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Revision 350 - (show annotations)
Mon Dec 23 16:07:24 2019 UTC (4 years, 4 months ago) by guez
File size: 35497 byte(s)
Add argument `itau_phy_redem` to phyredem0

Add argument `itau_phy_redem` to phyredem0. Motivation: being able to
call phyredem0 with `itau_phy_redem` = 0 in program ce0l, avoiding the
side effect on nday. We can now add attribute protected to variable
nday of module `conf_gcm`. And we do not need to set `itau_phy` to 0
in procedure `phyetat0_new`.

Remove variable `prt_level` of module `conf_gcm`, which was only used
in procedure advnx. Motivation: cluttering the output is not viable,
even for debug. Better use a debugger.

Forgot to add `dyn3d/ADVN/CMakeLists.txt` in previous revision.

1 module physiq_m
2
3 IMPLICIT none
4
5 contains
6
7 SUBROUTINE physiq(lafin, dayvrai, time, paprs, play, pphi, pphis, u, v, t, &
8 qx, omega, d_u, d_v, d_t, d_qx)
9
10 ! From phylmd/physiq.F, version 1.22 2006/02/20 09:38:28
11 ! (subversion revision 678)
12
13 ! Author: Z. X. Li (LMD/CNRS) 1993
14
15 ! This is the main procedure for the "physics" part of the program.
16
17 ! Libraries:
18 use netcdf95, only: NF95_CLOSE
19 use nr_util, only: assert
20
21 use aaam_bud_m, only: aaam_bud
22 USE abort_gcm_m, ONLY: abort_gcm
23 use ajsec_m, only: ajsec
24 use calltherm_m, only: calltherm
25 USE clesphys, ONLY: cdhmax, cdmmax, ecrit_ins, ok_instan
26 USE clesphys2, ONLY: conv_emanuel, nbapp_rad, ok_orodr, ok_orolf
27 USE conf_interface_m, ONLY: conf_interface
28 USE pbl_surface_m, ONLY: pbl_surface
29 use clouds_gno_m, only: clouds_gno
30 use comconst, only: dtphys
31 USE comgeomphy, ONLY: airephy
32 USE concvl_m, ONLY: concvl
33 USE conf_gcm_m, ONLY: nday, lmt_pas
34 USE conf_phys_m, ONLY: conf_phys
35 use conflx_m, only: conflx
36 USE ctherm_m, ONLY: iflag_thermals, ctherm
37 use diagcld1_m, only: diagcld1
38 USE dimensions, ONLY: llm, nqmx
39 USE dimphy, ONLY: klon
40 USE dimsoil, ONLY: nsoilmx
41 use drag_noro_m, only: drag_noro
42 use dynetat0_chosen_m, only: day_ref, annee_ref
43 USE fcttre, ONLY: foeew
44 use fisrtilp_m, only: fisrtilp
45 USE hgardfou_m, ONLY: hgardfou
46 USE histsync_m, ONLY: histsync
47 USE histwrite_phy_m, ONLY: histwrite_phy
48 USE indicesol, ONLY: clnsurf, epsfra, nbsrf
49 USE ini_histins_m, ONLY: ini_histins, nid_ins
50 use lift_noro_m, only: lift_noro
51 use newmicro_m, only: newmicro
52 USE orbite_m, ONLY: orbite
53 USE ozonecm_m, ONLY: ozonecm
54 USE phyetat0_m, ONLY: phyetat0, itau_phy
55 USE phyredem_m, ONLY: phyredem
56 USE phyredem0_m, ONLY: phyredem0
57 USE phytrac_m, ONLY: phytrac
58 use radlwsw_m, only: radlwsw
59 use yoegwd, only: sugwd
60 USE suphec_m, ONLY: rcpd, retv, rg, rlvtt, romega, rsigma, rtt, rmo3, md
61 use time_phylmdz, only: itap, increment_itap
62 use transp_m, only: transp
63 use transp_lay_m, only: transp_lay
64 use unit_nml_m, only: unit_nml
65 USE ymds2ju_m, ONLY: ymds2ju
66 USE yoethf_m, ONLY: r2es, rvtmp2
67 use zenang_m, only: zenang
68
69 logical, intent(in):: lafin ! dernier passage
70
71 integer, intent(in):: dayvrai
72 ! current day number, based at value 1 on January 1st of annee_ref
73
74 REAL, intent(in):: time ! heure de la journ\'ee en fraction de jour
75
76 REAL, intent(in):: paprs(:, :) ! (klon, llm + 1)
77 ! pression pour chaque inter-couche, en Pa
78
79 REAL, intent(in):: play(:, :) ! (klon, llm)
80 ! pression pour le mileu de chaque couche (en Pa)
81
82 REAL, intent(in):: pphi(:, :) ! (klon, llm)
83 ! géopotentiel de chaque couche (référence sol)
84
85 REAL, intent(in):: pphis(:) ! (klon) géopotentiel du sol
86 REAL, intent(in):: u(:, :) ! (klon, llm) zonal wind, in m / s
87 REAL, intent(in):: v(:, :) ! (klon, llm) meridional wind, in m / s
88 REAL, intent(in):: t(:, :) ! (klon, llm) temperature (K)
89
90 REAL, intent(in):: qx(:, :, :) ! (klon, llm, nqmx)
91 ! (humidit\'e sp\'ecifique et fractions massiques des autres traceurs)
92
93 REAL, intent(in):: omega(:, :) ! (klon, llm) vitesse verticale en Pa / s
94 REAL, intent(out):: d_u(:, :) ! (klon, llm) tendance physique de "u" (m s-2)
95 REAL, intent(out):: d_v(:, :) ! (klon, llm) tendance physique de "v" (m s-2)
96 REAL, intent(out):: d_t(:, :) ! (klon, llm) tendance physique de "t" (K / s)
97
98 REAL, intent(out):: d_qx(:, :, :) ! (klon, llm, nqmx)
99 ! tendance physique de "qx" (s-1)
100
101 ! Local:
102
103 LOGICAL:: firstcal = .true.
104
105 ! pour phystoke avec thermiques
106 REAL fm_therm(klon, llm + 1)
107 REAL entr_therm(klon, llm)
108 real, save:: q2(klon, llm + 1, nbsrf)
109
110 INTEGER, PARAMETER:: ivap = 1 ! indice de traceur pour vapeur d'eau
111 INTEGER, PARAMETER:: iliq = 2 ! indice de traceur pour eau liquide
112
113 REAL, save:: t_ancien(klon, llm), q_ancien(klon, llm)
114 LOGICAL, save:: ancien_ok
115
116 REAL d_t_dyn(klon, llm) ! tendance dynamique pour "t" (K / s)
117 REAL d_q_dyn(klon, llm) ! tendance dynamique pour "q" (kg / kg / s)
118
119 real da(klon, llm), phi(klon, llm, llm), mp(klon, llm)
120
121 REAL, save:: swdn0(klon, llm + 1), swdn(klon, llm + 1)
122 REAL, save:: swup0(klon, llm + 1), swup(klon, llm + 1)
123
124 REAL, save:: lwdn0(klon, llm + 1), lwdn(klon, llm + 1)
125 REAL, save:: lwup0(klon, llm + 1), lwup(klon, llm + 1)
126
127 ! prw: precipitable water
128 real prw(klon)
129
130 ! flwp, fiwp = Liquid Water Path & Ice Water Path (kg / m2)
131 ! flwc, fiwc = Liquid Water Content & Ice Water Content (kg / kg)
132 REAL flwp(klon), fiwp(klon)
133 REAL flwc(klon, llm), fiwc(klon, llm)
134
135 ! Variables propres a la physique
136
137 INTEGER, save:: radpas
138 ! Radiative transfer computations are made every "radpas" call to
139 ! "physiq".
140
141 REAL, save:: radsol(klon)
142 ! Bilan radiatif net au sol (W/m2), positif vers le bas. Must be
143 ! saved because radlwsw is not called at every time step.
144
145 REAL, save:: ftsol(klon, nbsrf) ! skin temperature of surface fraction, in K
146
147 REAL, save:: ftsoil(klon, nsoilmx, nbsrf)
148 ! temperature of surface fraction inside the ground, in K, layer 1
149 ! nearest to the surface
150
151 REAL fluxlat(klon, nbsrf) ! flux de chaleur latente, en W m-2
152
153 REAL, save:: fqsurf(klon, nbsrf)
154 ! humidite de l'air au contact de la surface
155
156 REAL, save:: qsol(klon) ! column-density of water in soil, in kg m-2
157
158 REAL, save:: fsnow(klon, nbsrf)
159 ! column-density of mass of snow at the surface, in kg m-2
160
161 REAL, save:: falbe(klon, nbsrf) ! albedo visible par type de surface
162
163 ! Param\`etres de l'orographie \`a l'\'echelle sous-maille (OESM) :
164 REAL, save:: zmea(klon) ! orographie moyenne
165 REAL, save:: zstd(klon) ! deviation standard de l'OESM
166 REAL, save:: zsig(klon) ! pente de l'OESM
167 REAL, save:: zgam(klon) ! anisotropie de l'OESM
168 REAL, save:: zthe(klon) ! orientation de l'OESM
169 REAL, save:: zpic(klon) ! Maximum de l'OESM
170 REAL, save:: zval(klon) ! Minimum de l'OESM
171 REAL, save:: rugoro(klon) ! longueur de rugosite de l'OESM
172 REAL zulow(klon), zvlow(klon)
173 INTEGER ktest(klon)
174
175 REAL, save:: agesno(klon, nbsrf) ! age de la neige
176 REAL, save:: run_off_lic_0(klon)
177
178 ! Variables li\'ees \`a la convection d'Emanuel :
179 REAL, save:: Ma(klon, llm) ! undilute upward mass flux
180 REAL, save:: sig1(klon, llm), w01(klon, llm)
181
182 ! Variables pour la couche limite (Alain Lahellec) :
183 REAL cdragh(klon) ! drag coefficient pour T and Q
184 REAL cdragm(klon) ! drag coefficient pour vent
185
186 REAL coefh(klon, 2:llm) ! coef d'echange pour phytrac
187
188 REAL, save:: ffonte(klon, nbsrf)
189 ! flux thermique utilise pour fondre la neige
190
191 REAL fqcalving(klon, nbsrf)
192 ! flux d'eau "perdue" par la surface et n\'ecessaire pour limiter
193 ! la hauteur de neige, en kg / m2 / s
194
195 REAL zxffonte(klon)
196
197 REAL, save:: pfrac_impa(klon, llm)! Produits des coefs lessivage impaction
198 REAL, save:: pfrac_nucl(klon, llm)! Produits des coefs lessivage nucleation
199
200 REAL, save:: pfrac_1nucl(klon, llm)
201 ! Produits des coefs lessi nucl (alpha = 1)
202
203 REAL frac_impa(klon, llm) ! fraction d'a\'erosols lessiv\'es (impaction)
204 REAL frac_nucl(klon, llm) ! idem (nucleation)
205
206 REAL, save:: rain_fall(klon)
207 ! liquid water mass flux (kg / m2 / s), positive down
208
209 REAL, save:: snow_fall(klon)
210 ! solid water mass flux (kg / m2 / s), positive down
211
212 REAL rain_tiedtke(klon), snow_tiedtke(klon)
213
214 REAL evap(klon) ! flux d'\'evaporation au sol
215 real dflux_q(klon) ! derivative of the evaporation flux at the surface
216 REAL sens(klon) ! flux de chaleur sensible au sol
217 real dflux_t(klon) ! derivee du flux de chaleur sensible au sol
218 REAL, save:: dlw(klon) ! derivative of infra-red flux
219 REAL fder(klon) ! d\'erive de flux (sensible et latente)
220 REAL ve(klon) ! integr. verticale du transport meri. de l'energie
221 REAL vq(klon) ! integr. verticale du transport meri. de l'eau
222 REAL ue(klon) ! integr. verticale du transport zonal de l'energie
223 REAL uq(klon) ! integr. verticale du transport zonal de l'eau
224
225 REAL, save:: frugs(klon, nbsrf) ! longueur de rugosite
226 REAL zxrugs(klon) ! longueur de rugosite
227
228 ! Conditions aux limites
229
230 INTEGER julien
231 REAL, save:: pctsrf(klon, nbsrf) ! percentage of surface
232 REAL, save:: albsol(klon) ! albedo du sol total, visible, moyen par maille
233 REAL, SAVE:: wo(klon, llm) ! column density of ozone in a cell, in kDU
234 real, parameter:: dobson_u = 2.1415e-05 ! Dobson unit, in kg m-2
235
236 real, save:: clwcon(klon, llm), rnebcon(klon, llm)
237 real, save:: clwcon0(klon, llm), rnebcon0(klon, llm)
238
239 REAL rhcl(klon, llm) ! humidit\'e relative ciel clair
240 REAL dialiq(klon, llm) ! eau liquide nuageuse
241 REAL diafra(klon, llm) ! fraction nuageuse
242 REAL cldliq(klon, llm) ! eau liquide nuageuse
243 REAL cldfra(klon, llm) ! fraction nuageuse
244 REAL cldtau(klon, llm) ! \'epaisseur optique
245 REAL cldemi(klon, llm) ! \'emissivit\'e infrarouge
246
247 REAL flux_q(klon, nbsrf) ! flux turbulent d'humidite à la surface
248
249 REAL flux_t(klon, nbsrf)
250 ! flux de chaleur sensible (c_p T) (W / m2) (orientation positive
251 ! vers le bas) à la surface
252
253 REAL flux_u(klon, nbsrf), flux_v(klon, nbsrf)
254 ! tension du vent (flux turbulent de vent) à la surface, en Pa
255
256 ! Le rayonnement n'est pas calcul\'e tous les pas, il faut donc que
257 ! les variables soient r\'emanentes.
258 REAL, save:: heat(klon, llm) ! chauffage solaire
259 REAL, save:: heat0(klon, llm) ! chauffage solaire ciel clair
260 REAL, save:: cool(klon, llm) ! refroidissement infrarouge
261 REAL, save:: cool0(klon, llm) ! refroidissement infrarouge ciel clair
262 REAL, save:: topsw(klon), toplw(klon), solsw(klon)
263
264 REAL, save:: sollw(klon) ! surface net downward longwave flux, in W m-2
265 real, save:: sollwdown(klon) ! downwelling longwave flux at surface
266 REAL, save:: topsw0(klon), toplw0(klon), solsw0(klon), sollw0(klon)
267
268 REAL conv_q(klon, llm) ! convergence de l'humidite (kg / kg / s)
269 REAL conv_t(klon, llm) ! convergence of temperature (K / s)
270
271 REAL cldl(klon), cldm(klon), cldh(klon) ! nuages bas, moyen et haut
272 REAL cldt(klon), cldq(klon) ! nuage total, eau liquide integree
273
274 REAL zxfluxlat(klon)
275 REAL dist ! distance Terre-Soleil, en ua
276 real mu0(klon), fract(klon)
277 real longi
278 REAL z_avant(klon), z_apres(klon), z_factor(klon)
279 REAL zb
280 REAL zx_qs, zcor
281 real zqsat(klon, llm)
282 INTEGER i, k, iq, nsrf
283 REAL zphi(klon, llm)
284
285 ! cf. Anne Mathieu, variables pour la couche limite atmosphérique (hbtm)
286
287 REAL, SAVE:: pblh(klon, nbsrf) ! Hauteur de couche limite
288 REAL, SAVE:: plcl(klon, nbsrf) ! Niveau de condensation de la CLA
289 REAL, SAVE:: capCL(klon, nbsrf) ! CAPE de couche limite
290 REAL, SAVE:: oliqCL(klon, nbsrf) ! eau_liqu integree de couche limite
291 REAL, SAVE:: cteiCL(klon, nbsrf) ! cloud top instab. crit. couche limite
292 REAL, SAVE:: pblt(klon, nbsrf) ! T \`a la hauteur de couche limite
293 REAL, SAVE:: therm(klon, nbsrf)
294 ! Grandeurs de sorties
295 REAL s_pblh(klon), s_lcl(klon), s_capCL(klon)
296 REAL s_oliqCL(klon), s_cteiCL(klon), s_pblt(klon)
297 REAL s_therm(klon)
298
299 ! Variables pour la convection de K. Emanuel :
300
301 REAL upwd(klon, llm) ! saturated updraft mass flux
302 REAL dnwd(klon, llm) ! saturated downdraft mass flux
303 REAL, save:: cape(klon)
304
305 INTEGER iflagctrl(klon) ! flag fonctionnement de convect
306
307 ! Variables du changement
308
309 ! con: convection
310 ! lsc: large scale condensation
311 ! ajs: ajustement sec
312 ! eva: \'evaporation de l'eau liquide nuageuse
313 ! vdf: vertical diffusion in boundary layer
314 REAL d_t_con(klon, llm), d_q_con(klon, llm)
315 REAL d_u_con(klon, llm), d_v_con(klon, llm)
316 REAL d_t_lsc(klon, llm), d_q_lsc(klon, llm), d_ql_lsc(klon, llm)
317 REAL d_t_ajs(klon, llm), d_q_ajs(klon, llm)
318 REAL d_u_ajs(klon, llm), d_v_ajs(klon, llm)
319 REAL rneb(klon, llm)
320
321 REAL mfu(klon, llm), mfd(klon, llm)
322 REAL pen_u(klon, llm), pen_d(klon, llm)
323 REAL pde_u(klon, llm), pde_d(klon, llm)
324 INTEGER kcbot(klon), kctop(klon), kdtop(klon)
325 REAL pmflxr(klon, llm + 1), pmflxs(klon, llm + 1)
326 REAL prfl(klon, llm + 1), psfl(klon, llm + 1)
327
328 INTEGER, save:: ibas_con(klon), itop_con(klon)
329 real ema_pct(klon) ! Emanuel pressure at cloud top, in Pa
330
331 REAL rain_con(klon)
332 real rain_lsc(klon)
333 REAL snow_con(klon) ! neige (mm / s)
334 real snow_lsc(klon)
335
336 REAL d_u_vdf(klon, llm), d_v_vdf(klon, llm)
337 REAL d_t_vdf(klon, llm), d_q_vdf(klon, llm)
338
339 REAL d_u_oro(klon, llm), d_v_oro(klon, llm)
340 REAL d_t_oro(klon, llm)
341 REAL d_u_lif(klon, llm), d_v_lif(klon, llm)
342 REAL d_t_lif(klon, llm)
343
344 REAL, save:: ratqs(klon, llm)
345 real ratqss(klon, llm), ratqsc(klon, llm)
346 real:: ratqsbas = 0.01, ratqshaut = 0.3
347
348 ! Param\`etres li\'es au nouveau sch\'ema de nuages :
349 real:: fact_cldcon = 0.375
350
351 real:: facttemps = 1.e-4 ! in s-1
352 ! 1 / facttemps est le temps de relaxation des ratqs.
353
354 real facteur
355
356 integer:: iflag_cldcon = 1 ! allowed values: - 2, ..., 3
357 logical ptconv(klon, llm)
358
359 ! Variables pour effectuer les appels en s\'erie :
360
361 REAL t_seri(klon, llm)
362 real q_seri(klon, llm) ! mass fraction of water vapor
363 REAL ql_seri(klon, llm)
364 REAL u_seri(klon, llm), v_seri(klon, llm) ! wind, in m s-1
365 REAL tr_seri(klon, llm, nqmx - 2)
366
367 REAL zx_rh(klon, llm)
368
369 REAL zustrdr(klon), zvstrdr(klon)
370 REAL zustrli(klon), zvstrli(klon)
371 REAL aam, torsfc
372
373 REAL ve_lay(klon, llm) ! transport meri. de l'energie a chaque niveau vert.
374 REAL vq_lay(klon, llm) ! transport meri. de l'eau a chaque niveau vert.
375 REAL ue_lay(klon, llm) ! transport zonal de l'energie a chaque niveau vert.
376 REAL uq_lay(klon, llm) ! transport zonal de l'eau a chaque niveau vert.
377
378 REAL tsol(klon)
379
380 REAL d_t_ec(klon, llm)
381 ! tendance due \`a la conversion d'\'energie cin\'etique en
382 ! énergie thermique
383
384 REAL, save:: t2m(klon, nbsrf), q2m(klon, nbsrf)
385 ! temperature and humidity at 2 m
386
387 REAL, save:: u10m_srf(klon, nbsrf), v10m_srf(klon, nbsrf)
388 ! composantes du vent \`a 10 m
389
390 REAL zt2m(klon), zq2m(klon) ! température, humidité 2 m moyenne sur 1 maille
391 REAL u10m(klon), v10m(klon) ! vent \`a 10 m moyenn\' sur les sous-surfaces
392
393 ! Aerosol effects:
394
395 REAL, save:: topswad(klon), solswad(klon) ! aerosol direct effect
396 LOGICAL:: ok_ade = .false. ! apply aerosol direct effect
397
398 REAL:: bl95_b0 = 2., bl95_b1 = 0.2
399 ! Parameters in equation (D) of Boucher and Lohmann (1995, Tellus
400 ! B). They link cloud droplet number concentration to aerosol mass
401 ! concentration.
402
403 real zmasse(klon, llm)
404 ! (column-density of mass of air in a cell, in kg m-2)
405
406 integer, save:: ncid_startphy
407
408 namelist /physiq_nml/ fact_cldcon, facttemps, iflag_cldcon, ratqsbas, &
409 ratqshaut, ok_ade, bl95_b0, bl95_b1
410
411 !----------------------------------------------------------------
412
413 IF (nqmx < 2) CALL abort_gcm('physiq', &
414 'eaux vapeur et liquide sont indispensables')
415
416 test_firstcal: IF (firstcal) THEN
417 ! initialiser
418 u10m_srf = 0.
419 v10m_srf = 0.
420 t2m = 0.
421 q2m = 0.
422 ffonte = 0.
423 rnebcon0 = 0.
424 clwcon0 = 0.
425 clwcon = 0.
426 pblh =0. ! Hauteur de couche limite
427 plcl =0. ! Niveau de condensation de la CLA
428 capCL =0. ! CAPE de couche limite
429 oliqCL =0. ! eau_liqu integree de couche limite
430 cteiCL =0. ! cloud top instab. crit. couche limite
431 pblt =0.
432 therm =0.
433
434 print *, "Enter namelist 'physiq_nml'."
435 read(unit=*, nml=physiq_nml)
436 write(unit_nml, nml=physiq_nml)
437 call assert(iflag_cldcon >= - 2 .and. iflag_cldcon <= 3, &
438 "physiq iflag_cldcon")
439
440 call ctherm
441 call conf_phys
442
443 ! Initialiser les compteurs:
444
445 frugs = 0.
446 CALL phyetat0(pctsrf, ftsol, ftsoil, fqsurf, qsol, fsnow, falbe, &
447 rain_fall, snow_fall, solsw, sollw, dlw, radsol, frugs, agesno, &
448 zmea, zstd, zsig, zgam, zthe, zpic, zval, t_ancien, q_ancien, &
449 ancien_ok, rnebcon, ratqs, clwcon, run_off_lic_0, sig1, w01, &
450 ncid_startphy)
451
452 ! ATTENTION : il faudra a terme relire q2 dans l'etat initial
453 q2 = 1e-8
454
455 radpas = lmt_pas / nbapp_rad
456 print *, "radpas = ", radpas
457
458 ! Initialisation pour le sch\'ema de convection d'Emanuel :
459 IF (conv_emanuel) THEN
460 ibas_con = 1
461 itop_con = 1
462 ENDIF
463
464 IF (ok_orodr) THEN
465 rugoro = MAX(1e-5, zstd * zsig / 2)
466 CALL SUGWD(paprs, play)
467 else
468 rugoro = 0.
469 ENDIF
470
471 ! Initialisation des sorties
472 call ini_histins
473 CALL phyredem0(itau_phy + nday * lmt_pas)
474 call conf_interface
475 ENDIF test_firstcal
476
477 ! We will modify variables *_seri and we will not touch variables
478 ! u, v, t, qx:
479 t_seri = t
480 u_seri = u
481 v_seri = v
482 q_seri = qx(:, :, ivap)
483 ql_seri = qx(:, :, iliq)
484 tr_seri = qx(:, :, 3:nqmx)
485
486 tsol = sum(ftsol * pctsrf, dim = 2)
487
488 ! Diagnostic de la tendance dynamique :
489 IF (ancien_ok) THEN
490 DO k = 1, llm
491 DO i = 1, klon
492 d_t_dyn(i, k) = (t_seri(i, k) - t_ancien(i, k)) / dtphys
493 d_q_dyn(i, k) = (q_seri(i, k) - q_ancien(i, k)) / dtphys
494 ENDDO
495 ENDDO
496 ELSE
497 DO k = 1, llm
498 DO i = 1, klon
499 d_t_dyn(i, k) = 0.
500 d_q_dyn(i, k) = 0.
501 ENDDO
502 ENDDO
503 ancien_ok = .TRUE.
504 ENDIF
505
506 ! Ajouter le geopotentiel du sol:
507 DO k = 1, llm
508 DO i = 1, klon
509 zphi(i, k) = pphi(i, k) + pphis(i)
510 ENDDO
511 ENDDO
512
513 ! Check temperatures:
514 CALL hgardfou(t_seri, ftsol)
515
516 call increment_itap
517 julien = MOD(dayvrai, 360)
518 if (julien == 0) julien = 360
519
520 forall (k = 1: llm) zmasse(:, k) = (paprs(:, k) - paprs(:, k + 1)) / rg
521
522 ! \'Evaporation de l'eau liquide nuageuse :
523 DO k = 1, llm
524 DO i = 1, klon
525 zb = MAX(0., ql_seri(i, k))
526 t_seri(i, k) = t_seri(i, k) &
527 - zb * RLVTT / RCPD / (1. + RVTMP2 * q_seri(i, k))
528 q_seri(i, k) = q_seri(i, k) + zb
529 ENDDO
530 ENDDO
531 ql_seri = 0.
532
533 frugs = MAX(frugs, 0.000015)
534 zxrugs = sum(frugs * pctsrf, dim = 2)
535
536 ! Calculs n\'ecessaires au calcul de l'albedo dans l'interface avec
537 ! la surface.
538
539 CALL orbite(REAL(julien), longi, dist)
540 CALL zenang(longi, time, dtphys * radpas, mu0, fract)
541
542 CALL pbl_surface(pctsrf, t_seri, q_seri, u_seri, v_seri, julien, mu0, &
543 ftsol, cdmmax, cdhmax, ftsoil, qsol, paprs, play, fsnow, fqsurf, &
544 falbe, fluxlat, rain_fall, snow_fall, frugs, agesno, rugoro, d_t_vdf, &
545 d_q_vdf, d_u_vdf, d_v_vdf, flux_t, flux_q, flux_u, flux_v, cdragh, &
546 cdragm, q2, dflux_t, dflux_q, coefh, t2m, q2m, u10m_srf, v10m_srf, &
547 pblh, capCL, oliqCL, cteiCL, pblT, therm, plcl, fqcalving, ffonte, &
548 run_off_lic_0, albsol, sollw, solsw, tsol)
549
550 ! Incr\'ementation des flux
551
552 sens = sum(flux_t * pctsrf, dim = 2)
553 evap = - sum(flux_q * pctsrf, dim = 2)
554 fder = dlw + dflux_t + dflux_q
555
556 DO k = 1, llm
557 DO i = 1, klon
558 t_seri(i, k) = t_seri(i, k) + d_t_vdf(i, k)
559 q_seri(i, k) = q_seri(i, k) + d_q_vdf(i, k)
560 u_seri(i, k) = u_seri(i, k) + d_u_vdf(i, k)
561 v_seri(i, k) = v_seri(i, k) + d_v_vdf(i, k)
562 ENDDO
563 ENDDO
564
565 call assert(abs(sum(pctsrf, dim = 2) - 1.) <= EPSFRA, 'physiq: pctsrf')
566 tsol = sum(ftsol * pctsrf, dim = 2)
567 zxfluxlat = sum(fluxlat * pctsrf, dim = 2)
568 zt2m = sum(t2m * pctsrf, dim = 2)
569 zq2m = sum(q2m * pctsrf, dim = 2)
570 u10m = sum(u10m_srf * pctsrf, dim = 2)
571 v10m = sum(v10m_srf * pctsrf, dim = 2)
572 zxffonte = sum(ffonte * pctsrf, dim = 2)
573 s_pblh = sum(pblh * pctsrf, dim = 2)
574 s_lcl = sum(plcl * pctsrf, dim = 2)
575 s_capCL = sum(capCL * pctsrf, dim = 2)
576 s_oliqCL = sum(oliqCL * pctsrf, dim = 2)
577 s_cteiCL = sum(cteiCL * pctsrf, dim = 2)
578 s_pblT = sum(pblT * pctsrf, dim = 2)
579 s_therm = sum(therm * pctsrf, dim = 2)
580
581 ! Si une sous-fraction n'existe pas, elle prend la valeur moyenne :
582 DO nsrf = 1, nbsrf
583 DO i = 1, klon
584 IF (pctsrf(i, nsrf) < epsfra) then
585 ftsol(i, nsrf) = tsol(i)
586 t2m(i, nsrf) = zt2m(i)
587 q2m(i, nsrf) = zq2m(i)
588 u10m_srf(i, nsrf) = u10m(i)
589 v10m_srf(i, nsrf) = v10m(i)
590 ffonte(i, nsrf) = zxffonte(i)
591 pblh(i, nsrf) = s_pblh(i)
592 plcl(i, nsrf) = s_lcl(i)
593 capCL(i, nsrf) = s_capCL(i)
594 oliqCL(i, nsrf) = s_oliqCL(i)
595 cteiCL(i, nsrf) = s_cteiCL(i)
596 pblT(i, nsrf) = s_pblT(i)
597 therm(i, nsrf) = s_therm(i)
598 end IF
599 ENDDO
600 ENDDO
601
602 dlw = - 4. * RSIGMA * tsol**3
603
604 ! Appeler la convection
605
606 if (conv_emanuel) then
607 CALL concvl(paprs, play, t_seri, q_seri, u_seri, v_seri, sig1, w01, &
608 d_t_con, d_q_con, d_u_con, d_v_con, rain_con, ibas_con, itop_con, &
609 upwd, dnwd, Ma, cape, iflagctrl, clwcon0, pmflxr, da, phi, mp)
610 snow_con = 0.
611 mfu = upwd + dnwd
612
613 zqsat = MIN(0.5, r2es * FOEEW(t_seri, rtt >= t_seri) / play)
614 zqsat = zqsat / (1. - retv * zqsat)
615
616 ! Properties of convective clouds
617 clwcon0 = fact_cldcon * clwcon0
618 call clouds_gno(klon, llm, q_seri, zqsat, clwcon0, ptconv, ratqsc, &
619 rnebcon0)
620
621 forall (i = 1:klon) ema_pct(i) = paprs(i, itop_con(i) + 1)
622 mfd = 0.
623 pen_u = 0.
624 pen_d = 0.
625 pde_d = 0.
626 pde_u = 0.
627 u_seri = u_seri + d_u_con
628 v_seri = v_seri + d_v_con
629 else
630 conv_q = d_q_dyn + d_q_vdf / dtphys
631 conv_t = d_t_dyn + d_t_vdf / dtphys
632 z_avant = sum((q_seri + ql_seri) * zmasse, dim=2)
633 CALL conflx(paprs, play, t_seri(:, llm:1:- 1), q_seri(:, llm:1:- 1), &
634 conv_t, conv_q, - evap, omega, d_t_con, d_q_con, rain_con, &
635 snow_con, mfu(:, llm:1:- 1), mfd(:, llm:1:- 1), pen_u, pde_u, &
636 pen_d, pde_d, kcbot, kctop, kdtop, pmflxr, pmflxs)
637 WHERE (rain_con < 0.) rain_con = 0.
638 WHERE (snow_con < 0.) snow_con = 0.
639 ibas_con = llm + 1 - kcbot
640 itop_con = llm + 1 - kctop
641 END if
642
643 t_seri = t_seri + d_t_con
644 q_seri = q_seri + d_q_con
645
646 IF (.not. conv_emanuel) THEN
647 z_apres = sum((q_seri + ql_seri) * zmasse, dim=2)
648 z_factor = (z_avant - (rain_con + snow_con) * dtphys) / z_apres
649 DO k = 1, llm
650 DO i = 1, klon
651 IF (z_factor(i) /= 1.) THEN
652 q_seri(i, k) = q_seri(i, k) * z_factor(i)
653 ENDIF
654 ENDDO
655 ENDDO
656 ENDIF
657
658 ! Convection s\`eche (thermiques ou ajustement)
659
660 d_t_ajs = 0.
661 d_u_ajs = 0.
662 d_v_ajs = 0.
663 d_q_ajs = 0.
664 fm_therm = 0.
665 entr_therm = 0.
666
667 if (iflag_thermals) then
668 call calltherm(play, paprs, pphi, u_seri, v_seri, t_seri, q_seri, &
669 d_u_ajs, d_v_ajs, d_t_ajs, d_q_ajs, fm_therm, entr_therm)
670 else
671 CALL ajsec(paprs, play, t_seri, q_seri, d_t_ajs, d_q_ajs)
672 t_seri = t_seri + d_t_ajs
673 q_seri = q_seri + d_q_ajs
674 endif
675
676 ! Caclul des ratqs
677
678 if (iflag_cldcon == 1) then
679 ! ratqs convectifs \`a l'ancienne en fonction de (q(z = 0) - q) / q
680 ! on \'ecrase le tableau ratqsc calcul\'e par clouds_gno
681 do k = 1, llm
682 do i = 1, klon
683 if(ptconv(i, k)) then
684 ratqsc(i, k) = ratqsbas + fact_cldcon &
685 * (q_seri(i, 1) - q_seri(i, k)) / q_seri(i, k)
686 else
687 ratqsc(i, k) = 0.
688 endif
689 enddo
690 enddo
691 endif
692
693 ! ratqs stables
694 do k = 1, llm
695 do i = 1, klon
696 ratqss(i, k) = ratqsbas + (ratqshaut - ratqsbas) &
697 * min((paprs(i, 1) - play(i, k)) / (paprs(i, 1) - 3e4), 1.)
698 enddo
699 enddo
700
701 ! ratqs final
702 if (iflag_cldcon == 1 .or. iflag_cldcon == 2) then
703 ! les ratqs sont une conbinaison de ratqss et ratqsc
704 ! ratqs final
705 ratqs = max(ratqs * exp(- dtphys * facttemps), ratqss)
706 ratqs = max(ratqs, ratqsc)
707 else
708 ! on ne prend que le ratqs stable pour fisrtilp
709 ratqs = ratqss
710 endif
711
712 CALL fisrtilp(paprs, play, t_seri, q_seri, ptconv, ratqs, d_t_lsc, &
713 d_q_lsc, d_ql_lsc, rneb, cldliq, rain_lsc, snow_lsc, pfrac_impa, &
714 pfrac_nucl, pfrac_1nucl, frac_impa, frac_nucl, prfl, psfl, rhcl)
715
716 WHERE (rain_lsc < 0) rain_lsc = 0.
717 WHERE (snow_lsc < 0) snow_lsc = 0.
718 DO k = 1, llm
719 DO i = 1, klon
720 t_seri(i, k) = t_seri(i, k) + d_t_lsc(i, k)
721 q_seri(i, k) = q_seri(i, k) + d_q_lsc(i, k)
722 ql_seri(i, k) = ql_seri(i, k) + d_ql_lsc(i, k)
723 cldfra(i, k) = rneb(i, k)
724 ENDDO
725 ENDDO
726
727 ! PRESCRIPTION DES NUAGES POUR LE RAYONNEMENT
728
729 ! 1. NUAGES CONVECTIFS
730
731 IF (iflag_cldcon <= - 1) THEN
732 ! seulement pour Tiedtke
733 snow_tiedtke = 0.
734 if (iflag_cldcon == - 1) then
735 rain_tiedtke = rain_con
736 else
737 rain_tiedtke = 0.
738 do k = 1, llm
739 do i = 1, klon
740 if (d_q_con(i, k) < 0.) then
741 rain_tiedtke(i) = rain_tiedtke(i) - d_q_con(i, k) / dtphys &
742 * zmasse(i, k)
743 endif
744 enddo
745 enddo
746 endif
747
748 ! Nuages diagnostiques pour Tiedtke
749 CALL diagcld1(paprs, play, rain_tiedtke, snow_tiedtke, ibas_con, &
750 itop_con, diafra, dialiq)
751 DO k = 1, llm
752 DO i = 1, klon
753 IF (diafra(i, k) > cldfra(i, k)) THEN
754 cldliq(i, k) = dialiq(i, k)
755 cldfra(i, k) = diafra(i, k)
756 ENDIF
757 ENDDO
758 ENDDO
759 ELSE IF (iflag_cldcon == 3) THEN
760 ! On prend pour les nuages convectifs le maximum du calcul de
761 ! la convection et du calcul du pas de temps pr\'ec\'edent diminu\'e
762 ! d'un facteur facttemps.
763 facteur = dtphys * facttemps
764 do k = 1, llm
765 do i = 1, klon
766 rnebcon(i, k) = rnebcon(i, k) * facteur
767 if (rnebcon0(i, k) * clwcon0(i, k) &
768 > rnebcon(i, k) * clwcon(i, k)) then
769 rnebcon(i, k) = rnebcon0(i, k)
770 clwcon(i, k) = clwcon0(i, k)
771 endif
772 enddo
773 enddo
774
775 ! On prend la somme des fractions nuageuses et des contenus en eau
776 cldfra = min(max(cldfra, rnebcon), 1.)
777 cldliq = cldliq + rnebcon * clwcon
778 ENDIF
779
780 ! Precipitation totale
781 DO i = 1, klon
782 rain_fall(i) = rain_con(i) + rain_lsc(i)
783 snow_fall(i) = snow_con(i) + snow_lsc(i)
784 ENDDO
785
786 ! Humidit\'e relative pour diagnostic :
787 DO k = 1, llm
788 DO i = 1, klon
789 zx_qs = r2es * FOEEW(t_seri(i, k), rtt >= t_seri(i, k)) / play(i, k)
790 zx_qs = MIN(0.5, zx_qs)
791 zcor = 1. / (1. - retv * zx_qs)
792 zx_qs = zx_qs * zcor
793 zx_rh(i, k) = q_seri(i, k) / zx_qs
794 zqsat(i, k) = zx_qs
795 ENDDO
796 ENDDO
797
798 ! Param\`etres optiques des nuages et quelques param\`etres pour
799 ! diagnostics :
800 CALL newmicro(paprs, play, t_seri, cldliq, cldfra, cldtau, cldemi, cldh, &
801 cldl, cldm, cldt, cldq, flwp, fiwp, flwc, fiwc)
802
803 IF (MOD(itap - 1, radpas) == 0) THEN
804 wo = ozonecm(REAL(julien), paprs)
805 albsol = sum(falbe * pctsrf, dim = 2)
806 CALL radlwsw(dist, mu0, fract, paprs, play, tsol, albsol, t_seri, &
807 q_seri, wo, cldfra, cldemi, cldtau, heat, heat0, cool, cool0, &
808 radsol, topsw, toplw, solsw, sollw, sollwdown, topsw0, toplw0, &
809 solsw0, sollw0, lwdn0, lwdn, lwup0, lwup, swdn0, swdn, swup0, &
810 swup, ok_ade, topswad, solswad)
811 ENDIF
812
813 ! Ajouter la tendance des rayonnements (tous les pas)
814 DO k = 1, llm
815 DO i = 1, klon
816 t_seri(i, k) = t_seri(i, k) + (heat(i, k) - cool(i, k)) * dtphys &
817 / 86400.
818 ENDDO
819 ENDDO
820
821 ! Param\'etrisation de l'orographie \`a l'\'echelle sous-maille :
822
823 IF (ok_orodr) THEN
824 ! S\'election des points pour lesquels le sch\'ema est actif :
825 DO i = 1, klon
826 ktest(i) = 0
827 IF (zpic(i) - zmea(i) > 100. .AND. zstd(i) > 10.) THEN
828 ktest(i) = 1
829 ENDIF
830 ENDDO
831
832 CALL drag_noro(paprs, play, zmea, zstd, zsig, zgam, zthe, zpic, zval, &
833 ktest, t_seri, u_seri, v_seri, zulow, zvlow, zustrdr, zvstrdr, &
834 d_t_oro, d_u_oro, d_v_oro)
835
836 ! ajout des tendances
837 DO k = 1, llm
838 DO i = 1, klon
839 t_seri(i, k) = t_seri(i, k) + d_t_oro(i, k)
840 u_seri(i, k) = u_seri(i, k) + d_u_oro(i, k)
841 v_seri(i, k) = v_seri(i, k) + d_v_oro(i, k)
842 ENDDO
843 ENDDO
844 ENDIF
845
846 IF (ok_orolf) THEN
847 ! S\'election des points pour lesquels le sch\'ema est actif :
848 DO i = 1, klon
849 ktest(i) = 0
850 IF (zpic(i) - zmea(i) > 100.) THEN
851 ktest(i) = 1
852 ENDIF
853 ENDDO
854
855 CALL lift_noro(paprs, play, zmea, zstd, zpic, ktest, t_seri, u_seri, &
856 v_seri, zulow, zvlow, zustrli, zvstrli, d_t_lif, d_u_lif, d_v_lif)
857
858 ! Ajout des tendances :
859 DO k = 1, llm
860 DO i = 1, klon
861 t_seri(i, k) = t_seri(i, k) + d_t_lif(i, k)
862 u_seri(i, k) = u_seri(i, k) + d_u_lif(i, k)
863 v_seri(i, k) = v_seri(i, k) + d_v_lif(i, k)
864 ENDDO
865 ENDDO
866 ENDIF
867
868 CALL aaam_bud(rg, romega, pphis, zustrdr, zustrli, &
869 sum((u_seri - u) / dtphys * zmasse, dim = 2), zvstrdr, &
870 zvstrli, sum((v_seri - v) / dtphys * zmasse, dim = 2), paprs, u, v, &
871 aam, torsfc)
872
873 ! Calcul des tendances traceurs
874 call phytrac(julien, time, firstcal, lafin, t, paprs, play, mfu, mfd, &
875 pde_u, pen_d, coefh, cdragh, fm_therm, entr_therm, u(:, 1), v(:, 1), &
876 ftsol, pctsrf, frac_impa, frac_nucl, da, phi, mp, upwd, dnwd, &
877 tr_seri, zmasse, ncid_startphy)
878
879 ! Calculer le transport de l'eau et de l'energie (diagnostique)
880 CALL transp(paprs, t_seri, q_seri, u_seri, v_seri, zphi, ve, vq, ue, uq)
881
882 ! diag. bilKP
883
884 CALL transp_lay(paprs, t_seri, q_seri, u_seri, v_seri, zphi, ve_lay, &
885 vq_lay, ue_lay, uq_lay)
886
887 ! Accumuler les variables a stocker dans les fichiers histoire:
888
889 ! conversion Ec en énergie thermique
890 DO k = 1, llm
891 DO i = 1, klon
892 d_t_ec(i, k) = 0.5 / (RCPD * (1. + RVTMP2 * q_seri(i, k))) &
893 * (u(i, k)**2 + v(i, k)**2 - u_seri(i, k)**2 - v_seri(i, k)**2)
894 t_seri(i, k) = t_seri(i, k) + d_t_ec(i, k)
895 d_t_ec(i, k) = d_t_ec(i, k) / dtphys
896 END DO
897 END DO
898
899 ! SORTIES
900
901 ! prw = eau precipitable
902 DO i = 1, klon
903 prw(i) = 0.
904 DO k = 1, llm
905 prw(i) = prw(i) + q_seri(i, k) * zmasse(i, k)
906 ENDDO
907 ENDDO
908
909 ! Convertir les incrementations en tendances
910
911 DO k = 1, llm
912 DO i = 1, klon
913 d_u(i, k) = (u_seri(i, k) - u(i, k)) / dtphys
914 d_v(i, k) = (v_seri(i, k) - v(i, k)) / dtphys
915 d_t(i, k) = (t_seri(i, k) - t(i, k)) / dtphys
916 d_qx(i, k, ivap) = (q_seri(i, k) - qx(i, k, ivap)) / dtphys
917 d_qx(i, k, iliq) = (ql_seri(i, k) - qx(i, k, iliq)) / dtphys
918 ENDDO
919 ENDDO
920
921 DO iq = 3, nqmx
922 DO k = 1, llm
923 DO i = 1, klon
924 d_qx(i, k, iq) = (tr_seri(i, k, iq - 2) - qx(i, k, iq)) / dtphys
925 ENDDO
926 ENDDO
927 ENDDO
928
929 ! Sauvegarder les valeurs de t et q a la fin de la physique:
930 DO k = 1, llm
931 DO i = 1, klon
932 t_ancien(i, k) = t_seri(i, k)
933 q_ancien(i, k) = q_seri(i, k)
934 ENDDO
935 ENDDO
936
937 CALL histwrite_phy("phis", pphis)
938 CALL histwrite_phy("aire", airephy)
939 CALL histwrite_phy("psol", paprs(:, 1))
940 CALL histwrite_phy("precip", rain_fall + snow_fall)
941 CALL histwrite_phy("plul", rain_lsc + snow_lsc)
942 CALL histwrite_phy("pluc", rain_con + snow_con)
943 CALL histwrite_phy("tsol", tsol)
944 CALL histwrite_phy("t2m", zt2m)
945 CALL histwrite_phy("q2m", zq2m)
946 CALL histwrite_phy("u10m", u10m)
947 CALL histwrite_phy("v10m", v10m)
948 CALL histwrite_phy("snow", snow_fall)
949 CALL histwrite_phy("cdrm", cdragm)
950 CALL histwrite_phy("cdrh", cdragh)
951 CALL histwrite_phy("topl", toplw)
952 CALL histwrite_phy("evap", evap)
953 CALL histwrite_phy("sols", solsw)
954 CALL histwrite_phy("rls", sollw)
955 CALL histwrite_phy("solldown", sollwdown)
956 CALL histwrite_phy("bils", radsol + sens + zxfluxlat)
957 CALL histwrite_phy("sens", sens)
958 CALL histwrite_phy("fder", fder)
959 CALL histwrite_phy("zxfqcalving", sum(fqcalving * pctsrf, dim = 2))
960 CALL histwrite_phy("albs", albsol)
961 CALL histwrite_phy("tro3", wo * dobson_u * 1e3 / zmasse / rmo3 * md)
962 CALL histwrite_phy("rugs", zxrugs)
963 CALL histwrite_phy("s_pblh", s_pblh)
964 CALL histwrite_phy("s_pblt", s_pblt)
965 CALL histwrite_phy("s_lcl", s_lcl)
966 CALL histwrite_phy("s_capCL", s_capCL)
967 CALL histwrite_phy("s_oliqCL", s_oliqCL)
968 CALL histwrite_phy("s_cteiCL", s_cteiCL)
969 CALL histwrite_phy("s_therm", s_therm)
970 CALL histwrite_phy("temp", t_seri)
971 CALL histwrite_phy("vitu", u_seri)
972 CALL histwrite_phy("vitv", v_seri)
973 CALL histwrite_phy("geop", zphi)
974 CALL histwrite_phy("pres", play)
975 CALL histwrite_phy("dtvdf", d_t_vdf)
976 CALL histwrite_phy("dqvdf", d_q_vdf)
977 CALL histwrite_phy("rhum", zx_rh)
978 CALL histwrite_phy("d_t_ec", d_t_ec)
979 CALL histwrite_phy("dtsw0", heat0 / 86400.)
980 CALL histwrite_phy("dtlw0", - cool0 / 86400.)
981 call histwrite_phy("pmflxr", pmflxr(:, :llm))
982 CALL histwrite_phy("msnow", sum(fsnow * pctsrf, dim = 2))
983 call histwrite_phy("qsurf", sum(fqsurf * pctsrf, dim = 2))
984 call histwrite_phy("flat", zxfluxlat)
985 call histwrite_phy("rld", lwdn)
986 call histwrite_phy("rldcs", lwdn0)
987
988 DO nsrf = 1, nbsrf
989 CALL histwrite_phy("fract_"//clnsurf(nsrf), pctsrf(:, nsrf))
990 CALL histwrite_phy("sens_"//clnsurf(nsrf), flux_t(:, nsrf))
991 CALL histwrite_phy("lat_"//clnsurf(nsrf), fluxlat(:, nsrf))
992 CALL histwrite_phy("tsol_"//clnsurf(nsrf), ftsol(:, nsrf))
993 CALL histwrite_phy("taux_"//clnsurf(nsrf), flux_u(:, nsrf))
994 CALL histwrite_phy("tauy_"//clnsurf(nsrf), flux_v(:, nsrf))
995 CALL histwrite_phy("rugs_"//clnsurf(nsrf), frugs(:, nsrf))
996 CALL histwrite_phy("albe_"//clnsurf(nsrf), falbe(:, nsrf))
997 CALL histwrite_phy("u10m_"//clnsurf(nsrf), u10m_srf(:, nsrf))
998 CALL histwrite_phy("v10m_"//clnsurf(nsrf), v10m_srf(:, nsrf))
999 END DO
1000
1001 if (conv_emanuel) then
1002 CALL histwrite_phy("ptop", ema_pct)
1003 CALL histwrite_phy("dnwd0", - mp)
1004 end if
1005
1006 if (ok_instan) call histsync(nid_ins)
1007
1008 IF (lafin) then
1009 call NF95_CLOSE(ncid_startphy)
1010 CALL phyredem(pctsrf, ftsol, ftsoil, fqsurf, qsol, fsnow, falbe, &
1011 rain_fall, snow_fall, solsw, sollw, dlw, radsol, frugs, agesno, &
1012 zmea, zstd, zsig, zgam, zthe, zpic, zval, t_ancien, q_ancien, &
1013 rnebcon, ratqs, clwcon, run_off_lic_0, sig1, w01)
1014 end IF
1015
1016 firstcal = .FALSE.
1017
1018 END SUBROUTINE physiq
1019
1020 end module physiq_m

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