| 1 | c $Header$ |
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| 2 | SUBROUTINE conema (dtime,paprs,pplay,t,q,u,v,tra,ntra, |
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| 3 | . work1,work2,d_t,d_q,d_u,d_v,d_tra, |
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| 4 | . rain, snow, kbas, ktop, |
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| 5 | . upwd,dnwd,dnwdbis,bas,top,Ma,cape,tvp,rflag, |
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| 6 | . pbase,bbase,dtvpdt1,dtvpdq1,dplcldt,dplcldr) |
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| 7 | |
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| 8 | IMPLICIT none |
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| 9 | c====================================================================== |
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| 10 | c Auteur(s): Z.X. Li (LMD/CNRS) date: 19930818 |
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| 11 | c Objet: schema de convection de Emanuel (1991) interface |
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| 12 | c Mai 1998: Interface modifiee pour implementation dans LMDZ |
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| 13 | c====================================================================== |
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| 14 | c Arguments: |
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| 15 | c dtime---input-R-pas d'integration (s) |
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| 16 | c paprs---input-R-pression inter-couches (Pa) |
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| 17 | c pplay---input-R-pression au milieu des couches (Pa) |
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| 18 | c t-------input-R-temperature (K) |
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| 19 | c q-------input-R-humidite specifique (kg/kg) |
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| 20 | c u-------input-R-vitesse du vent zonal (m/s) |
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| 21 | c v-------input-R-vitesse duvent meridien (m/s) |
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| 22 | c tra-----input-R-tableau de rapport de melange des traceurs |
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| 23 | c work*: input et output: deux variables de travail, |
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| 24 | c on peut les mettre a 0 au debut |
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| 25 | c |
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| 26 | C d_t-----output-R-increment de la temperature |
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| 27 | c d_q-----output-R-increment de la vapeur d'eau |
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| 28 | c d_u-----output-R-increment de la vitesse zonale |
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| 29 | c d_v-----output-R-increment de la vitesse meridienne |
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| 30 | c d_tra---output-R-increment du contenu en traceurs |
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| 31 | c rain----output-R-la pluie (mm/s) |
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| 32 | c snow----output-R-la neige (mm/s) |
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| 33 | c kbas----output-R-bas du nuage (integer) |
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| 34 | c ktop----output-R-haut du nuage (integer) |
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| 35 | c upwd----output-R-saturated updraft mass flux (kg/m**2/s) |
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| 36 | c dnwd----output-R-saturated downdraft mass flux (kg/m**2/s) |
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| 37 | c dnwdbis-output-R-unsaturated downdraft mass flux (kg/m**2/s) |
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| 38 | c bas-----output-R-bas du nuage (real) |
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| 39 | c top-----output-R-haut du nuage (real) |
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| 40 | c Ma------output-R-flux ascendant non dilue (kg/m**2/s) |
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| 41 | c cape----output-R-CAPE |
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| 42 | c tvp-----output-R-virtual temperature of the lifted parcel |
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| 43 | c rflag---output-R-flag sur le fonctionnement de convect |
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| 44 | c pbase---output-R-pression a la base du nuage (Pa) |
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| 45 | c bbase---output-R-buoyancy a la base du nuage (K) |
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| 46 | c dtvpdt1-output-R-derivative of parcel virtual temp wrt T1 |
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| 47 | c dtvpdq1-output-R-derivative of parcel virtual temp wrt Q1 |
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| 48 | c dplcldt-output-R-derivative of the PCP pressure wrt T1 |
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| 49 | c dplcldr-output-R-derivative of the PCP pressure wrt Q1 |
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| 50 | c====================================================================== |
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| 51 | c |
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| 52 | #include "dimensions.h" |
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| 53 | #include "dimphy.h" |
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| 54 | INTEGER i, l,m,itra |
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| 55 | INTEGER ntra,ntrac !number of tracers; if no tracer transport |
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| 56 | ! is needed, set ntra = 1 (or 0) |
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| 57 | PARAMETER (ntrac=nqmx-2) |
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| 58 | REAL dtime |
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| 59 | c |
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| 60 | |
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| 61 | c |
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| 62 | REAL paprs(klon,klev+1), pplay(klon,klev) |
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| 63 | REAL t(klon,klev), q(klon,klev), d_t(klon,klev), d_q(klon,klev) |
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| 64 | REAL u(klon,klev), v(klon,klev), tra(klon,klev,ntra) |
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| 65 | REAL d_u(klon,klev), d_v(klon,klev), d_tra(klon,klev,ntra) |
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| 66 | REAL work1(klon,klev), work2(klon,klev) |
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| 67 | REAL upwd(klon,klev), dnwd(klon,klev), dnwdbis(klon,klev) |
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| 68 | REAL rain(klon) |
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| 69 | REAL snow(klon) |
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| 70 | REAL cape(klon), tvp(klon,klev), rflag(klon) |
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| 71 | REAL pbase(klon), bbase(klon) |
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| 72 | REAL dtvpdt1(klon,klev), dtvpdq1(klon,klev) |
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| 73 | REAL dplcldt(klon), dplcldr(klon) |
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| 74 | INTEGER kbas(klon), ktop(klon) |
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| 75 | c |
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| 76 | REAL em_t(klev) |
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| 77 | REAL em_q(klev) |
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| 78 | REAL em_qs(klev) |
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| 79 | REAL em_u(klev), em_v(klev), em_tra(klev,ntrac) |
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| 80 | REAL em_ph(klev+1), em_p(klev) |
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| 81 | REAL em_work1(klev), em_work2(klev) |
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| 82 | REAL em_precip, em_d_t(klev), em_d_q(klev) |
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| 83 | REAL em_d_u(klev), em_d_v(klev), em_d_tra(klev,ntrac) |
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| 84 | REAL em_upwd(klev), em_dnwd(klev), em_dnwdbis(klev) |
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| 85 | REAL em_dtvpdt1(klev), em_dtvpdq1(klev) |
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| 86 | REAL em_dplcldt, em_dplcldr |
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| 87 | SAVE em_t,em_q, em_qs, em_ph, em_p, em_work1, em_work2 |
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| 88 | SAVE em_u,em_v, em_tra |
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| 89 | SAVE em_d_u,em_d_v, em_d_tra |
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| 90 | SAVE em_precip, em_d_t, em_d_q, em_upwd, em_dnwd, em_dnwdbis |
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| 91 | INTEGER em_bas, em_top |
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| 92 | SAVE em_bas, em_top |
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| 93 | c |
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| 94 | REAL zx_t, zx_qs, zdelta, zcor |
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| 95 | INTEGER iflag |
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| 96 | REAL sigsum |
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| 97 | ccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccc |
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| 98 | c VARIABLES A SORTIR |
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| 99 | cccccccccccccccccccccccccccccccccccccccccccccccccc |
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| 100 | |
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| 101 | REAL emmip(klev) !variation de flux ascnon dilue i et i+1 |
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| 102 | SAVE emmip |
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| 103 | real emMke(klev) |
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| 104 | save emMke |
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| 105 | real top |
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| 106 | real bas |
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| 107 | real emMa(klev) |
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| 108 | save emMa |
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| 109 | real Ma(klon,klev) |
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| 110 | real Ment(klev,klev) |
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| 111 | real Qent(klev,klev) |
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| 112 | real TPS(klev),TLS(klev) |
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| 113 | real SIJ(klev,klev) |
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| 114 | real em_CAPE, em_TVP(klev) |
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| 115 | real em_pbase, em_bbase |
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| 116 | integer iw,j,k,ix,iy |
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| 117 | ccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccc |
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| 118 | c |
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| 119 | #include "YOMCST.h" |
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| 120 | #include "YOETHF.h" |
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| 121 | #include "FCTTRE.h" |
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| 122 | |
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| 123 | c |
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| 124 | c$$$ print*,'debut conema' |
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| 125 | |
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| 126 | DO 999 i = 1, klon |
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| 127 | DO l = 1, klev+1 |
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| 128 | em_ph(l) = paprs(i,l) / 100.0 |
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| 129 | ENDDO |
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| 130 | c |
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| 131 | DO l = 1, klev |
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| 132 | em_p(l) = pplay(i,l) / 100.0 |
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| 133 | em_t(l) = t(i,l) |
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| 134 | em_q(l) = q(i,l) |
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| 135 | em_u(l) = u(i,l) |
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| 136 | em_v(l) = v(i,l) |
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| 137 | do itra = 1, ntra |
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| 138 | em_tra(l,itra) = tra(i,l,itra) |
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| 139 | enddo |
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| 140 | c$$$ print*,'em_t',em_t |
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| 141 | c$$$ print*,'em_q',em_q |
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| 142 | c$$$ print*,'em_qs',em_qs |
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| 143 | c$$$ print*,'em_u',em_u |
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| 144 | c$$$ print*,'em_v',em_v |
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| 145 | c$$$ print*,'em_tra',em_tra |
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| 146 | c$$$ print*,'em_p',em_p |
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| 147 | |
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| 148 | |
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| 149 | c |
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| 150 | zx_t = em_t(l) |
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| 151 | zdelta=MAX(0.,SIGN(1.,rtt-zx_t)) |
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| 152 | zx_qs= r2es * FOEEW(zx_t,zdelta)/em_p(l)/100.0 |
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| 153 | zx_qs=MIN(0.5,zx_qs) |
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| 154 | c$$$ print*,'zx_qs',zx_qs |
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| 155 | zcor=1./(1.-retv*zx_qs) |
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| 156 | zx_qs=zx_qs*zcor |
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| 157 | em_qs(l) = zx_qs |
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| 158 | c$$$ print*,'em_qs',em_qs |
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| 159 | c |
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| 160 | em_work1(l) = work1(i,l) |
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| 161 | em_work2(l) = work2(i,l) |
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| 162 | emMke(l)=0 |
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| 163 | c emMa(l)=0 |
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| 164 | c Ma(i,l)=0 |
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| 165 | |
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| 166 | em_dtvpdt1(l) = 0. |
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| 167 | em_dtvpdq1(l) = 0. |
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| 168 | dtvpdt1(i,l) = 0. |
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| 169 | dtvpdq1(i,l) = 0. |
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| 170 | ENDDO |
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| 171 | c |
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| 172 | em_dplcldt = 0. |
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| 173 | em_dplcldr = 0. |
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| 174 | rain(i) = 0.0 |
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| 175 | snow(i) = 0.0 |
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| 176 | kbas(i) = 1 |
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| 177 | ktop(i) = 1 |
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| 178 | c ajout SB: |
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| 179 | bas = 1 |
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| 180 | top = 1 |
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| 181 | |
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| 182 | |
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| 183 | c sb3d write(*,1792) (em_work1(m),m=1,klev) |
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| 184 | 1792 format('sig avant convect ',/,10(1X,E13.5)) |
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| 185 | c |
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| 186 | c sb d write(*,1793) (em_work2(m),m=1,klev) |
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| 187 | 1793 format('w avant convect ',/,10(1X,E13.5)) |
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| 188 | |
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| 189 | c$$$ print*,'avant convect' |
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| 190 | ccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccc |
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| 191 | c |
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| 192 | CALL convect(dtime, em_t, em_q, em_qs,em_u ,em_v , |
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| 193 | . em_tra, em_p, em_ph, |
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| 194 | . klev, klev+1, klev-1,ntra, dtime, iflag, |
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| 195 | . em_d_t, em_d_q,em_d_u,em_d_v, |
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| 196 | . em_d_tra, em_precip, |
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| 197 | . em_bas, em_top,em_upwd, em_dnwd, em_dnwdbis, |
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| 198 | . em_work1, em_work2,emmip,emMke,emMa,Ment, |
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| 199 | c SB 11sept98 . Qent,TPS,TLS,SIJ) |
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| 200 | c 19oct98 . Qent,TPS,TLS,SIJ,em_CAPE,em_TVP) |
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| 201 | . Qent,TPS,TLS,SIJ,em_CAPE,em_TVP,em_pbase,em_bbase, |
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| 202 | . em_dtvpdt1,em_dtvpdq1,em_dplcldt,em_dplcldr) |
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| 203 | c |
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| 204 | ccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccc |
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| 205 | c |
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| 206 | c SB: |
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| 207 | if (iflag.ne.1 .and. iflag.ne.4) then |
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| 208 | em_CAPE = 0. |
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| 209 | do l = 1, klev |
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| 210 | em_upwd(l) = 0. |
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| 211 | em_dnwd(l) = 0. |
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| 212 | em_dnwdbis(l) = 0. |
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| 213 | emMa(l) = 0. |
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| 214 | em_TVP(l) = 0. |
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| 215 | enddo |
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| 216 | endif |
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| 217 | c fin SB |
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| 218 | c |
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| 219 | c If sig has been set to zero, then set Ma to zero |
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| 220 | c |
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| 221 | sigsum = 0. |
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| 222 | do k = 1,klev |
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| 223 | sigsum = sigsum + em_work1(k) |
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| 224 | enddo |
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| 225 | if (sigsum .eq. 0.0) then |
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| 226 | do k = 1,klev |
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| 227 | emMa(k) = 0. |
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| 228 | enddo |
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| 229 | endif |
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| 230 | c |
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| 231 | c sb3d print*,'i, iflag=',i,iflag |
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| 232 | c |
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| 233 | ccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccc |
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| 234 | c |
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| 235 | c SORTIE DES ICB ET INB |
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| 236 | c en fait inb et icb correspondent au niveau ou se trouve |
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| 237 | c le nuage,le numero d'interface |
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| 238 | cccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccc |
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| 239 | |
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| 240 | c modif SB: |
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| 241 | if (iflag.EQ.1 .or. iflag.EQ.4) then |
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| 242 | top=em_top |
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| 243 | bas=em_bas |
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| 244 | kbas(i) = em_bas |
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| 245 | ktop(i) = em_top |
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| 246 | endif |
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| 247 | |
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| 248 | pbase(i) = em_pbase |
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| 249 | bbase(i) = em_bbase |
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| 250 | rain(i) = em_precip/ 86400.0 |
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| 251 | snow(i) = 0.0 |
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| 252 | cape(i) = em_CAPE |
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| 253 | rflag(i) = float(iflag) |
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| 254 | c SB kbas(i) = em_bas |
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| 255 | c SB ktop(i) = em_top |
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| 256 | dplcldt(i) = em_dplcldt |
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| 257 | dplcldr(i) = em_dplcldr |
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| 258 | DO l = 1, klev |
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| 259 | d_t(i,l) = dtime * em_d_t(l) |
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| 260 | d_q(i,l) = dtime * em_d_q(l) |
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| 261 | d_u(i,l) = dtime * em_d_u(l) |
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| 262 | d_v(i,l) = dtime * em_d_v(l) |
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| 263 | do itra = 1, ntra |
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| 264 | d_tra(i,l,itra) = dtime * em_d_tra(l,itra) |
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| 265 | enddo |
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| 266 | upwd(i,l) = em_upwd(l) |
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| 267 | dnwd(i,l) = em_dnwd(l) |
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| 268 | dnwdbis(i,l) = em_dnwdbis(l) |
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| 269 | work1(i,l) = em_work1(l) |
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| 270 | work2(i,l) = em_work2(l) |
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| 271 | Ma(i,l)=emMa(l) |
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| 272 | tvp(i,l)=em_TVP(l) |
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| 273 | dtvpdt1(i,l) = em_dtvpdt1(l) |
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| 274 | dtvpdq1(i,l) = em_dtvpdq1(l) |
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| 275 | ENDDO |
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| 276 | 999 CONTINUE |
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| 277 | |
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| 278 | |
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| 279 | RETURN |
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| 280 | END |
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| 281 | |
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