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module calfis_m |
module calfis_m |
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! Clean: no C preprocessor directive, no include line |
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IMPLICIT NONE |
IMPLICIT NONE |
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contains |
contains |
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SUBROUTINE calfis(lafin, rdayvrai, heure, pucov, pvcov, pteta, q, & |
SUBROUTINE calfis(rdayvrai, time, ucov, vcov, teta, q, ps, pk, phis, phi, & |
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pmasse, pps, ppk, pphis, pphi, pducov, pdvcov, pdteta, pdq, pw, & |
dudyn, dv, w, dufi, dvfi, dtetafi, dqfi, dpfi, lafin) |
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pdufi, pdvfi, pdhfi, pdqfi, pdpsfi) |
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! From dyn3d/calfis.F, version 1.3 2005/05/25 13:10:09 |
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! From dyn3d/calfis.F, v 1.3 2005/05/25 13:10:09 |
! Authors: P. Le Van, F. Hourdin |
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! Auteurs : P. Le Van, F. Hourdin |
! 1. Réarrangement des tableaux et transformation des variables |
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! dynamiques en variables physiques |
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! 1. rearrangement des tableaux et transformation |
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! variables dynamiques > variables physiques |
! 2. Calcul des termes physiques |
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! 2. calcul des termes physiques |
! 3. Retransformation des tendances physiques en tendances dynamiques |
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! 3. retransformation des tendances physiques en tendances dynamiques |
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! Remarques: |
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! remarques: |
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! ---------- |
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! - les vents sont donnes dans la physique par leurs composantes |
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! naturelles. |
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! - la variable thermodynamique de la physique est une variable |
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! intensive : T |
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! pour la dynamique on prend T * (preff / p(l)) **kappa |
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! - les deux seules variables dependant de la geometrie necessaires |
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! pour la physique sont la latitude pour le rayonnement et |
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! l'aire de la maille quand on veut integrer une grandeur |
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! horizontalement. |
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! Input : |
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! ------- |
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! pucov covariant zonal velocity |
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! pvcov covariant meridional velocity |
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! pteta potential temperature |
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! pps surface pressure |
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! pmasse masse d'air dans chaque maille |
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! pts surface temperature (K) |
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! callrad clef d'appel au rayonnement |
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! Output : |
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! -------- |
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! pdufi tendency for the natural zonal velocity (ms-1) |
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! pdvfi tendency for the natural meridional velocity |
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! pdhfi tendency for the potential temperature |
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! pdtsfi tendency for the surface temperature |
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! pdtrad radiative tendencies \ both input |
! - Les vents sont donnés dans la physique par leurs composantes |
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! pfluxrad radiative fluxes / and output |
! naturelles. |
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! - La variable thermodynamique de la physique est une variable |
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! intensive : T. |
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! Pour la dynamique on prend T * (preff / p(l))**kappa |
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! - Les deux seules variables dépendant de la géométrie |
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! nécessaires pour la physique sont la latitude pour le |
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! rayonnement et l'aire de la maille quand on veut intégrer une |
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! grandeur horizontalement. |
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use comconst, only: kappa, cpp, dtphys, g |
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use comgeom, only: apoln, cu_2d, cv_2d, unsaire_2d, apols, rlonu, rlonv |
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use dimens_m, only: iim, jjm, llm, nqmx |
use dimens_m, only: iim, jjm, llm, nqmx |
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use dimphy, only: klon |
use dimphy, only: klon |
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use comconst, only: kappa, cpp, dtphys, g, pi |
use disvert_m, only: preff |
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use comvert, only: preff |
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use comgeom, only: apoln, cu_2d, cv_2d, unsaire_2d, apols, rlonu, rlonv |
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use iniadvtrac_m, only: niadv |
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use grid_change, only: dyn_phy, gr_fi_dyn |
use grid_change, only: dyn_phy, gr_fi_dyn |
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use iniadvtrac_m, only: niadv |
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use nr_util, only: pi |
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use physiq_m, only: physiq |
use physiq_m, only: physiq |
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use pressure_var, only: p3d, pls |
use pressure_var, only: p3d, pls |
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! Arguments : |
! Arguments : |
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LOGICAL, intent(in):: lafin |
! Output : |
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REAL, intent(in):: heure ! heure de la journée en fraction de jour |
! dvfi tendency for the natural meridional velocity |
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! dtetafi tendency for the potential temperature |
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! pdtsfi tendency for the surface temperature |
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REAL pvcov(iim + 1, jjm, llm) |
! pdtrad radiative tendencies \ input and output |
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REAL pucov(iim + 1, jjm + 1, llm) |
! pfluxrad radiative fluxes / input and output |
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REAL pteta(iim + 1, jjm + 1, llm) |
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REAL pmasse(iim + 1, jjm + 1, llm) |
REAL, intent(in):: rdayvrai |
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REAL, intent(in):: time ! heure de la journée en fraction de jour |
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REAL, intent(in):: ucov(iim + 1, jjm + 1, llm) |
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! ucov covariant zonal velocity |
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REAL, intent(in):: vcov(iim + 1, jjm, llm) |
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! vcov covariant meridional velocity |
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REAL, intent(in):: teta(iim + 1, jjm + 1, llm) |
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! teta potential temperature |
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REAL, intent(in):: q(iim + 1, jjm + 1, llm, nqmx) |
REAL, intent(in):: q(iim + 1, jjm + 1, llm, nqmx) |
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! (mass fractions of advected fields) |
! (mass fractions of advected fields) |
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REAL pphis(iim + 1, jjm + 1) |
REAL, intent(in):: ps(iim + 1, jjm + 1) |
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REAL pphi(iim + 1, jjm + 1, llm) |
! ps surface pressure |
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REAL, intent(in):: pk(iim + 1, jjm + 1, llm) |
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REAL pdvcov(iim + 1, jjm, llm) |
REAL, intent(in):: phis(iim + 1, jjm + 1) |
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REAL pducov(iim + 1, jjm + 1, llm) |
REAL, intent(in):: phi(iim + 1, jjm + 1, llm) |
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REAL pdteta(iim + 1, jjm + 1, llm) |
REAL dudyn(iim + 1, jjm + 1, llm) |
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REAL pdq(iim + 1, jjm + 1, llm, nqmx) |
REAL dv(iim + 1, jjm, llm) |
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REAL, intent(in):: w(iim + 1, jjm + 1, llm) |
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REAL pw(iim + 1, jjm + 1, llm) |
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REAL, intent(out):: dufi(iim + 1, jjm + 1, llm) |
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REAL pps(iim + 1, jjm + 1) |
! tendency for the covariant zonal velocity (m2 s-2) |
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REAL, intent(in):: ppk(iim + 1, jjm + 1, llm) |
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REAL dvfi(iim + 1, jjm, llm) |
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REAL pdvfi(iim + 1, jjm, llm) |
REAL, intent(out):: dtetafi(iim + 1, jjm + 1, llm) |
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REAL pdufi(iim + 1, jjm + 1, llm) |
REAL dqfi(iim + 1, jjm + 1, llm, nqmx) |
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REAL pdhfi(iim + 1, jjm + 1, llm) |
REAL dpfi(iim + 1, jjm + 1) |
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REAL pdqfi(iim + 1, jjm + 1, llm, nqmx) |
LOGICAL, intent(in):: lafin |
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REAL pdpsfi(iim + 1, jjm + 1) |
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INTEGER, PARAMETER:: longcles = 20 |
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! Local variables : |
! Local variables : |
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INTEGER i, j, l, ig0, ig, iq, iiq |
INTEGER i, j, l, ig0, ig, iq, iiq |
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REAL zpsrf(klon) |
REAL zpsrf(klon) |
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REAL zplev(klon, llm+1), zplay(klon, llm) |
REAL paprs(klon, llm+1), play(klon, llm) |
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REAL zphi(klon, llm), zphis(klon) |
REAL pphi(klon, llm), pphis(klon) |
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REAL zufi(klon, llm), zvfi(klon, llm) |
REAL u(klon, llm), v(klon, llm) |
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REAL ztfi(klon, llm) ! temperature |
real zvfi(iim + 1, jjm + 1, llm) |
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REAL t(klon, llm) ! temperature |
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real qx(klon, llm, nqmx) ! mass fractions of advected fields |
real qx(klon, llm, nqmx) ! mass fractions of advected fields |
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REAL omega(klon, llm) |
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REAL pcvgu(klon, llm), pcvgv(klon, llm) |
REAL d_u(klon, llm), d_v(klon, llm) ! tendances physiques du vent (m s-2) |
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REAL pcvgt(klon, llm), pcvgq(klon, llm, 2) |
REAL d_t(klon, llm), d_qx(klon, llm, nqmx) |
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REAL d_ps(klon) |
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REAL pvervel(klon, llm) |
REAL z1(iim) |
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REAL zdufi(klon, llm), zdvfi(klon, llm) |
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REAL zdtfi(klon, llm), zdqfi(klon, llm, nqmx) |
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REAL zdpsrf(klon) |
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REAL zsin(iim), zcos(iim), z1(iim) |
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REAL zsinbis(iim), zcosbis(iim), z1bis(iim) |
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REAL pksurcp(iim + 1, jjm + 1) |
REAL pksurcp(iim + 1, jjm + 1) |
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! I. Musat: diagnostic PVteta, Amip2 |
! I. Musat: diagnostic PVteta, Amip2 |
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REAL:: rtetaSTD(ntetaSTD) = (/350., 380., 405./) |
REAL:: rtetaSTD(ntetaSTD) = (/350., 380., 405./) |
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REAL PVteta(klon, ntetaSTD) |
REAL PVteta(klon, ntetaSTD) |
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REAL SSUM |
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LOGICAL:: firstcal = .true. |
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REAL, intent(in):: rdayvrai |
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!----------------------------------------------------------------------- |
!----------------------------------------------------------------------- |
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!!print *, "Call sequence information: calfis" |
!!print *, "Call sequence information: calfis" |
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! 1. Initialisations : |
! 1. Initialisations : |
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! latitude, longitude et aires des mailles pour la physique: |
! latitude, longitude et aires des mailles pour la physique: |
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! 40. transformation des variables dynamiques en variables physiques: |
! 40. transformation des variables dynamiques en variables physiques: |
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! 41. pressions au sol (en Pascals) |
! 41. pressions au sol (en Pascals) |
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zpsrf(1) = pps(1, 1) |
zpsrf(1) = ps(1, 1) |
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ig0 = 2 |
ig0 = 2 |
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DO j = 2, jjm |
DO j = 2, jjm |
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CALL SCOPY(iim, pps(1, j), 1, zpsrf(ig0), 1) |
CALL SCOPY(iim, ps(1, j), 1, zpsrf(ig0), 1) |
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ig0 = ig0+iim |
ig0 = ig0+iim |
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ENDDO |
ENDDO |
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zpsrf(klon) = pps(1, jjm + 1) |
zpsrf(klon) = ps(1, jjm + 1) |
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! 42. pression intercouches : |
! 42. pression intercouches : |
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! .... zplev definis aux (llm +1) interfaces des couches .... |
! paprs defini aux (llm +1) interfaces des couches |
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! .... zplay definis aux (llm) milieux des couches .... |
! play defini aux (llm) milieux des couches |
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! ... Exner = cp * (p(l) / preff) ** kappa .... |
! Exner = cp * (p(l) / preff) ** kappa |
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forall (l = 1: llm+1) zplev(:, l) = pack(p3d(:, :, l), dyn_phy) |
forall (l = 1: llm+1) paprs(:, l) = pack(p3d(:, :, l), dyn_phy) |
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! 43. temperature naturelle (en K) et pressions milieux couches . |
! 43. temperature naturelle (en K) et pressions milieux couches |
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DO l=1, llm |
DO l=1, llm |
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pksurcp = ppk(:, :, l) / cpp |
pksurcp = pk(:, :, l) / cpp |
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pls(:, :, l) = preff * pksurcp**(1./ kappa) |
pls(:, :, l) = preff * pksurcp**(1./ kappa) |
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zplay(:, l) = pack(pls(:, :, l), dyn_phy) |
play(:, l) = pack(pls(:, :, l), dyn_phy) |
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ztfi(:, l) = pack(pteta(:, :, l) * pksurcp, dyn_phy) |
t(:, l) = pack(teta(:, :, l) * pksurcp, dyn_phy) |
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pcvgt(:, l) = pack(pdteta(:, :, l) * pksurcp / pmasse(:, :, l), dyn_phy) |
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ENDDO |
ENDDO |
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! 43.bis traceurs |
! 43.bis traceurs |
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DO iq=1, nqmx |
DO iq=1, nqmx |
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iiq=niadv(iq) |
iiq=niadv(iq) |
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DO l=1, llm |
DO l=1, llm |
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qx(1, l, iq) = q(1, 1, l, iiq) |
qx(1, l, iq) = q(1, 1, l, iiq) |
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ig0 = 2 |
ig0 = 2 |
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DO j=2, jjm |
DO j=2, jjm |
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DO i = 1, iim |
DO i = 1, iim |
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qx(ig0, l, iq) = q(i, j, l, iiq) |
qx(ig0, l, iq) = q(i, j, l, iiq) |
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ig0 = ig0 + 1 |
ig0 = ig0 + 1 |
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ENDDO |
ENDDO |
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ENDDO |
ENDDO |
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qx(ig0, l, iq) = q(1, jjm + 1, l, iiq) |
qx(ig0, l, iq) = q(1, jjm + 1, l, iiq) |
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ENDDO |
ENDDO |
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ENDDO |
ENDDO |
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! convergence dynamique pour les traceurs "EAU" |
! Geopotentiel calcule par rapport a la surface locale: |
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forall (l = 1:llm) pphi(:, l) = pack(phi(:, :, l), dyn_phy) |
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DO iq=1, 2 |
pphis = pack(phis, dyn_phy) |
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DO l=1, llm |
forall (l = 1:llm) pphi(:, l)=pphi(:, l) - pphis |
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pcvgq(1, l, iq)= pdq(1, 1, l, iq) / pmasse(1, 1, l) |
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ig0 = 2 |
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DO j=2, jjm |
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DO i = 1, iim |
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pcvgq(ig0, l, iq) = pdq(i, j, l, iq) / pmasse(i, j, l) |
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ig0 = ig0 + 1 |
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ENDDO |
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ENDDO |
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pcvgq(ig0, l, iq)= pdq(1, jjm + 1, l, iq) / pmasse(1, jjm + 1, l) |
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ENDDO |
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ENDDO |
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! Geopotentiel calcule par rapport a la surface locale: |
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forall (l = 1:llm) zphi(:, l) = pack(pphi(:, :, l), dyn_phy) |
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zphis = pack(pphis, dyn_phy) |
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DO l=1, llm |
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DO ig=1, klon |
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zphi(ig, l)=zphi(ig, l)-zphis(ig) |
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ENDDO |
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ENDDO |
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! .... Calcul de la vitesse verticale (en Pa*m*s ou Kg/s) .... |
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! Calcul de la vitesse verticale (en Pa*m*s ou Kg/s) |
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DO l=1, llm |
DO l=1, llm |
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pvervel(1, l)=pw(1, 1, l) * g /apoln |
omega(1, l)=w(1, 1, l) * g /apoln |
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ig0=2 |
ig0=2 |
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DO j=2, jjm |
DO j=2, jjm |
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DO i = 1, iim |
DO i = 1, iim |
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pvervel(ig0, l) = pw(i, j, l) * g * unsaire_2d(i, j) |
omega(ig0, l) = w(i, j, l) * g * unsaire_2d(i, j) |
174 |
ig0 = ig0 + 1 |
ig0 = ig0 + 1 |
175 |
ENDDO |
ENDDO |
176 |
ENDDO |
ENDDO |
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pvervel(ig0, l)=pw(1, jjm + 1, l) * g /apols |
omega(ig0, l)=w(1, jjm + 1, l) * g /apols |
178 |
ENDDO |
ENDDO |
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! 45. champ u: |
! 45. champ u: |
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DO l=1, llm |
DO l=1, llm |
183 |
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DO j=2, jjm |
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DO j=2, jjm |
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ig0 = 1+(j-2)*iim |
ig0 = 1+(j-2)*iim |
185 |
zufi(ig0+1, l)= 0.5 * & |
u(ig0+1, l)= 0.5 & |
186 |
(pucov(iim, j, l)/cu_2d(iim, j) + pucov(1, j, l)/cu_2d(1, j)) |
* (ucov(iim, j, l) / cu_2d(iim, j) + ucov(1, j, l) / cu_2d(1, j)) |
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pcvgu(ig0+1, l)= 0.5 * & |
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(pducov(iim, j, l)/cu_2d(iim, j) + pducov(1, j, l)/cu_2d(1, j)) |
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187 |
DO i=2, iim |
DO i=2, iim |
188 |
zufi(ig0+i, l)= 0.5 * & |
u(ig0+i, l)= 0.5 * (ucov(i-1, j, l)/cu_2d(i-1, j) & |
189 |
(pucov(i-1, j, l)/cu_2d(i-1, j) & |
+ ucov(i, j, l)/cu_2d(i, j)) |
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+ pucov(i, j, l)/cu_2d(i, j)) |
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pcvgu(ig0+i, l)= 0.5 * & |
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(pducov(i-1, j, l)/cu_2d(i-1, j) & |
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+ pducov(i, j, l)/cu_2d(i, j)) |
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190 |
end DO |
end DO |
191 |
end DO |
end DO |
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192 |
end DO |
end DO |
193 |
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194 |
! 46.champ v: |
! 46.champ v: |
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DO l = 1, llm |
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DO j = 2, jjm |
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ig0 = 1 + (j - 2) * iim |
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DO i = 1, iim |
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zvfi(ig0+i, l)= 0.5 * (pvcov(i, j-1, l) / cv_2d(i, j-1) & |
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+ pvcov(i, j, l) / cv_2d(i, j)) |
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pcvgv(ig0+i, l)= 0.5 * & |
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(pdvcov(i, j-1, l)/cv_2d(i, j-1) & |
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+ pdvcov(i, j, l)/cv_2d(i, j)) |
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ENDDO |
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ENDDO |
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ENDDO |
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196 |
! 47. champs de vents au pôle nord |
forall (j = 2: jjm, l = 1: llm) zvfi(:iim, j, l)= 0.5 & |
197 |
! U = 1 / pi * integrale [ v * cos(long) * d long ] |
* (vcov(:iim, j-1, l) / cv_2d(:iim, j-1) & |
198 |
! V = 1 / pi * integrale [ v * sin(long) * d long ] |
+ vcov(:iim, j, l) / cv_2d(:iim, j)) |
199 |
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zvfi(iim + 1, 2:jjm, :) = zvfi(1, 2:jjm, :) |
200 |
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201 |
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! 47. champs de vents au pôle nord |
202 |
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! U = 1 / pi * integrale [ v * cos(long) * d long ] |
203 |
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! V = 1 / pi * integrale [ v * sin(long) * d long ] |
204 |
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205 |
DO l=1, llm |
DO l=1, llm |
206 |
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z1(1) =(rlonu(1)-rlonu(iim)+2.*pi)*vcov(1, 1, l)/cv_2d(1, 1) |
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z1(1) =(rlonu(1)-rlonu(iim)+2.*pi)*pvcov(1, 1, l)/cv_2d(1, 1) |
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z1bis(1)=(rlonu(1)-rlonu(iim)+2.*pi)*pdvcov(1, 1, l)/cv_2d(1, 1) |
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207 |
DO i=2, iim |
DO i=2, iim |
208 |
z1(i) =(rlonu(i)-rlonu(i-1))*pvcov(i, 1, l)/cv_2d(i, 1) |
z1(i) =(rlonu(i)-rlonu(i-1))*vcov(i, 1, l)/cv_2d(i, 1) |
|
z1bis(i)=(rlonu(i)-rlonu(i-1))*pdvcov(i, 1, l)/cv_2d(i, 1) |
|
209 |
ENDDO |
ENDDO |
210 |
|
|
211 |
DO i=1, iim |
u(1, l) = SUM(COS(rlonv(:iim)) * z1) / pi |
212 |
zcos(i) = COS(rlonv(i))*z1(i) |
zvfi(:, 1, l) = SUM(SIN(rlonv(:iim)) * z1) / pi |
|
zcosbis(i)= COS(rlonv(i))*z1bis(i) |
|
|
zsin(i) = SIN(rlonv(i))*z1(i) |
|
|
zsinbis(i)= SIN(rlonv(i))*z1bis(i) |
|
|
ENDDO |
|
|
|
|
|
zufi(1, l) = SSUM(iim, zcos, 1)/pi |
|
|
pcvgu(1, l) = SSUM(iim, zcosbis, 1)/pi |
|
|
zvfi(1, l) = SSUM(iim, zsin, 1)/pi |
|
|
pcvgv(1, l) = SSUM(iim, zsinbis, 1)/pi |
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|
|
213 |
ENDDO |
ENDDO |
214 |
|
|
215 |
! 48. champs de vents au pôle sud: |
! 48. champs de vents au pôle sud: |
216 |
! U = 1 / pi * integrale [ v * cos(long) * d long ] |
! U = 1 / pi * integrale [ v * cos(long) * d long ] |
217 |
! V = 1 / pi * integrale [ v * sin(long) * d long ] |
! V = 1 / pi * integrale [ v * sin(long) * d long ] |
218 |
|
|
219 |
DO l=1, llm |
DO l=1, llm |
220 |
|
z1(1) =(rlonu(1)-rlonu(iim)+2.*pi)*vcov(1, jjm, l) & |
|
z1(1) =(rlonu(1)-rlonu(iim)+2.*pi)*pvcov(1, jjm, l) & |
|
|
/cv_2d(1, jjm) |
|
|
z1bis(1)=(rlonu(1)-rlonu(iim)+2.*pi)*pdvcov(1, jjm, l) & |
|
221 |
/cv_2d(1, jjm) |
/cv_2d(1, jjm) |
222 |
DO i=2, iim |
DO i=2, iim |
223 |
z1(i) =(rlonu(i)-rlonu(i-1))*pvcov(i, jjm, l)/cv_2d(i, jjm) |
z1(i) =(rlonu(i)-rlonu(i-1))*vcov(i, jjm, l)/cv_2d(i, jjm) |
|
z1bis(i)=(rlonu(i)-rlonu(i-1))*pdvcov(i, jjm, l)/cv_2d(i, jjm) |
|
224 |
ENDDO |
ENDDO |
225 |
|
|
226 |
DO i=1, iim |
u(klon, l) = SUM(COS(rlonv(:iim)) * z1) / pi |
227 |
zcos(i) = COS(rlonv(i))*z1(i) |
zvfi(:, jjm + 1, l) = SUM(SIN(rlonv(:iim)) * z1) / pi |
|
zcosbis(i) = COS(rlonv(i))*z1bis(i) |
|
|
zsin(i) = SIN(rlonv(i))*z1(i) |
|
|
zsinbis(i) = SIN(rlonv(i))*z1bis(i) |
|
|
ENDDO |
|
|
|
|
|
zufi(klon, l) = SSUM(iim, zcos, 1)/pi |
|
|
pcvgu(klon, l) = SSUM(iim, zcosbis, 1)/pi |
|
|
zvfi(klon, l) = SSUM(iim, zsin, 1)/pi |
|
|
pcvgv(klon, l) = SSUM(iim, zsinbis, 1)/pi |
|
|
|
|
228 |
ENDDO |
ENDDO |
229 |
|
|
230 |
!IM calcul PV a teta=350, 380, 405K |
forall(l= 1: llm) v(:, l) = pack(zvfi(:, :, l), dyn_phy) |
|
CALL PVtheta(klon, llm, pucov, pvcov, pteta, & |
|
|
ztfi, zplay, zplev, & |
|
|
ntetaSTD, rtetaSTD, PVteta) |
|
231 |
|
|
232 |
! Appel de la physique: |
! Compute potential vorticity at theta = 350, 380 and 405 K: |
233 |
|
CALL PVtheta(klon, llm, ucov, vcov, teta, t, play, paprs, ntetaSTD, & |
234 |
|
rtetaSTD, PVteta) |
235 |
|
|
236 |
CALL physiq(firstcal, lafin, rdayvrai, heure, dtphys, zplev, zplay, zphi, & |
! Appel de la physique : |
237 |
zphis, zufi, zvfi, ztfi, qx, pvervel, zdufi, zdvfi, zdtfi, zdqfi, & |
CALL physiq(lafin, rdayvrai, time, dtphys, paprs, play, pphi, pphis, u, & |
238 |
zdpsrf, pducov, PVteta) ! IM diagnostique PVteta, Amip2 |
v, t, qx, omega, d_u, d_v, d_t, d_qx, d_ps, dudyn) |
239 |
|
|
240 |
! transformation des tendances physiques en tendances dynamiques: |
! transformation des tendances physiques en tendances dynamiques: |
241 |
|
|
242 |
! tendance sur la pression : |
! tendance sur la pression : |
243 |
|
|
244 |
pdpsfi = gr_fi_dyn(zdpsrf) |
dpfi = gr_fi_dyn(d_ps) |
245 |
|
|
246 |
! 62. enthalpie potentielle |
! 62. enthalpie potentielle |
247 |
|
do l=1, llm |
248 |
|
dtetafi(:, :, l) = cpp * gr_fi_dyn(d_t(:, l)) / pk(:, :, l) |
249 |
|
end do |
250 |
|
|
251 |
DO l=1, llm |
! 62. humidite specifique |
|
|
|
|
DO i=1, iim + 1 |
|
|
pdhfi(i, 1, l) = cpp * zdtfi(1, l) / ppk(i, 1 , l) |
|
|
pdhfi(i, jjm + 1, l) = cpp * zdtfi(klon, l)/ ppk(i, jjm + 1, l) |
|
|
ENDDO |
|
|
|
|
|
DO j=2, jjm |
|
|
ig0=1+(j-2)*iim |
|
|
DO i=1, iim |
|
|
pdhfi(i, j, l) = cpp * zdtfi(ig0+i, l) / ppk(i, j, l) |
|
|
ENDDO |
|
|
pdhfi(iim + 1, j, l) = pdhfi(1, j, l) |
|
|
ENDDO |
|
|
|
|
|
ENDDO |
|
|
|
|
|
! 62. humidite specifique |
|
252 |
|
|
253 |
DO iq=1, nqmx |
DO iq=1, nqmx |
254 |
DO l=1, llm |
DO l=1, llm |
255 |
DO i=1, iim + 1 |
DO i=1, iim + 1 |
256 |
pdqfi(i, 1, l, iq) = zdqfi(1, l, iq) |
dqfi(i, 1, l, iq) = d_qx(1, l, iq) |
257 |
pdqfi(i, jjm + 1, l, iq) = zdqfi(klon, l, iq) |
dqfi(i, jjm + 1, l, iq) = d_qx(klon, l, iq) |
258 |
ENDDO |
ENDDO |
259 |
DO j=2, jjm |
DO j=2, jjm |
260 |
ig0=1+(j-2)*iim |
ig0=1+(j-2)*iim |
261 |
DO i=1, iim |
DO i=1, iim |
262 |
pdqfi(i, j, l, iq) = zdqfi(ig0+i, l, iq) |
dqfi(i, j, l, iq) = d_qx(ig0+i, l, iq) |
263 |
ENDDO |
ENDDO |
264 |
pdqfi(iim + 1, j, l, iq) = pdqfi(1, j, l, iq) |
dqfi(iim + 1, j, l, iq) = dqfi(1, j, l, iq) |
265 |
ENDDO |
ENDDO |
266 |
ENDDO |
ENDDO |
267 |
ENDDO |
ENDDO |
268 |
|
|
269 |
! 63. traceurs |
! 63. traceurs |
270 |
|
|
271 |
! initialisation des tendances |
! initialisation des tendances |
272 |
pdqfi=0. |
dqfi=0. |
273 |
|
|
274 |
DO iq=1, nqmx |
DO iq=1, nqmx |
275 |
iiq=niadv(iq) |
iiq=niadv(iq) |
276 |
DO l=1, llm |
DO l=1, llm |
277 |
DO i=1, iim + 1 |
DO i=1, iim + 1 |
278 |
pdqfi(i, 1, l, iiq) = zdqfi(1, l, iq) |
dqfi(i, 1, l, iiq) = d_qx(1, l, iq) |
279 |
pdqfi(i, jjm + 1, l, iiq) = zdqfi(klon, l, iq) |
dqfi(i, jjm + 1, l, iiq) = d_qx(klon, l, iq) |
280 |
ENDDO |
ENDDO |
281 |
DO j=2, jjm |
DO j=2, jjm |
282 |
ig0=1+(j-2)*iim |
ig0=1+(j-2)*iim |
283 |
DO i=1, iim |
DO i=1, iim |
284 |
pdqfi(i, j, l, iiq) = zdqfi(ig0+i, l, iq) |
dqfi(i, j, l, iiq) = d_qx(ig0+i, l, iq) |
285 |
ENDDO |
ENDDO |
286 |
pdqfi(iim + 1, j, l, iiq) = pdqfi(1, j, l, iq) |
dqfi(iim + 1, j, l, iiq) = dqfi(1, j, l, iq) |
287 |
ENDDO |
ENDDO |
288 |
ENDDO |
ENDDO |
289 |
ENDDO |
ENDDO |
290 |
|
|
291 |
! 65. champ u: |
! 65. champ u: |
292 |
|
|
293 |
DO l=1, llm |
DO l=1, llm |
|
|
|
294 |
DO i=1, iim + 1 |
DO i=1, iim + 1 |
295 |
pdufi(i, 1, l) = 0. |
dufi(i, 1, l) = 0. |
296 |
pdufi(i, jjm + 1, l) = 0. |
dufi(i, jjm + 1, l) = 0. |
297 |
ENDDO |
ENDDO |
298 |
|
|
299 |
DO j=2, jjm |
DO j=2, jjm |
300 |
ig0=1+(j-2)*iim |
ig0=1+(j-2)*iim |
301 |
DO i=1, iim-1 |
DO i=1, iim-1 |
302 |
pdufi(i, j, l)= & |
dufi(i, j, l)= 0.5*(d_u(ig0+i, l)+d_u(ig0+i+1, l))*cu_2d(i, j) |
|
0.5*(zdufi(ig0+i, l)+zdufi(ig0+i+1, l))*cu_2d(i, j) |
|
303 |
ENDDO |
ENDDO |
304 |
pdufi(iim, j, l)= & |
dufi(iim, j, l)= 0.5*(d_u(ig0+1, l)+d_u(ig0+iim, l))*cu_2d(iim, j) |
305 |
0.5*(zdufi(ig0+1, l)+zdufi(ig0+iim, l))*cu_2d(iim, j) |
dufi(iim + 1, j, l)=dufi(1, j, l) |
|
pdufi(iim + 1, j, l)=pdufi(1, j, l) |
|
306 |
ENDDO |
ENDDO |
|
|
|
307 |
ENDDO |
ENDDO |
308 |
|
|
309 |
! 67. champ v: |
! 67. champ v: |
310 |
|
|
311 |
DO l=1, llm |
DO l=1, llm |
|
|
|
312 |
DO j=2, jjm-1 |
DO j=2, jjm-1 |
313 |
ig0=1+(j-2)*iim |
ig0=1+(j-2)*iim |
314 |
DO i=1, iim |
DO i=1, iim |
315 |
pdvfi(i, j, l)= & |
dvfi(i, j, l)= 0.5*(d_v(ig0+i, l)+d_v(ig0+i+iim, l))*cv_2d(i, j) |
|
0.5*(zdvfi(ig0+i, l)+zdvfi(ig0+i+iim, l))*cv_2d(i, j) |
|
316 |
ENDDO |
ENDDO |
317 |
pdvfi(iim + 1, j, l) = pdvfi(1, j, l) |
dvfi(iim + 1, j, l) = dvfi(1, j, l) |
318 |
ENDDO |
ENDDO |
319 |
ENDDO |
ENDDO |
320 |
|
|
321 |
! 68. champ v pres des poles: |
! 68. champ v près des pôles: |
322 |
! v = U * cos(long) + V * SIN(long) |
! v = U * cos(long) + V * SIN(long) |
323 |
|
|
324 |
DO l=1, llm |
DO l=1, llm |
|
|
|
325 |
DO i=1, iim |
DO i=1, iim |
326 |
pdvfi(i, 1, l)= & |
dvfi(i, 1, l)= d_u(1, l)*COS(rlonv(i))+d_v(1, l)*SIN(rlonv(i)) |
327 |
zdufi(1, l)*COS(rlonv(i))+zdvfi(1, l)*SIN(rlonv(i)) |
dvfi(i, jjm, l)=d_u(klon, l)*COS(rlonv(i)) +d_v(klon, l)*SIN(rlonv(i)) |
328 |
pdvfi(i, jjm, l)=zdufi(klon, l)*COS(rlonv(i)) & |
dvfi(i, 1, l)= 0.5*(dvfi(i, 1, l)+d_v(i+1, l))*cv_2d(i, 1) |
329 |
+zdvfi(klon, l)*SIN(rlonv(i)) |
dvfi(i, jjm, l)= 0.5 & |
330 |
pdvfi(i, 1, l)= & |
* (dvfi(i, jjm, l) + d_v(klon - iim - 1 + i, l)) * cv_2d(i, jjm) |
|
0.5*(pdvfi(i, 1, l)+zdvfi(i+1, l))*cv_2d(i, 1) |
|
|
pdvfi(i, jjm, l)= & |
|
|
0.5*(pdvfi(i, jjm, l)+zdvfi(klon-iim-1+i, l))*cv_2d(i, jjm) |
|
331 |
ENDDO |
ENDDO |
332 |
|
|
333 |
pdvfi(iim + 1, 1, l) = pdvfi(1, 1, l) |
dvfi(iim + 1, 1, l) = dvfi(1, 1, l) |
334 |
pdvfi(iim + 1, jjm, l)= pdvfi(1, jjm, l) |
dvfi(iim + 1, jjm, l)= dvfi(1, jjm, l) |
|
|
|
335 |
ENDDO |
ENDDO |
336 |
|
|
|
firstcal = .FALSE. |
|
|
|
|
337 |
END SUBROUTINE calfis |
END SUBROUTINE calfis |
338 |
|
|
339 |
end module calfis_m |
end module calfis_m |