1 | SUBROUTINE RRTM_SETCOEF_140GP (KLEV,P_COLDRY,P_WKL,& |
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2 | & P_FAC00,P_FAC01,P_FAC10,P_FAC11,P_FORFAC,K_JP,K_JT,K_JT1,& |
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3 | & P_COLH2O,P_COLCO2,P_COLO3,P_COLN2O,P_COLCH4,P_COLO2,P_CO2MULT,& |
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4 | & K_LAYTROP,K_LAYSWTCH,K_LAYLOW,PAVEL,P_TAVEL,P_SELFFAC,P_SELFFRAC,K_INDSELF) |
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5 | |
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6 | ! Reformatted for F90 by JJMorcrette, ECMWF, 980714 |
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7 | |
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8 | ! Purpose: For a given atmosphere, calculate the indices and |
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9 | ! fractions related to the pressure and temperature interpolations. |
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10 | ! Also calculate the values of the integrated Planck functions |
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11 | ! for each band at the level and layer temperatures. |
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12 | |
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13 | USE PARKIND1 ,ONLY : JPIM ,JPRB |
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14 | USE YOMHOOK ,ONLY : LHOOK, DR_HOOK |
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15 | |
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16 | USE PARRRTM , ONLY : JPLAY ,JPINPX |
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17 | USE YOERRTRF , ONLY : PREFLOG ,TREF |
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18 | |
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19 | IMPLICIT NONE |
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20 | |
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21 | INTEGER(KIND=JPIM),INTENT(IN) :: KLEV |
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22 | REAL(KIND=JPRB) ,INTENT(IN) :: P_COLDRY(JPLAY) |
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23 | REAL(KIND=JPRB) ,INTENT(IN) :: P_WKL(JPINPX,JPLAY) |
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24 | REAL(KIND=JPRB) ,INTENT(OUT) :: P_FAC00(JPLAY) |
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25 | REAL(KIND=JPRB) ,INTENT(OUT) :: P_FAC01(JPLAY) |
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26 | REAL(KIND=JPRB) ,INTENT(OUT) :: P_FAC10(JPLAY) |
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27 | REAL(KIND=JPRB) ,INTENT(OUT) :: P_FAC11(JPLAY) |
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28 | REAL(KIND=JPRB) ,INTENT(OUT) :: P_FORFAC(JPLAY) |
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29 | INTEGER(KIND=JPIM),INTENT(OUT) :: K_JP(JPLAY) |
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30 | INTEGER(KIND=JPIM),INTENT(OUT) :: K_JT(JPLAY) |
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31 | INTEGER(KIND=JPIM),INTENT(OUT) :: K_JT1(JPLAY) |
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32 | REAL(KIND=JPRB) ,INTENT(OUT) :: P_COLH2O(JPLAY) |
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33 | REAL(KIND=JPRB) ,INTENT(OUT) :: P_COLCO2(JPLAY) |
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34 | REAL(KIND=JPRB) ,INTENT(OUT) :: P_COLO3(JPLAY) |
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35 | REAL(KIND=JPRB) ,INTENT(OUT) :: P_COLN2O(JPLAY) |
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36 | REAL(KIND=JPRB) ,INTENT(OUT) :: P_COLCH4(JPLAY) |
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37 | REAL(KIND=JPRB) ,INTENT(OUT) :: P_COLO2(JPLAY) |
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38 | REAL(KIND=JPRB) ,INTENT(OUT) :: P_CO2MULT(JPLAY) |
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39 | INTEGER(KIND=JPIM),INTENT(OUT) :: K_LAYTROP |
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40 | INTEGER(KIND=JPIM),INTENT(OUT) :: K_LAYSWTCH |
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41 | INTEGER(KIND=JPIM),INTENT(OUT) :: K_LAYLOW |
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42 | REAL(KIND=JPRB) ,INTENT(IN) :: PAVEL(JPLAY) |
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43 | REAL(KIND=JPRB) ,INTENT(IN) :: P_TAVEL(JPLAY) |
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44 | REAL(KIND=JPRB) ,INTENT(OUT) :: P_SELFFAC(JPLAY) |
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45 | REAL(KIND=JPRB) ,INTENT(OUT) :: P_SELFFRAC(JPLAY) |
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46 | INTEGER(KIND=JPIM),INTENT(OUT) :: K_INDSELF(JPLAY) |
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47 | !- from INTFAC |
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48 | !- from INTIND |
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49 | !- from PROFDATA |
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50 | !- from PROFILE |
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51 | !- from SELF |
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52 | INTEGER(KIND=JPIM) :: JP1, I_LAY |
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53 | |
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54 | REAL(KIND=JPRB) :: Z_CO2REG, Z_COMPFP, Z_FACTOR, Z_FP, Z_FT, Z_FT1, Z_PLOG, Z_SCALEFAC, Z_STPFAC, Z_WATER |
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55 | REAL(KIND=JPRB) :: ZHOOK_HANDLE |
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56 | |
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57 | !#include "yoeratm.h" |
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58 | |
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59 | IF (LHOOK) CALL DR_HOOK('RRTM_SETCOEF_140GP',0,ZHOOK_HANDLE) |
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60 | Z_STPFAC = 296._JPRB/1013._JPRB |
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61 | |
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62 | K_LAYTROP = 0 |
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63 | K_LAYSWTCH = 0 |
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64 | K_LAYLOW = 0 |
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65 | DO I_LAY = 1, KLEV |
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66 | ! Find the two reference pressures on either side of the |
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67 | ! layer pressure. Store them in JP and JP1. Store in FP the |
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68 | ! fraction of the difference (in ln(pressure)) between these |
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69 | ! two values that the layer pressure lies. |
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70 | Z_PLOG = LOG(PAVEL(I_LAY)) |
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71 | K_JP(I_LAY) = INT(36._JPRB - 5*(Z_PLOG+0.04_JPRB)) |
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72 | IF (K_JP(I_LAY) < 1) THEN |
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73 | K_JP(I_LAY) = 1 |
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74 | ELSEIF (K_JP(I_LAY) > 58) THEN |
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75 | K_JP(I_LAY) = 58 |
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76 | ENDIF |
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77 | JP1 = K_JP(I_LAY) + 1 |
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78 | Z_FP = 5._JPRB * (PREFLOG(K_JP(I_LAY)) - Z_PLOG) |
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79 | |
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80 | ! Determine, for each reference pressure (JP and JP1), which |
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81 | ! reference temperature (these are different for each |
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82 | ! reference pressure) is nearest the layer temperature but does |
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83 | ! not exceed it. Store these indices in JT and JT1, resp. |
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84 | ! Store in FT (resp. FT1) the fraction of the way between JT |
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85 | ! (JT1) and the next highest reference temperature that the |
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86 | ! layer temperature falls. |
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87 | |
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88 | K_JT(I_LAY) = INT(3._JPRB + (P_TAVEL(I_LAY)-TREF(K_JP(I_LAY)))/15._JPRB) |
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89 | IF (K_JT(I_LAY) < 1) THEN |
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90 | K_JT(I_LAY) = 1 |
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91 | ELSEIF (K_JT(I_LAY) > 4) THEN |
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92 | K_JT(I_LAY) = 4 |
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93 | ENDIF |
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94 | Z_FT = ((P_TAVEL(I_LAY)-TREF(K_JP(I_LAY)))/15._JPRB) - REAL(K_JT(I_LAY)-3) |
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95 | K_JT1(I_LAY) = INT(3._JPRB + (P_TAVEL(I_LAY)-TREF(JP1))/15._JPRB) |
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96 | IF (K_JT1(I_LAY) < 1) THEN |
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97 | K_JT1(I_LAY) = 1 |
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98 | ELSEIF (K_JT1(I_LAY) > 4) THEN |
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99 | K_JT1(I_LAY) = 4 |
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100 | ENDIF |
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101 | Z_FT1 = ((P_TAVEL(I_LAY)-TREF(JP1))/15._JPRB) - REAL(K_JT1(I_LAY)-3) |
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102 | |
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103 | Z_WATER = P_WKL(1,I_LAY)/P_COLDRY(I_LAY) |
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104 | Z_SCALEFAC = PAVEL(I_LAY) * Z_STPFAC / P_TAVEL(I_LAY) |
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105 | |
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106 | ! If the pressure is less than ~100mb, perform a different |
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107 | ! set of species interpolations. |
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108 | ! IF (PLOG .LE. 4.56) GO TO 5300 |
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109 | !-------------------------------------- |
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110 | IF (Z_PLOG > 4.56_JPRB) THEN |
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111 | K_LAYTROP = K_LAYTROP + 1 |
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112 | ! For one band, the "switch" occurs at ~300 mb. |
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113 | IF (Z_PLOG >= 5.76_JPRB) K_LAYSWTCH = K_LAYSWTCH + 1 |
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114 | IF (Z_PLOG >= 6.62_JPRB) K_LAYLOW = K_LAYLOW + 1 |
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115 | |
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116 | P_FORFAC(I_LAY) = Z_SCALEFAC / (1.0_JPRB+Z_WATER) |
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117 | |
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118 | ! Set up factors needed to separately include the water vapor |
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119 | ! self-continuum in the calculation of absorption coefficient. |
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120 | !C SELFFAC(LAY) = WATER * SCALEFAC / (1.+WATER) |
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121 | P_SELFFAC(I_LAY) = Z_WATER * P_FORFAC(I_LAY) |
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122 | Z_FACTOR = (P_TAVEL(I_LAY)-188.0_JPRB)/7.2_JPRB |
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123 | K_INDSELF(I_LAY) = MIN(9, MAX(1, INT(Z_FACTOR)-7)) |
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124 | P_SELFFRAC(I_LAY) = Z_FACTOR - REAL(K_INDSELF(I_LAY) + 7) |
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125 | |
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126 | ! Calculate needed column amounts. |
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127 | P_COLH2O(I_LAY) = 1.E-20_JPRB * P_WKL(1,I_LAY) |
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128 | P_COLCO2(I_LAY) = 1.E-20_JPRB * P_WKL(2,I_LAY) |
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129 | P_COLO3(I_LAY) = 1.E-20_JPRB * P_WKL(3,I_LAY) |
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130 | P_COLN2O(I_LAY) = 1.E-20_JPRB * P_WKL(4,I_LAY) |
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131 | P_COLCH4(I_LAY) = 1.E-20_JPRB * P_WKL(6,I_LAY) |
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132 | P_COLO2(I_LAY) = 1.E-20_JPRB * P_WKL(7,I_LAY) |
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133 | IF (P_COLCO2(I_LAY) == 0.0_JPRB) P_COLCO2(I_LAY) = 1.E-32_JPRB * P_COLDRY(I_LAY) |
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134 | IF (P_COLN2O(I_LAY) == 0.0_JPRB) P_COLN2O(I_LAY) = 1.E-32_JPRB * P_COLDRY(I_LAY) |
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135 | IF (P_COLCH4(I_LAY) == 0.0_JPRB) P_COLCH4(I_LAY) = 1.E-32_JPRB * P_COLDRY(I_LAY) |
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136 | ! Using E = 1334.2 cm-1. |
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137 | Z_CO2REG = 3.55E-24_JPRB * P_COLDRY(I_LAY) |
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138 | P_CO2MULT(I_LAY)= (P_COLCO2(I_LAY) - Z_CO2REG) *& |
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139 | & 272.63_JPRB*EXP(-1919.4_JPRB/P_TAVEL(I_LAY))/(8.7604E-4_JPRB*P_TAVEL(I_LAY)) |
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140 | ! GO TO 5400 |
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141 | !------------------ |
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142 | ELSE |
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143 | ! Above LAYTROP. |
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144 | ! 5300 CONTINUE |
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145 | |
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146 | ! Calculate needed column amounts. |
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147 | P_FORFAC(I_LAY) = Z_SCALEFAC / (1.0_JPRB+Z_WATER) |
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148 | |
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149 | P_COLH2O(I_LAY) = 1.E-20_JPRB * P_WKL(1,I_LAY) |
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150 | P_COLCO2(I_LAY) = 1.E-20_JPRB * P_WKL(2,I_LAY) |
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151 | P_COLO3(I_LAY) = 1.E-20_JPRB * P_WKL(3,I_LAY) |
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152 | P_COLN2O(I_LAY) = 1.E-20_JPRB * P_WKL(4,I_LAY) |
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153 | P_COLCH4(I_LAY) = 1.E-20_JPRB * P_WKL(6,I_LAY) |
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154 | P_COLO2(I_LAY) = 1.E-20_JPRB * P_WKL(7,I_LAY) |
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155 | IF (P_COLCO2(I_LAY) == 0.0_JPRB) P_COLCO2(I_LAY) = 1.E-32_JPRB * P_COLDRY(I_LAY) |
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156 | IF (P_COLN2O(I_LAY) == 0.0_JPRB) P_COLN2O(I_LAY) = 1.E-32_JPRB * P_COLDRY(I_LAY) |
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157 | IF (P_COLCH4(I_LAY) == 0.0_JPRB) P_COLCH4(I_LAY) = 1.E-32_JPRB * P_COLDRY(I_LAY) |
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158 | Z_CO2REG = 3.55E-24_JPRB * P_COLDRY(I_LAY) |
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159 | P_CO2MULT(I_LAY)= (P_COLCO2(I_LAY) - Z_CO2REG) *& |
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160 | & 272.63_JPRB*EXP(-1919.4_JPRB/P_TAVEL(I_LAY))/(8.7604E-4_JPRB*P_TAVEL(I_LAY)) |
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161 | !---------------- |
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162 | ENDIF |
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163 | ! 5400 CONTINUE |
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164 | |
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165 | ! We have now isolated the layer ln pressure and temperature, |
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166 | ! between two reference pressures and two reference temperatures |
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167 | ! (for each reference pressure). We multiply the pressure |
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168 | ! fraction FP with the appropriate temperature fractions to get |
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169 | ! the factors that will be needed for the interpolation that yields |
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170 | ! the optical depths (performed in routines TAUGBn for band n). |
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171 | |
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172 | Z_COMPFP = 1.0_JPRB - Z_FP |
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173 | P_FAC10(I_LAY) = Z_COMPFP * Z_FT |
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174 | P_FAC00(I_LAY) = Z_COMPFP * (1.0_JPRB - Z_FT) |
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175 | P_FAC11(I_LAY) = Z_FP * Z_FT1 |
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176 | P_FAC01(I_LAY) = Z_FP * (1.0_JPRB - Z_FT1) |
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177 | |
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178 | ENDDO |
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179 | |
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180 | ! MT 981104 |
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181 | !-- Set LAYLOW for profiles with surface pressure less than 750 hPa. |
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182 | IF (K_LAYLOW == 0) K_LAYLOW=1 |
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183 | |
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184 | IF (LHOOK) CALL DR_HOOK('RRTM_SETCOEF_140GP',1,ZHOOK_HANDLE) |
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185 | END SUBROUTINE RRTM_SETCOEF_140GP |
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