massdair |
use massdair_m, only: massdair |
33 |
use netcdf, only: nf90_nowrite |
use netcdf, only: nf90_nowrite |
34 |
use netcdf95, only: nf95_close, nf95_get_var, nf95_gw_var, & |
use netcdf95, only: nf95_close, nf95_get_var, nf95_gw_var, nf95_put_var, & |
35 |
nf95_inq_varid, nf95_open |
nf95_inq_varid, nf95_open |
36 |
use nr_util, only: pi |
use nr_util, only: pi, assert |
37 |
use paramet_m, only: ip1jm, ip1jmp1 |
use phyetat0_m, only: rlat, rlon, itau_phy, zmasq |
38 |
|
use phyredem0_m, only: phyredem0, ncid_restartphy |
39 |
use phyredem_m, only: phyredem |
use phyredem_m, only: phyredem |
|
use pressure_var, only: pls, p3d |
|
40 |
use q_sat_m, only: q_sat |
use q_sat_m, only: q_sat |
41 |
use regr_lat_time_coefoz_m, only: regr_lat_time_coefoz |
use regr_lat_time_coefoz_m, only: regr_lat_time_coefoz |
42 |
use regr_pr_o3_m, only: regr_pr_o3 |
use regr_pr_o3_m, only: regr_pr_o3 |
|
use serre, only: alphax |
|
43 |
use startdyn, only: start_init_dyn |
use startdyn, only: start_init_dyn |
44 |
USE start_init_orog_m, only: start_init_orog, mask, phis |
USE start_init_orog_m, only: start_init_orog, mask |
45 |
use start_init_phys_m, only: start_init_phys |
use start_init_phys_m, only: start_init_phys |
46 |
use start_inter_3d_m, only: start_inter_3d |
use start_inter_3d_m, only: start_inter_3d |
47 |
use temps, only: itau_phy, annee_ref, day_ref |
use test_disvert_m, only: test_disvert |
48 |
|
use unit_nml_m, only: unit_nml |
49 |
|
|
50 |
! Variables local to the procedure: |
REAL, intent(out):: phis(:, :) ! (iim + 1, jjm + 1) |
51 |
|
! surface geopotential, in m2 s-2 |
52 |
|
|
53 |
REAL latfi(klon), lonfi(klon) |
REAL, intent(out):: pctsrf(:, :) ! (klon, nbsrf) |
54 |
! (latitude and longitude of a point of the scalar grid identified |
! "pctsrf(i, :)" is the composition of the surface at horizontal |
55 |
! by a simple index, in °) |
! position "i". |
56 |
|
|
57 |
REAL, dimension(iim + 1, jjm + 1, llm):: ucov, t3d, tpot |
! Local: |
58 |
|
|
59 |
|
REAL, dimension(iim + 1, jjm + 1, llm):: ucov, t3d, teta |
60 |
REAL vcov(iim + 1, jjm, llm) |
REAL vcov(iim + 1, jjm, llm) |
61 |
|
|
62 |
REAL q(iim + 1, jjm + 1, llm, nqmx) |
REAL q(iim + 1, jjm + 1, llm, nqmx) |
65 |
! and pressure level "pls(i, j, l)".) |
! and pressure level "pls(i, j, l)".) |
66 |
|
|
67 |
real qsat(iim + 1, jjm + 1, llm) ! mass fraction of saturating water vapor |
real qsat(iim + 1, jjm + 1, llm) ! mass fraction of saturating water vapor |
68 |
REAL tsol(klon), qsol(klon), sn(klon) |
REAL qsolsrf(klon, nbsrf), snsrf(klon, nbsrf) |
|
REAL tsolsrf(klon, nbsrf), qsolsrf(klon, nbsrf), snsrf(klon, nbsrf) |
|
69 |
REAL albe(klon, nbsrf), evap(klon, nbsrf) |
REAL albe(klon, nbsrf), evap(klon, nbsrf) |
|
REAL alblw(klon, nbsrf) |
|
70 |
REAL tsoil(klon, nsoilmx, nbsrf) |
REAL tsoil(klon, nsoilmx, nbsrf) |
71 |
REAL radsol(klon), rain_fall(klon), snow_fall(klon) |
REAL null_array(klon) |
72 |
REAL solsw(klon), sollw(klon), fder(klon) |
REAL solsw(klon), sollw(klon) |
73 |
!IM "slab" ocean |
!IM "slab" ocean |
|
REAL tslab(klon) |
|
|
real seaice(klon) ! kg m-2 |
|
74 |
REAL frugs(klon, nbsrf), agesno(klon, nbsrf) |
REAL frugs(klon, nbsrf), agesno(klon, nbsrf) |
75 |
REAL rugmer(klon) |
REAL rugmer(klon) |
76 |
real, dimension(iim + 1, jjm + 1):: relief, zstd_2d, zsig_2d, zgam_2d |
real, dimension(iim + 1, jjm + 1):: zmea_2d, zstd_2d, zsig_2d, zgam_2d |
77 |
real, dimension(iim + 1, jjm + 1):: zthe_2d, zpic_2d, zval_2d |
real, dimension(iim + 1, jjm + 1):: zthe_2d, zpic_2d, zval_2d |
78 |
real, dimension(iim + 1, jjm + 1):: tsol_2d, qsol_2d, psol |
real, dimension(iim + 1, jjm + 1):: tsol_2d, qsol_2d, ps |
79 |
REAL zmea(klon), zstd(klon) |
REAL zmea(klon), zstd(klon) |
80 |
REAL zsig(klon), zgam(klon) |
REAL zsig(klon), zgam(klon) |
81 |
REAL zthe(klon) |
REAL zthe(klon) |
82 |
REAL zpic(klon), zval(klon) |
REAL zpic(klon), zval(klon) |
83 |
REAL t_ancien(klon, llm), q_ancien(klon, llm) ! |
REAL t_ancien(klon, llm), q_ancien(klon, llm) |
|
REAL run_off_lic_0(klon) |
|
84 |
real clwcon(klon, llm), rnebcon(klon, llm), ratqs(klon, llm) |
real clwcon(klon, llm), rnebcon(klon, llm), ratqs(klon, llm) |
85 |
|
|
86 |
! Déclarations pour lecture glace de mer : |
! D\'eclarations pour lecture glace de mer : |
87 |
INTEGER iml_lic, jml_lic |
INTEGER iml_lic, jml_lic |
88 |
INTEGER ncid, varid |
INTEGER ncid, varid |
89 |
REAL, pointer:: dlon_lic(:), dlat_lic(:) |
REAL, ALLOCATABLE:: dlon_lic(:), dlat_lic(:) |
90 |
REAL, ALLOCATABLE:: fraclic(:, :) ! fraction land ice |
REAL, ALLOCATABLE:: fraclic(:, :) ! fraction land ice |
91 |
REAL flic_tmp(iim + 1, jjm + 1) ! fraction land ice temporary |
REAL flic_tmp(iim + 1, jjm + 1) ! fraction land ice temporary |
92 |
|
|
94 |
|
|
95 |
REAL pk(iim + 1, jjm + 1, llm) ! fonction d'Exner aux milieux des couches |
REAL pk(iim + 1, jjm + 1, llm) ! fonction d'Exner aux milieux des couches |
96 |
real pks(iim + 1, jjm + 1) |
real pks(iim + 1, jjm + 1) |
|
|
|
97 |
REAL masse(iim + 1, jjm + 1, llm) |
REAL masse(iim + 1, jjm + 1, llm) |
98 |
REAL phi(ip1jmp1, llm) |
REAL phi(iim + 1, jjm + 1, llm) |
99 |
REAL pbaru(ip1jmp1, llm), pbarv(ip1jm, llm) |
real sig1(klon, llm) ! section adiabatic updraft |
100 |
REAL w(ip1jmp1, llm) |
real w01(klon, llm) ! vertical velocity within adiabatic updraft |
101 |
REAL phystep |
|
102 |
|
real pls(iim + 1, jjm + 1, llm) |
103 |
|
! (pressure at mid-layer of LMDZ grid, in Pa) |
104 |
|
! "pls(i, j, l)" is at longitude "rlonv(i)", latitude "rlatu(j)", |
105 |
|
! for layer "l") |
106 |
|
|
107 |
|
REAL p3d(iim + 1, jjm + 1, llm+1) ! pressure at layer interfaces, in Pa |
108 |
|
! ("p3d(i, j, l)" is at longitude "rlonv(i)", latitude "rlatu(j)", |
109 |
|
! for interface "l") |
110 |
|
|
111 |
|
namelist /etat0_nml/ day_ref, annee_ref |
112 |
|
|
113 |
!--------------------------------- |
!--------------------------------- |
114 |
|
|
115 |
print *, "Call sequence information: etat0" |
print *, "Call sequence information: etat0" |
116 |
|
|
117 |
dtvr = daysec / real(day_step) |
print *, "Enter namelist 'etat0_nml'." |
118 |
print *, 'dtvr = ', dtvr |
read(unit=*, nml=etat0_nml) |
119 |
|
write(unit_nml, nml=etat0_nml) |
120 |
|
|
121 |
|
CALL iniconst |
122 |
|
|
123 |
! Construct a grid: |
! Construct a grid: |
124 |
|
|
125 |
pa = 5e4 |
pa = 5e4 |
126 |
CALL iniconst |
CALL disvert |
127 |
|
call test_disvert |
128 |
|
|
129 |
|
CALL fyhyp(rlatu, rlatv, rlatu2, yprimu2, rlatu1, yprimu1) |
130 |
|
CALL fxhyp(xprimm025, rlonv, xprimv, rlonu, xprimu, xprimp025) |
131 |
|
|
132 |
|
rlatu(1) = pi / 2. |
133 |
|
rlatu(jjm + 1) = -rlatu(1) |
134 |
|
|
135 |
CALL inigeom |
CALL inigeom |
136 |
CALL inifilr |
CALL inifilr |
137 |
|
|
138 |
latfi(1) = 90. |
rlat(1) = 90. |
139 |
latfi(2:klon-1) = pack(spread(rlatu(2:jjm), 1, iim), .true.) * 180. / pi |
rlat(2:klon-1) = pack(spread(rlatu(2:jjm), 1, iim), .true.) * 180. / pi |
140 |
! (with conversion to degrees) |
! (with conversion to degrees) |
141 |
latfi(klon) = - 90. |
rlat(klon) = - 90. |
142 |
|
|
143 |
lonfi(1) = 0. |
rlon(1) = 0. |
144 |
lonfi(2:klon-1) = pack(spread(rlonv(:iim), 2, jjm - 1), .true.) * 180. / pi |
rlon(2:klon-1) = pack(spread(rlonv(:iim), 2, jjm - 1), .true.) * 180. / pi |
145 |
! (with conversion to degrees) |
! (with conversion to degrees) |
146 |
lonfi(klon) = 0. |
rlon(klon) = 0. |
147 |
|
|
148 |
call start_init_orog(relief, zstd_2d, zsig_2d, zgam_2d, zthe_2d, zpic_2d, & |
call start_init_orog(phis, zmea_2d, zstd_2d, zsig_2d, zgam_2d, zthe_2d, & |
149 |
zval_2d) ! also compute "mask" and "phis" |
zpic_2d, zval_2d) ! also compute "mask" |
150 |
call init_dyn_phy ! define the mask "dyn_phy" for distinct grid points |
call init_dyn_phy ! define the mask "dyn_phy" for distinct grid points |
151 |
zmasq = pack(mask, dyn_phy) |
zmasq = pack(mask, dyn_phy) |
152 |
PRINT *, 'Masque construit' |
PRINT *, 'Masque construit' |
153 |
|
|
154 |
call start_init_phys(tsol_2d, qsol_2d) |
call start_init_phys(tsol_2d, qsol_2d) |
155 |
CALL start_init_dyn(tsol_2d, psol) |
CALL start_init_dyn(tsol_2d, phis, ps) |
156 |
|
|
157 |
! Compute pressure on intermediate levels: |
! Compute pressure on intermediate levels: |
158 |
forall(l = 1: llm + 1) p3d(:, :, l) = ap(l) + bp(l) * psol |
forall(l = 1: llm + 1) p3d(:, :, l) = ap(l) + bp(l) * ps |
159 |
CALL exner_hyb(psol, p3d, pks, pk) |
CALL exner_hyb(ps, p3d, pks, pk) |
160 |
IF (MINVAL(pk) == MAXVAL(pk)) then |
call assert(MINVAL(pk) /= MAXVAL(pk), '"pk" should not be constant') |
|
print *, '"pk" should not be constant' |
|
|
stop 1 |
|
|
end IF |
|
161 |
|
|
162 |
pls = preff * (pk / cpp)**(1. / kappa) |
pls = preff * (pk / cpp)**(1. / kappa) |
163 |
PRINT *, "minval(pls) = ", minval(pls) |
PRINT *, "minval(pls) = ", minval(pls) |
172 |
vcov(iim + 1, :, :) = vcov(1, :, :) |
vcov(iim + 1, :, :) = vcov(1, :, :) |
173 |
|
|
174 |
call start_inter_3d('TEMP', rlonu, rlatv, pls, t3d) |
call start_inter_3d('TEMP', rlonu, rlatv, pls, t3d) |
175 |
PRINT *, 'minval(t3d) = ', minval(t3d) |
PRINT *, 'minval(t3d) = ', minval(t3d) |
176 |
print *, "maxval(t3d) = ", maxval(t3d) |
print *, "maxval(t3d) = ", maxval(t3d) |
177 |
|
|
178 |
tpot(:iim, :, :) = t3d(:iim, :, :) * cpp / pk(:iim, :, :) |
teta(:iim, :, :) = t3d(:iim, :, :) * cpp / pk(:iim, :, :) |
179 |
tpot(iim + 1, :, :) = tpot(1, :, :) |
teta(iim + 1, :, :) = teta(1, :, :) |
180 |
DO l=1, llm |
DO l = 1, llm |
181 |
tpot(:, 1, l) = SUM(aire_2d(:, 1) * tpot(:, 1, l)) / apoln |
teta(:, 1, l) = SUM(aire_2d(:, 1) * teta(:, 1, l)) / apoln |
182 |
tpot(:, jjm + 1, l) = SUM(aire_2d(:, jjm + 1) * tpot(:, jjm + 1, l)) & |
teta(:, jjm + 1, l) = SUM(aire_2d(:, jjm + 1) * teta(:, jjm + 1, l)) & |
183 |
/ apols |
/ apols |
184 |
ENDDO |
ENDDO |
185 |
|
|
186 |
! Calcul de l'humidité à saturation : |
! Calcul de l'humidit\'e \`a saturation : |
187 |
qsat = q_sat(t3d, pls) |
qsat = q_sat(t3d, pls) |
188 |
PRINT *, "minval(qsat) = ", minval(qsat) |
PRINT *, "minval(qsat) = ", minval(qsat) |
189 |
print *, "maxval(qsat) = ", maxval(qsat) |
print *, "maxval(qsat) = ", maxval(qsat) |
204 |
if (nqmx >= 5) then |
if (nqmx >= 5) then |
205 |
! Ozone: |
! Ozone: |
206 |
call regr_lat_time_coefoz |
call regr_lat_time_coefoz |
207 |
call regr_pr_o3(q(:, :, :, 5)) |
call regr_pr_o3(p3d, q(:, :, :, 5)) |
208 |
! Convert from mole fraction to mass fraction: |
! Convert from mole fraction to mass fraction: |
209 |
q(:, :, :, 5) = q(:, :, :, 5) * 48. / 29. |
q(:, :, :, 5) = q(:, :, :, 5) * 48. / 29. |
210 |
end if |
end if |
211 |
|
|
212 |
tsol = pack(tsol_2d, dyn_phy) |
null_array = 0. |
|
qsol = pack(qsol_2d, dyn_phy) |
|
|
sn = 0. ! snow |
|
|
radsol = 0. |
|
|
tslab = 0. ! IM "slab" ocean |
|
|
seaice = 0. |
|
213 |
rugmer = 0.001 |
rugmer = 0.001 |
214 |
zmea = pack(relief, dyn_phy) |
zmea = pack(zmea_2d, dyn_phy) |
215 |
zstd = pack(zstd_2d, dyn_phy) |
zstd = pack(zstd_2d, dyn_phy) |
216 |
zsig = pack(zsig_2d, dyn_phy) |
zsig = pack(zsig_2d, dyn_phy) |
217 |
zgam = pack(zgam_2d, dyn_phy) |
zgam = pack(zgam_2d, dyn_phy) |
239 |
|
|
240 |
call nf95_close(ncid) |
call nf95_close(ncid) |
241 |
|
|
242 |
! Interpolation sur la grille T du modèle : |
! Interpolation sur la grille T du mod\`ele : |
243 |
PRINT *, 'Dimensions de "landiceref.nc"' |
PRINT *, 'Dimensions de "landiceref.nc"' |
244 |
print *, "iml_lic = ", iml_lic |
print *, "iml_lic = ", iml_lic |
245 |
print *, "jml_lic = ", jml_lic |
print *, "jml_lic = ", jml_lic |
246 |
|
|
247 |
! Si les coordonnées sont en degrés, on les transforme : |
! Si les coordonn\'ees sont en degr\'es, on les transforme : |
248 |
IF (MAXVAL( dlon_lic ) > pi) THEN |
IF (MAXVAL(dlon_lic) > pi) THEN |
249 |
dlon_lic = dlon_lic * pi / 180. |
dlon_lic = dlon_lic * pi / 180. |
250 |
ENDIF |
ENDIF |
251 |
IF (maxval( dlat_lic ) > pi) THEN |
IF (maxval(dlat_lic) > pi) THEN |
252 |
dlat_lic = dlat_lic * pi/ 180. |
dlat_lic = dlat_lic * pi/ 180. |
253 |
ENDIF |
ENDIF |
254 |
|
|
256 |
rlatu) |
rlatu) |
257 |
flic_tmp(iim + 1, :) = flic_tmp(1, :) |
flic_tmp(iim + 1, :) = flic_tmp(1, :) |
258 |
|
|
|
deallocate(dlon_lic, dlat_lic) ! pointers |
|
|
|
|
259 |
! Passage sur la grille physique |
! Passage sur la grille physique |
260 |
pctsrf = 0. |
pctsrf = 0. |
261 |
pctsrf(:, is_lic) = pack(flic_tmp, dyn_phy) |
pctsrf(:, is_lic) = pack(flic_tmp, dyn_phy) |
262 |
! Adéquation avec le maque terre/mer |
! Ad\'equation avec le maque terre/mer |
263 |
WHERE (pctsrf(:, is_lic) < EPSFRA ) pctsrf(:, is_lic) = 0. |
WHERE (pctsrf(:, is_lic) < EPSFRA) pctsrf(:, is_lic) = 0. |
264 |
WHERE (zmasq < EPSFRA) pctsrf(:, is_lic) = 0. |
WHERE (zmasq < EPSFRA) pctsrf(:, is_lic) = 0. |
265 |
pctsrf(:, is_ter) = zmasq |
where (zmasq <= EPSFRA) pctsrf(:, is_ter) = zmasq |
266 |
where (zmasq > EPSFRA) |
where (zmasq > EPSFRA) |
267 |
where (pctsrf(:, is_lic) >= zmasq) |
where (pctsrf(:, is_lic) >= zmasq) |
268 |
pctsrf(:, is_lic) = zmasq |
pctsrf(:, is_lic) = zmasq |
276 |
end where |
end where |
277 |
end where |
end where |
278 |
|
|
279 |
! Sous-surface océan et glace de mer (pour démarrer on met glace |
! Sous-surface oc\'ean et glace de mer (pour d\'emarrer on met glace |
280 |
! de mer à 0) : |
! de mer \`a 0) : |
281 |
pctsrf(:, is_oce) = 1. - zmasq |
pctsrf(:, is_oce) = 1. - zmasq |
282 |
WHERE (pctsrf(:, is_oce) < EPSFRA) pctsrf(:, is_oce) = 0. |
WHERE (pctsrf(:, is_oce) < EPSFRA) pctsrf(:, is_oce) = 0. |
283 |
|
|
284 |
! Vérification que somme des sous-surfaces vaut 1: |
! V\'erification que la somme des sous-surfaces vaut 1 : |
285 |
ji = count(abs(sum(pctsrf, dim = 2) - 1.) > EPSFRA) |
ji = count(abs(sum(pctsrf, dim = 2) - 1.) > EPSFRA) |
286 |
IF (ji /= 0) then |
IF (ji /= 0) then |
287 |
PRINT *, 'Problème répartition sous maille pour ', ji, 'points' |
PRINT *, 'Bad surface percentages for ', ji, 'points' |
288 |
end IF |
end IF |
289 |
|
|
290 |
! Calcul intermédiaire: |
! Calcul interm\'ediaire : |
291 |
CALL massdair(p3d, masse) |
CALL massdair(p3d, masse) |
292 |
|
|
293 |
print *, 'ALPHAX = ', alphax |
forall (l = 1:llm) |
|
|
|
|
forall (l = 1:llm) |
|
294 |
masse(:, 1, l) = SUM(aire_2d(:iim, 1) * masse(:iim, 1, l)) / apoln |
masse(:, 1, l) = SUM(aire_2d(:iim, 1) * masse(:iim, 1, l)) / apoln |
295 |
masse(:, jjm + 1, l) = & |
masse(:, jjm + 1, l) = & |
296 |
SUM(aire_2d(:iim, jjm + 1) * masse(:iim, jjm + 1, l)) / apols |
SUM(aire_2d(:iim, jjm + 1) * masse(:iim, jjm + 1, l)) / apols |
297 |
END forall |
END forall |
298 |
|
|
|
! Initialisation pour traceurs: |
|
299 |
call iniadvtrac |
call iniadvtrac |
300 |
CALL inidissip |
CALL geopot(teta, pk , pks, phis, phi) |
301 |
itau_phy = 0 |
CALL caldyn0(ucov, vcov, teta, ps, pk, phis, phi) |
302 |
day_ref = dayref |
CALL dynredem0(day_ref, phis) |
303 |
annee_ref = anneeref |
CALL dynredem1(vcov, ucov, teta, q, masse, ps, itau = 0) |
|
|
|
|
CALL geopot(ip1jmp1, tpot, pk , pks, phis, phi) |
|
|
CALL caldyn0(ucov, vcov, tpot, psol, masse, pk, phis, phi, w, pbaru, & |
|
|
pbarv) |
|
|
CALL dynredem0("start.nc", dayref, phis) |
|
|
CALL dynredem1("start.nc", vcov, ucov, tpot, q, masse, psol, itau=0) |
|
|
|
|
|
! Ecriture état initial physique: |
|
|
print *, "iphysiq = ", iphysiq |
|
|
phystep = dtvr * REAL(iphysiq) |
|
|
print *, 'phystep = ', phystep |
|
304 |
|
|
305 |
! Initialisations : |
! Initialisations : |
306 |
tsolsrf(:, is_ter) = tsol |
snsrf = 0. |
|
tsolsrf(:, is_lic) = tsol |
|
|
tsolsrf(:, is_oce) = tsol |
|
|
tsolsrf(:, is_sic) = tsol |
|
|
snsrf(:, is_ter) = sn |
|
|
snsrf(:, is_lic) = sn |
|
|
snsrf(:, is_oce) = sn |
|
|
snsrf(:, is_sic) = sn |
|
307 |
albe(:, is_ter) = 0.08 |
albe(:, is_ter) = 0.08 |
308 |
albe(:, is_lic) = 0.6 |
albe(:, is_lic) = 0.6 |
309 |
albe(:, is_oce) = 0.5 |
albe(:, is_oce) = 0.5 |
310 |
albe(:, is_sic) = 0.6 |
albe(:, is_sic) = 0.6 |
|
alblw = albe |
|
311 |
evap = 0. |
evap = 0. |
312 |
qsolsrf(:, is_ter) = 150. |
qsolsrf = 150. |
313 |
qsolsrf(:, is_lic) = 150. |
tsoil = spread(spread(pack(tsol_2d, dyn_phy), 2, nsoilmx), 3, nbsrf) |
|
qsolsrf(:, is_oce) = 150. |
|
|
qsolsrf(:, is_sic) = 150. |
|
|
tsoil = spread(spread(tsol, 2, nsoilmx), 3, nbsrf) |
|
|
rain_fall = 0. |
|
|
snow_fall = 0. |
|
314 |
solsw = 165. |
solsw = 165. |
315 |
sollw = -53. |
sollw = -53. |
316 |
t_ancien = 273.15 |
t_ancien = 273.15 |
317 |
q_ancien = 0. |
q_ancien = 0. |
318 |
agesno = 0. |
agesno = 0. |
|
!IM "slab" ocean |
|
|
tslab = tsolsrf(:, is_oce) |
|
|
seaice = 0. |
|
319 |
|
|
320 |
frugs(:, is_oce) = rugmer |
frugs(:, is_oce) = rugmer |
321 |
frugs(:, is_ter) = MAX(1.e-05, zstd * zsig / 2) |
frugs(:, is_ter) = MAX(1e-5, zstd * zsig / 2) |
322 |
frugs(:, is_lic) = MAX(1.e-05, zstd * zsig / 2) |
frugs(:, is_lic) = MAX(1e-5, zstd * zsig / 2) |
323 |
frugs(:, is_sic) = 0.001 |
frugs(:, is_sic) = 0.001 |
|
fder = 0. |
|
324 |
clwcon = 0. |
clwcon = 0. |
325 |
rnebcon = 0. |
rnebcon = 0. |
326 |
ratqs = 0. |
ratqs = 0. |
327 |
run_off_lic_0 = 0. |
sig1 = 0. |
328 |
|
w01 = 0. |
329 |
|
|
330 |
call phyredem("startphy.nc", latfi, lonfi, pctsrf, & |
nday = 0 |
331 |
tsolsrf, tsoil, tslab, seaice, qsolsrf, qsol, snsrf, albe, alblw, & |
itau_phy = 0 ! side effect |
332 |
evap, rain_fall, snow_fall, solsw, sollw, fder, radsol, frugs, & |
call phyredem0 |
333 |
agesno, zmea, zstd, zsig, zgam, zthe, zpic, zval, & |
|
334 |
t_ancien, q_ancien, rnebcon, ratqs, clwcon, run_off_lic_0) |
call nf95_inq_varid(ncid_restartphy, "trs", varid) |
335 |
CALL histclo |
call nf95_put_var(ncid_restartphy, varid, null_array) |
336 |
|
|
337 |
|
call phyredem(pctsrf, tsoil(:, 1, :), tsoil, qsolsrf, & |
338 |
|
pack(qsol_2d, dyn_phy), snsrf, albe, evap, null_array, null_array, & |
339 |
|
solsw, sollw, null_array, null_array, frugs, agesno, zmea, zstd, & |
340 |
|
zsig, zgam, zthe, zpic, zval, t_ancien, q_ancien, rnebcon, ratqs, & |
341 |
|
clwcon, null_array, sig1, w01) |
342 |
|
|
343 |
END SUBROUTINE etat0 |
END SUBROUTINE etat0 |
344 |
|
|
345 |
end module etat0_mod |
end module etat0_m |