/[lmdze]/trunk/phylmd/physiq.f
ViewVC logotype

Diff of /trunk/phylmd/physiq.f

Parent Directory Parent Directory | Revision Log Revision Log | View Patch Patch

trunk/Sources/phylmd/physiq.f revision 252 by guez, Mon Jan 22 15:02:56 2018 UTC trunk/phylmd/physiq.f revision 308 by guez, Tue Sep 18 15:14:40 2018 UTC
# Line 20  contains Line 20  contains
20      use calltherm_m, only: calltherm      use calltherm_m, only: calltherm
21      USE clesphys, ONLY: cdhmax, cdmmax, ecrit_ins, ok_instan      USE clesphys, ONLY: cdhmax, cdmmax, ecrit_ins, ok_instan
22      USE clesphys2, ONLY: conv_emanuel, nbapp_rad, new_oliq, ok_orodr, ok_orolf      USE clesphys2, ONLY: conv_emanuel, nbapp_rad, new_oliq, ok_orodr, ok_orolf
23      USE clmain_m, ONLY: clmain      USE conf_interface_m, ONLY: conf_interface
24        USE pbl_surface_m, ONLY: pbl_surface
25      use clouds_gno_m, only: clouds_gno      use clouds_gno_m, only: clouds_gno
26      use comconst, only: dtphys      use comconst, only: dtphys
27      USE comgeomphy, ONLY: airephy      USE comgeomphy, ONLY: airephy
# Line 30  contains Line 31  contains
31      use conflx_m, only: conflx      use conflx_m, only: conflx
32      USE ctherm, ONLY: iflag_thermals, nsplit_thermals      USE ctherm, ONLY: iflag_thermals, nsplit_thermals
33      use diagcld2_m, only: diagcld2      use diagcld2_m, only: diagcld2
34      USE dimens_m, ONLY: llm, nqmx      USE dimensions, ONLY: llm, nqmx
35      USE dimphy, ONLY: klon      USE dimphy, ONLY: klon
36      USE dimsoil, ONLY: nsoilmx      USE dimsoil, ONLY: nsoilmx
37      use drag_noro_m, only: drag_noro      use drag_noro_m, only: drag_noro
# Line 143  contains Line 144  contains
144      ! Radiative transfer computations are made every "radpas" call to      ! Radiative transfer computations are made every "radpas" call to
145      ! "physiq".      ! "physiq".
146    
147      REAL, save:: radsol(klon) ! bilan radiatif au sol calcule par code radiatif      REAL, save:: radsol(klon)
148        ! bilan radiatif net au sol (W/m2), positif vers le bas
149        
150      REAL, save:: ftsol(klon, nbsrf) ! skin temperature of surface fraction      REAL, save:: ftsol(klon, nbsrf) ! skin temperature of surface fraction
151    
152      REAL, save:: ftsoil(klon, nsoilmx, nbsrf)      REAL, save:: ftsoil(klon, nsoilmx, nbsrf)
153      ! soil temperature of surface fraction      ! soil temperature of surface fraction
154    
     REAL, save:: fevap(klon, nbsrf) ! evaporation  
155      REAL fluxlat(klon, nbsrf)      REAL fluxlat(klon, nbsrf)
156    
157      REAL, save:: fqsurf(klon, nbsrf)      REAL, save:: fqsurf(klon, nbsrf)
# Line 176  contains Line 178  contains
178    
179      ! Variables li\'ees \`a la convection d'Emanuel :      ! Variables li\'ees \`a la convection d'Emanuel :
180      REAL, save:: Ma(klon, llm) ! undilute upward mass flux      REAL, save:: Ma(klon, llm) ! undilute upward mass flux
     REAL, save:: qcondc(klon, llm) ! in-cld water content from convect  
181      REAL, save:: sig1(klon, llm), w01(klon, llm)      REAL, save:: sig1(klon, llm), w01(klon, llm)
182    
183      ! Variables pour la couche limite (Alain Lahellec) :      ! Variables pour la couche limite (Alain Lahellec) :
# Line 188  contains Line 189  contains
189      REAL, save:: ffonte(klon, nbsrf)      REAL, save:: ffonte(klon, nbsrf)
190      ! flux thermique utilise pour fondre la neige      ! flux thermique utilise pour fondre la neige
191    
192      REAL, save:: fqcalving(klon, nbsrf)      REAL fqcalving(klon, nbsrf)
193      ! flux d'eau "perdue" par la surface et necessaire pour limiter la      ! flux d'eau "perdue" par la surface et n\'ecessaire pour limiter
194      ! hauteur de neige, en kg / m2 / s      ! la hauteur de neige, en kg / m2 / s
195    
196      REAL zxffonte(klon), zxfqcalving(klon)      REAL zxffonte(klon)
197    
198      REAL, save:: pfrac_impa(klon, llm)! Produits des coefs lessivage impaction      REAL, save:: pfrac_impa(klon, llm)! Produits des coefs lessivage impaction
199      REAL, save:: pfrac_nucl(klon, llm)! Produits des coefs lessivage nucleation      REAL, save:: pfrac_nucl(klon, llm)! Produits des coefs lessivage nucleation
# Line 212  contains Line 213  contains
213      REAL rain_tiedtke(klon), snow_tiedtke(klon)      REAL rain_tiedtke(klon), snow_tiedtke(klon)
214    
215      REAL evap(klon) ! flux d'\'evaporation au sol      REAL evap(klon) ! flux d'\'evaporation au sol
216      real devap(klon) ! derivative of the evaporation flux at the surface      real dflux_q(klon) ! derivative of the evaporation flux at the surface
217      REAL sens(klon) ! flux de chaleur sensible au sol      REAL sens(klon) ! flux de chaleur sensible au sol
218      real dsens(klon) ! derivee du flux de chaleur sensible au sol      real dflux_t(klon) ! derivee du flux de chaleur sensible au sol
219      REAL, save:: dlw(klon) ! derivative of infra-red flux      REAL, save:: dlw(klon) ! derivative of infra-red flux
220      REAL bils(klon) ! bilan de chaleur au sol      REAL bils(klon) ! bilan de chaleur au sol
221      REAL fder(klon) ! Derive de flux (sensible et latente)      REAL fder(klon) ! Derive de flux (sensible et latente)
# Line 237  contains Line 238  contains
238      real, save:: clwcon(klon, llm), rnebcon(klon, llm)      real, save:: clwcon(klon, llm), rnebcon(klon, llm)
239      real, save:: clwcon0(klon, llm), rnebcon0(klon, llm)      real, save:: clwcon0(klon, llm), rnebcon0(klon, llm)
240    
241      REAL rhcl(klon, llm) ! humiditi relative ciel clair      REAL rhcl(klon, llm) ! humidit\'e relative ciel clair
242      REAL dialiq(klon, llm) ! eau liquide nuageuse      REAL dialiq(klon, llm) ! eau liquide nuageuse
243      REAL diafra(klon, llm) ! fraction nuageuse      REAL diafra(klon, llm) ! fraction nuageuse
244      REAL cldliq(klon, llm) ! eau liquide nuageuse      REAL cldliq(klon, llm) ! eau liquide nuageuse
# Line 258  contains Line 259  contains
259      REAL, save:: cool(klon, llm) ! refroidissement infrarouge      REAL, save:: cool(klon, llm) ! refroidissement infrarouge
260      REAL, save:: cool0(klon, llm) ! refroidissement infrarouge ciel clair      REAL, save:: cool0(klon, llm) ! refroidissement infrarouge ciel clair
261      REAL, save:: topsw(klon), toplw(klon), solsw(klon)      REAL, save:: topsw(klon), toplw(klon), solsw(klon)
262      REAL, save:: sollw(klon) ! rayonnement infrarouge montant \`a la surface  
263        REAL, save:: sollw(klon) ! surface net downward longwave flux, in W m-2
264      real, save:: sollwdown(klon) ! downward LW flux at surface      real, save:: sollwdown(klon) ! downward LW flux at surface
265      REAL, save:: topsw0(klon), toplw0(klon), solsw0(klon), sollw0(klon)      REAL, save:: topsw0(klon), toplw0(klon), solsw0(klon), sollw0(klon)
266      REAL, save:: albpla(klon)      REAL, save:: albpla(klon)
     REAL fsollw(klon, nbsrf) ! bilan flux IR pour chaque sous-surface  
     REAL fsolsw(klon, nbsrf) ! flux solaire absorb\'e pour chaque sous-surface  
267    
268      REAL conv_q(klon, llm) ! convergence de l'humidite (kg / kg / s)      REAL conv_q(klon, llm) ! convergence de l'humidite (kg / kg / s)
269      REAL conv_t(klon, llm) ! convergence of temperature (K / s)      REAL conv_t(klon, llm) ! convergence of temperature (K / s)
# Line 327  contains Line 327  contains
327      INTEGER, save:: ibas_con(klon), itop_con(klon)      INTEGER, save:: ibas_con(klon), itop_con(klon)
328      real ema_pct(klon) ! Emanuel pressure at cloud top, in Pa      real ema_pct(klon) ! Emanuel pressure at cloud top, in Pa
329    
330      REAL, save:: rain_con(klon)      REAL rain_con(klon)
331      real rain_lsc(klon)      real rain_lsc(klon)
332      REAL, save:: snow_con(klon) ! neige (mm / s)      REAL snow_con(klon) ! neige (mm / s)
333      real snow_lsc(klon)      real snow_lsc(klon)
334      REAL d_ts(klon, nbsrf) ! variation of ftsol      REAL d_ts(klon, nbsrf) ! variation of ftsol
335    
# Line 372  contains Line 372  contains
372      REAL ue_lay(klon, llm) ! transport zonal de l'energie a chaque niveau vert.      REAL ue_lay(klon, llm) ! transport zonal de l'energie a chaque niveau vert.
373      REAL uq_lay(klon, llm) ! transport zonal de l'eau a chaque niveau vert.      REAL uq_lay(klon, llm) ! transport zonal de l'eau a chaque niveau vert.
374    
     real date0  
375      REAL tsol(klon)      REAL tsol(klon)
376    
377      REAL d_t_ec(klon, llm)      REAL d_t_ec(klon, llm)
# Line 419  contains Line 418  contains
418         t2m = 0.         t2m = 0.
419         q2m = 0.         q2m = 0.
420         ffonte = 0.         ffonte = 0.
        fqcalving = 0.  
        rain_con = 0.  
        snow_con = 0.  
421         d_u_con = 0.         d_u_con = 0.
422         d_v_con = 0.         d_v_con = 0.
423         rnebcon0 = 0.         rnebcon0 = 0.
# Line 448  contains Line 444  contains
444    
445         frugs = 0.         frugs = 0.
446         CALL phyetat0(pctsrf, ftsol, ftsoil, fqsurf, qsol, fsnow, falbe, &         CALL phyetat0(pctsrf, ftsol, ftsoil, fqsurf, qsol, fsnow, falbe, &
447              fevap, rain_fall, snow_fall, solsw, sollw, dlw, radsol, frugs, &              rain_fall, snow_fall, solsw, sollw, dlw, radsol, frugs, agesno, &
448              agesno, zmea, zstd, zsig, zgam, zthe, zpic, zval, t_ancien, &              zmea, zstd, zsig, zgam, zthe, zpic, zval, t_ancien, q_ancien, &
449              q_ancien, ancien_ok, rnebcon, ratqs, clwcon, run_off_lic_0, sig1, &              ancien_ok, rnebcon, ratqs, clwcon, run_off_lic_0, sig1, w01, &
450              w01, ncid_startphy)              ncid_startphy)
451    
452         ! ATTENTION : il faudra a terme relire q2 dans l'etat initial         ! ATTENTION : il faudra a terme relire q2 dans l'etat initial
453         q2 = 1e-8         q2 = 1e-8
# Line 472  contains Line 468  contains
468            rugoro = 0.            rugoro = 0.
469         ENDIF         ENDIF
470    
        ecrit_ins = NINT(ecrit_ins / dtphys)  
   
471         ! Initialisation des sorties         ! Initialisation des sorties
472           call ini_histins(ok_newmicro)
        call ini_histins(dtphys, ok_newmicro)  
        CALL ymds2ju(annee_ref, 1, day_ref, 0., date0)  
        ! Positionner date0 pour initialisation de ORCHIDEE  
        print *, 'physiq date0: ', date0  
473         CALL phyredem0         CALL phyredem0
474           call conf_interface
475      ENDIF test_firstcal      ENDIF test_firstcal
476    
477      ! We will modify variables *_seri and we will not touch variables      ! We will modify variables *_seri and we will not touch variables
# Line 547  contains Line 538  contains
538    
539      CALL orbite(REAL(julien), longi, dist)      CALL orbite(REAL(julien), longi, dist)
540      CALL zenang(longi, time, dtphys * radpas, mu0, fract)      CALL zenang(longi, time, dtphys * radpas, mu0, fract)
     albsol = sum(falbe * pctsrf, dim = 2)  
   
     ! R\'epartition sous maille des flux longwave et shortwave  
     ! R\'epartition du longwave par sous-surface lin\'earis\'ee  
541    
542      forall (nsrf = 1: nbsrf)      CALL pbl_surface(pctsrf, t_seri, q_seri, u_seri, v_seri, julien, mu0, &
        fsollw(:, nsrf) = sollw + 4. * RSIGMA * tsol**3 &  
             * (tsol - ftsol(:, nsrf))  
        fsolsw(:, nsrf) = solsw * (1. - falbe(:, nsrf)) / (1. - albsol)  
     END forall  
   
     CALL clmain(dtphys, pctsrf, t_seri, q_seri, u_seri, v_seri, julien, mu0, &  
543           ftsol, cdmmax, cdhmax, ftsoil, qsol, paprs, play, fsnow, fqsurf, &           ftsol, cdmmax, cdhmax, ftsoil, qsol, paprs, play, fsnow, fqsurf, &
544           fevap, falbe, fluxlat, rain_fall, snow_fall, fsolsw, fsollw, frugs, &           falbe, fluxlat, rain_fall, snow_fall, frugs, agesno, rugoro, d_t_vdf, &
545           agesno, rugoro, d_t_vdf, d_q_vdf, d_u_vdf, d_v_vdf, d_ts, flux_t, &           d_q_vdf, d_u_vdf, d_v_vdf, d_ts, flux_t, flux_q, flux_u, flux_v, &
546           flux_q, flux_u, flux_v, cdragh, cdragm, q2, dsens, devap, coefh, t2m, &           cdragh, cdragm, q2, dflux_t, dflux_q, coefh, t2m, q2m, u10m_srf, &
547           q2m, u10m_srf, v10m_srf, pblh, capCL, oliqCL, cteiCL, pblT, therm, &           v10m_srf, pblh, capCL, oliqCL, cteiCL, pblT, therm, plcl, fqcalving, &
548           plcl, fqcalving, ffonte, run_off_lic_0)           ffonte, run_off_lic_0, albsol, sollw, solsw, tsol)
549    
550      ! Incr\'ementation des flux      ! Incr\'ementation des flux
551    
552      sens = - sum(flux_t * pctsrf, dim = 2)      sens = - sum(flux_t * pctsrf, dim = 2)
553      evap = - sum(flux_q * pctsrf, dim = 2)      evap = - sum(flux_q * pctsrf, dim = 2)
554      fder = dlw + dsens + devap      fder = dlw + dflux_t + dflux_q
555    
556      DO k = 1, llm      DO k = 1, llm
557         DO i = 1, klon         DO i = 1, klon
# Line 581  contains Line 562  contains
562         ENDDO         ENDDO
563      ENDDO      ENDDO
564    
     ! Update surface temperature:  
   
565      call assert(abs(sum(pctsrf, dim = 2) - 1.) <= EPSFRA, 'physiq: pctsrf')      call assert(abs(sum(pctsrf, dim = 2) - 1.) <= EPSFRA, 'physiq: pctsrf')
566      ftsol = ftsol + d_ts      ftsol = ftsol + d_ts ! update surface temperature
567      tsol = sum(ftsol * pctsrf, dim = 2)      tsol = sum(ftsol * pctsrf, dim = 2)
568      zxfluxlat = sum(fluxlat * pctsrf, dim = 2)      zxfluxlat = sum(fluxlat * pctsrf, dim = 2)
569      zt2m = sum(t2m * pctsrf, dim = 2)      zt2m = sum(t2m * pctsrf, dim = 2)
# Line 592  contains Line 571  contains
571      u10m = sum(u10m_srf * pctsrf, dim = 2)      u10m = sum(u10m_srf * pctsrf, dim = 2)
572      v10m = sum(v10m_srf * pctsrf, dim = 2)      v10m = sum(v10m_srf * pctsrf, dim = 2)
573      zxffonte = sum(ffonte * pctsrf, dim = 2)      zxffonte = sum(ffonte * pctsrf, dim = 2)
     zxfqcalving = sum(fqcalving * pctsrf, dim = 2)  
574      s_pblh = sum(pblh * pctsrf, dim = 2)      s_pblh = sum(pblh * pctsrf, dim = 2)
575      s_lcl = sum(plcl * pctsrf, dim = 2)      s_lcl = sum(plcl * pctsrf, dim = 2)
576      s_capCL = sum(capCL * pctsrf, dim = 2)      s_capCL = sum(capCL * pctsrf, dim = 2)
# Line 611  contains Line 589  contains
589               u10m_srf(i, nsrf) = u10m(i)               u10m_srf(i, nsrf) = u10m(i)
590               v10m_srf(i, nsrf) = v10m(i)               v10m_srf(i, nsrf) = v10m(i)
591               ffonte(i, nsrf) = zxffonte(i)               ffonte(i, nsrf) = zxffonte(i)
              fqcalving(i, nsrf) = zxfqcalving(i)  
592               pblh(i, nsrf) = s_pblh(i)               pblh(i, nsrf) = s_pblh(i)
593               plcl(i, nsrf) = s_lcl(i)               plcl(i, nsrf) = s_lcl(i)
594               capCL(i, nsrf) = s_capCL(i)               capCL(i, nsrf) = s_capCL(i)
# Line 630  contains Line 607  contains
607      if (conv_emanuel) then      if (conv_emanuel) then
608         CALL concvl(paprs, play, t_seri, q_seri, u_seri, v_seri, sig1, w01, &         CALL concvl(paprs, play, t_seri, q_seri, u_seri, v_seri, sig1, w01, &
609              d_t_con, d_q_con, d_u_con, d_v_con, rain_con, ibas_con, itop_con, &              d_t_con, d_q_con, d_u_con, d_v_con, rain_con, ibas_con, itop_con, &
610              upwd, dnwd, Ma, cape, iflagctrl, qcondc, pmflxr, da, phi, mp)              upwd, dnwd, Ma, cape, iflagctrl, clwcon0, pmflxr, da, phi, mp)
611         snow_con = 0.         snow_con = 0.
        clwcon0 = qcondc  
612         mfu = upwd + dnwd         mfu = upwd + dnwd
613    
614         zqsat = MIN(0.5, r2es * FOEEW(t_seri, rtt >= t_seri) / play)         zqsat = MIN(0.5, r2es * FOEEW(t_seri, rtt >= t_seri) / play)
# Line 653  contains Line 629  contains
629         conv_q = d_q_dyn + d_q_vdf / dtphys         conv_q = d_q_dyn + d_q_vdf / dtphys
630         conv_t = d_t_dyn + d_t_vdf / dtphys         conv_t = d_t_dyn + d_t_vdf / dtphys
631         z_avant = sum((q_seri + ql_seri) * zmasse, dim=2)         z_avant = sum((q_seri + ql_seri) * zmasse, dim=2)
632         CALL conflx(dtphys, paprs, play, t_seri(:, llm:1:- 1), &         CALL conflx(paprs, play, t_seri(:, llm:1:- 1), q_seri(:, llm:1:- 1), &
633              q_seri(:, llm:1:- 1), conv_t, conv_q, - evap, omega, d_t_con, &              conv_t, conv_q, - evap, omega, d_t_con, d_q_con, rain_con, &
634              d_q_con, rain_con, snow_con, mfu(:, llm:1:- 1), mfd(:, llm:1:- 1), &              snow_con, mfu(:, llm:1:- 1), mfd(:, llm:1:- 1), pen_u, pde_u, &
635              pen_u, pde_u, pen_d, pde_d, kcbot, kctop, kdtop, pmflxr, pmflxs)              pen_d, pde_d, kcbot, kctop, kdtop, pmflxr, pmflxs)
636         WHERE (rain_con < 0.) rain_con = 0.         WHERE (rain_con < 0.) rain_con = 0.
637         WHERE (snow_con < 0.) snow_con = 0.         WHERE (snow_con < 0.) snow_con = 0.
638         ibas_con = llm + 1 - kcbot         ibas_con = llm + 1 - kcbot
# Line 699  contains Line 675  contains
675         t_seri = t_seri + d_t_ajs         t_seri = t_seri + d_t_ajs
676         q_seri = q_seri + d_q_ajs         q_seri = q_seri + d_q_ajs
677      else      else
678         call calltherm(dtphys, play, paprs, pphi, u_seri, v_seri, t_seri, &         call calltherm(play, paprs, pphi, u_seri, v_seri, t_seri, q_seri, &
679              q_seri, d_u_ajs, d_v_ajs, d_t_ajs, d_q_ajs, fm_therm, entr_therm)              d_u_ajs, d_v_ajs, d_t_ajs, d_q_ajs, fm_therm, entr_therm)
680      endif      endif
681    
682      ! Caclul des ratqs      ! Caclul des ratqs
683    
     ! ratqs convectifs \`a l'ancienne en fonction de (q(z = 0) - q) / q  
     ! on \'ecrase le tableau ratqsc calcul\'e par clouds_gno  
684      if (iflag_cldcon == 1) then      if (iflag_cldcon == 1) then
685           ! ratqs convectifs \`a l'ancienne en fonction de (q(z = 0) - q) / q
686           ! on \'ecrase le tableau ratqsc calcul\'e par clouds_gno
687         do k = 1, llm         do k = 1, llm
688            do i = 1, klon            do i = 1, klon
689               if(ptconv(i, k)) then               if(ptconv(i, k)) then
# Line 741  contains Line 717  contains
717         ratqs = ratqss         ratqs = ratqss
718      endif      endif
719    
720      CALL fisrtilp(dtphys, paprs, play, t_seri, q_seri, ptconv, ratqs, &      CALL fisrtilp(paprs, play, t_seri, q_seri, ptconv, ratqs, d_t_lsc, &
721           d_t_lsc, d_q_lsc, d_ql_lsc, rneb, cldliq, rain_lsc, snow_lsc, &           d_q_lsc, d_ql_lsc, rneb, cldliq, rain_lsc, snow_lsc, pfrac_impa, &
722           pfrac_impa, pfrac_nucl, pfrac_1nucl, frac_impa, frac_nucl, prfl, &           pfrac_nucl, pfrac_1nucl, frac_impa, frac_nucl, prfl, psfl, rhcl)
          psfl, rhcl)  
723    
724      WHERE (rain_lsc < 0) rain_lsc = 0.      WHERE (rain_lsc < 0) rain_lsc = 0.
725      WHERE (snow_lsc < 0) snow_lsc = 0.      WHERE (snow_lsc < 0) snow_lsc = 0.
# Line 888  contains Line 863  contains
863            ENDIF            ENDIF
864         ENDDO         ENDDO
865    
866         CALL drag_noro(dtphys, paprs, play, zmea, zstd, zsig, zgam, zthe, &         CALL drag_noro(paprs, play, zmea, zstd, zsig, zgam, zthe, zpic, zval, &
867              zpic, zval, ktest, t_seri, u_seri, v_seri, zulow, zvlow, zustrdr, &              ktest, t_seri, u_seri, v_seri, zulow, zvlow, zustrdr, zvstrdr, &
868              zvstrdr, d_t_oro, d_u_oro, d_v_oro)              d_t_oro, d_u_oro, d_v_oro)
869    
870         ! ajout des tendances         ! ajout des tendances
871         DO k = 1, llm         DO k = 1, llm
# Line 911  contains Line 886  contains
886            ENDIF            ENDIF
887         ENDDO         ENDDO
888    
889         CALL lift_noro(dtphys, paprs, play, zmea, zstd, zpic, ktest, t_seri, &         CALL lift_noro(paprs, play, zmea, zstd, zpic, ktest, t_seri, u_seri, &
890              u_seri, v_seri, zulow, zvlow, zustrli, zvstrli, d_t_lif, &              v_seri, zulow, zvlow, zustrli, zvstrli, d_t_lif, d_u_lif, d_v_lif)
             d_u_lif, d_v_lif)  
891    
892         ! Ajout des tendances :         ! Ajout des tendances :
893         DO k = 1, llm         DO k = 1, llm
# Line 931  contains Line 905  contains
905           aam, torsfc)           aam, torsfc)
906    
907      ! Calcul des tendances traceurs      ! Calcul des tendances traceurs
908      call phytrac(julien, time, firstcal, lafin, dtphys, t, paprs, play, mfu, &      call phytrac(julien, time, firstcal, lafin, t, paprs, play, mfu, mfd, &
909           mfd, pde_u, pen_d, coefh, cdragh, fm_therm, entr_therm, u(:, 1), &           pde_u, pen_d, coefh, cdragh, fm_therm, entr_therm, u(:, 1), v(:, 1), &
910           v(:, 1), ftsol, pctsrf, frac_impa, frac_nucl, da, phi, mp, upwd, &           ftsol, pctsrf, frac_impa, frac_nucl, da, phi, mp, upwd, dnwd, &
911           dnwd, tr_seri, zmasse, ncid_startphy)           tr_seri, zmasse, ncid_startphy)
912    
913      ! Calculer le transport de l'eau et de l'energie (diagnostique)      ! Calculer le transport de l'eau et de l'energie (diagnostique)
914      CALL transp(paprs, t_seri, q_seri, u_seri, v_seri, zphi, ve, vq, ue, uq)      CALL transp(paprs, t_seri, q_seri, u_seri, v_seri, zphi, ve, vq, ue, uq)
# Line 1011  contains Line 985  contains
985      CALL histwrite_phy("topl", toplw)      CALL histwrite_phy("topl", toplw)
986      CALL histwrite_phy("evap", evap)      CALL histwrite_phy("evap", evap)
987      CALL histwrite_phy("sols", solsw)      CALL histwrite_phy("sols", solsw)
988      CALL histwrite_phy("soll", sollw)      CALL histwrite_phy("rls", sollw)
989      CALL histwrite_phy("solldown", sollwdown)      CALL histwrite_phy("solldown", sollwdown)
990      CALL histwrite_phy("bils", bils)      CALL histwrite_phy("bils", bils)
991      CALL histwrite_phy("sens", - sens)      CALL histwrite_phy("sens", - sens)
# Line 1020  contains Line 994  contains
994      CALL histwrite_phy("dtsvdft", d_ts(:, is_ter))      CALL histwrite_phy("dtsvdft", d_ts(:, is_ter))
995      CALL histwrite_phy("dtsvdfg", d_ts(:, is_lic))      CALL histwrite_phy("dtsvdfg", d_ts(:, is_lic))
996      CALL histwrite_phy("dtsvdfi", d_ts(:, is_sic))      CALL histwrite_phy("dtsvdfi", d_ts(:, is_sic))
997        CALL histwrite_phy("zxfqcalving", sum(fqcalving * pctsrf, dim = 2))
     DO nsrf = 1, nbsrf  
        CALL histwrite_phy("pourc_"//clnsurf(nsrf), pctsrf(:, nsrf) * 100.)  
        CALL histwrite_phy("fract_"//clnsurf(nsrf), pctsrf(:, nsrf))  
        CALL histwrite_phy("sens_"//clnsurf(nsrf), flux_t(:, nsrf))  
        CALL histwrite_phy("lat_"//clnsurf(nsrf), fluxlat(:, nsrf))  
        CALL histwrite_phy("tsol_"//clnsurf(nsrf), ftsol(:, nsrf))  
        CALL histwrite_phy("taux_"//clnsurf(nsrf), flux_u(:, nsrf))  
        CALL histwrite_phy("tauy_"//clnsurf(nsrf), flux_v(:, nsrf))  
        CALL histwrite_phy("rugs_"//clnsurf(nsrf), frugs(:, nsrf))  
        CALL histwrite_phy("albe_"//clnsurf(nsrf), falbe(:, nsrf))  
        CALL histwrite_phy("u10m_"//clnsurf(nsrf), u10m_srf(:, nsrf))  
        CALL histwrite_phy("v10m_"//clnsurf(nsrf), v10m_srf(:, nsrf))  
     END DO  
   
998      CALL histwrite_phy("albs", albsol)      CALL histwrite_phy("albs", albsol)
999      CALL histwrite_phy("tro3", wo * dobson_u * 1e3 / zmasse / rmo3 * md)      CALL histwrite_phy("tro3", wo * dobson_u * 1e3 / zmasse / rmo3 * md)
1000      CALL histwrite_phy("rugs", zxrugs)      CALL histwrite_phy("rugs", zxrugs)
# Line 1045  contains Line 1005  contains
1005      CALL histwrite_phy("s_oliqCL", s_oliqCL)      CALL histwrite_phy("s_oliqCL", s_oliqCL)
1006      CALL histwrite_phy("s_cteiCL", s_cteiCL)      CALL histwrite_phy("s_cteiCL", s_cteiCL)
1007      CALL histwrite_phy("s_therm", s_therm)      CALL histwrite_phy("s_therm", s_therm)
   
     if (conv_emanuel) then  
        CALL histwrite_phy("ptop", ema_pct)  
        CALL histwrite_phy("dnwd0", - mp)  
     end if  
   
1008      CALL histwrite_phy("temp", t_seri)      CALL histwrite_phy("temp", t_seri)
1009      CALL histwrite_phy("vitu", u_seri)      CALL histwrite_phy("vitu", u_seri)
1010      CALL histwrite_phy("vitv", v_seri)      CALL histwrite_phy("vitv", v_seri)
# Line 1064  contains Line 1018  contains
1018      CALL histwrite_phy("dtlw0", - cool0 / 86400.)      CALL histwrite_phy("dtlw0", - cool0 / 86400.)
1019      CALL histwrite_phy("msnow", sum(fsnow * pctsrf, dim = 2))      CALL histwrite_phy("msnow", sum(fsnow * pctsrf, dim = 2))
1020      call histwrite_phy("qsurf", sum(fqsurf * pctsrf, dim = 2))      call histwrite_phy("qsurf", sum(fqsurf * pctsrf, dim = 2))
1021        call histwrite_phy("flat", zxfluxlat)
1022    
1023        DO nsrf = 1, nbsrf
1024           CALL histwrite_phy("pourc_"//clnsurf(nsrf), pctsrf(:, nsrf) * 100.)
1025           CALL histwrite_phy("fract_"//clnsurf(nsrf), pctsrf(:, nsrf))
1026           CALL histwrite_phy("sens_"//clnsurf(nsrf), flux_t(:, nsrf))
1027           CALL histwrite_phy("lat_"//clnsurf(nsrf), fluxlat(:, nsrf))
1028           CALL histwrite_phy("tsol_"//clnsurf(nsrf), ftsol(:, nsrf))
1029           CALL histwrite_phy("taux_"//clnsurf(nsrf), flux_u(:, nsrf))
1030           CALL histwrite_phy("tauy_"//clnsurf(nsrf), flux_v(:, nsrf))
1031           CALL histwrite_phy("rugs_"//clnsurf(nsrf), frugs(:, nsrf))
1032           CALL histwrite_phy("albe_"//clnsurf(nsrf), falbe(:, nsrf))
1033           CALL histwrite_phy("u10m_"//clnsurf(nsrf), u10m_srf(:, nsrf))
1034           CALL histwrite_phy("v10m_"//clnsurf(nsrf), v10m_srf(:, nsrf))
1035        END DO
1036    
1037        if (conv_emanuel) then
1038           CALL histwrite_phy("ptop", ema_pct)
1039           CALL histwrite_phy("dnwd0", - mp)
1040        end if
1041    
1042      if (ok_instan) call histsync(nid_ins)      if (ok_instan) call histsync(nid_ins)
1043    
1044      IF (lafin) then      IF (lafin) then
1045         call NF95_CLOSE(ncid_startphy)         call NF95_CLOSE(ncid_startphy)
1046         CALL phyredem(pctsrf, ftsol, ftsoil, fqsurf, qsol, &         CALL phyredem(pctsrf, ftsol, ftsoil, fqsurf, qsol, fsnow, falbe, &
1047              fsnow, falbe, fevap, rain_fall, snow_fall, solsw, sollw, dlw, &              rain_fall, snow_fall, solsw, sollw, dlw, radsol, frugs, agesno, &
1048              radsol, frugs, agesno, zmea, zstd, zsig, zgam, zthe, zpic, zval, &              zmea, zstd, zsig, zgam, zthe, zpic, zval, t_ancien, q_ancien, &
1049              t_ancien, q_ancien, rnebcon, ratqs, clwcon, run_off_lic_0, sig1, &              rnebcon, ratqs, clwcon, run_off_lic_0, sig1, w01)
             w01)  
1050      end IF      end IF
1051    
1052      firstcal = .FALSE.      firstcal = .FALSE.

Legend:
Removed from v.252  
changed lines
  Added in v.308

  ViewVC Help
Powered by ViewVC 1.1.21