1 | SUBROUTINE concvl(iflag_clos, & |
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2 | dtime, paprs, pplay, & |
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3 | t, q, t_wake, q_wake, s_wake, u, v, tra, ntra, & |
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4 | Ale, Alp, sig1, w01, & |
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5 | d_t, d_q, d_u, d_v, d_tra, & |
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6 | rain, snow, kbas, ktop, sigd, & |
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7 | cbmf, plcl, plfc, wbeff, upwd, dnwd, dnwdbis, & |
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8 | Ma, mip, Vprecip, & |
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9 | cape, cin, tvp, Tconv, iflag, & |
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10 | pbase, bbase, dtvpdt1, dtvpdq1, dplcldt, dplcldr, & |
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11 | qcondc, wd, pmflxr, pmflxs, & |
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12 | !RomP >>> |
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13 | !! . da,phi,mp,dd_t,dd_q,lalim_conv,wght_th) |
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14 | da, phi, mp, phi2, d1a, dam, sij, clw, elij, & ! RomP |
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15 | dd_t, dd_q, lalim_conv, wght_th, & ! RomP |
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16 | evap, ep, epmlmMm, eplaMm, & ! RomP |
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17 | wdtrainA, wdtrainM, wght) ! RomP+RL |
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18 | !RomP <<< |
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19 | ! ************************************************************** |
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20 | ! * |
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21 | ! CONCVL * |
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22 | ! * |
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23 | ! * |
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24 | ! written by : Sandrine Bony-Lena, 17/05/2003, 11.16.04 * |
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25 | ! modified by : * |
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26 | ! ************************************************************** |
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27 | |
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28 | |
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29 | USE dimphy |
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30 | USE infotrac, ONLY: nbtr |
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31 | IMPLICIT NONE |
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32 | ! ====================================================================== |
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33 | ! Auteur(s): S. Bony-Lena (LMD/CNRS) date: ??? |
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34 | ! Objet: schema de convection de Emanuel (1991) interface |
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35 | ! ====================================================================== |
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36 | ! Arguments: |
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37 | ! dtime--input-R-pas d'integration (s) |
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38 | ! s-------input-R-la vAleur "s" pour chaque couche |
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39 | ! sigs----input-R-la vAleur "sigma" de chaque couche |
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40 | ! sig-----input-R-la vAleur de "sigma" pour chaque niveau |
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41 | ! psolpa--input-R-la pression au sol (en Pa) |
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42 | ! pskapa--input-R-exponentiel kappa de psolpa |
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43 | ! h-------input-R-enthAlpie potentielle (Cp*T/P**kappa) |
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44 | ! q-------input-R-vapeur d'eau (en kg/kg) |
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45 | |
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46 | ! work*: input et output: deux variables de travail, |
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47 | ! on peut les mettre a 0 au debut |
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48 | ! ALE--------input-R-energie disponible pour soulevement |
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49 | ! ALP--------input-R-puissance disponible pour soulevement |
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50 | |
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51 | ! d_h--------output-R-increment de l'enthAlpie potentielle (h) |
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52 | ! d_q--------output-R-increment de la vapeur d'eau |
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53 | ! rain-------output-R-la pluie (mm/s) |
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54 | ! snow-------output-R-la neige (mm/s) |
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55 | ! upwd-------output-R-saturated updraft mass flux (kg/m**2/s) |
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56 | ! dnwd-------output-R-saturated downdraft mass flux (kg/m**2/s) |
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57 | ! dnwd0------output-R-unsaturated downdraft mass flux (kg/m**2/s) |
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58 | ! Ma---------output-R-adiabatic ascent mass flux (kg/m2/s) |
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59 | ! mip--------output-R-mass flux shed by adiabatic ascent (kg/m2/s) |
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60 | ! Vprecip----output-R-vertical profile of precipitations (kg/m2/s) |
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61 | ! Tconv------output-R-environment temperature seen by convective scheme (K) |
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62 | ! Cape-------output-R-CAPE (J/kg) |
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63 | ! Cin -------output-R-CIN (J/kg) |
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64 | ! Tvp--------output-R-Temperature virtuelle d'une parcelle soulevee |
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65 | ! adiabatiquement a partir du niveau 1 (K) |
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66 | ! deltapb----output-R-distance entre LCL et base de la colonne (<0 ; Pa) |
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67 | ! Ice_flag---input-L-TRUE->prise en compte de la thermodynamique de la glace |
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68 | ! dd_t-------output-R-increment de la temperature du aux descentes precipitantes |
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69 | ! dd_q-------output-R-increment de la vapeur d'eau du aux desc precip |
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70 | ! lalim_conv- |
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71 | ! wght_th---- |
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72 | ! evap-------output-R |
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73 | ! ep---------output-R |
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74 | ! epmlmMm----output-R |
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75 | ! eplaMm-----output-R |
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76 | ! wdtrainA---output-R |
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77 | ! wdtrainM---output-R |
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78 | ! wght-------output-R |
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79 | ! ====================================================================== |
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80 | |
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81 | |
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82 | include "clesphys.h" |
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83 | include "dimensions.h" |
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84 | |
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85 | INTEGER iflag_clos |
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86 | |
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87 | REAL dtime, paprs(klon, klev+1), pplay(klon, klev) |
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88 | REAL t(klon, klev), q(klon, klev), u(klon, klev), v(klon, klev) |
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89 | REAL t_wake(klon, klev), q_wake(klon, klev) |
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90 | REAL s_wake(klon) |
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91 | REAL tra(klon, klev, nbtr) |
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92 | INTEGER ntra |
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93 | REAL sig1(klon, klev), w01(klon, klev), ptop2(klon) |
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94 | REAL pmflxr(klon, klev+1), pmflxs(klon, klev+1) |
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95 | REAL Ale(klon), Alp(klon) |
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96 | |
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97 | REAL d_t(klon, klev), d_q(klon, klev), d_u(klon, klev), d_v(klon, klev) |
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98 | REAL dd_t(klon, klev), dd_q(klon, klev) |
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99 | REAL d_tra(klon, klev, nbtr) |
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100 | REAL rain(klon), snow(klon) |
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101 | |
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102 | INTEGER kbas(klon), ktop(klon) |
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103 | REAL em_ph(klon, klev+1), em_p(klon, klev) |
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104 | REAL upwd(klon, klev), dnwd(klon, klev), dnwdbis(klon, klev) |
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105 | |
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106 | !! REAL Ma(klon,klev), mip(klon,klev),Vprecip(klon,klev) !jyg |
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107 | REAL Ma(klon, klev), mip(klon, klev), Vprecip(klon, klev+1) !jyg |
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108 | REAL wght(klon, klev) !RL |
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109 | |
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110 | REAL da(klon, klev), phi(klon, klev, klev), mp(klon, klev) |
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111 | ! RomP >>> |
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112 | REAL phi2(klon, klev, klev) |
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113 | REAL d1a(klon, klev), dam(klon, klev) |
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114 | REAL sij(klon, klev, klev), clw(klon, klev), elij(klon, klev, klev) |
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115 | REAL wdtrainA(klon, klev), wdtrainM(klon, klev) |
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116 | REAL evap(klon, klev), ep(klon, klev) |
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117 | REAL epmlmMm(klon, klev, klev), eplaMm(klon, klev) |
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118 | ! RomP <<< |
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119 | REAL cape(klon), cin(klon), tvp(klon, klev) |
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120 | REAL Tconv(klon, klev) |
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121 | |
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122 | !CR:test: on passe lentr et alim_star des thermiques |
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123 | INTEGER lalim_conv(klon) |
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124 | REAL wght_th(klon, klev) |
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125 | REAL em_sig1feed ! sigma at lower bound of feeding layer |
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126 | REAL em_sig2feed ! sigma at upper bound of feeding layer |
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127 | REAL em_wght(klev) ! weight density determining the feeding mixture |
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128 | !on enleve le save |
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129 | ! SAVE em_sig1feed,em_sig2feed,em_wght |
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130 | |
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131 | INTEGER iflag(klon) |
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132 | REAL rflag(klon) |
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133 | REAL pbase(klon), bbase(klon) |
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134 | REAL dtvpdt1(klon, klev), dtvpdq1(klon, klev) |
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135 | REAL dplcldt(klon), dplcldr(klon) |
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136 | REAL qcondc(klon, klev) |
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137 | REAL wd(klon) |
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138 | REAL plim1(klon), plim2(klon), asupmax(klon, klev) |
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139 | REAL supmax0(klon), asupmaxmin(klon) |
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140 | |
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141 | REAL sigd(klon) |
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142 | REAL zx_t, zdelta, zx_qs, zcor |
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143 | |
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144 | ! INTEGER iflag_mix |
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145 | ! SAVE iflag_mix |
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146 | INTEGER noff, minorig |
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147 | INTEGER i, k, itra |
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148 | REAL qs(klon, klev), qs_wake(klon, klev) |
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149 | REAL cbmf(klon), plcl(klon), plfc(klon), wbeff(klon) |
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150 | !LF SAVE cbmf |
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151 | !IM/JYG REAL, SAVE, ALLOCATABLE :: cbmf(:) |
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152 | !!!$OMP THREADPRIVATE(cbmf)! |
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153 | REAL cbmflast(klon) |
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154 | INTEGER ifrst |
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155 | SAVE ifrst |
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156 | DATA ifrst/0/ |
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157 | !$OMP THREADPRIVATE(ifrst) |
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158 | |
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159 | |
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160 | ! Variables supplementaires liees au bilan d'energie |
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161 | ! Real paire(klon) |
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162 | !LF Real ql(klon,klev) |
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163 | ! Save paire |
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164 | !LF Save ql |
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165 | !LF Real t1(klon,klev),q1(klon,klev) |
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166 | !LF Save t1,q1 |
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167 | ! Data paire /1./ |
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168 | REAL, SAVE, ALLOCATABLE :: ql(:, :), q1(:, :), t1(:, :) |
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169 | !$OMP THREADPRIVATE(ql, q1, t1) |
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170 | |
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171 | ! Variables liees au bilan d'energie et d'enthAlpi |
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172 | REAL ztsol(klon) |
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173 | REAL h_vcol_tot, h_dair_tot, h_qw_tot, h_ql_tot, & |
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174 | h_qs_tot, qw_tot, ql_tot, qs_tot, ec_tot |
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175 | SAVE h_vcol_tot, h_dair_tot, h_qw_tot, h_ql_tot, & |
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176 | h_qs_tot, qw_tot, ql_tot, qs_tot, ec_tot |
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177 | !$OMP THREADPRIVATE(h_vcol_tot, h_dair_tot, h_qw_tot, h_ql_tot) |
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178 | !$OMP THREADPRIVATE(h_qs_tot, qw_tot, ql_tot, qs_tot , ec_tot) |
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179 | REAL d_h_vcol, d_h_dair, d_qt, d_qw, d_ql, d_qs, d_ec |
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180 | REAL d_h_vcol_phy |
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181 | REAL fs_bound, fq_bound |
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182 | SAVE d_h_vcol_phy |
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183 | !$OMP THREADPRIVATE(d_h_vcol_phy) |
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184 | REAL zero_v(klon) |
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185 | CHARACTER *15 ztit |
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186 | INTEGER ip_ebil ! PRINT level for energy conserv. diag. |
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187 | SAVE ip_ebil |
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188 | DATA ip_ebil/2/ |
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189 | !$OMP THREADPRIVATE(ip_ebil) |
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190 | INTEGER if_ebil ! level for energy conserv. dignostics |
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191 | SAVE if_ebil |
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192 | DATA if_ebil/2/ |
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193 | !$OMP THREADPRIVATE(if_ebil) |
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194 | !+jld ec_conser |
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195 | REAL d_t_ec(klon, klev) ! tendance du a la conersion Ec -> E thermique |
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196 | REAL zrcpd |
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197 | !-jld ec_conser |
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198 | !LF |
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199 | INTEGER nloc |
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200 | LOGICAL, SAVE :: first = .TRUE. |
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201 | !$OMP THREADPRIVATE(first) |
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202 | INTEGER, SAVE :: itap, igout |
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203 | !$OMP THREADPRIVATE(itap, igout) |
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204 | |
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205 | include "YOMCST.h" |
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206 | include "YOMCST2.h" |
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207 | include "YOETHF.h" |
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208 | include "FCTTRE.h" |
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209 | include "iniprint.h" |
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210 | |
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211 | IF (first) THEN |
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212 | ! Allocate some variables LF 04/2008 |
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213 | |
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214 | !IM/JYG allocate(cbmf(klon)) |
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215 | ALLOCATE (ql(klon,klev)) |
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216 | ALLOCATE (t1(klon,klev)) |
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217 | ALLOCATE (q1(klon,klev)) |
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218 | itap = 0 |
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219 | igout = klon/2 + 1/klon |
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220 | END IF |
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221 | ! Incrementer le compteur de la physique |
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222 | itap = itap + 1 |
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223 | |
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224 | ! Copy T into Tconv |
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225 | DO k = 1, klev |
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226 | DO i = 1, klon |
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227 | Tconv(i, k) = t(i, k) |
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228 | END DO |
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229 | END DO |
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230 | |
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231 | IF (if_ebil>=1) THEN |
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232 | DO i = 1, klon |
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233 | ztsol(i) = t(i, 1) |
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234 | zero_v(i) = 0. |
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235 | DO k = 1, klev |
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236 | ql(i, k) = 0. |
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237 | END DO |
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238 | END DO |
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239 | END IF |
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240 | |
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241 | ! ym |
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242 | snow(:) = 0 |
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243 | |
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244 | ! IF (ifrst .EQ. 0) THEN |
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245 | ! ifrst = 1 |
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246 | IF (first) THEN |
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247 | first = .FALSE. |
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248 | |
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249 | ! =========================================================================== |
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250 | ! READ IN PARAMETERS FOR THE CLOSURE AND THE MIXING DISTRIBUTION |
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251 | ! =========================================================================== |
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252 | |
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253 | IF (iflag_con==3) THEN |
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254 | ! CALL cv3_inicp() |
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255 | CALL cv3_inip() |
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256 | END IF |
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257 | |
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258 | ! =========================================================================== |
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259 | ! READ IN PARAMETERS FOR CONVECTIVE INHIBITION BY TROPOS. DRYNESS |
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260 | ! =========================================================================== |
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261 | |
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262 | ! c$$$ open (56,file='supcrit.data') |
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263 | ! c$$$ read (56,*) Supcrit1, Supcrit2 |
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264 | ! c$$$ close (56) |
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265 | |
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266 | IF (prt_level>=10) WRITE (lunout, *) 'supcrit1, supcrit2', supcrit1, supcrit2 |
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267 | |
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268 | ! =========================================================================== |
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269 | ! Initialisation pour les bilans d'eau et d'energie |
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270 | ! =========================================================================== |
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271 | IF (if_ebil>=1) d_h_vcol_phy = 0. |
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272 | |
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273 | DO i = 1, klon |
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274 | cbmf(i) = 0. |
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275 | !! plcl(i) = 0. |
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276 | sigd(i) = 0. |
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277 | END DO |
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278 | END IF !(ifrst .EQ. 0) |
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279 | |
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280 | ! Initialisation a chaque pas de temps |
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281 | plfc(:) = 0. |
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282 | wbeff(:) = 100. |
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283 | plcl(:) = 0. |
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284 | |
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285 | DO k = 1, klev + 1 |
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286 | DO i = 1, klon |
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287 | em_ph(i, k) = paprs(i, k)/100.0 |
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288 | pmflxr(i, k) = 0. |
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289 | pmflxs(i, k) = 0. |
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290 | END DO |
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291 | END DO |
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292 | |
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293 | DO k = 1, klev |
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294 | DO i = 1, klon |
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295 | em_p(i, k) = pplay(i, k)/100.0 |
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296 | END DO |
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297 | END DO |
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298 | |
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299 | |
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300 | ! Feeding layer |
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301 | |
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302 | em_sig1feed = 1. |
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303 | em_sig2feed = 0.97 |
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304 | ! em_sig2feed = 0.8 |
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305 | ! Relative Weight densities |
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306 | DO k = 1, klev |
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307 | em_wght(k) = 1. |
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308 | END DO |
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309 | !CRtest: couche alim des tehrmiques ponderee par a* |
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310 | ! DO i = 1, klon |
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311 | ! do k=1,lalim_conv(i) |
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312 | ! em_wght(k)=wght_th(i,k) |
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313 | ! print*,'em_wght=',em_wght(k),wght_th(i,k) |
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314 | ! end do |
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315 | ! END DO |
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316 | |
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317 | IF (iflag_con==4) THEN |
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318 | DO k = 1, klev |
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319 | DO i = 1, klon |
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320 | zx_t = t(i, k) |
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321 | zdelta = max(0., sign(1.,rtt-zx_t)) |
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322 | zx_qs = min(0.5, r2es*foeew(zx_t,zdelta)/em_p(i,k)/100.0) |
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323 | zcor = 1./(1.-retv*zx_qs) |
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324 | qs(i, k) = zx_qs*zcor |
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325 | END DO |
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326 | DO i = 1, klon |
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327 | zx_t = t_wake(i, k) |
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328 | zdelta = max(0., sign(1.,rtt-zx_t)) |
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329 | zx_qs = min(0.5, r2es*foeew(zx_t,zdelta)/em_p(i,k)/100.0) |
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330 | zcor = 1./(1.-retv*zx_qs) |
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331 | qs_wake(i, k) = zx_qs*zcor |
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332 | END DO |
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333 | END DO |
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334 | ELSE ! iflag_con=3 (modif de puristes qui fait la diffce pour la convergence numerique) |
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335 | DO k = 1, klev |
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336 | DO i = 1, klon |
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337 | zx_t = t(i, k) |
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338 | zdelta = max(0., sign(1.,rtt-zx_t)) |
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339 | zx_qs = r2es*foeew(zx_t, zdelta)/em_p(i, k)/100.0 |
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340 | zx_qs = min(0.5, zx_qs) |
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341 | zcor = 1./(1.-retv*zx_qs) |
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342 | zx_qs = zx_qs*zcor |
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343 | qs(i, k) = zx_qs |
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344 | END DO |
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345 | DO i = 1, klon |
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346 | zx_t = t_wake(i, k) |
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347 | zdelta = max(0., sign(1.,rtt-zx_t)) |
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348 | zx_qs = r2es*foeew(zx_t, zdelta)/em_p(i, k)/100.0 |
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349 | zx_qs = min(0.5, zx_qs) |
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350 | zcor = 1./(1.-retv*zx_qs) |
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351 | zx_qs = zx_qs*zcor |
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352 | qs_wake(i, k) = zx_qs |
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353 | END DO |
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354 | END DO |
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355 | END IF ! iflag_con |
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356 | |
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357 | ! ------------------------------------------------------------------ |
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358 | |
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359 | ! Main driver for convection: |
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360 | ! iflag_con=3 -> nvlle version de KE (JYG) |
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361 | ! iflag_con = 30 -> equivAlent to convect3 |
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362 | ! iflag_con = 4 -> equivAlent to convect1/2 |
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363 | |
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364 | |
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365 | IF (iflag_con==30) THEN |
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366 | |
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367 | ! print *, '-> cv_driver' !jyg |
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368 | CALL cv_driver(klon, klev, klevp1, ntra, iflag_con, & |
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369 | t, q, qs, u, v, tra, & |
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370 | em_p, em_ph, iflag, & |
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371 | d_t, d_q, d_u, d_v, d_tra, rain, & |
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372 | Vprecip, cbmf, sig1, w01, & !jyg |
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373 | kbas, ktop, & |
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374 | dtime, Ma, upwd, dnwd, dnwdbis, qcondc, wd, cape, & |
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375 | da, phi, mp, phi2, d1a, dam, sij, clw, elij, & !RomP |
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376 | evap, ep, epmlmMm, eplaMm, & !RomP |
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377 | wdtrainA, wdtrainM) !RomP |
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378 | ! print *, 'cv_driver ->' !jyg |
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379 | |
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380 | DO i = 1, klon |
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381 | cbmf(i) = Ma(i, kbas(i)) |
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382 | END DO |
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383 | |
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384 | !RL |
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385 | wght(:, :) = 0. |
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386 | DO i = 1, klon |
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387 | wght(i, 1) = 1. |
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388 | END DO |
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389 | !RL |
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390 | |
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391 | ELSE |
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392 | |
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393 | !LF necessary for gathered fields |
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394 | nloc = klon |
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395 | CALL cva_driver(klon, klev, klev+1, ntra, nloc, & |
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396 | iflag_con, iflag_mix, iflag_ice_thermo, & |
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397 | iflag_clos, ok_conserv_q, dtime, & |
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398 | t, q, qs, t_wake, q_wake, qs_wake, s_wake, u, v, tra, & |
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399 | em_p, em_ph, & |
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400 | Ale, Alp, & |
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401 | em_sig1feed, em_sig2feed, em_wght, & |
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402 | iflag, d_t, d_q, d_u, d_v, d_tra, rain, kbas, ktop, & |
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403 | cbmf, plcl, plfc, wbeff, sig1, w01, ptop2, sigd, & |
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404 | Ma, mip, Vprecip, upwd, dnwd, dnwdbis, qcondc, wd, & |
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405 | cape, cin, tvp, & |
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406 | dd_t, dd_q, plim1, plim2, asupmax, supmax0, & |
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407 | asupmaxmin, lalim_conv, & |
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408 | !AC!+!RomP+jyg |
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409 | !! da,phi,mp,phi2,d1a,dam,sij,clw,elij, & ! RomP |
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410 | !! evap,ep,epmlmMm,eplaMm, ! RomP |
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411 | da, phi, mp, phi2, d1a, dam, sij, wght, & ! RomP+RL |
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412 | clw, elij, evap, ep, epmlmMm, eplaMm, & ! RomP+RL |
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413 | wdtrainA, wdtrainM) ! RomP |
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414 | !AC!+!RomP+jyg |
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415 | END IF |
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416 | ! ------------------------------------------------------------------ |
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417 | IF (prt_level>=10) WRITE (lunout, *) ' cva_driver -> cbmf,plcl,plfc,wbeff ', & |
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418 | cbmf(1), plcl(1), plfc(1), wbeff(1) |
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419 | |
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420 | DO i = 1, klon |
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421 | rain(i) = rain(i)/86400. |
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422 | rflag(i) = iflag(i) |
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423 | END DO |
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424 | |
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425 | DO k = 1, klev |
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426 | DO i = 1, klon |
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427 | d_t(i, k) = dtime*d_t(i, k) |
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428 | d_q(i, k) = dtime*d_q(i, k) |
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429 | d_u(i, k) = dtime*d_u(i, k) |
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430 | d_v(i, k) = dtime*d_v(i, k) |
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431 | END DO |
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432 | END DO |
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433 | |
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434 | IF (iflag_con==30) THEN |
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435 | DO itra = 1, ntra |
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436 | DO k = 1, klev |
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437 | DO i = 1, klon |
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438 | !RL! d_tra(i,k,itra) =dtime*d_tra(i,k,itra) |
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439 | d_tra(i, k, itra) = 0. |
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440 | END DO |
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441 | END DO |
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442 | END DO |
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443 | END IF |
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444 | |
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445 | !!AC! |
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446 | IF (iflag_con==3) THEN |
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447 | DO itra = 1, ntra |
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448 | DO k = 1, klev |
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449 | DO i = 1, klon |
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450 | !RL! d_tra(i,k,itra) =dtime*d_tra(i,k,itra) |
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451 | d_tra(i, k, itra) = 0. |
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452 | END DO |
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453 | END DO |
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454 | END DO |
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455 | END IF |
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456 | !!AC! |
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457 | |
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458 | DO k = 1, klev |
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459 | DO i = 1, klon |
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460 | t1(i, k) = t(i, k) + d_t(i, k) |
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461 | q1(i, k) = q(i, k) + d_q(i, k) |
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462 | END DO |
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463 | END DO |
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464 | ! !jyg |
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465 | ! --Separation neige/pluie (pour diagnostics) !jyg |
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466 | DO k = 1, klev !jyg |
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467 | DO i = 1, klon !jyg |
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468 | IF (t1(i,k)<rtt) THEN !jyg |
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469 | pmflxs(i, k) = Vprecip(i, k) !jyg |
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470 | ELSE !jyg |
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471 | pmflxr(i, k) = Vprecip(i, k) !jyg |
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472 | END IF !jyg |
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473 | END DO !jyg |
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474 | END DO !jyg |
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475 | |
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476 | ! c IF (if_ebil.ge.2) THEN |
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477 | ! c ztit='after convect' |
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478 | ! c CALL diagetpq(paire,ztit,ip_ebil,2,2,dtime |
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479 | ! c e , t1,q1,ql,qs,u,v,paprs,pplay |
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480 | ! c s , d_h_vcol, d_qt, d_qw, d_ql, d_qs, d_ec) |
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481 | ! c call diagphy(paire,ztit,ip_ebil |
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482 | ! c e , zero_v, zero_v, zero_v, zero_v, zero_v |
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483 | ! c e , zero_v, rain, zero_v, ztsol |
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484 | ! c e , d_h_vcol, d_qt, d_ec |
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485 | ! c s , fs_bound, fq_bound ) |
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486 | ! c END IF |
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487 | |
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488 | |
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489 | ! les traceurs ne sont pas mis dans cette version de convect4: |
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490 | IF (iflag_con==4) THEN |
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491 | DO itra = 1, ntra |
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492 | DO k = 1, klev |
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493 | DO i = 1, klon |
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494 | d_tra(i, k, itra) = 0. |
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495 | END DO |
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496 | END DO |
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497 | END DO |
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498 | END IF |
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499 | ! print*, 'concvl->: dd_t,dd_q ',dd_t(1,1),dd_q(1,1) |
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500 | |
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501 | DO k = 1, klev |
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502 | DO i = 1, klon |
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503 | dtvpdt1(i, k) = 0. |
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504 | dtvpdq1(i, k) = 0. |
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505 | END DO |
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506 | END DO |
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507 | DO i = 1, klon |
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508 | dplcldt(i) = 0. |
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509 | dplcldr(i) = 0. |
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510 | END DO |
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511 | |
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512 | IF (prt_level>=20) THEN |
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513 | DO k = 1, klev |
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514 | ! print*,'physiq apres_add_con i k it d_u d_v d_t d_q qdl0',igout, & |
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515 | ! k,itap,d_u_con(igout,k) ,d_v_con(igout,k), d_t_con(igout,k), & |
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516 | ! d_q_con(igout,k),dql0(igout,k) |
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517 | ! print*,'phys apres_add_con itap Ma cin ALE ALP wak t q undi t q', & |
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518 | ! itap,Ma(igout,k),cin(igout),ALE(igout), ALP(igout), & |
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519 | ! t_wake(igout,k),q_wake(igout,k),t_undi(igout,k),q_undi(igout,k) |
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520 | ! print*,'phy apres_add_con itap CON rain snow EMA wk1 wk2 Vpp mip', & |
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521 | ! itap,rain_con(igout),snow_con(igout),ema_work1(igout,k), & |
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522 | ! ema_work2(igout,k),Vprecip(igout,k), mip(igout,k) |
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523 | ! print*,'phy apres_add_con itap upwd dnwd dnwd0 cape tvp Tconv ', & |
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524 | ! itap,upwd(igout,k),dnwd(igout,k),dnwd0(igout,k),cape(igout), & |
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525 | ! tvp(igout,k),Tconv(igout,k) |
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526 | ! print*,'phy apres_add_con itap dtvpdt dtvdq dplcl dplcldr qcondc', & |
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527 | ! itap,dtvpdt1(igout,k),dtvpdq1(igout,k),dplcldt(igout), & |
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528 | ! dplcldr(igout),qcondc(igout,k) |
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529 | ! print*,'phy apres_add_con itap wd pmflxr Kpmflxr Kp1 Kpmflxs Kp1', & |
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530 | ! itap,wd(igout),pmflxr(igout,k),pmflxr(igout,k+1),pmflxs(igout,k), & |
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531 | ! pmflxs(igout,k+1) |
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532 | ! print*,'phy apres_add_con itap da phi mp ftd fqd lalim wgth', & |
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533 | ! itap,da(igout,k),phi(igout,k,k),mp(igout,k),ftd(igout,k), & |
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534 | ! fqd(igout,k),lalim_conv(igout),wght_th(igout,k) |
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535 | END DO |
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536 | END IF !(prt_level.EQ.20) THEN |
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537 | |
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538 | RETURN |
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539 | END SUBROUTINE concvl |
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540 | |
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