| 1 | MODULE etat0dyn |
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| 2 | |
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| 3 | !******************************************************************************* |
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| 4 | ! Purpose: Create dynamical initial state using atmospheric fields from a |
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| 5 | ! database of atmospheric to initialize the model. |
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| 6 | !------------------------------------------------------------------------------- |
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| 7 | ! Comments: |
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| 8 | |
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| 9 | ! * This module is designed to work for Earth (and with ioipsl) |
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| 10 | |
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| 11 | ! * etat0dyn_netcdf routine can access to NetCDF data through the following |
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| 12 | ! routine (to be called after restget): |
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| 13 | ! CALL startget_dyn3d(varname, lon_in, lat_in, pls, workvar,& |
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| 14 | ! champ, lon_in2, lat_in2) |
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| 15 | |
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| 16 | ! * Variables should have the following names in the NetCDF files: |
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| 17 | ! 'U' : East ward wind (in "ECDYN.nc") |
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| 18 | ! 'V' : Northward wind (in "ECDYN.nc") |
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| 19 | ! 'TEMP' : Temperature (in "ECDYN.nc") |
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| 20 | ! 'R' : Relative humidity (in "ECDYN.nc") |
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| 21 | ! 'RELIEF' : High resolution orography (in "Relief.nc") |
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| 22 | |
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| 23 | ! * The land mask and corresponding weights can be: |
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| 24 | ! 1) already known (in particular if etat0dyn has been called before) ; |
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| 25 | ! in this case, ANY(masque(:,:)/=-99999.) = .TRUE. |
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| 26 | ! 2) computed using the ocean mask from the ocean model (to ensure ocean |
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| 27 | ! fractions are the same for atmosphere and ocean) for coupled runs. |
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| 28 | ! File name: "o2a.nc" ; variable name: "OceMask" |
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| 29 | ! 3) computed from topography file "Relief.nc" for forced runs. |
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| 30 | |
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| 31 | ! * There is a big mess with the longitude size. Should it be iml or iml+1 ? |
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| 32 | ! I have chosen to use the iml+1 as an argument to this routine and we declare |
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| 33 | ! internaly smaller fields when needed. This needs to be cleared once and for |
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| 34 | ! all in LMDZ. A convention is required. |
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| 35 | !------------------------------------------------------------------------------- |
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| 36 | USE ioipsl, ONLY: flininfo, flinopen, flinget, flinclo, histclo |
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| 37 | USE lmdz_assert_eq, ONLY: assert_eq |
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| 38 | USE comconst_mod, ONLY: pi, cpp, kappa |
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| 39 | USE comvert_mod, ONLY: ap, bp, preff, pressure_exner |
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| 40 | USE temps_mod, ONLY: annee_ref, day_ref, itau_dyn, itau_phy, start_time |
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| 41 | USE lmdz_strings, ONLY: strLower |
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| 42 | USE lmdz_iniprint, ONLY: lunout, prt_level |
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| 43 | USE lmdz_comdissnew, ONLY: lstardis, nitergdiv, nitergrot, niterh, tetagdiv, & |
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| 44 | tetagrot, tetatemp, coefdis, vert_prof_dissip |
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| 45 | USE lmdz_comgeom2 |
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| 46 | |
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| 47 | USE lmdz_dimensions, ONLY: iim, jjm, llm, ndm |
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| 48 | USE lmdz_paramet |
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| 49 | IMPLICIT NONE |
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| 50 | |
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| 51 | PRIVATE |
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| 52 | PUBLIC :: etat0dyn_netcdf |
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| 53 | |
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| 54 | |
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| 55 | |
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| 56 | REAL, SAVE :: deg2rad |
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| 57 | INTEGER, SAVE :: iml_dyn, jml_dyn, llm_dyn, ttm_dyn, fid_dyn |
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| 58 | REAL, ALLOCATABLE, SAVE :: lon_dyn(:, :), lat_dyn(:, :), levdyn_ini(:) |
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| 59 | CHARACTER(LEN = 120), PARAMETER :: dynfname = 'ECDYN.nc' |
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| 60 | |
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| 61 | CONTAINS |
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| 62 | |
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| 63 | !------------------------------------------------------------------------------- |
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| 64 | |
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| 65 | SUBROUTINE etat0dyn_netcdf(masque, phis) |
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| 66 | |
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| 67 | !------------------------------------------------------------------------------- |
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| 68 | ! Purpose: Create dynamical initial states. |
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| 69 | !------------------------------------------------------------------------------- |
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| 70 | ! Notes: 1) This routine is designed to work for Earth |
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| 71 | ! 2) If masque(:,:)/=-99999., masque and phis are already known. |
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| 72 | ! Otherwise: compute it. |
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| 73 | !------------------------------------------------------------------------------- |
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| 74 | USE control_mod |
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| 75 | USE regr_lat_time_coefoz_m, ONLY: regr_lat_time_coefoz |
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| 76 | USE regr_pr_o3_m, ONLY: regr_pr_o3 |
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| 77 | USE press_coefoz_m, ONLY: press_coefoz |
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| 78 | USE exner_hyb_m, ONLY: exner_hyb |
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| 79 | USE exner_milieu_m, ONLY: exner_milieu |
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| 80 | USE lmdz_infotrac, ONLY: nqtot, tracers |
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| 81 | USE lmdz_filtreg |
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| 82 | USE lmdz_cppkeys_wrapper, ONLY: CPPKEY_INCA |
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| 83 | USE lmdz_q_sat, ONLY: q_sat |
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| 84 | #ifndef CPP_PARA |
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| 85 | USE lmdz_dynredem, ONLY: dynredem0, dynredem1 |
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| 86 | #endif |
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| 87 | IMPLICIT NONE |
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| 88 | !------------------------------------------------------------------------------- |
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| 89 | ! Arguments: |
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| 90 | REAL, INTENT(INOUT) :: masque(iip1, jjp1) !--- Land-ocean mask |
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| 91 | REAL, INTENT(INOUT) :: phis (iip1, jjp1) !--- Ground geopotential |
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| 92 | !------------------------------------------------------------------------------- |
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| 93 | ! Local variables: |
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| 94 | CHARACTER(LEN = 256) :: modname, fmt |
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| 95 | INTEGER :: i, j, l, ji, itau, iday, iq |
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| 96 | REAL :: xpn, xps, time, phystep |
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| 97 | REAL, DIMENSION(iip1, jjp1) :: psol |
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| 98 | REAL, DIMENSION(iip1, jjp1, llm + 1) :: p3d |
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| 99 | REAL, DIMENSION(iip1, jjp1, llm) :: uvent, t3d, tpot, qsat, qd |
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| 100 | REAL, DIMENSION(iip1, jjp1, llm) :: pk, pls, y, masse |
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| 101 | REAL, DIMENSION(iip1, jjm, llm) :: vvent |
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| 102 | REAL, DIMENSION(ip1jm, llm) :: pbarv |
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| 103 | REAL, DIMENSION(ip1jmp1, llm) :: pbaru, phi, w |
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| 104 | REAL, DIMENSION(ip1jmp1) :: pks |
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| 105 | REAL, DIMENSION(iim) :: xppn, xpps |
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| 106 | REAL, ALLOCATABLE :: q3d(:, :, :, :) |
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| 107 | !------------------------------------------------------------------------------- |
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| 108 | modname = 'etat0dyn_netcdf' |
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| 109 | |
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| 110 | deg2rad = pi / 180.0 |
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| 111 | y(:, :, :) = 0 !ym warning unitialized variable |
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| 112 | |
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| 113 | ! Compute psol AND tsol, knowing phis. |
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| 114 | !******************************************************************************* |
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| 115 | CALL start_init_dyn(rlonv, rlatu, rlonu, rlatv, phis, psol) |
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| 116 | |
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| 117 | ! Mid-levels pressure computation |
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| 118 | !******************************************************************************* |
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| 119 | CALL pression(ip1jmp1, ap, bp, psol, p3d) !--- Update p3d |
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| 120 | IF(pressure_exner) THEN !--- Update pk, pks |
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| 121 | CALL exner_hyb (ip1jmp1, psol, p3d, pks, pk) |
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| 122 | ELSE |
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| 123 | CALL exner_milieu(ip1jmp1, psol, p3d, pks, pk) |
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| 124 | END IF |
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| 125 | pls(:, :, :) = preff * (pk(:, :, :) / cpp)**(1. / kappa) !--- Update pls |
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| 126 | |
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| 127 | ! Update uvent, vvent, t3d and tpot |
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| 128 | !******************************************************************************* |
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| 129 | uvent(:, :, :) = 0.0 ; vvent(:, :, :) = 0.0 ; t3d (:, :, :) = 0.0 |
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| 130 | CALL startget_dyn3d('u', rlonu, rlatu, pls, y, uvent, rlonv, rlatv) |
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| 131 | CALL startget_dyn3d('v', rlonv, rlatv, pls(:, :jjm, :), y(:, :jjm, :), vvent, & |
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| 132 | rlonu, rlatu(:jjm)) |
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| 133 | CALL startget_dyn3d('t', rlonv, rlatu, pls, y, t3d, rlonu, rlatv) |
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| 134 | tpot(:, :, :) = t3d(:, :, :) |
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| 135 | CALL startget_dyn3d('tpot', rlonv, rlatu, pls, pk, tpot, rlonu, rlatv) |
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| 136 | |
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| 137 | WRITE(lunout, *) 'T3D min,max:', MINVAL(t3d(:, :, :)), MAXVAL(t3d(:, :, :)) |
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| 138 | WRITE(lunout, *) 'PLS min,max:', MINVAL(pls(:, :, :)), MAXVAL(pls(:, :, :)) |
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| 139 | |
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| 140 | ! Humidity at saturation computation |
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| 141 | !******************************************************************************* |
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| 142 | WRITE(lunout, *) 'avant q_sat' |
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| 143 | CALL q_sat(llm * jjp1 * iip1, t3d, pls, qsat) |
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| 144 | WRITE(lunout, *) 'apres q_sat' |
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| 145 | WRITE(lunout, *) 'QSAT min,max:', MINVAL(qsat(:, :, :)), MAXVAL(qsat(:, :, :)) |
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| 146 | ! WRITE(lunout,*) 'QSAT :',qsat(10,20,:) |
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| 147 | qd (:, :, :) = 0.0 |
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| 148 | CALL startget_dyn3d('q', rlonv, rlatu, pls, qsat, qd, rlonu, rlatv) |
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| 149 | ALLOCATE(q3d(iip1, jjp1, llm, nqtot)); q3d(:, :, :, :) = 0.0 ; q3d(:, :, :, 1) = qd(:, :, :) |
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| 150 | CALL flinclo(fid_dyn) |
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| 151 | |
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| 152 | ! Parameterization of ozone chemistry: |
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| 153 | !******************************************************************************* |
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| 154 | ! Look for ozone tracer: |
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| 155 | IF (CPPKEY_INCA) THEN |
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| 156 | DO iq = 1, nqtot; IF(strLower(tracers(iq)%name)=="o3") EXIT; |
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| 157 | END DO |
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| 158 | IF(iq/=nqtot + 1) THEN |
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| 159 | CALL regr_lat_time_coefoz |
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| 160 | CALL press_coefoz |
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| 161 | CALL regr_pr_o3(p3d, q3d(:, :, :, iq)) |
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| 162 | q3d(:, :, :, iq) = q3d(:, :, :, iq) * 48. / 29. !--- Mole->mass fraction |
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| 163 | END IF |
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| 164 | END IF |
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| 165 | q3d(iip1, :, :, :) = q3d(1, :, :, :) |
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| 166 | |
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| 167 | ! Writing |
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| 168 | !******************************************************************************* |
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| 169 | CALL inidissip(lstardis, nitergdiv, nitergrot, niterh, tetagdiv, tetagrot, & |
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| 170 | tetatemp, vert_prof_dissip) |
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| 171 | WRITE(lunout, *)'sortie inidissip' |
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| 172 | itau = 0 |
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| 173 | itau_dyn = 0 |
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| 174 | itau_phy = 0 |
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| 175 | iday = dayref + itau / day_step |
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| 176 | time = FLOAT(itau - (iday - dayref) * day_step) / day_step |
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| 177 | IF(time>1.) THEN |
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| 178 | time = time - 1 |
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| 179 | iday = iday + 1 |
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| 180 | END IF |
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| 181 | day_ref = dayref |
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| 182 | annee_ref = anneeref |
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| 183 | CALL geopot(ip1jmp1, tpot, pk, pks, phis, phi) |
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| 184 | WRITE(lunout, *)'sortie geopot' |
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| 185 | CALL caldyn0(itau, uvent, vvent, tpot, psol, masse, pk, phis, & |
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| 186 | phi, w, pbaru, pbarv, time + iday - dayref) |
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| 187 | WRITE(lunout, *)'sortie caldyn0' |
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| 188 | start_time = 0. |
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| 189 | #ifdef CPP_PARA |
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| 190 | CALL dynredem0_loc( "start.nc", dayref, phis) |
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| 191 | #else |
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| 192 | CALL dynredem0("start.nc", dayref, phis) |
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| 193 | #endif |
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| 194 | WRITE(lunout, *)'sortie dynredem0' |
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| 195 | #ifdef CPP_PARA |
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| 196 | CALL dynredem1_loc( "start.nc", 0.0, vvent, uvent, tpot, q3d, masse, psol) |
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| 197 | #else |
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| 198 | CALL dynredem1("start.nc", 0.0, vvent, uvent, tpot, q3d, masse, psol) |
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| 199 | #endif |
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| 200 | WRITE(lunout, *)'sortie dynredem1' |
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| 201 | CALL histclo() |
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| 202 | |
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| 203 | END SUBROUTINE etat0dyn_netcdf |
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| 204 | |
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| 205 | !------------------------------------------------------------------------------- |
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| 206 | |
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| 207 | |
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| 208 | !------------------------------------------------------------------------------- |
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| 209 | |
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| 210 | SUBROUTINE startget_dyn3d(var, lon_in, lat_in, pls, workvar, & |
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| 211 | champ, lon_in2, lat_in2) |
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| 212 | |
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| 213 | |
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| 214 | IMPLICIT NONE |
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| 215 | !=============================================================================== |
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| 216 | ! Purpose: Compute some quantities (u,v,t,q,tpot) using variables U,V,TEMP and R |
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| 217 | ! (3D fields) of file dynfname. |
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| 218 | !------------------------------------------------------------------------------- |
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| 219 | ! Note: An input auxilliary field "workvar" has to be specified in two cases: |
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| 220 | ! * for "q": the saturated humidity. |
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| 221 | ! * for "tpot": the Exner function. |
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| 222 | !=============================================================================== |
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| 223 | ! Arguments: |
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| 224 | CHARACTER(LEN = *), INTENT(IN) :: var |
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| 225 | REAL, INTENT(IN) :: lon_in(:) ! dim (iml) |
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| 226 | REAL, INTENT(IN) :: lat_in(:) ! dim (jml) |
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| 227 | REAL, INTENT(IN) :: pls (:, :, :) ! dim (iml, jml, lml) |
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| 228 | REAL, INTENT(IN) :: workvar(:, :, :) ! dim (iml, jml, lml) |
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| 229 | REAL, INTENT(INOUT) :: champ (:, :, :) ! dim (iml, jml, lml) |
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| 230 | REAL, INTENT(IN) :: lon_in2(:) ! dim (iml) |
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| 231 | REAL, INTENT(IN) :: lat_in2(:) ! dim (jml2) |
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| 232 | !------------------------------------------------------------------------------- |
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| 233 | ! Local variables: |
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| 234 | CHARACTER(LEN = 10) :: vname |
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| 235 | CHARACTER(LEN = 256) :: msg, modname = "startget_dyn3d" |
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| 236 | INTEGER :: iml, jml, jml2, lml, il |
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| 237 | REAL :: xppn, xpps |
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| 238 | !------------------------------------------------------------------------------- |
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| 239 | iml = assert_eq([SIZE(lon_in), SIZE(pls, 1), SIZE(workvar, 1), SIZE(champ, 1), & |
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| 240 | SIZE(lon_in2)], TRIM(modname) // " iml") |
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| 241 | jml = assert_eq(SIZE(lat_in), SIZE(pls, 2), SIZE(workvar, 2), SIZE(champ, 2), & |
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| 242 | TRIM(modname) // " jml") |
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| 243 | lml = assert_eq(SIZE(pls, 3), SIZE(workvar, 3), SIZE(champ, 3), & |
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| 244 | TRIM(modname) // " lml") |
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| 245 | jml2 = SIZE(lat_in2) |
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| 246 | |
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| 247 | !--- CHECK IF THE FIELD IS KNOWN |
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| 248 | SELECT CASE(var) |
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| 249 | CASE('u'); vname = 'U' |
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| 250 | CASE('v'); vname = 'V' |
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| 251 | CASE('t'); vname = 'TEMP' |
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| 252 | CASE('q'); vname = 'R'; msg = 'humidity as the saturated humidity' |
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| 253 | CASE('tpot'); msg = 'potential temperature as the Exner function' |
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| 254 | CASE DEFAULT; msg = 'No rule to extract variable ' // TRIM(var) |
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| 255 | CALL abort_gcm(modname, TRIM(msg) // ' from any data set', 1) |
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| 256 | END SELECT |
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| 257 | |
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| 258 | !--- CHECK IF SOMETHING IS MISSING |
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| 259 | IF((var=='tpot'.OR.var=='q').AND.MINVAL(workvar)==MAXVAL(workvar)) THEN |
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| 260 | msg = 'Could not compute ' // TRIM(msg) // ' is missing or constant.' |
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| 261 | CALL abort_gcm(modname, TRIM(msg), 1) |
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| 262 | END IF |
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| 263 | |
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| 264 | !--- INTERPOLATE 3D FIELD IF NEEDED |
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| 265 | IF(var/='tpot') CALL start_inter_3d(TRIM(vname), lon_in, lat_in, lon_in2, & |
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| 266 | lat_in2, pls, champ) |
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| 267 | |
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| 268 | !--- COMPUTE THE REQUIRED FILED |
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| 269 | SELECT CASE(var) |
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| 270 | CASE('u'); DO il = 1, lml; champ(:, :, il) = champ(:, :, il) * cu(:, 1:jml); |
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| 271 | END DO |
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| 272 | champ(iml, :, :) = champ(1, :, :) !--- Eastward wind |
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| 273 | |
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| 274 | CASE('v'); DO il = 1, lml; champ(:, :, il) = champ(:, :, il) * cv(:, 1:jml); |
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| 275 | END DO |
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| 276 | champ(iml, :, :) = champ(1, :, :) !--- Northward wind |
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| 277 | |
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| 278 | CASE('tpot', 'q') |
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| 279 | IF(var=='tpot') THEN; champ = champ * cpp / workvar !--- Potential temperature |
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| 280 | ELSE; champ = champ * .01 * workvar !--- Relative humidity |
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| 281 | WHERE(champ<0.) champ = 1.0E-10 |
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| 282 | END IF |
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| 283 | DO il = 1, lml |
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| 284 | xppn = SUM(aire(:, 1) * champ(:, 1, il)) / apoln |
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| 285 | xpps = SUM(aire(:, jml) * champ(:, jml, il)) / apols |
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| 286 | champ(:, 1, il) = xppn |
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| 287 | champ(:, jml, il) = xpps |
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| 288 | END DO |
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| 289 | END SELECT |
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| 290 | |
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| 291 | END SUBROUTINE startget_dyn3d |
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| 292 | |
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| 293 | !------------------------------------------------------------------------------- |
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| 294 | |
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| 295 | |
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| 296 | !------------------------------------------------------------------------------- |
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| 297 | |
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| 298 | SUBROUTINE start_init_dyn(lon_in, lat_in, lon_in2, lat_in2, zs, psol) |
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| 299 | |
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| 300 | !------------------------------------------------------------------------------- |
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| 301 | IMPLICIT NONE |
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| 302 | !=============================================================================== |
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| 303 | ! Purpose: Compute psol, knowing phis. |
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| 304 | !=============================================================================== |
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| 305 | ! Arguments: |
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| 306 | REAL, INTENT(IN) :: lon_in (:), lat_in (:) ! dim (iml) (jml) |
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| 307 | REAL, INTENT(IN) :: lon_in2(:), lat_in2(:) ! dim (iml) (jml2) |
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| 308 | REAL, INTENT(IN) :: zs (:, :) ! dim (iml,jml) |
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| 309 | REAL, INTENT(OUT) :: psol(:, :) ! dim (iml,jml) |
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| 310 | !------------------------------------------------------------------------------- |
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| 311 | ! Local variables: |
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| 312 | CHARACTER(LEN = 256) :: modname = 'start_init_dyn' |
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| 313 | REAL :: date, dt |
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| 314 | INTEGER :: iml, jml, jml2, itau(1) |
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| 315 | REAL, ALLOCATABLE :: lon_rad(:), lon_ini(:), var_ana(:, :) |
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| 316 | REAL, ALLOCATABLE :: lat_rad(:), lat_ini(:) |
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| 317 | REAL, ALLOCATABLE :: z(:, :), ps(:, :), ts(:, :) |
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| 318 | !------------------------------------------------------------------------------- |
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| 319 | iml = assert_eq(SIZE(lon_in), SIZE(zs, 1), SIZE(psol, 1), SIZE(lon_in2), & |
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| 320 | TRIM(modname) // " iml") |
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| 321 | jml = assert_eq(SIZE(lat_in), SIZE(zs, 2), SIZE(psol, 2), TRIM(modname) // " jml") |
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| 322 | jml2 = SIZE(lat_in2) |
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| 323 | |
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| 324 | WRITE(lunout, *) 'Opening the surface analysis' |
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| 325 | CALL flininfo(dynfname, iml_dyn, jml_dyn, llm_dyn, ttm_dyn, fid_dyn) |
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| 326 | WRITE(lunout, *) 'Values read: ', iml_dyn, jml_dyn, llm_dyn, ttm_dyn |
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| 327 | |
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| 328 | ALLOCATE(lon_dyn(iml_dyn, jml_dyn), lat_dyn(iml_dyn, jml_dyn)) |
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| 329 | ALLOCATE(levdyn_ini(llm_dyn)) |
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| 330 | CALL flinopen(dynfname, .FALSE., iml_dyn, jml_dyn, llm_dyn, & |
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| 331 | lon_dyn, lat_dyn, levdyn_ini, ttm_dyn, itau, date, dt, fid_dyn) |
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| 332 | |
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| 333 | !--- IF ANGLES ARE IN DEGREES, THEY ARE CONVERTED INTO RADIANS |
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| 334 | ALLOCATE(lon_ini(iml_dyn), lat_ini(jml_dyn)) |
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| 335 | lon_ini(:) = lon_dyn(:, 1); IF(MAXVAL(lon_dyn)>pi) lon_ini = lon_ini * deg2rad |
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| 336 | lat_ini(:) = lat_dyn(1, :); IF(MAXVAL(lat_dyn)>pi) lat_ini = lat_ini * deg2rad |
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| 337 | |
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| 338 | ALLOCATE(var_ana(iml_dyn, jml_dyn), lon_rad(iml_dyn), lat_rad(jml_dyn)) |
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| 339 | CALL get_var_dyn('Z', z) !--- SURFACE GEOPOTENTIAL |
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| 340 | CALL get_var_dyn('SP', ps) !--- SURFACE PRESSURE |
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| 341 | CALL get_var_dyn('ST', ts) !--- SURFACE TEMPERATURE |
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| 342 | ! CALL flinclo(fid_dyn) |
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| 343 | DEALLOCATE(var_ana, lon_rad, lat_rad, lon_ini, lat_ini) |
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| 344 | |
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| 345 | !--- PSOL IS COMPUTED IN PASCALS |
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| 346 | psol(:iml - 1, :) = ps(:iml - 1, :) * (1.0 + (z(:iml - 1, :) - zs(:iml - 1, :)) / 287.0 & |
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| 347 | / ts(:iml - 1, :)) |
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| 348 | psol(iml, :) = psol(1, :) |
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| 349 | DEALLOCATE(z, ps, ts) |
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| 350 | psol(:, 1) = SUM(aire(1:iml - 1, 1) * psol(1:iml - 1, 1)) / apoln !--- NORTH POLE |
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| 351 | psol(:, jml) = SUM(aire(1:iml - 1, jml) * psol(1:iml - 1, jml)) / apols !--- SOUTH POLE |
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| 352 | |
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| 353 | CONTAINS |
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| 354 | |
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| 355 | !------------------------------------------------------------------------------- |
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| 356 | |
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| 357 | SUBROUTINE get_var_dyn(title, field) |
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| 358 | |
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| 359 | !------------------------------------------------------------------------------- |
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| 360 | USE conf_dat_m, ONLY: conf_dat2d |
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| 361 | IMPLICIT NONE |
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| 362 | !------------------------------------------------------------------------------- |
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| 363 | ! Arguments: |
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| 364 | CHARACTER(LEN = *), INTENT(IN) :: title |
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| 365 | REAL, ALLOCATABLE, INTENT(INOUT) :: field(:, :) |
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| 366 | !------------------------------------------------------------------------------- |
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| 367 | ! Local variables: |
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| 368 | CHARACTER(LEN = 256) :: msg |
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| 369 | INTEGER :: tllm |
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| 370 | !------------------------------------------------------------------------------- |
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| 371 | SELECT CASE(title) |
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| 372 | CASE('Z'); tllm = 0; msg = 'geopotential' |
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| 373 | CASE('SP'); tllm = 0; msg = 'surface pressure' |
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| 374 | CASE('ST'); tllm = llm_dyn; msg = 'temperature' |
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| 375 | END SELECT |
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| 376 | IF(.NOT.ALLOCATED(field)) THEN |
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| 377 | ALLOCATE(field(iml, jml)) |
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| 378 | CALL flinget(fid_dyn, title, iml_dyn, jml_dyn, tllm, ttm_dyn, 1, 1, var_ana) |
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| 379 | CALL conf_dat2d(title, lon_ini, lat_ini, lon_rad, lat_rad, var_ana, .TRUE.) |
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| 380 | CALL interp_startvar(title, .TRUE., lon_rad, lat_rad, var_ana, & |
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| 381 | lon_in, lat_in, lon_in2, lat_in2, field) |
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| 382 | ELSE IF(SIZE(field)/=SIZE(z)) THEN |
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| 383 | msg = 'The ' // TRIM(msg) // ' field we have does not have the right size' |
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| 384 | CALL abort_gcm(TRIM(modname), msg, 1) |
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| 385 | END IF |
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| 386 | |
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| 387 | END SUBROUTINE get_var_dyn |
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| 388 | |
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| 389 | !------------------------------------------------------------------------------- |
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| 390 | |
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| 391 | END SUBROUTINE start_init_dyn |
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| 392 | |
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| 393 | !------------------------------------------------------------------------------- |
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| 394 | |
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| 395 | |
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| 396 | !------------------------------------------------------------------------------- |
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| 397 | |
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| 398 | SUBROUTINE start_inter_3d(var, lon_in, lat_in, lon_in2, lat_in2, pls_in, var3d) |
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| 399 | |
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| 400 | !------------------------------------------------------------------------------- |
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| 401 | USE conf_dat_m, ONLY: conf_dat3d |
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| 402 | USE lmdz_libmath_pch, ONLY: pchsp_95, pchfe_95 |
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| 403 | USE lmdz_libmath, ONLY: minmax |
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| 404 | |
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| 405 | |
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| 406 | IMPLICIT NONE |
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| 407 | !------------------------------------------------------------------------------- |
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| 408 | ! Arguments: |
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| 409 | CHARACTER(LEN = *), INTENT(IN) :: var |
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| 410 | REAL, INTENT(IN) :: lon_in(:), lat_in(:) ! dim (iml) (jml) |
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| 411 | REAL, INTENT(IN) :: lon_in2(:), lat_in2(:) ! dim (iml) (jml2) |
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| 412 | REAL, INTENT(IN) :: pls_in(:, :, :) ! dim (iml,jml,lml) |
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| 413 | REAL, INTENT(OUT) :: var3d (:, :, :) ! dim (iml,jml,lml) |
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| 414 | !------------------------------------------------------------------------------- |
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| 415 | ! Local variables: |
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| 416 | CHARACTER(LEN = 256) :: modname = 'start_inter_3d' |
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| 417 | LOGICAL :: skip |
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| 418 | REAL :: chmin, chmax |
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| 419 | INTEGER :: iml, jml, lml, jml2, ii, ij, il, ierr |
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| 420 | INTEGER :: n_extrap ! Extrapolated points number |
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| 421 | REAL, ALLOCATABLE :: ax(:), lon_rad(:), lon_ini(:), lev_dyn(:), yder(:) |
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| 422 | REAL, ALLOCATABLE :: ay(:), lat_rad(:), lat_ini(:), var_tmp3d(:, :, :) |
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| 423 | REAL, ALLOCATABLE, SAVE :: var_ana3d(:, :, :) |
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| 424 | !------------------------------------------------------------------------------- |
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| 425 | iml = assert_eq(SIZE(lon_in), SIZE(lon_in2), SIZE(pls_in, 1), SIZE(var3d, 1), TRIM(modname) // " iml") |
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| 426 | jml = assert_eq(SIZE(lat_in), SIZE(pls_in, 2), SIZE(var3d, 2), TRIM(modname) // " jml") |
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| 427 | lml = assert_eq(SIZE(pls_in, 3), SIZE(var3d, 3), TRIM(modname) // " lml"); jml2 = SIZE(lat_in2) |
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| 428 | |
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| 429 | WRITE(lunout, *)'Going into flinget to extract the 3D field.' |
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| 430 | IF(.NOT.ALLOCATED(var_ana3d)) ALLOCATE(var_ana3d(iml_dyn, jml_dyn, llm_dyn)) |
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| 431 | CALL flinget(fid_dyn, var, iml_dyn, jml_dyn, llm_dyn, ttm_dyn, 1, 1, var_ana3d) |
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| 432 | |
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| 433 | !--- ANGLES IN DEGREES ARE CONVERTED INTO RADIANS |
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| 434 | ALLOCATE(lon_ini(iml_dyn), lat_ini(jml_dyn)) |
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| 435 | lon_ini(:) = lon_dyn(:, 1); IF(MAXVAL(lon_dyn)>pi) lon_ini = lon_ini * deg2rad |
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| 436 | lat_ini(:) = lat_dyn(1, :); IF(MAXVAL(lat_dyn)>pi) lat_ini = lat_ini * deg2rad |
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| 437 | |
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| 438 | !--- FIELDS ARE PROCESSED TO BE ON STANDARD ANGULAR DOMAINS |
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| 439 | ALLOCATE(lon_rad(iml_dyn), lat_rad(jml_dyn), lev_dyn(llm_dyn)) |
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| 440 | CALL conf_dat3d(var, lon_ini, lat_ini, levdyn_ini, & |
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| 441 | lon_rad, lat_rad, lev_dyn, var_ana3d, .TRUE.) |
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| 442 | DEALLOCATE(lon_ini, lat_ini) |
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| 443 | |
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| 444 | !--- COMPUTE THE REQUIRED FIELDS USING ROUTINE grid_noro |
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| 445 | ALLOCATE(var_tmp3d(iml, jml, llm_dyn)) |
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| 446 | DO il = 1, llm_dyn |
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| 447 | CALL interp_startvar(var, il==1, lon_rad, lat_rad, var_ana3d(:, :, il), & |
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| 448 | lon_in, lat_in, lon_in2, lat_in2, var_tmp3d(:, :, il)) |
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| 449 | END DO |
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| 450 | DEALLOCATE(lon_rad, lat_rad) |
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| 451 | |
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| 452 | !--- VERTICAL INTERPOLATION FROM TOP OF ATMOSPHERE TO GROUND |
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| 453 | ALLOCATE(ax(llm_dyn), ay(llm_dyn), yder(llm_dyn)) |
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| 454 | ax = lev_dyn(llm_dyn:1:-1) |
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| 455 | skip = .FALSE. |
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| 456 | n_extrap = 0 |
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| 457 | DO ij = 1, jml |
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| 458 | DO ii = 1, iml - 1 |
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| 459 | ay = var_tmp3d(ii, ij, llm_dyn:1:-1) |
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| 460 | yder = pchsp_95(ax, ay, ibeg = 2, iend = 2, vc_beg = 0., vc_end = 0.) |
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| 461 | CALL pchfe_95(ax, ay, yder, skip, pls_in(ii, ij, lml:1:-1), & |
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| 462 | var3d(ii, ij, lml:1:-1), ierr) |
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| 463 | IF(ierr<0) CALL abort_gcm(TRIM(modname), 'error in pchfe_95', 1) |
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| 464 | n_extrap = n_extrap + ierr |
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| 465 | END DO |
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| 466 | END DO |
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| 467 | IF(n_extrap/=0) WRITE(lunout, *)TRIM(modname) // " pchfe_95: n_extrap=", n_extrap |
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| 468 | var3d(iml, :, :) = var3d(1, :, :) |
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| 469 | |
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| 470 | END SUBROUTINE start_inter_3d |
|---|
| 471 | |
|---|
| 472 | !------------------------------------------------------------------------------- |
|---|
| 473 | |
|---|
| 474 | |
|---|
| 475 | !------------------------------------------------------------------------------- |
|---|
| 476 | |
|---|
| 477 | SUBROUTINE interp_startvar(nam, ibeg, lon, lat, vari, lon1, lat1, lon2, lat2, varo) |
|---|
| 478 | |
|---|
| 479 | !------------------------------------------------------------------------------- |
|---|
| 480 | USE inter_barxy_m, ONLY: inter_barxy |
|---|
| 481 | IMPLICIT NONE |
|---|
| 482 | !------------------------------------------------------------------------------- |
|---|
| 483 | ! Arguments: |
|---|
| 484 | CHARACTER(LEN = *), INTENT(IN) :: nam |
|---|
| 485 | LOGICAL, INTENT(IN) :: ibeg |
|---|
| 486 | REAL, INTENT(IN) :: lon(:), lat(:) ! dim (ii) (jj) |
|---|
| 487 | REAL, INTENT(IN) :: vari(:, :) ! dim (ii,jj) |
|---|
| 488 | REAL, INTENT(IN) :: lon1(:), lat1(:) ! dim (i1) (j1) |
|---|
| 489 | REAL, INTENT(IN) :: lon2(:), lat2(:) ! dim (i1) (j2) |
|---|
| 490 | REAL, INTENT(OUT) :: varo(:, :) ! dim (i1) (j1) |
|---|
| 491 | !------------------------------------------------------------------------------- |
|---|
| 492 | ! Local variables: |
|---|
| 493 | CHARACTER(LEN = 256) :: modname = "interp_startvar" |
|---|
| 494 | INTEGER :: ii, jj, i1, j1, j2 |
|---|
| 495 | REAL, ALLOCATABLE :: vtmp(:, :) |
|---|
| 496 | !------------------------------------------------------------------------------- |
|---|
| 497 | ii = assert_eq(SIZE(lon), SIZE(vari, 1), TRIM(modname) // " ii") |
|---|
| 498 | jj = assert_eq(SIZE(lat), SIZE(vari, 2), TRIM(modname) // " jj") |
|---|
| 499 | i1 = assert_eq(SIZE(lon1), SIZE(lon2), SIZE(varo, 1), TRIM(modname) // " i1") |
|---|
| 500 | j1 = assert_eq(SIZE(lat1), SIZE(varo, 2), TRIM(modname) // " j1") |
|---|
| 501 | j2 = SIZE(lat2) |
|---|
| 502 | ALLOCATE(vtmp(i1 - 1, j1)) |
|---|
| 503 | IF(ibeg.AND.prt_level>1) THEN |
|---|
| 504 | WRITE(lunout, *)"---------------------------------------------------------" |
|---|
| 505 | WRITE(lunout, *)"$$$ Interpolation barycentrique pour " // TRIM(nam) // " $$$" |
|---|
| 506 | WRITE(lunout, *)"---------------------------------------------------------" |
|---|
| 507 | END IF |
|---|
| 508 | CALL inter_barxy(lon, lat(:jj - 1), vari, lon2(:i1 - 1), lat2, vtmp) |
|---|
| 509 | CALL gr_int_dyn(vtmp, varo, i1 - 1, j1) |
|---|
| 510 | |
|---|
| 511 | END SUBROUTINE interp_startvar |
|---|
| 512 | |
|---|
| 513 | !------------------------------------------------------------------------------- |
|---|
| 514 | |
|---|
| 515 | END MODULE etat0dyn |
|---|
| 516 | |
|---|
| 517 | !******************************************************************************* |
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