| 1 | ! |
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| 2 | ! $Id: etat0_netcdf.F 1299 2010-01-20 14:27:21Z jghattas $ |
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| 3 | ! |
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| 4 | c |
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| 5 | c |
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| 6 | SUBROUTINE etat0_netcdf (interbar, masque) |
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| 7 | #ifdef CPP_EARTH |
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| 8 | USE startvar |
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| 9 | USE ioipsl |
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| 10 | USE dimphy |
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| 11 | USE control_mod |
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| 12 | USE infotrac |
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| 13 | USE fonte_neige_mod |
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| 14 | USE pbl_surface_mod |
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| 15 | USE phys_state_var_mod |
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| 16 | USE filtreg_mod |
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| 17 | use regr_lat_time_climoz_m, only: regr_lat_time_climoz |
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| 18 | use conf_phys_m, only: conf_phys |
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| 19 | #endif |
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| 20 | !#endif of #ifdef CPP_EARTH |
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| 21 | use netcdf, only: nf90_open, NF90_NOWRITE, nf90_close |
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| 22 | ! |
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| 23 | IMPLICIT NONE |
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| 24 | ! |
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| 25 | #include "dimensions.h" |
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| 26 | #include "paramet.h" |
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| 27 | ! |
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| 28 | ! |
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| 29 | ! INTEGER, PARAMETER :: KIDIA=1, KFDIA=iim*(jjm-1)+2, |
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| 30 | ! .KLON=KFDIA-KIDIA+1,KLEV=llm |
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| 31 | ! |
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| 32 | #ifdef CPP_EARTH |
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| 33 | #include "comgeom2.h" |
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| 34 | #include "comvert.h" |
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| 35 | #include "comconst.h" |
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| 36 | #include "indicesol.h" |
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| 37 | #include "dimsoil.h" |
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| 38 | #include "temps.h" |
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| 39 | #endif |
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| 40 | !#endif of #ifdef CPP_EARTH |
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| 41 | ! arguments: |
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| 42 | LOGICAL interbar |
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| 43 | REAL :: masque(iip1,jjp1) |
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| 44 | |
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| 45 | #ifdef CPP_EARTH |
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| 46 | ! local variables: |
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| 47 | REAL :: latfi(klon), lonfi(klon) |
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| 48 | REAL :: orog(iip1,jjp1), rugo(iip1,jjp1) |
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| 49 | REAL :: psol(iip1, jjp1), phis(iip1, jjp1) |
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| 50 | REAL :: p3d(iip1, jjp1, llm+1) |
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| 51 | REAL :: uvent(iip1, jjp1, llm) |
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| 52 | REAL :: vvent(iip1, jjm, llm) |
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| 53 | REAL :: t3d(iip1, jjp1, llm), tpot(iip1, jjp1, llm) |
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| 54 | REAL :: qsat(iip1, jjp1, llm) |
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| 55 | REAL,ALLOCATABLE :: q3d(:, :, :,:) |
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| 56 | REAL :: tsol(klon), qsol(klon), sn(klon) |
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| 57 | !! REAL :: tsolsrf(klon,nbsrf) |
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| 58 | real qsolsrf(klon,nbsrf),snsrf(klon,nbsrf) |
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| 59 | REAL :: albe(klon,nbsrf), evap(klon,nbsrf) |
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| 60 | REAL :: alblw(klon,nbsrf) |
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| 61 | REAL :: tsoil(klon,nsoilmx,nbsrf) |
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| 62 | REAL :: frugs(klon,nbsrf), agesno(klon,nbsrf) |
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| 63 | REAL :: rugmer(klon) |
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| 64 | REAL :: qd(iip1, jjp1, llm) |
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| 65 | REAL :: run_off_lic_0(klon) |
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| 66 | ! declarations pour lecture glace de mer |
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| 67 | REAL :: rugv(klon) |
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| 68 | INTEGER :: iml_lic, jml_lic, llm_tmp, ttm_tmp, iret |
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| 69 | INTEGER :: itaul(1), fid |
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| 70 | REAL :: lev(1), date |
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| 71 | REAL, ALLOCATABLE, DIMENSION(:,:) :: lon_lic, lat_lic |
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| 72 | REAL, ALLOCATABLE, DIMENSION(:) :: dlon_lic, dlat_lic |
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| 73 | REAL, ALLOCATABLE, DIMENSION (:,:) :: fraclic |
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| 74 | REAL :: flic_tmp(iip1, jjp1) |
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| 75 | REAL :: champint(iim, jjp1) |
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| 76 | ! |
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| 77 | |
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| 78 | CHARACTER(len=80) :: varname |
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| 79 | ! |
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| 80 | INTEGER :: i,j, ig, l, ji,ii1,ii2 |
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| 81 | REAL :: xpi |
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| 82 | ! |
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| 83 | REAL :: alpha(iip1,jjp1,llm),beta(iip1,jjp1,llm) |
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| 84 | REAL :: pk(iip1,jjp1,llm), pls(iip1,jjp1,llm), pks(ip1jmp1) |
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| 85 | REAL :: workvar(iip1,jjp1,llm) |
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| 86 | ! |
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| 87 | REAL :: prefkap, unskap |
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| 88 | ! |
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| 89 | real :: time_step,t_ops,t_wrt |
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| 90 | |
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| 91 | #include "comdissnew.h" |
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| 92 | #include "serre.h" |
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| 93 | #include "clesphys.h" |
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| 94 | |
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| 95 | INTEGER :: longcles |
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| 96 | PARAMETER ( longcles = 20 ) |
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| 97 | REAL :: clesphy0 ( longcles ) |
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| 98 | REAL :: p(iip1,jjp1,llm) |
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| 99 | INTEGER :: itau, iday |
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| 100 | REAL :: masse(iip1,jjp1,llm) |
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| 101 | REAL :: xpn,xps,xppn(iim),xpps(iim) |
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| 102 | real :: time |
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| 103 | REAL :: phi(ip1jmp1,llm) |
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| 104 | REAL :: pbaru(ip1jmp1,llm),pbarv(ip1jm,llm) |
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| 105 | REAL :: w(ip1jmp1,llm) |
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| 106 | REAL ::phystep |
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| 107 | CC REAL :: rugsrel(iip1*jjp1) |
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| 108 | REAL :: fder(klon) |
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| 109 | !! real zrel(iip1*jjp1),chmin,chmax |
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| 110 | |
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| 111 | !! CHARACTER(len=80) :: visu_file |
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| 112 | INTEGER :: visuid |
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| 113 | |
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| 114 | ! pour la lecture du fichier masque ocean |
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| 115 | integer :: nid_o2a |
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| 116 | logical :: couple = .false. |
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| 117 | INTEGER :: iml_omask, jml_omask |
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| 118 | REAL, ALLOCATABLE, DIMENSION(:,:) :: lon_omask, lat_omask |
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| 119 | REAL, ALLOCATABLE, DIMENSION(:) :: dlon_omask, dlat_omask |
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| 120 | REAL, ALLOCATABLE, DIMENSION (:,:) :: ocemask, ocetmp |
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| 121 | real, dimension(klon) :: ocemask_fi |
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| 122 | integer :: isst(klon-2) |
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| 123 | real zx_tmp_2d(iim,jjp1) |
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| 124 | |
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| 125 | REAL :: dummy |
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| 126 | |
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| 127 | logical :: ok_newmicro |
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| 128 | integer :: iflag_radia |
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| 129 | logical :: ok_journe, ok_mensuel, ok_instan, ok_hf |
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| 130 | logical :: ok_LES |
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| 131 | LOGICAL :: ok_ade, ok_aie, aerosol_couple, new_aod |
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| 132 | INTEGER :: flag_aerosol |
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| 133 | REAL :: bl95_b0, bl95_b1 |
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| 134 | real :: fact_cldcon, facttemps,ratqsbas,ratqshaut |
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| 135 | real :: tau_ratqs |
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| 136 | integer :: iflag_cldcon |
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| 137 | integer :: iflag_ratqs |
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| 138 | integer :: iflag_coupl |
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| 139 | integer :: iflag_clos |
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| 140 | integer :: iflag_wake |
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| 141 | integer :: iflag_thermals,nsplit_thermals |
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| 142 | real :: tau_thermals |
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| 143 | integer :: iflag_thermals_ed,iflag_thermals_optflux |
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| 144 | REAL :: solarlong0 |
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| 145 | real :: seuil_inversion |
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| 146 | |
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| 147 | integer read_climoz ! read ozone climatology |
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| 148 | C Allowed values are 0, 1 and 2 |
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| 149 | C 0: do not read an ozone climatology |
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| 150 | C 1: read a single ozone climatology that will be used day and night |
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| 151 | C 2: read two ozone climatologies, the average day and night |
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| 152 | C climatology and the daylight climatology |
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| 153 | |
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| 154 | ! |
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| 155 | ! Constantes |
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| 156 | ! |
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| 157 | pi = 4. * ATAN(1.) |
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| 158 | rad = 6371229. |
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| 159 | omeg = 4.* ASIN(1.)/(24.*3600.) |
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| 160 | g = 9.8 |
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| 161 | daysec = 86400. |
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| 162 | kappa = 0.2857143 |
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| 163 | cpp = 1004.70885 |
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| 164 | ! |
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| 165 | preff = 101325. |
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| 166 | pa = 50000. |
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| 167 | unskap = 1./kappa |
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| 168 | ! |
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| 169 | jmp1 = jjm + 1 |
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| 170 | ! |
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| 171 | ! Construct a grid |
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| 172 | ! |
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| 173 | |
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| 174 | ! CALL defrun_new(99,.TRUE.,clesphy0) |
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| 175 | CALL conf_gcm( 99, .TRUE. , clesphy0 ) |
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| 176 | call conf_phys( ok_journe, ok_mensuel, ok_instan, ok_hf, ok_LES, & |
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| 177 | & solarlong0,seuil_inversion, & |
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| 178 | & fact_cldcon, facttemps,ok_newmicro,iflag_radia, & |
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| 179 | & iflag_cldcon, & |
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| 180 | & iflag_ratqs,ratqsbas,ratqshaut,tau_ratqs, & |
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| 181 | & ok_ade, ok_aie, aerosol_couple, & |
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| 182 | & flag_aerosol, new_aod, & |
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| 183 | & bl95_b0, bl95_b1, & |
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| 184 | & iflag_thermals,nsplit_thermals,tau_thermals, & |
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| 185 | & iflag_thermals_ed,iflag_thermals_optflux, & |
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| 186 | & iflag_coupl,iflag_clos,iflag_wake, read_climoz ) |
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| 187 | |
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| 188 | ! co2_ppm0 : initial value of atmospheric CO2 from .def file (co2_ppm value) |
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| 189 | co2_ppm0 = co2_ppm |
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| 190 | |
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| 191 | dtvr = daysec/REAL(day_step) |
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| 192 | print*,'dtvr',dtvr |
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| 193 | |
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| 194 | CALL iniconst() |
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| 195 | CALL inigeom() |
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| 196 | |
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| 197 | ! Initialisation pour traceurs |
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| 198 | call infotrac_init |
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| 199 | ALLOCATE(q3d(iip1, jjp1, llm, nqtot)) |
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| 200 | |
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| 201 | CALL inifilr() |
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| 202 | CALL phys_state_var_init(read_climoz) |
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| 203 | ! |
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| 204 | latfi(1) = ASIN(1.0) |
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| 205 | DO j = 2, jjm |
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| 206 | DO i = 1, iim |
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| 207 | latfi((j-2)*iim+1+i)= rlatu(j) |
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| 208 | ENDDO |
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| 209 | ENDDO |
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| 210 | latfi(klon) = - ASIN(1.0) |
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| 211 | ! |
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| 212 | lonfi(1) = 0.0 |
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| 213 | DO j = 2, jjm |
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| 214 | DO i = 1, iim |
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| 215 | lonfi((j-2)*iim+1+i) = rlonv(i) |
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| 216 | ENDDO |
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| 217 | ENDDO |
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| 218 | lonfi(klon) = 0.0 |
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| 219 | ! |
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| 220 | xpi = 2.0 * ASIN(1.0) |
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| 221 | DO ig = 1, klon |
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| 222 | latfi(ig) = latfi(ig) * 180.0 / xpi |
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| 223 | lonfi(ig) = lonfi(ig) * 180.0 / xpi |
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| 224 | ENDDO |
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| 225 | ! |
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| 226 | rlat(1) = ASIN(1.0) |
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| 227 | DO j = 2, jjm |
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| 228 | DO i = 1, iim |
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| 229 | rlat((j-2)*iim+1+i)= rlatu(j) |
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| 230 | ENDDO |
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| 231 | ENDDO |
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| 232 | rlat(klon) = - ASIN(1.0) |
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| 233 | ! |
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| 234 | rlon(1) = 0.0 |
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| 235 | DO j = 2, jjm |
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| 236 | DO i = 1, iim |
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| 237 | rlon((j-2)*iim+1+i) = rlonv(i) |
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| 238 | ENDDO |
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| 239 | ENDDO |
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| 240 | rlon(klon) = 0.0 |
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| 241 | ! |
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| 242 | xpi = 2.0 * ASIN(1.0) |
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| 243 | DO ig = 1, klon |
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| 244 | rlat(ig) = rlat(ig) * 180.0 / xpi |
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| 245 | rlon(ig) = rlon(ig) * 180.0 / xpi |
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| 246 | ENDDO |
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| 247 | ! |
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| 248 | |
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| 249 | |
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| 250 | |
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| 251 | C |
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| 252 | C En cas de simulation couplee, lecture du masque ocean issu du modele ocean |
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| 253 | C utilise pour calculer les poids et pour assurer l'adequation entre les |
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| 254 | C fractions d'ocean vu par l'atmosphere et l'ocean. Sinon, on cree le masque |
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| 255 | C a partir du fichier relief |
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| 256 | C |
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| 257 | |
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| 258 | write(*,*)'Essai de lecture masque ocean' |
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| 259 | iret = nf90_open("o2a.nc", NF90_NOWRITE, nid_o2a) |
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| 260 | if (iret .ne. 0) then |
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| 261 | write(*,*)'ATTENTION!! pas de fichier o2a.nc trouve' |
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| 262 | write(*,*)'Run force' |
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| 263 | varname = 'masque' |
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| 264 | masque(:,:) = 0.0 |
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| 265 | CALL startget_phys2d(varname, iip1, jjp1, rlonv, rlatu, masque, |
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| 266 | $ 0.0, jjm ,rlonu,rlatv , interbar ) |
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| 267 | WRITE(*,*) 'MASQUE construit : Masque' |
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| 268 | WRITE(*,'(97I1)') nINT(masque(:,:)) |
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| 269 | call gr_dyn_fi(1, iip1, jjp1, klon, masque, zmasq) |
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| 270 | WHERE (zmasq(1 : klon) .LT. EPSFRA) |
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| 271 | zmasq(1 : klon) = 0. |
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| 272 | END WHERE |
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| 273 | WHERE (1. - zmasq(1 : klon) .LT. EPSFRA) |
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| 274 | zmasq(1 : klon) = 1. |
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| 275 | END WHERE |
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| 276 | else |
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| 277 | couple = .true. |
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| 278 | iret = nf90_close(nid_o2a) |
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| 279 | call flininfo("o2a.nc", iml_omask, jml_omask, llm_tmp, ttm_tmp |
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| 280 | $ , nid_o2a) |
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| 281 | if (iml_omask /= iim .or. jml_omask /= jjp1) then |
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| 282 | write(*,*)'Dimensions non compatibles pour masque ocean' |
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| 283 | write(*,*)'iim = ',iim,' iml_omask = ',iml_omask |
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| 284 | write(*,*)'jjp1 = ',jjp1,' jml_omask = ',jml_omask |
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| 285 | stop |
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| 286 | endif |
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| 287 | ALLOCATE(lat_omask(iml_omask, jml_omask), stat=iret) |
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| 288 | ALLOCATE(lon_omask(iml_omask, jml_omask), stat=iret) |
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| 289 | ALLOCATE(dlon_omask(iml_omask), stat=iret) |
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| 290 | ALLOCATE(dlat_omask(jml_omask), stat=iret) |
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| 291 | ALLOCATE(ocemask(iml_omask, jml_omask), stat=iret) |
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| 292 | ALLOCATE(ocetmp(iml_omask, jml_omask), stat=iret) |
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| 293 | CALL flinopen("o2a.nc", .FALSE., iml_omask, jml_omask, llm_tmp |
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| 294 | $ , lon_omask, lat_omask, lev, ttm_tmp, itaul, date, dt, fid) |
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| 295 | CALL flinget(fid, 'OceMask', iml_omask, jml_omask, llm_tmp, |
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| 296 | $ ttm_tmp, 1, 1, ocetmp) |
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| 297 | CALL flinclo(fid) |
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| 298 | dlon_omask(1 : iml_omask) = lon_omask(1 : iml_omask, 1) |
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| 299 | dlat_omask(1 : jml_omask) = lat_omask(1 , 1 : jml_omask) |
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| 300 | ocemask = ocetmp |
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| 301 | if (dlat_omask(1) < dlat_omask(jml_omask)) then |
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| 302 | do j = 1, jml_omask |
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| 303 | ocemask(:,j) = ocetmp(:,jml_omask-j+1) |
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| 304 | enddo |
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| 305 | endif |
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| 306 | C |
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| 307 | C passage masque ocean a la grille physique |
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| 308 | C |
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| 309 | write(*,*)'ocemask ' |
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| 310 | write(*,'(96i1)')int(ocemask) |
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| 311 | ocemask_fi(1) = ocemask(1,1) |
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| 312 | do j = 2, jjm |
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| 313 | do i = 1, iim |
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| 314 | ocemask_fi((j-2)*iim + i + 1) = ocemask(i,j) |
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| 315 | enddo |
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| 316 | enddo |
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| 317 | ocemask_fi(klon) = ocemask(1,jjp1) |
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| 318 | zmasq = 1. - ocemask_fi |
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| 319 | endif |
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| 320 | |
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| 321 | call gr_fi_dyn(1, klon, iip1, jjp1, zmasq, masque) |
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| 322 | |
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| 323 | varname = 'relief' |
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| 324 | ! This line needs to be replaced by a call to restget to get the values in the restart file |
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| 325 | orog(:,:) = 0.0 |
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| 326 | CALL startget_phys2d(varname, iip1, jjp1, rlonv, rlatu, orog, |
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| 327 | $ 0.0 , jjm ,rlonu,rlatv , interbar, masque ) |
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| 328 | ! |
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| 329 | WRITE(*,*) 'OUT OF GET VARIABLE : Relief' |
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| 330 | ! WRITE(*,'(49I1)') INT(orog(:,:)) |
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| 331 | ! |
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| 332 | varname = 'rugosite' |
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| 333 | ! This line needs to be replaced by a call to restget to get the values in the restart file |
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| 334 | rugo(:,:) = 0.0 |
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| 335 | CALL startget_phys2d(varname, iip1, jjp1, rlonv, rlatu, rugo, |
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| 336 | $ 0.0 , jjm, rlonu,rlatv , interbar ) |
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| 337 | ! |
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| 338 | WRITE(*,*) 'OUT OF GET VARIABLE : Rugosite' |
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| 339 | ! WRITE(*,'(49I1)') INT(rugo(:,:)*10) |
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| 340 | ! |
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| 341 | C |
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| 342 | C on initialise les sous surfaces |
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| 343 | C |
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| 344 | pctsrf=0. |
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| 345 | c |
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| 346 | varname = 'psol' |
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| 347 | psol(:,:) = 0.0 |
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| 348 | CALL startget_phys2d(varname, iip1, jjp1, rlonv, rlatu, psol, |
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| 349 | $ 0.0 , jjm ,rlonu,rlatv , interbar ) |
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| 350 | ! |
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| 351 | ! Compute here the pressure on the intermediate levels. One would expect that this is available in the GCM |
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| 352 | ! anyway. |
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| 353 | ! |
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| 354 | ! WRITE(*,*) 'PSOL :', psol(10,20) |
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| 355 | ! WRITE(*,*) ap(:), bp(:) |
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| 356 | CALL pression(ip1jmp1, ap, bp, psol, p3d) |
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| 357 | ! WRITE(*,*) 'P3D :', p3d(10,20,:) |
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| 358 | CALL exner_hyb(ip1jmp1, psol, p3d, alpha, beta, pks, pk, workvar) |
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| 359 | ! WRITE(*,*) 'PK:', pk(10,20,:) |
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| 360 | ! |
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| 361 | ! |
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| 362 | ! |
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| 363 | prefkap = preff ** kappa |
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| 364 | ! WRITE(*,*) 'unskap, cpp, preff :', unskap, cpp, preff |
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| 365 | DO l = 1, llm |
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| 366 | DO j=1,jjp1 |
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| 367 | DO i =1, iip1 |
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| 368 | pls(i,j,l) = preff * ( pk(i,j,l)/cpp) ** unskap |
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| 369 | ENDDO |
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| 370 | ENDDO |
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| 371 | ENDDO |
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| 372 | ! |
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| 373 | ! WRITE(*,*) 'PLS :', pls(10,20,:) |
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| 374 | ! |
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| 375 | varname = 'surfgeo' |
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| 376 | phis(:,:) = 0.0 |
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| 377 | CALL startget_phys2d(varname, iip1, jjp1, rlonv, rlatu, phis, |
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| 378 | $ 0.0 , jjm ,rlonu,rlatv, interbar ) |
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| 379 | ! |
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| 380 | varname = 'u' |
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| 381 | uvent(:,:,:) = 0.0 |
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| 382 | CALL startget_dyn(varname, rlonu, rlatu, pls, workvar, uvent, 0., |
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| 383 | $ rlonv, rlatv, interbar ) |
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| 384 | ! |
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| 385 | varname = 'v' |
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| 386 | vvent(:,:,:) = 0.0 |
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| 387 | CALL startget_dyn(varname, rlonv, rlatv, pls(:, :jjm, :), |
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| 388 | . workvar(:, :jjm, :), vvent, 0., rlonu, rlatu(:jjm), interbar ) |
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| 389 | ! |
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| 390 | varname = 't' |
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| 391 | t3d(:,:,:) = 0.0 |
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| 392 | CALL startget_dyn(varname, rlonv, rlatu, pls, workvar, t3d, 0., |
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| 393 | $ rlonu, rlatv , interbar ) |
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| 394 | ! |
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| 395 | WRITE(*,*) 'T3D min,max:',minval(t3d(:,:,:)), |
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| 396 | . maxval(t3d(:,:,:)) |
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| 397 | varname = 'tpot' |
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| 398 | tpot(:,:,:) = 0.0 |
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| 399 | CALL startget_dyn(varname, rlonv, rlatu, pls, pk, tpot, 0., rlonu, |
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| 400 | $ rlatv, interbar) |
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| 401 | ! |
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| 402 | WRITE(*,*) 'T3D min,max:',minval(t3d(:,:,:)), |
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| 403 | . maxval(t3d(:,:,:)) |
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| 404 | WRITE(*,*) 'PLS min,max:',minval(pls(:,:,:)), |
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| 405 | . maxval(pls(:,:,:)) |
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| 406 | |
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| 407 | c Calcul de l'humidite a saturation |
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| 408 | print*,'avant q_sat' |
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| 409 | call q_sat(llm*jjp1*iip1,t3d,pls,qsat) |
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| 410 | print*,'apres q_sat' |
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| 411 | |
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| 412 | WRITE(*,*) 'QSAT min,max:',minval(qsat(:,:,:)), |
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| 413 | . maxval(qsat(:,:,:)) |
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| 414 | ! |
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| 415 | CC WRITE(*,*) 'QSAT :', qsat(10,20,:) |
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| 416 | ! |
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| 417 | varname = 'q' |
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| 418 | qd(:,:,:) = 0.0 |
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| 419 | q3d(:,:,:,:) = 0.0 |
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| 420 | WRITE(*,*) 'QSAT min,max:',minval(qsat(:,:,:)), |
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| 421 | . maxval(qsat(:,:,:)) |
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| 422 | CALL startget_dyn(varname, rlonv, rlatu, pls, qsat, qd, 0., rlonu, |
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| 423 | $ rlatv , interbar ) |
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| 424 | q3d(:,:,:,1) = qd(:,:,:) |
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| 425 | ! |
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| 426 | |
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| 427 | ! Ozone climatology: |
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| 428 | if (read_climoz >= 1) call regr_lat_time_climoz(read_climoz) |
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| 429 | |
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| 430 | varname = 'tsol' |
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| 431 | ! This line needs to be replaced by a call to restget to get the values in the restart file |
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| 432 | tsol(:) = 0.0 |
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| 433 | CALL startget_phys1d(varname, iip1, jjp1, rlonv, rlatu, klon, |
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| 434 | $ tsol, 0.0, jjm, rlonu, rlatv , interbar ) |
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| 435 | ! |
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| 436 | WRITE(*,*) 'TSOL construit :' |
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| 437 | ! WRITE(*,'(48I3)') INT(TSOL(2:klon)-273) |
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| 438 | ! |
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| 439 | varname = 'qsol' |
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| 440 | qsol(:) = 0.0 |
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| 441 | CALL startget_phys1d(varname, iip1, jjp1, rlonv, rlatu, klon, |
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| 442 | $ qsol, 0.0, jjm, rlonu, rlatv , interbar ) |
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| 443 | ! |
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| 444 | varname = 'snow' |
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| 445 | sn(:) = 0.0 |
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| 446 | CALL startget_phys1d(varname, iip1, jjp1, rlonv, rlatu, klon, sn, |
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| 447 | $ 0.0, jjm, rlonu, rlatv , interbar ) |
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| 448 | ! |
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| 449 | varname = 'rads' |
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| 450 | radsol(:) = 0.0 |
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| 451 | CALL startget_phys1d(varname,iip1,jjp1,rlonv,rlatu,klon,radsol, |
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| 452 | $ 0.0, jjm, rlonu, rlatv , interbar ) |
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| 453 | ! |
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| 454 | varname = 'rugmer' |
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| 455 | rugmer(:) = 0.0 |
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| 456 | CALL startget_phys1d(varname,iip1,jjp1,rlonv,rlatu,klon,rugmer, |
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| 457 | $ 0.0, jjm, rlonu, rlatv , interbar ) |
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| 458 | ! |
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| 459 | ! varname = 'agesno' |
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| 460 | ! agesno(:) = 0.0 |
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| 461 | ! CALL startget_phys1d(varname,iip1,jjp1,rlonv,rlatu,klon,agesno,0.0, |
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| 462 | ! . jjm, rlonu, rlatv , interbar ) |
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| 463 | |
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| 464 | varname = 'zmea' |
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| 465 | zmea(:) = 0.0 |
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| 466 | CALL startget_phys1d(varname,iip1,jjp1,rlonv,rlatu,klon,zmea,0.0, |
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| 467 | . jjm, rlonu, rlatv , interbar ) |
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| 468 | |
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| 469 | varname = 'zstd' |
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| 470 | zstd(:) = 0.0 |
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| 471 | CALL startget_phys1d(varname,iip1,jjp1,rlonv,rlatu,klon,zstd,0.0, |
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| 472 | . jjm, rlonu, rlatv , interbar ) |
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| 473 | varname = 'zsig' |
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| 474 | zsig(:) = 0.0 |
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| 475 | CALL startget_phys1d(varname,iip1,jjp1,rlonv,rlatu,klon,zsig,0.0, |
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| 476 | . jjm, rlonu, rlatv , interbar ) |
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| 477 | varname = 'zgam' |
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| 478 | zgam(:) = 0.0 |
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| 479 | CALL startget_phys1d(varname,iip1,jjp1,rlonv,rlatu,klon,zgam,0.0, |
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| 480 | . jjm, rlonu, rlatv , interbar ) |
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| 481 | varname = 'zthe' |
|---|
| 482 | zthe(:) = 0.0 |
|---|
| 483 | CALL startget_phys1d(varname,iip1,jjp1,rlonv,rlatu,klon,zthe,0.0, |
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| 484 | . jjm, rlonu, rlatv , interbar ) |
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| 485 | varname = 'zpic' |
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| 486 | zpic(:) = 0.0 |
|---|
| 487 | CALL startget_phys1d(varname,iip1,jjp1,rlonv,rlatu,klon,zpic,0.0, |
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| 488 | . jjm, rlonu, rlatv , interbar ) |
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| 489 | varname = 'zval' |
|---|
| 490 | zval(:) = 0.0 |
|---|
| 491 | CALL startget_phys1d(varname,iip1,jjp1,rlonv,rlatu,klon,zval,0.0, |
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| 492 | . jjm, rlonu, rlatv , interbar ) |
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| 493 | c |
|---|
| 494 | cc rugsrel(:) = 0.0 |
|---|
| 495 | cc IF(ok_orodr) THEN |
|---|
| 496 | cc DO i = 1, iip1* jjp1 |
|---|
| 497 | cc rugsrel(i) = MAX( 1.e-05, zstd(i)* zsig(i) /2. ) |
|---|
| 498 | cc ENDDO |
|---|
| 499 | cc ENDIF |
|---|
| 500 | |
|---|
| 501 | |
|---|
| 502 | C |
|---|
| 503 | C lecture du fichier glace de terre pour fixer la fraction de terre |
|---|
| 504 | C et de glace de terre |
|---|
| 505 | C |
|---|
| 506 | CALL flininfo("landiceref.nc", iml_lic, jml_lic,llm_tmp, ttm_tmp |
|---|
| 507 | $ , fid) |
|---|
| 508 | ALLOCATE(lat_lic(iml_lic, jml_lic), stat=iret) |
|---|
| 509 | ALLOCATE(lon_lic(iml_lic, jml_lic), stat=iret) |
|---|
| 510 | ALLOCATE(dlon_lic(iml_lic), stat=iret) |
|---|
| 511 | ALLOCATE(dlat_lic(jml_lic), stat=iret) |
|---|
| 512 | ALLOCATE(fraclic(iml_lic, jml_lic), stat=iret) |
|---|
| 513 | CALL flinopen("landiceref.nc", .FALSE., iml_lic, jml_lic, llm_tmp |
|---|
| 514 | $ , lon_lic, lat_lic, lev, ttm_tmp, itaul, date, dt, fid) |
|---|
| 515 | CALL flinget(fid, 'landice', iml_lic, jml_lic, llm_tmp, ttm_tmp |
|---|
| 516 | $ , 1, 1, fraclic) |
|---|
| 517 | CALL flinclo(fid) |
|---|
| 518 | C |
|---|
| 519 | C interpolation sur la grille T du modele |
|---|
| 520 | C |
|---|
| 521 | WRITE(*,*) 'dimensions de landice iml_lic, jml_lic : ', |
|---|
| 522 | $ iml_lic, jml_lic |
|---|
| 523 | c |
|---|
| 524 | C sil les coordonnees sont en degres, on les transforme |
|---|
| 525 | C |
|---|
| 526 | IF( MAXVAL( lon_lic(:,:) ) .GT. 2.0 * asin(1.0) ) THEN |
|---|
| 527 | lon_lic(:,:) = lon_lic(:,:) * 2.0* ASIN(1.0) / 180. |
|---|
| 528 | ENDIF |
|---|
| 529 | IF( maxval( lat_lic(:,:) ) .GT. 2.0 * asin(1.0)) THEN |
|---|
| 530 | lat_lic(:,:) = lat_lic(:,:) * 2.0 * asin(1.0) / 180. |
|---|
| 531 | ENDIF |
|---|
| 532 | |
|---|
| 533 | dlon_lic(1 : iml_lic) = lon_lic(1 : iml_lic, 1) |
|---|
| 534 | dlat_lic(1 : jml_lic) = lat_lic(1 , 1 : jml_lic) |
|---|
| 535 | C |
|---|
| 536 | CALL grille_m(iml_lic, jml_lic, dlon_lic, dlat_lic, fraclic |
|---|
| 537 | $ ,iim, jjp1, |
|---|
| 538 | $ rlonv, rlatu, flic_tmp(1 : iim, 1 : jjp1)) |
|---|
| 539 | cx$$$ flic_tmp(1 : iim, 1 : jjp1) = champint(1: iim, 1 : jjp1) |
|---|
| 540 | flic_tmp(iip1, 1 : jjp1) = flic_tmp(1 , 1 : jjp1) |
|---|
| 541 | C |
|---|
| 542 | C passage sur la grille physique |
|---|
| 543 | C |
|---|
| 544 | CALL gr_dyn_fi(1, iip1, jjp1, klon, flic_tmp, |
|---|
| 545 | $ pctsrf(1:klon, is_lic)) |
|---|
| 546 | C adequation avec le maque terre/mer |
|---|
| 547 | c zmasq(157) = 0. |
|---|
| 548 | WHERE (pctsrf(1 : klon, is_lic) .LT. EPSFRA ) |
|---|
| 549 | pctsrf(1 : klon, is_lic) = 0. |
|---|
| 550 | END WHERE |
|---|
| 551 | WHERE (zmasq( 1 : klon) .LT. EPSFRA) |
|---|
| 552 | pctsrf(1 : klon, is_lic) = 0. |
|---|
| 553 | END WHERE |
|---|
| 554 | pctsrf(1 : klon, is_ter) = zmasq(1 : klon) |
|---|
| 555 | DO ji = 1, klon |
|---|
| 556 | IF (zmasq(ji) .GT. EPSFRA) THEN |
|---|
| 557 | IF ( pctsrf(ji, is_lic) .GE. zmasq(ji)) THEN |
|---|
| 558 | pctsrf(ji, is_lic) = zmasq(ji) |
|---|
| 559 | pctsrf(ji, is_ter) = 0. |
|---|
| 560 | ELSE |
|---|
| 561 | pctsrf(ji,is_ter) = zmasq(ji) - pctsrf(ji, is_lic) |
|---|
| 562 | IF (pctsrf(ji,is_ter) .LT. EPSFRA) THEN |
|---|
| 563 | pctsrf(ji,is_ter) = 0. |
|---|
| 564 | pctsrf(ji, is_lic) = zmasq(ji) |
|---|
| 565 | ENDIF |
|---|
| 566 | ENDIF |
|---|
| 567 | ENDIF |
|---|
| 568 | END DO |
|---|
| 569 | C |
|---|
| 570 | C sous surface ocean et glace de mer (pour demarrer on met glace de mer a 0) |
|---|
| 571 | C |
|---|
| 572 | pctsrf(1 : klon, is_oce) = (1. - zmasq(1 : klon)) |
|---|
| 573 | |
|---|
| 574 | |
|---|
| 575 | WHERE (pctsrf(1 : klon, is_oce) .LT. EPSFRA) |
|---|
| 576 | pctsrf(1 : klon, is_oce) = 0. |
|---|
| 577 | END WHERE |
|---|
| 578 | |
|---|
| 579 | if (couple) pctsrf(1 : klon, is_oce) = ocemask_fi(1 : klon) |
|---|
| 580 | |
|---|
| 581 | isst = 0 |
|---|
| 582 | where (pctsrf(2:klon-1,is_oce) >0.) isst = 1 |
|---|
| 583 | C |
|---|
| 584 | C verif que somme des sous surface = 1 |
|---|
| 585 | C |
|---|
| 586 | ji=count( (abs( sum(pctsrf(1 : klon, 1 : nbsrf),dim=2))-1.0) |
|---|
| 587 | $ .GT. EPSFRA) |
|---|
| 588 | IF (ji .NE. 0) THEN |
|---|
| 589 | WRITE(*,*) 'pb repartition sous maille pour ',ji,' points' |
|---|
| 590 | ENDIF |
|---|
| 591 | |
|---|
| 592 | ! where (pctsrf(1:klon, is_ter) >= .5) |
|---|
| 593 | ! pctsrf(1:klon, is_ter) = 1. |
|---|
| 594 | ! pctsrf(1:klon, is_oce) = 0. |
|---|
| 595 | ! pctsrf(1:klon, is_sic) = 0. |
|---|
| 596 | ! pctsrf(1:klon, is_lic) = 0. |
|---|
| 597 | ! zmasq = 1. |
|---|
| 598 | ! endwhere |
|---|
| 599 | ! where (pctsrf(1:klon, is_lic) >= .5) |
|---|
| 600 | ! pctsrf(1:klon, is_ter) = 0. |
|---|
| 601 | ! pctsrf(1:klon, is_oce) = 0. |
|---|
| 602 | ! pctsrf(1:klon, is_sic) = 0. |
|---|
| 603 | ! pctsrf(1:klon, is_lic) = 1. |
|---|
| 604 | ! zmasq = 1. |
|---|
| 605 | ! endwhere |
|---|
| 606 | ! where (pctsrf(1:klon, is_oce) >= .5) |
|---|
| 607 | ! pctsrf(1:klon, is_ter) = 0. |
|---|
| 608 | ! pctsrf(1:klon, is_oce) = 1. |
|---|
| 609 | ! pctsrf(1:klon, is_sic) = 0. |
|---|
| 610 | ! pctsrf(1:klon, is_lic) = 0. |
|---|
| 611 | ! zmasq = 0. |
|---|
| 612 | ! endwhere |
|---|
| 613 | ! where (pctsrf(1:klon, is_sic) >= .5) |
|---|
| 614 | ! pctsrf(1:klon, is_ter) = 0. |
|---|
| 615 | ! pctsrf(1:klon, is_oce) = 0. |
|---|
| 616 | ! pctsrf(1:klon, is_sic) = 1. |
|---|
| 617 | ! pctsrf(1:klon, is_lic) = 0. |
|---|
| 618 | ! zmasq = 0. |
|---|
| 619 | ! endwhere |
|---|
| 620 | ! call gr_fi_dyn(1, klon, iip1, jjp1, zmasq, masque) |
|---|
| 621 | C |
|---|
| 622 | C verif que somme des sous surface = 1 |
|---|
| 623 | C |
|---|
| 624 | ! ji=count( (abs( sum(pctsrf(1 : klon, 1 : nbsrf), dim = 2)) - 1.0 ) |
|---|
| 625 | ! $ .GT. EPSFRA) |
|---|
| 626 | ! IF (ji .NE. 0) THEN |
|---|
| 627 | ! WRITE(*,*) 'pb repartition sous maille pour ',ji,' points' |
|---|
| 628 | ! ENDIF |
|---|
| 629 | |
|---|
| 630 | CALL gr_fi_ecrit(1,klon,iim,jjp1,zmasq,zx_tmp_2d) |
|---|
| 631 | write(*,*)'zmasq = ' |
|---|
| 632 | write(*,'(96i1)')nint(zx_tmp_2d) |
|---|
| 633 | call gr_fi_dyn(1, klon, iip1, jjp1, zmasq, masque) |
|---|
| 634 | WRITE(*,*) 'MASQUE construit : Masque' |
|---|
| 635 | WRITE(*,'(97I1)') nINT(masque(:,:)) |
|---|
| 636 | |
|---|
| 637 | |
|---|
| 638 | |
|---|
| 639 | C Calcul intermediaire |
|---|
| 640 | c |
|---|
| 641 | CALL massdair( p3d, masse ) |
|---|
| 642 | c |
|---|
| 643 | |
|---|
| 644 | print *,' ALPHAX ',alphax |
|---|
| 645 | |
|---|
| 646 | DO l = 1, llm |
|---|
| 647 | DO i = 1, iim |
|---|
| 648 | xppn(i) = aire( i, 1 ) * masse( i , 1 , l ) |
|---|
| 649 | xpps(i) = aire( i,jjp1 ) * masse( i , jjp1 , l ) |
|---|
| 650 | ENDDO |
|---|
| 651 | xpn = SUM(xppn)/apoln |
|---|
| 652 | xps = SUM(xpps)/apols |
|---|
| 653 | DO i = 1, iip1 |
|---|
| 654 | masse( i , 1 , l ) = xpn |
|---|
| 655 | masse( i , jjp1 , l ) = xps |
|---|
| 656 | ENDDO |
|---|
| 657 | ENDDO |
|---|
| 658 | q3d(iip1,:,:,:) = q3d(1,:,:,:) |
|---|
| 659 | phis(iip1,:) = phis(1,:) |
|---|
| 660 | |
|---|
| 661 | C Ecriture |
|---|
| 662 | CALL inidissip( lstardis, nitergdiv, nitergrot, niterh , |
|---|
| 663 | * tetagdiv, tetagrot , tetatemp ) |
|---|
| 664 | print*,'sortie inidissip' |
|---|
| 665 | itau = 0 |
|---|
| 666 | itau_dyn = 0 |
|---|
| 667 | itau_phy = 0 |
|---|
| 668 | iday = dayref +itau/day_step |
|---|
| 669 | time = real(itau-(iday-dayref)*day_step)/day_step |
|---|
| 670 | c |
|---|
| 671 | IF(time.GT.1) THEN |
|---|
| 672 | time = time - 1 |
|---|
| 673 | iday = iday + 1 |
|---|
| 674 | ENDIF |
|---|
| 675 | day_ref = dayref |
|---|
| 676 | annee_ref = anneeref |
|---|
| 677 | |
|---|
| 678 | CALL geopot ( ip1jmp1, tpot , pk , pks, phis , phi ) |
|---|
| 679 | print*,'sortie geopot' |
|---|
| 680 | |
|---|
| 681 | CALL caldyn0 ( itau,uvent,vvent,tpot,psol,masse,pk,phis , |
|---|
| 682 | * phi,w, pbaru,pbarv,time+iday-dayref ) |
|---|
| 683 | print*,'sortie caldyn0' |
|---|
| 684 | CALL dynredem0("start.nc",dayref,phis) |
|---|
| 685 | print*,'sortie dynredem0' |
|---|
| 686 | CALL dynredem1("start.nc",0.0,vvent,uvent,tpot,q3d,masse , |
|---|
| 687 | . psol) |
|---|
| 688 | print*,'sortie dynredem1' |
|---|
| 689 | C |
|---|
| 690 | C Ecriture etat initial physique |
|---|
| 691 | C |
|---|
| 692 | write(*,*)'phystep ',dtvr,iphysiq,nbapp_rad |
|---|
| 693 | phystep = dtvr * REAL(iphysiq) |
|---|
| 694 | radpas = NINT (86400./phystep/ REAL(nbapp_rad) ) |
|---|
| 695 | write(*,*)'phystep =', phystep, radpas |
|---|
| 696 | cIM : lecture de co2_ppm & solaire ds physiq.def |
|---|
| 697 | c co2_ppm = 348.0 |
|---|
| 698 | c solaire = 1365.0 |
|---|
| 699 | |
|---|
| 700 | c |
|---|
| 701 | c Initialisation |
|---|
| 702 | c tsol, qsol, sn,albe, evap,tsoil,rain_fall, snow_fall,solsw, sollw,frugs |
|---|
| 703 | c |
|---|
| 704 | ftsol(:,is_ter) = tsol |
|---|
| 705 | ftsol(:,is_lic) = tsol |
|---|
| 706 | ftsol(:,is_oce) = tsol |
|---|
| 707 | ftsol(:,is_sic) = tsol |
|---|
| 708 | snsrf(:,is_ter) = sn |
|---|
| 709 | snsrf(:,is_lic) = sn |
|---|
| 710 | snsrf(:,is_oce) = sn |
|---|
| 711 | snsrf(:,is_sic) = sn |
|---|
| 712 | falb1(:,is_ter) = 0.08 |
|---|
| 713 | falb1(:,is_lic) = 0.6 |
|---|
| 714 | falb1(:,is_oce) = 0.5 |
|---|
| 715 | falb1(:,is_sic) = 0.6 |
|---|
| 716 | falb2 = falb1 |
|---|
| 717 | evap(:,:) = 0. |
|---|
| 718 | qsolsrf(:,is_ter) = 150 |
|---|
| 719 | qsolsrf(:,is_lic) = 150 |
|---|
| 720 | qsolsrf(:,is_oce) = 150. |
|---|
| 721 | qsolsrf(:,is_sic) = 150. |
|---|
| 722 | do i = 1, nbsrf |
|---|
| 723 | do j = 1, nsoilmx |
|---|
| 724 | tsoil(:,j,i) = tsol |
|---|
| 725 | enddo |
|---|
| 726 | enddo |
|---|
| 727 | rain_fall = 0.; snow_fall = 0. |
|---|
| 728 | solsw = 165. |
|---|
| 729 | sollw = -53. |
|---|
| 730 | t_ancien = 273.15 |
|---|
| 731 | q_ancien = 0. |
|---|
| 732 | agesno = 0. |
|---|
| 733 | c |
|---|
| 734 | frugs(1:klon,is_oce) = rugmer(1:klon) |
|---|
| 735 | frugs(1:klon,is_ter) = MAX(1.0e-05, zstd(1:klon)*zsig(1:klon)/2.0) |
|---|
| 736 | frugs(1:klon,is_lic) = MAX(1.0e-05, zstd(1:klon)*zsig(1:klon)/2.0) |
|---|
| 737 | frugs(1:klon,is_sic) = 0.001 |
|---|
| 738 | fder = 0.0 |
|---|
| 739 | clwcon = 0.0 |
|---|
| 740 | rnebcon = 0.0 |
|---|
| 741 | ratqs = 0.0 |
|---|
| 742 | run_off_lic_0 = 0.0 |
|---|
| 743 | rugoro = 0.0 |
|---|
| 744 | |
|---|
| 745 | c |
|---|
| 746 | c Avant l'appel a phyredem, on initialize les modules de surface |
|---|
| 747 | c avec les valeurs qui vont etre ecrit dans startphy.nc |
|---|
| 748 | c |
|---|
| 749 | dummy = 1.0 |
|---|
| 750 | pbl_tke(:,:,:) = 1.e-8 |
|---|
| 751 | zmax0(:) = 40. |
|---|
| 752 | f0(:) = 1.e-5 |
|---|
| 753 | ema_work1(:,:) = 0. |
|---|
| 754 | ema_work2(:,:) = 0. |
|---|
| 755 | wake_deltat(:,:) = 0. |
|---|
| 756 | wake_deltaq(:,:) = 0. |
|---|
| 757 | wake_s(:) = 0. |
|---|
| 758 | wake_cstar(:) = 0. |
|---|
| 759 | wake_fip(:) = 0. |
|---|
| 760 | |
|---|
| 761 | call fonte_neige_init(run_off_lic_0) |
|---|
| 762 | call pbl_surface_init(qsol, fder, snsrf, qsolsrf, |
|---|
| 763 | $ evap, frugs, agesno, tsoil) |
|---|
| 764 | |
|---|
| 765 | call phyredem("startphy.nc") |
|---|
| 766 | |
|---|
| 767 | |
|---|
| 768 | |
|---|
| 769 | C Sortie Visu pour les champs dynamiques |
|---|
| 770 | cc if (1.eq.0 ) then |
|---|
| 771 | cc print*,'sortie visu' |
|---|
| 772 | cc time_step = 1. |
|---|
| 773 | cc t_ops = 2. |
|---|
| 774 | cc t_wrt = 2. |
|---|
| 775 | cc itau = 2. |
|---|
| 776 | cc visu_file='Etat0_visu.nc' |
|---|
| 777 | cc CALL initdynav(visu_file,dayref,anneeref,time_step, |
|---|
| 778 | cc . t_ops, t_wrt, visuid) |
|---|
| 779 | cc CALL writedynav(visuid, itau,vvent , |
|---|
| 780 | cc . uvent,tpot,pk,phi,q3d,masse,psol,phis) |
|---|
| 781 | cc else |
|---|
| 782 | print*,'CCCCCCCCCCCCCCCCCC REACTIVER SORTIE VISU DANS ETAT0' |
|---|
| 783 | cc endif |
|---|
| 784 | print*,'entree histclo' |
|---|
| 785 | CALL histclo |
|---|
| 786 | |
|---|
| 787 | #endif |
|---|
| 788 | !#endif of #ifdef CPP_EARTH |
|---|
| 789 | RETURN |
|---|
| 790 | ! |
|---|
| 791 | END SUBROUTINE etat0_netcdf |
|---|