16 |
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17 |
USE conf_phys_m, ONLY: iflag_pbl |
USE conf_phys_m, ONLY: iflag_pbl |
18 |
USE dimphy, ONLY: klev, klon |
USE dimphy, ONLY: klev, klon |
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USE dimsoil, ONLY: nsoilmx |
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USE indicesol, ONLY: nbsrf |
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19 |
USE interfsurf_hq_m, ONLY: interfsurf_hq |
USE interfsurf_hq_m, ONLY: interfsurf_hq |
20 |
USE suphec_m, ONLY: rcpd, rd, rg, rkappa |
USE suphec_m, ONLY: rcpd, rd, rg, rkappa |
21 |
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25 |
real, intent(in):: rlat(klon) |
real, intent(in):: rlat(klon) |
26 |
integer, intent(in):: nisurf |
integer, intent(in):: nisurf |
27 |
integer, intent(in):: knindex(:) ! (knon) |
integer, intent(in):: knindex(:) ! (knon) |
28 |
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REAL, intent(inout):: tsoil(:, :) ! (knon, nsoilmx) |
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REAL tsoil(klon, nsoilmx) |
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29 |
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30 |
REAL, intent(inout):: qsol(klon) |
REAL, intent(inout):: qsol(klon) |
31 |
! column-density of water in soil, in kg m-2 |
! column-density of water in soil, in kg m-2 |
43 |
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44 |
REAL t(klon, klev) ! temperature (K) |
REAL t(klon, klev) ! temperature (K) |
45 |
REAL q(klon, klev) ! humidite specifique (kg / kg) |
REAL q(klon, klev) ! humidite specifique (kg / kg) |
46 |
REAL, intent(in):: ts(klon) ! temperature du sol (K) |
REAL, intent(in):: ts(:) ! (knon) temperature du sol (K) |
47 |
REAL paprs(klon, klev+1) ! pression a inter-couche (Pa) |
REAL paprs(klon, klev + 1) ! pression a inter-couche (Pa) |
48 |
REAL pplay(klon, klev) ! pression au milieu de couche (Pa) |
REAL pplay(klon, klev) ! pression au milieu de couche (Pa) |
49 |
REAL delp(klon, klev) ! epaisseur de couche en pression (Pa) |
REAL delp(klon, klev) ! epaisseur de couche en pression (Pa) |
50 |
REAL radsol(klon) ! ray. net au sol (Solaire+IR) W / m2 |
REAL radsol(klon) ! ray. net au sol (Solaire + IR) W / m2 |
51 |
REAL, intent(inout):: albedo(:) ! (knon) albedo de la surface |
REAL, intent(inout):: albedo(:) ! (knon) albedo de la surface |
52 |
REAL, intent(inout):: snow(klon) ! hauteur de neige |
REAL, intent(inout):: snow(klon) ! hauteur de neige |
53 |
REAL qsurf(klon) ! humidite de l'air au dessus de la surface |
REAL qsurf(klon) ! humidite de l'air au dessus de la surface |
64 |
REAL, intent(inout):: agesno(:) ! (knon) |
REAL, intent(inout):: agesno(:) ! (knon) |
65 |
REAL d_t(klon, klev) ! incrementation de "t" |
REAL d_t(klon, klev) ! incrementation de "t" |
66 |
REAL d_q(klon, klev) ! incrementation de "q" |
REAL d_q(klon, klev) ! incrementation de "q" |
67 |
REAL, intent(out):: d_ts(:) ! (knon) incrementation de "ts" |
REAL, intent(out):: d_ts(:) ! (knon) incr\'ementation de "ts" |
68 |
real z0_new(klon) |
real z0_new(klon) |
69 |
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70 |
REAL, intent(out):: flux_t(:) ! (knon) |
REAL, intent(out):: flux_t(:) ! (knon) |
160 |
DO k = 2, klev |
DO k = 2, klev |
161 |
DO i = 1, knon |
DO i = 1, knon |
162 |
zx_coef(i, k) = coef(i, k) * RG / (pplay(i, k - 1) - pplay(i, k)) & |
zx_coef(i, k) = coef(i, k) * RG / (pplay(i, k - 1) - pplay(i, k)) & |
163 |
* (paprs(i, k) * 2 / (t(i, k)+t(i, k - 1)) / RD)**2 |
* (paprs(i, k) * 2 / (t(i, k) + t(i, k - 1)) / RD)**2 |
164 |
zx_coef(i, k) = zx_coef(i, k) * dtime * RG |
zx_coef(i, k) = zx_coef(i, k) * dtime * RG |
165 |
ENDDO |
ENDDO |
166 |
ENDDO |
ENDDO |
169 |
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170 |
DO k = 2, klev |
DO k = 2, klev |
171 |
DO i = 1, knon |
DO i = 1, knon |
172 |
zdelz = RD * (t(i, k - 1)+t(i, k)) / 2.0 / RG / paprs(i, k) & |
zdelz = RD * (t(i, k - 1) + t(i, k)) / 2.0 / RG / paprs(i, k) & |
173 |
* (pplay(i, k - 1) - pplay(i, k)) |
* (pplay(i, k - 1) - pplay(i, k)) |
174 |
z_gamaq(i, k) = gamq(i, k) * zdelz |
z_gamaq(i, k) = gamq(i, k) * zdelz |
175 |
z_gamah(i, k) = gamt(i, k) * zdelz * RCPD * zx_pkh(i, k) |
z_gamah(i, k) = gamt(i, k) * zdelz * RCPD * zx_pkh(i, k) |
189 |
ENDDO |
ENDDO |
190 |
DO k = klev - 1, 2, - 1 |
DO k = klev - 1, 2, - 1 |
191 |
DO i = 1, knon |
DO i = 1, knon |
192 |
zx_buf1(i) = delp(i, k)+zx_coef(i, k) & |
zx_buf1(i) = delp(i, k) + zx_coef(i, k) & |
193 |
+zx_coef(i, k+1) * (1. - zx_dq(i, k+1)) |
+ zx_coef(i, k + 1) * (1. - zx_dq(i, k + 1)) |
194 |
zx_cq(i, k) = (local_q(i, k) * delp(i, k) & |
zx_cq(i, k) = (local_q(i, k) * delp(i, k) & |
195 |
+zx_coef(i, k+1) * zx_cq(i, k+1) & |
+ zx_coef(i, k + 1) * zx_cq(i, k + 1) & |
196 |
+zx_coef(i, k+1) * z_gamaq(i, k+1) & |
+ zx_coef(i, k + 1) * z_gamaq(i, k + 1) & |
197 |
- zx_coef(i, k) * z_gamaq(i, k)) / zx_buf1(i) |
- zx_coef(i, k) * z_gamaq(i, k)) / zx_buf1(i) |
198 |
zx_dq(i, k) = zx_coef(i, k) / zx_buf1(i) |
zx_dq(i, k) = zx_coef(i, k) / zx_buf1(i) |
199 |
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200 |
zzpk=(pplay(i, k) / psref(i))**RKAPPA |
zzpk=(pplay(i, k) / psref(i))**RKAPPA |
201 |
zx_buf2(i) = zzpk * delp(i, k)+zx_coef(i, k) & |
zx_buf2(i) = zzpk * delp(i, k) + zx_coef(i, k) & |
202 |
+zx_coef(i, k+1) * (1. - zx_dh(i, k+1)) |
+ zx_coef(i, k + 1) * (1. - zx_dh(i, k + 1)) |
203 |
zx_ch(i, k) = (local_h(i, k) * zzpk * delp(i, k) & |
zx_ch(i, k) = (local_h(i, k) * zzpk * delp(i, k) & |
204 |
+zx_coef(i, k+1) * zx_ch(i, k+1) & |
+ zx_coef(i, k + 1) * zx_ch(i, k + 1) & |
205 |
+zx_coef(i, k+1) * z_gamah(i, k+1) & |
+ zx_coef(i, k + 1) * z_gamah(i, k + 1) & |
206 |
- zx_coef(i, k) * z_gamah(i, k)) / zx_buf2(i) |
- zx_coef(i, k) * z_gamah(i, k)) / zx_buf2(i) |
207 |
zx_dh(i, k) = zx_coef(i, k) / zx_buf2(i) |
zx_dh(i, k) = zx_coef(i, k) / zx_buf2(i) |
208 |
ENDDO |
ENDDO |
211 |
DO i = 1, knon |
DO i = 1, knon |
212 |
zx_buf1(i) = delp(i, 1) + zx_coef(i, 2) * (1. - zx_dq(i, 2)) |
zx_buf1(i) = delp(i, 1) + zx_coef(i, 2) * (1. - zx_dq(i, 2)) |
213 |
zx_cq(i, 1) = (local_q(i, 1) * delp(i, 1) & |
zx_cq(i, 1) = (local_q(i, 1) * delp(i, 1) & |
214 |
+zx_coef(i, 2) * (z_gamaq(i, 2)+zx_cq(i, 2))) & |
+ zx_coef(i, 2) * (z_gamaq(i, 2) + zx_cq(i, 2))) / zx_buf1(i) |
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/ zx_buf1(i) |
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215 |
zx_dq(i, 1) = - 1. * RG / zx_buf1(i) |
zx_dq(i, 1) = - 1. * RG / zx_buf1(i) |
216 |
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217 |
zzpk=(pplay(i, 1) / psref(i))**RKAPPA |
zzpk=(pplay(i, 1) / psref(i))**RKAPPA |
218 |
zx_buf2(i) = zzpk * delp(i, 1) + zx_coef(i, 2) * (1. - zx_dh(i, 2)) |
zx_buf2(i) = zzpk * delp(i, 1) + zx_coef(i, 2) * (1. - zx_dh(i, 2)) |
219 |
zx_ch(i, 1) = (local_h(i, 1) * zzpk * delp(i, 1) & |
zx_ch(i, 1) = (local_h(i, 1) * zzpk * delp(i, 1) & |
220 |
+zx_coef(i, 2) * (z_gamah(i, 2)+zx_ch(i, 2))) & |
+ zx_coef(i, 2) * (z_gamah(i, 2) + zx_ch(i, 2))) / zx_buf2(i) |
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/ zx_buf2(i) |
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221 |
zx_dh(i, 1) = - 1. * RG / zx_buf2(i) |
zx_dh(i, 1) = - 1. * RG / zx_buf2(i) |
222 |
ENDDO |
ENDDO |
223 |
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224 |
! Appel a interfsurf (appel generique) routine d'interface avec la surface |
! Appel \`a interfsurf (appel g\'en\'erique) routine d'interface |
225 |
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! avec la surface |
226 |
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227 |
! initialisation |
! Initialisation |
228 |
petAcoef =0. |
petAcoef =0. |
229 |
peqAcoef = 0. |
peqAcoef = 0. |
230 |
petBcoef =0. |
petBcoef =0. |
241 |
p1lay(1:knon) = pplay(1:knon, 1) |
p1lay(1:knon) = pplay(1:knon, 1) |
242 |
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243 |
CALL interfsurf_hq(dtime, jour, rmu0, nisurf, knon, knindex, rlat, debut, & |
CALL interfsurf_hq(dtime, jour, rmu0, nisurf, knon, knindex, rlat, debut, & |
244 |
nsoilmx, tsoil, qsol, u1lay, v1lay, temp_air, spechum, tq_cdrag, & |
tsoil, qsol, u1lay, v1lay, temp_air, spechum, tq_cdrag, petAcoef, & |
245 |
petAcoef, peqAcoef, petBcoef, peqBcoef, precip_rain, precip_snow, & |
peqAcoef, petBcoef, peqBcoef, precip_rain, precip_snow, fder, rugos, & |
246 |
fder, rugos, rugoro, snow, qsurf, ts(:knon), p1lay, psref, radsol, & |
rugoro, snow, qsurf, ts, p1lay, psref, radsol, evap, flux_t, & |
247 |
evap, flux_t, fluxlat, dflux_l, dflux_s, tsurf_new, albedo, & |
fluxlat, dflux_l, dflux_s, tsurf_new, albedo, z0_new, & |
248 |
z0_new, pctsrf_new_sic, agesno, fqcalving, ffonte, run_off_lic_0) |
pctsrf_new_sic, agesno, fqcalving, ffonte, run_off_lic_0) |
249 |
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250 |
flux_q = - evap |
flux_q = - evap |
251 |
d_ts = tsurf_new - ts(:knon) |
d_ts = tsurf_new - ts |
252 |
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253 |
!==== une fois on a zx_h_ts, on peut faire l'iteration ======== |
! Une fois qu'on a zx_h_ts, on peut faire l'it\'eration |
254 |
DO i = 1, knon |
DO i = 1, knon |
255 |
local_h(i, 1) = zx_ch(i, 1) + zx_dh(i, 1) * flux_t(i) * dtime |
local_h(i, 1) = zx_ch(i, 1) + zx_dh(i, 1) * flux_t(i) * dtime |
256 |
local_q(i, 1) = zx_cq(i, 1) + zx_dq(i, 1) * flux_q(i) * dtime |
local_q(i, 1) = zx_cq(i, 1) + zx_dq(i, 1) * flux_q(i) * dtime |
262 |
ENDDO |
ENDDO |
263 |
ENDDO |
ENDDO |
264 |
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265 |
! Calcul tendances |
! Calcul des tendances |
266 |
DO k = 1, klev |
DO k = 1, klev |
267 |
DO i = 1, knon |
DO i = 1, knon |
268 |
d_t(i, k) = local_h(i, k) / zx_pkf(i, k) / RCPD - t(i, k) |
d_t(i, k) = local_h(i, k) / zx_pkf(i, k) / RCPD - t(i, k) |