1 | subroutine PHY_Atm_CM_RUN |
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2 | |
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3 | !------------------------------------------------------------------------------+ |
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4 | ! Sun 9-Jun-2013 MAR | |
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5 | ! MAR PHY_Atm_CM_RUN | |
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6 | ! subroutine PHY_Atm_CM_RUN drives Cmoud Microphysical Scheme CMiPhy | |
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7 | ! | |
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8 | ! version 3.p.4.1 created by H. Gallee, Thu 21-Mar-2013 | |
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9 | ! Last Modification by H. Gallee, Sun 9-Jun-2013 | |
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10 | ! | |
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11 | !------------------------------------------------------------------------------+ |
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12 | ! | |
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13 | ! INPUT: psa_DY : Pressure Thickness [kPa] | |
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14 | ! ^^^^^^ | |
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15 | ! qwd_CM : Cloud Droplets Concentr.Var. [kg/kg] | |
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16 | ! qwi_CM : Ice Crystals Concentr.Var. [kg/kg] | |
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17 | ! | |
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18 | ! INPUT / OUTPUT: qv__DY : Air specific Humidity [kg/kg] | |
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19 | ! ^^^^^^^^^^^^^^^ qw__CM : Cloud Droplets Concentration [kg/kg] | |
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20 | ! qi__CM : Ice Crystals Concentration [kg/kg] | |
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21 | ! qs__CM : Snow Particl. Concentration [kg/kg] | |
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22 | ! qr__CM : Rain Drops Concentration [kg/kg] | |
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23 | ! CCNiCM : ice crystals number [Nb/m3] | |
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24 | ! (CCNwCM : Cloud Condens. Nuclei(if #cw) [Nb/m3])| |
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25 | ! | |
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26 | ! OUTPUT (CMiPhy) RainCM : rain Precipitation [m] | |
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27 | ! ^^^^^^^^^^^^^^^ SnowCM : snow Precipitation [m w.e] | |
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28 | ! Ice_CM : ice Precipitation [m w.e] | |
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29 | ! | |
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30 | ! OUTPUT: qwd_CM : Cloud Droplets Concentr.Var. [kg/kg] | |
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31 | ! ^^^^^^^ qid_CM : Ice Crystals Concentr.Var. [kg/kg] | |
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32 | ! | |
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33 | ! HLatCM : Latent Heat Release [K/s] | |
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34 | ! | |
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35 | ! REFER. : 1) Ntezimana, unpubl.thes.LLN, 115 pp, 1993 | |
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36 | ! ^^^^^^^^ 2) Lin et al. JCAM 22, 1065--1092, 1983 | |
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37 | ! (very similar, except that graupels are represented) | |
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38 | ! 3) Emde and Kahlig, An.Geo. 7, 405-- 414, 1989 | |
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39 | ! | |
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40 | ! # OPTIONS: #qg Graupels (qg) Microphysics Activation | |
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41 | ! # ^^^^^^^^ #cw Cloud Condensation Nuclei (CCNw) Microphysics Activation | |
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42 | ! | |
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43 | ! #qd Variations in Time of qi and qw are stored for OUTPUT | |
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44 | ! | |
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45 | ! #WH Additional Output (Each Process is detailed) | |
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46 | ! #EW Additional Output (Energy and Water Conservation) | |
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47 | ! | |
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48 | ! | |
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49 | !------------------------------------------------------------------------------+ |
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50 | |
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51 | use Mod_Real |
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52 | use Mod_PHY____dat |
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53 | use Mod_PHY____grd |
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54 | use Mod_PHY_CM_ctr |
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55 | use Mod_PHY_CM_dat |
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56 | use Mod_PHY_CM_grd |
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57 | use Mod_PHY_CM_kkl |
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58 | use Mod_PHY_DY_kkl |
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59 | |
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60 | |
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61 | |
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62 | |
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63 | ! Local Variables |
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64 | ! =============== |
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65 | |
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66 | use Mod_Atm_CM_RUN |
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67 | |
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68 | |
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69 | IMPLICIT NONE |
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70 | |
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71 | |
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72 | integer :: i ,j ,k ,ikl ! |
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73 | real(kind=real8) :: Hcd,Hsb,Tcd,Tsb ! |
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74 | real(kind=real8) :: Zcd,Zsb,facLHR ! |
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75 | |
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76 | |
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77 | |
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78 | |
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79 | |
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80 | !!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!! |
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81 | ! ! |
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82 | ! ALLOCATION ! |
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83 | ! ========== |
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84 | |
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85 | IF (it_RUN.EQ.1 .OR. FlagDALLOC) THEN ! |
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86 | allocate ( qv__00(kcolp,mzp) ) ! Air Specific Humidity before Cloud Microphys. [kg/kg] |
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87 | allocate ( qw__00(kcolp,mzp) ) ! Cloud Droplets Concentr. before Cloud Microphys. [kg/kg] |
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88 | allocate ( qi__00(kcolp,mzp) ) ! Cloud Crystals Concentr. before Cloud Microphys. [kg/kg] |
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89 | allocate ( qs__00(kcolp,mzp) ) ! Snow Particl. Concentr. before Cloud Microphys. [kg/kg] |
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90 | ! #qg allocate ( qg__00(kcolp,mzp) ) ! Graupels Concentr. before Cloud Microphys. [kg/kg] |
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91 | allocate ( qr__00(kcolp,mzp) ) ! Rain Drops Concentr. before Cloud Microphys. [kg/kg] |
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92 | allocate ( CFra00(kcolp,mzp) ) ! Cloud Fraction before Cloud Microphys. [-] |
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93 | ! #cw allocate ( CCNw00(kcolp,mzp) ) ! Cloud Condens. Nuclei before Cloud Microphys. [-] |
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94 | allocate ( CCNi00(kcolp,mzp) ) ! Cloud Ice Nuclei before Cloud Microphys. [-] |
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95 | END IF ! |
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96 | ! ! |
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97 | !!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!! |
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98 | |
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99 | |
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100 | |
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101 | |
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102 | ! Microphysical Variables: from 3D to 2D Arrays |
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103 | ! ======================= ==================== |
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104 | |
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105 | DO ikl = 1,kcolp |
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106 | |
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107 | i = ii__AP(ikl) |
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108 | j = jj__AP(ikl) |
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109 | |
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110 | DO k = 1,mzp |
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111 | qv__00(ikl,k) = qv__DY(ikl,k) |
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112 | qv__DY(ikl,k) = & |
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113 | & max(qv__DY(ikl,k) , epsq) |
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114 | Ta__CM(ikl,k) = pkt_DY(ikl,k) * ExnrDY(ikl,k) |
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115 | |
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116 | IF(qw__CM(ikl,k) .LT. qh_MIN) THEN |
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117 | qw__CM(ikl,k) = max(zer0,qw__CM(ikl,k)) ! Sinon BOUM (possible) |
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118 | Ta__CM(ikl,k) = Ta__CM(ikl,k) - Lv_Cpd * qw__CM(ikl,k) |
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119 | qv__DY(ikl,k) = qv__DY(ikl,k) + qw__CM(ikl,k) |
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120 | qw__CM(ikl,k) = 0. |
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121 | END IF |
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122 | qw__00(ikl,k) = qw__CM(ikl,k) |
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123 | |
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124 | IF(qi__CM(ikl,k) .LT. qh_MIN) THEN |
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125 | qi__CM(ikl,k) = max(zer0,qi__CM(ikl,k)) ! Sinon BOUM (possible) |
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126 | Ta__CM(ikl,k) = Ta__CM(ikl,k) - Ls_Cpd * qi__CM(ikl,k) |
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127 | qv__DY(ikl,k) = qv__DY(ikl,k) + qi__CM(ikl,k) |
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128 | qi__CM(ikl,k) = 0. |
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129 | CCNiCM(ikl,k) = 0. |
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130 | END IF |
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131 | qi__00(ikl,k) = qi__CM(ikl,k) |
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132 | |
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133 | IF(qw__CM(ikl,k) .LT. qh_MIN .AND. & |
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134 | & qi__CM(ikl,k) .LT. qh_MIN) THEN |
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135 | CFraCM(ikl,k) = 0. |
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136 | ELSE |
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137 | CFraCM(ikl,k) =max(CFrMIN,CFraCM(ikl,k)) |
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138 | END IF |
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139 | CFra00(ikl,k) = CFraCM(ikl,k) |
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140 | |
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141 | IF(qr__CM(ikl,k) .LT. qh_MIN) THEN |
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142 | qr__CM(ikl,k) = max(zer0,qr__CM(ikl,k)) ! Sinon BOUM (possible) |
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143 | Ta__CM(ikl,k) = Ta__CM(ikl,k) - Lv_Cpd * qr__CM(ikl,k) |
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144 | qv__DY(ikl,k) = qv__DY(ikl,k) + qr__CM(ikl,k) |
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145 | qr__CM(ikl,k) = 0. |
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146 | END IF |
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147 | qr__00(ikl,k) = qr__CM(ikl,k) |
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148 | |
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149 | IF(qs__CM(ikl,k) .LT. qh_MIN) THEN |
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150 | qs__CM(ikl,k) = max(zer0,qs__CM(ikl,k)) ! Sinon BOUM (possible) |
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151 | Ta__CM(ikl,k) = Ta__CM(ikl,k) - Ls_Cpd * qs__CM(ikl,k) |
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152 | qv__DY(ikl,k) = qv__DY(ikl,k) + qs__CM(ikl,k) |
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153 | qs__CM(ikl,k) = 0. |
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154 | END IF |
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155 | qs__00(ikl,k) = qs__CM(ikl,k) |
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156 | |
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157 | ! #qg qg__00(ikl,k) = qg__CM(ikl,k) |
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158 | |
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159 | ! #cw CCNw00(ikl,k) = CCNwCM(ikl,k) |
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160 | CCNi00(ikl,k) = CCNiCM(ikl,k) |
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161 | |
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162 | qid_CM(ikl,k) = 0. |
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163 | qwd_CM(ikl,k) = 0. |
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164 | END DO |
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165 | |
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166 | |
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167 | |
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168 | |
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169 | ! Vertical Integrated Energy and Water Content |
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170 | ! ============================================ |
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171 | |
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172 | ! #EW wat01D(ikl) =wat0EW(ikl) |
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173 | ! #EW wat11D(ikl) =wat1EW(ikl) |
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174 | ! #EW wat21D(ikl) =wat2EW(ikl) |
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175 | ! #EW watf1D(ikl) =watfEW(ikl) |
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176 | ! #EW enr01D(ikl) =enr0EW(ikl) |
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177 | ! #EW enr11D(ikl) =enr1EW(ikl) |
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178 | ! #EW enr21D(ikl) =enr2EW(ikl) |
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179 | ! #EW mphy2D(ikl) =mphyEW(ikl) |
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180 | |
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181 | |
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182 | END DO |
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183 | ! |
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184 | !!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!! |
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185 | |
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186 | |
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187 | |
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188 | |
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189 | ! Call Cloud Microphysics |
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190 | ! ======================= |
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191 | |
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192 | ! ****** |
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193 | call CMiPhy |
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194 | ! ****** |
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195 | |
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196 | |
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197 | |
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198 | |
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199 | ! Microphysical Variables: from 3D to 2D Arrays |
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200 | ! ======================= ==================== |
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201 | |
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202 | DO ikl = 1,kcolp |
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203 | |
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204 | i = ii__AP(ikl) |
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205 | j = jj__AP(ikl) |
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206 | |
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207 | DO k = 1,mzp |
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208 | dpktCM(ikl,k) = (Ta__CM(ikl,k) / ExnrDY(ikl,k) & |
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209 | & - pkt_DY(ikl,k)) / dt__CM |
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210 | dqv_CM(ikl,k) = (qv__DY(ikl,k) - qv__00(ikl,k)) / dt__CM |
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211 | qv__DY(ikl,k) = qv__00(ikl,k) |
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212 | ! #qd qid_CM(ikl,k) = qid_CM(ikl,k) * psa_DY(ikl) * dsigmi(k) |
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213 | ! #qd qwd_CM(ikl,k) = qwd_CM(ikl,k) * psa_DY(ikl) * dsigmi(k) |
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214 | END DO |
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215 | |
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216 | |
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217 | |
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218 | ! Update of Microphysical Variables: INSIDE PHY_MAR |
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219 | ! -------------------------------------------------- |
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220 | |
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221 | IF (CM_UpD) THEN |
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222 | DO k = 1,mzp |
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223 | |
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224 | dqw_CM(ikl,k) = 0.0000 |
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225 | dqr_CM(ikl,k) = 0.0000 |
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226 | dqi_CM(ikl,k) = 0.0000 |
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227 | dqs_CM(ikl,k) = 0.0000 |
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228 | ! #qg dqg_CM(ikl,k) = 0.0000 |
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229 | |
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230 | dCF_CM(ikl,k) = 0.0000 |
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231 | ! #cw dCw_CM(ikl,k) = 0.0000 |
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232 | dCi_CM(ikl,k) = 0.0000 |
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233 | END DO |
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234 | |
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235 | |
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236 | |
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237 | ! Update of Microphysical Variables: OUTSIDE PHY_MAR |
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238 | ! -------------------------------------------------- |
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239 | |
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240 | ELSE |
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241 | DO k = 1,mzp |
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242 | dqw_CM(ikl,k) = (qw__CM(ikl,k) -qw__00(ikl,k)) / dt__CM |
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243 | dqr_CM(ikl,k) = (qr__CM(ikl,k) -qr__00(ikl,k)) / dt__CM |
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244 | dqi_CM(ikl,k) = (qi__CM(ikl,k) -qi__00(ikl,k)) / dt__CM |
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245 | dqs_CM(ikl,k) = (qs__CM(ikl,k) -qs__00(ikl,k)) / dt__CM |
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246 | ! #qg dqg_CM(ikl,k) = (qg__CM(ikl,k) -qg__00(ikl,k)) / dt__CM |
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247 | dCF_CM(ikl,k) = (CFraCM(ikl,k) -CFra00(ikl,k)) / dt__CM |
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248 | ! #cw dCw_CM(ikl,k) = (CCNwCM(ikl,k) -CCNw00(ikl,k)) / dt__CM |
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249 | dCi_CM(ikl,k) = (CCNiCM(ikl,k) -CCNi00(ikl,k)) / dt__CM |
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250 | |
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251 | qw__CM(ikl,k) = qw__00(ikl,k) |
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252 | qr__CM(ikl,k) = qr__00(ikl,k) |
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253 | qi__CM(ikl,k) = qi__00(ikl,k) |
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254 | qs__CM(ikl,k) = qs__00(ikl,k) |
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255 | ! #qg qg__CM(ikl,k) = qg__00(ikl,k) |
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256 | ! Gilles : dCF_CM pas utilise pour mettre a jour CFraCM |
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257 | ! CFraCM(ikl,k) = CFra00(ikl,k) |
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258 | ! #cw CCNwCM(ikl,k) = CCNw00(ikl,k) |
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259 | CCNiCM(ikl,k) = CCNi00(ikl,k) |
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260 | |
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261 | END DO |
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262 | END IF |
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263 | |
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264 | |
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265 | |
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266 | |
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267 | |
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268 | ! Isotopes Proxies: Diagnostics |
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269 | ! ============================= |
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270 | |
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271 | IF (nHL_CM.EQ.0) THEN |
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272 | Hcd_CM(ikl) = 0. |
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273 | Hsb_CM(ikl) = 0. |
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274 | Tcd_CM(ikl) = 0. |
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275 | Tsb_CM(ikl) = 0. |
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276 | Zcd_CM(ikl) = 0. |
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277 | Zsb_CM(ikl) = 0. |
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278 | END IF |
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279 | nHL_CM = nHL_CM + 1 |
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280 | |
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281 | Hcd = 0.0 |
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282 | Hsb = 0.0 |
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283 | Tcd = 0.0 |
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284 | Tsb = 0.0 |
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285 | Zcd = 0.0 |
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286 | Zsb = 0.0 |
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287 | DO k=2,mzp |
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288 | HLatCM(ikl,k) = (Ta__CM(ikl,k) & |
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289 | & -pkt_DY(ikl,k) *ExnrDY(ikl,k)) / dt__CM |
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290 | |
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291 | Hcd = Hcd + dsigmi(k)*max(HLatCM(ikl,k),0.) |
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292 | Hsb = Hsb - dsigmi(k)*min(HLatCM(ikl,k),0.) |
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293 | Tcd = Tcd + dsigmi(k)*max(HLatCM(ikl,k),0.)*Ta__CM(ikl,k) |
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294 | Tsb = Tsb - dsigmi(k)*min(HLatCM(ikl,k),0.)*Ta__CM(ikl,k) |
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295 | Zcd = Zcd + dsigmi(k)*max(HLatCM(ikl,k),0.)*Z___DY(ikl,k) |
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296 | Zsb = Zsb - dsigmi(k)*min(HLatCM(ikl,k),0.)*Z___DY(ikl,k) |
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297 | END DO |
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298 | |
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299 | facLHR = (CpdAir/LhsH2O)*psa_DY(ikl) *1.e3*Grav_I*dt__CM |
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300 | |
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301 | IF (write_Proxy) THEN |
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302 | Hcd_CM(ikl) =(Hcd_CM(ikl) + Hcd * facLHR) / nHL_CM |
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303 | Hsb_CM(ikl) =(Hsb_CM(ikl) + Hsb * facLHR) / nHL_CM |
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304 | Tcd_CM(ikl) =(Tcd_CM(ikl) + Tcd * facLHR) / nHL_CM |
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305 | Tsb_CM(ikl) =(Tsb_CM(ikl) + Tsb * facLHR) / nHL_CM |
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306 | Zcd_CM(ikl) =(Zcd_CM(ikl) + Zcd * facLHR) / nHL_CM |
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307 | Zsb_CM(ikl) =(Zsb_CM(ikl) + Zsb * facLHR) / nHL_CM |
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308 | ELSE |
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309 | Hcd_CM(ikl) = Hcd_CM(ikl) + Hcd * facLHR |
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310 | Hsb_CM(ikl) = Hsb_CM(ikl) + Hsb * facLHR |
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311 | Tcd_CM(ikl) = Tcd_CM(ikl) + Tcd * facLHR |
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312 | Tsb_CM(ikl) = Tsb_CM(ikl) + Tsb * facLHR |
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313 | Zcd_CM(ikl) = Zcd_CM(ikl) + Zcd * facLHR |
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314 | Zsb_CM(ikl) = Zsb_CM(ikl) + Zsb * facLHR |
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315 | END IF |
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316 | |
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317 | END DO |
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318 | |
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319 | IF (write_Proxy) nHL_CM = 0 |
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320 | |
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321 | |
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322 | |
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323 | |
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324 | !!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!! |
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325 | ! ! |
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326 | ! DE-ALLOCATION ! |
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327 | ! ============= ! |
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328 | |
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329 | IF (FlagDALLOC) THEN ! |
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330 | deallocate ( qv__00 ) ! Air Specific Humidity before Cloud Microphys. [kg/kg] |
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331 | deallocate ( qw__00 ) ! Cloud Droplets Concentr. before Cloud Microphys. [kg/kg] |
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332 | deallocate ( qi__00 ) ! Cloud Crystals Concentr. before Cloud Microphys. [kg/kg] |
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333 | deallocate ( qs__00 ) ! Snow Particl. Concentr. before Cloud Microphys. [kg/kg] |
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334 | ! #qg deallocate ( qg__00 ) ! Graupels Concentr. before Cloud Microphys. [kg/kg] |
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335 | deallocate ( qr__00 ) ! Rain Drops Concentr. before Cloud Microphys. [kg/kg] |
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336 | deallocate ( CFra00 ) ! Cloud Fraction before Cloud Microphys. [-] |
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337 | ! #cw deallocate ( CCNw00 ) ! Cloud Condens. Nuclei before Cloud Microphys. [-] |
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338 | deallocate ( CCNi00 ) ! Cloud Ice Nuclei before Cloud Microphys. [-] |
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339 | END IF ! |
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340 | ! ! |
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341 | !!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!! |
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342 | |
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343 | |
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344 | return |
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345 | |
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346 | end subroutine PHY_Atm_CM_RUN |
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