1 | MODULE buoyancy_mod |
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2 | |
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3 | !------------------------------------------------------------------------------! |
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4 | ! Actual revisions: |
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5 | ! ----------------- |
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6 | ! i loop for u-component (sloping surface) is starting from nxlu (needed for |
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7 | ! non-cyclic boundary conditions) |
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8 | ! |
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9 | ! Former revisions: |
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10 | ! ----------------- |
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11 | ! $Id: buoyancy.f90 106 2007-08-16 14:30:26Z letzel $ |
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12 | ! |
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13 | ! 97 2007-06-21 08:23:15Z raasch |
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14 | ! Routine reneralized to be used with temperature AND density: |
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15 | ! argument theta renamed var, new argument var_reference, |
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16 | ! use_pt_reference renamed use_reference, |
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17 | ! calc_mean_pt_profile renamed calc_mean_profile |
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18 | ! |
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19 | ! 57 2007-03-09 12:05:41Z raasch |
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20 | ! Reference temperature pt_reference can be used. |
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21 | ! |
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22 | ! RCS Log replace by Id keyword, revision history cleaned up |
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23 | ! |
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24 | ! Revision 1.19 2006/04/26 12:09:56 raasch |
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25 | ! OpenMP optimization (one dimension added to sums_l) |
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26 | ! |
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27 | ! Revision 1.1 1997/08/29 08:56:48 raasch |
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28 | ! Initial revision |
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29 | ! |
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30 | ! |
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31 | ! Description: |
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32 | ! ------------ |
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33 | ! Buoyancy term of the third component of the equation of motion. |
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34 | ! WARNING: humidity is not regarded when using a sloping surface! |
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35 | !------------------------------------------------------------------------------! |
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36 | |
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37 | PRIVATE |
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38 | PUBLIC buoyancy, calc_mean_profile |
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39 | |
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40 | INTERFACE buoyancy |
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41 | MODULE PROCEDURE buoyancy |
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42 | MODULE PROCEDURE buoyancy_ij |
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43 | END INTERFACE buoyancy |
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44 | |
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45 | INTERFACE calc_mean_profile |
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46 | MODULE PROCEDURE calc_mean_profile |
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47 | END INTERFACE calc_mean_profile |
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48 | |
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49 | CONTAINS |
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50 | |
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51 | |
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52 | !------------------------------------------------------------------------------! |
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53 | ! Call for all grid points |
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54 | !------------------------------------------------------------------------------! |
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55 | SUBROUTINE buoyancy( var, var_reference, wind_component, pr ) |
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56 | |
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57 | USE arrays_3d |
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58 | USE control_parameters |
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59 | USE indices |
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60 | USE pegrid |
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61 | USE statistics |
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62 | |
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63 | IMPLICIT NONE |
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64 | |
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65 | INTEGER :: i, j, k, pr, wind_component |
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66 | REAL :: var_reference |
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67 | REAL, DIMENSION(:,:,:), POINTER :: var |
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68 | |
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69 | |
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70 | IF ( .NOT. sloping_surface ) THEN |
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71 | ! |
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72 | !-- Normal case: horizontal surface |
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73 | IF ( use_reference ) THEN |
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74 | DO i = nxl, nxr |
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75 | DO j = nys, nyn |
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76 | DO k = nzb_s_inner(j,i)+1, nzt-1 |
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77 | tend(k,j,i) = tend(k,j,i) + atmos_ocean_sign * g * 0.5 * & |
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78 | ( & |
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79 | ( var(k,j,i) - hom(k,1,pr,0) ) / var_reference + & |
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80 | ( var(k+1,j,i) - hom(k+1,1,pr,0) ) / var_reference & |
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81 | ) |
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82 | ENDDO |
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83 | ENDDO |
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84 | ENDDO |
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85 | ELSE |
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86 | DO i = nxl, nxr |
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87 | DO j = nys, nyn |
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88 | DO k = nzb_s_inner(j,i)+1, nzt-1 |
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89 | tend(k,j,i) = tend(k,j,i) + atmos_ocean_sign * g * 0.5 * & |
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90 | ( & |
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91 | ( var(k,j,i) - hom(k,1,pr,0) ) / hom(k,1,pr,0) + & |
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92 | ( var(k+1,j,i) - hom(k+1,1,pr,0) ) / hom(k+1,1,pr,0) & |
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93 | ) |
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94 | ENDDO |
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95 | ENDDO |
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96 | ENDDO |
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97 | ENDIF |
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98 | |
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99 | ELSE |
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100 | ! |
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101 | !-- Buoyancy term for a surface with a slope in x-direction. The equations |
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102 | !-- for both the u and w velocity-component contain proportionate terms. |
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103 | !-- Temperature field at time t=0 serves as environmental temperature. |
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104 | !-- Reference temperature (pt_surface) is the one at the lower left corner |
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105 | !-- of the total domain. |
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106 | IF ( wind_component == 1 ) THEN |
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107 | |
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108 | DO i = nxlu, nxr |
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109 | DO j = nys, nyn |
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110 | DO k = nzb_s_inner(j,i)+1, nzt-1 |
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111 | tend(k,j,i) = tend(k,j,i) + g * sin_alpha_surface * & |
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112 | 0.5 * ( ( pt(k,j,i-1) + pt(k,j,i) ) & |
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113 | - ( pt_slope_ref(k,i-1) + pt_slope_ref(k,i) ) & |
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114 | ) / pt_surface |
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115 | ENDDO |
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116 | ENDDO |
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117 | ENDDO |
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118 | |
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119 | ELSEIF ( wind_component == 3 ) THEN |
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120 | |
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121 | DO i = nxl, nxr |
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122 | DO j = nys, nyn |
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123 | DO k = nzb_s_inner(j,i)+1, nzt-1 |
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124 | tend(k,j,i) = tend(k,j,i) + g * cos_alpha_surface * & |
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125 | 0.5 * ( ( pt(k,j,i) + pt(k+1,j,i) ) & |
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126 | - ( pt_slope_ref(k,i) + pt_slope_ref(k+1,i) ) & |
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127 | ) / pt_surface |
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128 | ENDDO |
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129 | ENDDO |
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130 | ENDDO |
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131 | |
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132 | ELSE |
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133 | |
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134 | IF ( myid == 0 ) PRINT*, '+++ buoyancy: no term for component "',& |
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135 | wind_component,'"' |
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136 | CALL local_stop |
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137 | |
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138 | ENDIF |
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139 | |
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140 | ENDIF |
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141 | |
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142 | END SUBROUTINE buoyancy |
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143 | |
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144 | |
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145 | !------------------------------------------------------------------------------! |
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146 | ! Call for grid point i,j |
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147 | !------------------------------------------------------------------------------! |
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148 | SUBROUTINE buoyancy_ij( i, j, var, var_reference, wind_component, pr ) |
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149 | |
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150 | USE arrays_3d |
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151 | USE control_parameters |
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152 | USE indices |
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153 | USE pegrid |
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154 | USE statistics |
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155 | |
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156 | IMPLICIT NONE |
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157 | |
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158 | INTEGER :: i, j, k, pr, wind_component |
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159 | REAL :: var_reference |
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160 | REAL, DIMENSION(:,:,:), POINTER :: var |
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161 | |
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162 | |
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163 | IF ( .NOT. sloping_surface ) THEN |
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164 | ! |
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165 | !-- Normal case: horizontal surface |
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166 | IF ( use_reference ) THEN |
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167 | DO k = nzb_s_inner(j,i)+1, nzt-1 |
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168 | tend(k,j,i) = tend(k,j,i) + atmos_ocean_sign * g * 0.5 * ( & |
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169 | ( var(k,j,i) - hom(k,1,pr,0) ) / var_reference + & |
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170 | ( var(k+1,j,i) - hom(k+1,1,pr,0) ) / var_reference & |
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171 | ) |
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172 | ENDDO |
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173 | ELSE |
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174 | DO k = nzb_s_inner(j,i)+1, nzt-1 |
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175 | tend(k,j,i) = tend(k,j,i) + atmos_ocean_sign * g * 0.5 * ( & |
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176 | ( var(k,j,i) - hom(k,1,pr,0) ) / hom(k,1,pr,0) + & |
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177 | ( var(k+1,j,i) - hom(k+1,1,pr,0) ) / hom(k+1,1,pr,0) & |
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178 | ) |
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179 | ENDDO |
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180 | ENDIF |
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181 | |
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182 | ELSE |
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183 | ! |
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184 | !-- Buoyancy term for a surface with a slope in x-direction. The equations |
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185 | !-- for both the u and w velocity-component contain proportionate terms. |
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186 | !-- Temperature field at time t=0 serves as environmental temperature. |
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187 | !-- Reference temperature (pt_surface) is the one at the lower left corner |
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188 | !-- of the total domain. |
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189 | IF ( wind_component == 1 ) THEN |
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190 | |
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191 | DO k = nzb_s_inner(j,i)+1, nzt-1 |
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192 | tend(k,j,i) = tend(k,j,i) + g * sin_alpha_surface * & |
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193 | 0.5 * ( ( pt(k,j,i-1) + pt(k,j,i) ) & |
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194 | - ( pt_slope_ref(k,i-1) + pt_slope_ref(k,i) ) & |
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195 | ) / pt_surface |
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196 | ENDDO |
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197 | |
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198 | ELSEIF ( wind_component == 3 ) THEN |
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199 | |
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200 | DO k = nzb_s_inner(j,i)+1, nzt-1 |
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201 | tend(k,j,i) = tend(k,j,i) + g * cos_alpha_surface * & |
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202 | 0.5 * ( ( pt(k,j,i) + pt(k+1,j,i) ) & |
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203 | - ( pt_slope_ref(k,i) + pt_slope_ref(k+1,i) ) & |
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204 | ) / pt_surface |
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205 | ENDDO |
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206 | |
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207 | ELSE |
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208 | |
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209 | IF ( myid == 0 ) PRINT*, '+++ buoyancy: no term for component "',& |
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210 | wind_component,'"' |
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211 | CALL local_stop |
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212 | |
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213 | ENDIF |
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214 | |
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215 | ENDIF |
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216 | |
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217 | END SUBROUTINE buoyancy_ij |
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218 | |
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219 | |
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220 | SUBROUTINE calc_mean_profile( var, pr ) |
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221 | |
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222 | !------------------------------------------------------------------------------! |
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223 | ! Description: |
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224 | ! ------------ |
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225 | ! Calculate the horizontally averaged vertical temperature profile (pr=4 in case |
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226 | ! of potential temperature and 44 in case of virtual potential temperature). |
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227 | !------------------------------------------------------------------------------! |
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228 | |
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229 | USE control_parameters |
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230 | USE indices |
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231 | USE pegrid |
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232 | USE statistics |
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233 | |
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234 | IMPLICIT NONE |
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235 | |
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236 | INTEGER :: i, j, k, omp_get_thread_num, pr, tn |
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237 | REAL, DIMENSION(:,:,:), POINTER :: var |
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238 | |
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239 | ! |
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240 | !-- Computation of the horizontally averaged profile of variable var, unless |
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241 | !-- already done by the relevant call from flow_statistics. The calculation |
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242 | !-- is done only for the first respective intermediate timestep in order to |
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243 | !-- spare communication time and to produce identical model results with jobs |
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244 | !-- which are calling flow_statistics at different time intervals. |
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245 | IF ( .NOT. flow_statistics_called .AND. & |
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246 | intermediate_timestep_count == 1 ) THEN |
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247 | |
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248 | ! |
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249 | !-- Horizontal average of variable var |
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250 | tn = 0 ! Default thread number in case of one thread |
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251 | !$OMP PARALLEL PRIVATE( i, j, k, tn ) |
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252 | !$ tn = omp_get_thread_num() |
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253 | sums_l(:,pr,tn) = 0.0 |
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254 | !$OMP DO |
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255 | DO i = nxl, nxr |
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256 | DO j = nys, nyn |
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257 | DO k = nzb_s_outer(j,i), nzt+1 |
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258 | sums_l(k,pr,tn) = sums_l(k,pr,tn) + var(k,j,i) |
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259 | ENDDO |
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260 | ENDDO |
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261 | ENDDO |
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262 | !$OMP END PARALLEL |
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263 | |
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264 | DO i = 1, threads_per_task-1 |
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265 | sums_l(:,pr,0) = sums_l(:,pr,0) + sums_l(:,pr,i) |
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266 | ENDDO |
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267 | |
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268 | #if defined( __parallel ) |
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269 | |
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270 | CALL MPI_ALLREDUCE( sums_l(nzb,pr,0), sums(nzb,pr), nzt+2-nzb, & |
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271 | MPI_REAL, MPI_SUM, comm2d, ierr ) |
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272 | |
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273 | #else |
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274 | |
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275 | sums(:,pr) = sums_l(:,pr,0) |
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276 | |
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277 | #endif |
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278 | |
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279 | hom(:,1,pr,0) = sums(:,pr) / ngp_2dh_outer(:,0) |
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280 | |
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281 | ENDIF |
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282 | |
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283 | END SUBROUTINE calc_mean_profile |
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284 | |
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285 | END MODULE buoyancy_mod |
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