1 | module phyredem |
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2 | |
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3 | implicit none |
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4 | |
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5 | contains |
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6 | |
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7 | subroutine physdem0(filename,lonfi,latfi,nsoil,ngrid,nlay,nq, & |
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8 | phystep,day_ini,time,airefi, & |
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9 | alb,ith,pzmea,pzstd,pzsig,pzgam,pzthe, & |
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10 | phmons,psummit,pbase) |
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11 | ! create physics restart file and write time-independent variables |
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12 | use comsoil_h, only: inertiedat, volcapa, mlayer |
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13 | use geometry_mod, only: cell_area |
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14 | use surfdat_h, only: zmea, zstd, zsig, zgam, zthe, & |
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15 | z0_default, albedice, emisice, emissiv, & |
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16 | iceradius, dtemisice, phisfi, z0, & |
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17 | hmons,summit,base |
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18 | use dimradmars_mod, only: tauvis |
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19 | use iostart, only : open_restartphy, close_restartphy, & |
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20 | put_var, put_field, length |
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21 | use mod_grid_phy_lmdz, only : klon_glo |
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22 | use planete_h, only: aphelie, emin_turb, lmixmin, obliquit, & |
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23 | peri_day, periheli, year_day |
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24 | use comcstfi_h, only: g, mugaz, omeg, rad, rcp |
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25 | use time_phylmdz_mod, only: daysec |
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26 | implicit none |
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27 | |
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28 | character(len=*), intent(in) :: filename |
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29 | real,intent(in) :: lonfi(ngrid) |
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30 | real,intent(in) :: latfi(ngrid) |
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31 | integer,intent(in) :: nsoil |
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32 | integer,intent(in) :: ngrid |
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33 | integer,intent(in) :: nlay |
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34 | integer,intent(in) :: nq |
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35 | real,intent(in) :: phystep |
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36 | real,intent(in) :: day_ini |
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37 | real,intent(in) :: time |
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38 | real,intent(in) :: airefi(ngrid) |
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39 | real,intent(in) :: alb(ngrid) |
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40 | real,intent(in) :: ith(ngrid,nsoil) |
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41 | real,intent(in) :: pzmea(ngrid) |
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42 | real,intent(in) :: pzstd(ngrid) |
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43 | real,intent(in) :: pzsig(ngrid) |
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44 | real,intent(in) :: pzgam(ngrid) |
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45 | real,intent(in) :: pzthe(ngrid) |
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46 | real,intent(in) :: phmons(ngrid) |
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47 | real,intent(in) :: psummit(ngrid) |
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48 | real,intent(in) :: pbase(ngrid) |
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49 | |
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50 | real :: tab_cntrl(length) ! nb "length=100" defined in iostart module |
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51 | |
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52 | ! Create physics start file |
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53 | call open_restartphy(filename) |
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54 | |
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55 | ! Build tab_cntrl(:) array |
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56 | tab_cntrl(:)=0.0 |
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57 | !cccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccc |
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58 | ! Fill control array tab_cntrl(:) with parameters for this run |
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59 | !cccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccc |
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60 | ! Informations on the physics grid |
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61 | tab_cntrl(1) = float(klon_glo) ! total number of nodes on physics grid |
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62 | tab_cntrl(2) = float(nlay) ! number of atmospheric layers |
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63 | tab_cntrl(3) = day_ini + int(time) ! initial day |
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64 | tab_cntrl(4) = time -int(time) ! initial time of day |
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65 | |
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66 | ! Informations about Mars, used by dynamics and physics |
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67 | tab_cntrl(5) = rad ! radius of Mars (m) ~3397200 |
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68 | tab_cntrl(6) = omeg ! rotation rate (rad.s-1) |
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69 | tab_cntrl(7) = g ! gravity (m.s-2) ~3.72 |
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70 | tab_cntrl(8) = mugaz ! Molar mass of the atmosphere (g.mol-1) ~43.49 |
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71 | tab_cntrl(9) = rcp ! = r/cp ~0.256793 (=kappa dans dynamique) |
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72 | tab_cntrl(10) = daysec ! length of a sol (s) ~88775 |
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73 | |
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74 | tab_cntrl(11) = phystep ! time step in the physics |
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75 | tab_cntrl(12) = 0. |
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76 | tab_cntrl(13) = 0. |
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77 | |
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78 | ! Informations about Mars, only for physics |
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79 | tab_cntrl(14) = year_day ! length of year (sols) ~668.6 |
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80 | tab_cntrl(15) = periheli ! min. Sun-Mars distance (Mkm) ~206.66 |
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81 | tab_cntrl(16) = aphelie ! max. SUn-Mars distance (Mkm) ~249.22 |
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82 | tab_cntrl(17) = peri_day ! date of perihelion (sols since N. spring) |
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83 | tab_cntrl(18) = obliquit ! Obliquity of the planet (deg) ~23.98 |
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84 | |
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85 | ! Boundary layer and turbulence |
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86 | tab_cntrl(19) = z0_default ! default surface roughness (m) ~0.01 |
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87 | tab_cntrl(20) = lmixmin ! mixing length ~100 |
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88 | tab_cntrl(21) = emin_turb ! minimal energy ~1.e-8 |
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89 | |
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90 | ! Optical properties of polar caps and ground emissivity |
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91 | tab_cntrl(22) = albedice(1) ! Albedo of northern cap ~0.5 |
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92 | tab_cntrl(23) = albedice(2) ! Albedo of southern cap ~0.5 |
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93 | tab_cntrl(24) = emisice(1) ! Emissivity of northern cap ~0.95 |
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94 | tab_cntrl(25) = emisice(2) ! Emissivity of southern cap ~0.95 |
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95 | tab_cntrl(26) = emissiv ! Emissivity of martian soil ~.95 |
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96 | tab_cntrl(31) = iceradius(1) ! mean scat radius of CO2 snow (north) |
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97 | tab_cntrl(32) = iceradius(2) ! mean scat radius of CO2 snow (south) |
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98 | tab_cntrl(33) = dtemisice(1) ! time scale for snow metamorphism (north) |
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99 | tab_cntrl(34) = dtemisice(2) ! time scale for snow metamorphism (south) |
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100 | |
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101 | ! dust aerosol properties |
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102 | tab_cntrl(27) = tauvis ! mean visible optical depth |
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103 | |
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104 | ! Soil properties: |
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105 | tab_cntrl(35) = volcapa ! soil volumetric heat capacity |
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106 | |
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107 | ! Write the controle array |
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108 | call put_var("controle","Control parameters",tab_cntrl) |
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109 | |
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110 | ! Write the mid-layer depths |
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111 | call put_var("soildepth","Soil mid-layer depth",mlayer) |
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112 | |
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113 | ! Write longitudes |
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114 | call put_field("longitude","Longitudes of physics grid",lonfi) |
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115 | |
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116 | ! Write latitudes |
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117 | call put_field("latitude","Latitudes of physics grid",latfi) |
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118 | |
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119 | ! Write mesh areas |
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120 | call put_field("area","Mesh area",cell_area) |
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121 | |
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122 | ! Write surface geopotential |
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123 | call put_field("phisfi","Geopotential at the surface",phisfi) |
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124 | |
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125 | ! Write surface albedo |
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126 | call put_field("albedodat","Albedo of bare ground",alb) |
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127 | |
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128 | ! Subgrid topogaphy variables |
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129 | call put_field("ZMEA","Relief: mean relief",zmea) |
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130 | call put_field("ZSTD","Relief: standard deviation",zstd) |
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131 | call put_field("ZSIG","Relief: sigma parameter",zsig) |
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132 | call put_field("ZGAM","Relief: gamma parameter",zgam) |
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133 | call put_field("ZTHE","Relief: theta parameter",zthe) |
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134 | call put_field("hmons","Relief: hmons parameter (summit - base)",hmons) |
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135 | call put_field("summit","Relief: altitude from the aeroid of the summit of the highest subgrid topography",summit) |
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136 | call put_field("base","Relief: altitude from the aeroid of the base of the highest subgrid topography",base) |
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137 | |
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138 | ! Soil thermal inertia |
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139 | call put_field("inertiedat","Soil thermal inertia",ith) |
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140 | |
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141 | ! Surface roughness length |
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142 | call put_field("z0","Surface roughness length",z0) |
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143 | |
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144 | ! Close file |
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145 | call close_restartphy |
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146 | |
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147 | end subroutine physdem0 |
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148 | |
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149 | subroutine physdem1(filename,nsoil,ngrid,nlay,nq, & |
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150 | phystep,time,tsurf,tsoil,co2ice,albedo,emis,q2,qsurf,& |
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151 | tauscaling,totcloudfrac,wstar, & |
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152 | mem_Mccn_co2,mem_Nccn_co2,mem_Mh2o_co2, watercap) |
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153 | ! write time-dependent variable to restart file |
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154 | use iostart, only : open_restartphy, close_restartphy, & |
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155 | put_var, put_field |
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156 | use tracer_mod, only: noms ! tracer names |
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157 | use nonoro_gwd_ran_mod, only: du_nonoro_gwd, dv_nonoro_gwd |
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158 | use compute_dtau_mod, only: dtau |
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159 | |
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160 | implicit none |
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161 | |
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162 | include "callkeys.h" |
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163 | |
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164 | character(len=*),intent(in) :: filename |
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165 | integer,intent(in) :: nsoil |
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166 | integer,intent(in) :: ngrid |
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167 | integer,intent(in) :: nlay |
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168 | integer,intent(in) :: nq |
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169 | real,intent(in) :: phystep |
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170 | real,intent(in) :: time |
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171 | real,intent(in) :: tsurf(ngrid) |
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172 | real,intent(in) :: tsoil(ngrid,nsoil) |
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173 | real,intent(in) :: co2ice(ngrid) |
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174 | real,intent(in) :: albedo(ngrid,2) |
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175 | real,intent(in) :: emis(ngrid) |
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176 | real,intent(in) :: q2(ngrid,nlay+1) |
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177 | real,intent(in) :: qsurf(ngrid,nq) |
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178 | real,intent(in) :: tauscaling(ngrid) |
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179 | real,intent(in) :: totcloudfrac(ngrid) |
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180 | real,intent(in) :: wstar(ngrid) |
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181 | real,intent(in) :: mem_Mccn_co2(ngrid,nlay) ! CCN mass of H2O and dust used by CO2 |
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182 | real,intent(in) :: mem_Nccn_co2(ngrid,nlay) ! CCN number of H2O and dust used by CO2 |
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183 | real,intent(in) :: mem_Mh2o_co2(ngrid,nlay) ! H2O mass integred into CO2 crystal |
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184 | real,intent(in) :: watercap(ngrid) |
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185 | |
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186 | integer :: iq |
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187 | character(len=30) :: txt ! to store some text |
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188 | ! indexes of water vapour & water ice tracers (if any): |
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189 | integer :: i_h2o_vap=0 |
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190 | integer :: i_h2o_ice=0 |
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191 | |
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192 | |
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193 | ! Open file |
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194 | call open_restartphy(filename) |
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195 | |
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196 | ! First variable to write must be "Time", in order to correctly |
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197 | ! set time counter in file |
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198 | call put_var("Time","Temps de simulation",time) |
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199 | |
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200 | ! CO2 ice layer |
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201 | call put_field("co2ice","CO2 ice cover",co2ice,time) |
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202 | |
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203 | ! Water ice layer |
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204 | call put_field("watercap","H2O ice cover",watercap,time) |
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205 | |
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206 | ! Surface temperature |
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207 | call put_field("tsurf","Surface temperature",tsurf,time) |
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208 | |
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209 | ! Soil temperature |
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210 | call put_field("tsoil","Soil temperature",tsoil,time) |
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211 | |
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212 | ! Albedo of the surface |
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213 | call put_field("albedo","Surface albedo",albedo(:,1),time) |
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214 | |
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215 | ! Emissivity of the surface |
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216 | call put_field("emis","Surface emissivity",emis,time) |
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217 | |
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218 | ! Planetary Boundary Layer |
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219 | call put_field("q2","pbl wind variance",q2,time) |
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220 | |
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221 | ! Sub-grid cloud fraction |
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222 | call put_field("totcloudfrac","Total cloud fraction",totcloudfrac,time) |
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223 | |
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224 | ! Dust conversion factor |
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225 | ! Only to be read by newstart to convert to actual dust values |
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226 | ! Or by any user who wants to reconstruct dust, opacity from the start files. |
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227 | call put_field("tauscaling","dust conversion factor",tauscaling,time) |
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228 | |
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229 | if (dustinjection.gt.0) then |
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230 | call put_field("dtau","dust opacity difference between GCM and scenario",& |
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231 | dtau,time) |
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232 | endif |
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233 | |
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234 | if (calltherm) then |
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235 | call put_field("wstar","Max vertical velocity in thermals",wstar,time) |
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236 | endif |
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237 | |
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238 | ! Tracers on the surface |
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239 | ! preliminary stuff: look for water vapour & water ice tracers (if any) |
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240 | do iq=1,nq |
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241 | if (noms(iq).eq."h2o_vap") then |
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242 | i_h2o_vap=iq |
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243 | endif |
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244 | if (noms(iq).eq."h2o_ice") then |
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245 | i_h2o_ice=iq |
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246 | endif |
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247 | enddo |
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248 | |
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249 | if (nq.gt.0) then |
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250 | do iq=1,nq |
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251 | txt=noms(iq) |
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252 | ! Exception: there is no water vapour surface tracer |
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253 | if (txt.eq."h2o_vap") then |
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254 | write(*,*)"physdem1: skipping water vapour tracer" |
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255 | if (i_h2o_ice.eq.i_h2o_vap) then |
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256 | ! then there is no "water ice" tracer; but still |
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257 | ! there is some water ice on the surface |
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258 | write(*,*)" writing water ice instead" |
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259 | txt="h2o_ice" |
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260 | else |
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261 | ! there is a "water ice" tracer which has been / will be |
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262 | ! delt with in due time |
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263 | cycle |
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264 | endif ! of if (igcm_h2o_ice.eq.igcm_h2o_vap) |
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265 | endif ! of if (txt.eq."h2o_vap") |
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266 | call put_field(trim(txt),"tracer on surface",qsurf(:,iq),time) |
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267 | enddo |
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268 | endif |
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269 | ! Memory of the origin of the co2 particles |
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270 | if (co2useh2o) then |
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271 | call put_field("mem_Mccn_co2","CCN mass of H2O and dust used by CO2",mem_Mccn_co2,time) |
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272 | call put_field("mem_Nccn_co2","CCN number of H2O and dust used by CO2",mem_Nccn_co2,time) |
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273 | call put_field("mem_Mh2o_co2","H2O mass integred into CO2 crystal",mem_Mh2o_co2,time) |
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274 | endif |
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275 | |
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276 | ! Non-orographic gavity waves |
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277 | if (calllott_nonoro) then |
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278 | call put_field("du_nonoro_gwd","Zonal wind tendency due to GW",du_nonoro_gwd,time) |
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279 | call put_field("dv_nonoro_gwd","Meridional wind tendency due to GW",dv_nonoro_gwd,time) |
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280 | endif |
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281 | ! Close file |
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282 | call close_restartphy |
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283 | |
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284 | end subroutine physdem1 |
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285 | |
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286 | end module phyredem |
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