| 1 | !****************************************************************************** |
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| 2 | SUBROUTINE RRTM_TAUMOL14 (KLEV,TAU,& |
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| 3 | &TAUAERL,FAC00,FAC01,FAC10,FAC11,JP,JT,JT1,& |
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| 4 | &COLCO2,LAYTROP,SELFFAC,SELFFRAC,INDSELF,PFRAC) |
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| 5 | |
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| 6 | ! BAND 14: 2250-2380 cm-1 (low - CO2; high - CO2) |
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| 7 | |
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| 8 | ! Modifications |
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| 9 | ! |
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| 10 | ! D Salmond 1999-07-14 speed-up |
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| 11 | |
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| 12 | |
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| 13 | #include "tsmbkind.h" |
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| 14 | |
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| 15 | USE PARRRTM , ONLY : JPLAY ,JPBAND ,JPGPT ,JPXSEC , NGS13 |
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| 16 | USE YOERRTWN , ONLY : NG ,NSPA ,NSPB |
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| 17 | USE YOERRTA14, ONLY : NG14 ,ABSA ,ABSB ,FRACREFA, FRACREFB,& |
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| 18 | &KA , KB ,SELFREF |
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| 19 | |
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| 20 | IMPLICIT NONE |
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| 21 | |
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| 22 | ! Output |
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| 23 | REAL_B :: TAU (JPGPT,JPLAY) |
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| 24 | |
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| 25 | ! DUMMY INTEGER SCALARS |
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| 26 | INTEGER_M :: KLEV |
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| 27 | |
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| 28 | !- from AER |
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| 29 | REAL_B :: TAUAERL(JPLAY,JPBAND) |
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| 30 | |
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| 31 | !- from INTFAC |
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| 32 | REAL_B :: FAC00(JPLAY) |
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| 33 | REAL_B :: FAC01(JPLAY) |
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| 34 | REAL_B :: FAC10(JPLAY) |
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| 35 | REAL_B :: FAC11(JPLAY) |
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| 36 | |
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| 37 | !- from INTIND |
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| 38 | INTEGER_M :: JP(JPLAY) |
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| 39 | INTEGER_M :: JT(JPLAY) |
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| 40 | INTEGER_M :: JT1(JPLAY) |
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| 41 | |
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| 42 | !- from PROFDATA |
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| 43 | REAL_B :: COLCO2(JPLAY) |
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| 44 | INTEGER_M :: LAYTROP |
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| 45 | |
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| 46 | !- from SELF |
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| 47 | REAL_B :: SELFFAC(JPLAY) |
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| 48 | REAL_B :: SELFFRAC(JPLAY) |
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| 49 | INTEGER_M :: INDSELF(JPLAY) |
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| 50 | |
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| 51 | !- from SP |
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| 52 | REAL_B :: PFRAC(JPGPT,JPLAY) |
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| 53 | |
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| 54 | |
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| 55 | ! LOCAL INTEGER SCALARS |
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| 56 | INTEGER_M :: IG, IND0, IND1, INDS, LAY |
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| 57 | |
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| 58 | |
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| 59 | ! Input |
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| 60 | !#include "yoeratm.h" |
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| 61 | |
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| 62 | ! REAL TAUAER(JPLAY) |
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| 63 | ! EQUIVALENCE (TAUAERL(1,14),TAUAER) |
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| 64 | |
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| 65 | ! Compute the optical depth by interpolating in ln(pressure) and |
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| 66 | ! temperature. Below LAYTROP, the water vapor self-continuum |
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| 67 | ! is interpolated (in temperature) separately. |
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| 68 | |
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| 69 | DO LAY = 1, LAYTROP |
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| 70 | IND0 = ((JP(LAY)-1)*5+(JT(LAY)-1))*NSPA(14) + 1 |
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| 71 | IND1 = (JP(LAY)*5+(JT1(LAY)-1))*NSPA(14) + 1 |
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| 72 | INDS = INDSELF(LAY) |
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| 73 | !-- DS_990714 |
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| 74 | ! DO IG = 1, NG14 |
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| 75 | IG=1 |
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| 76 | TAU (NGS13+IG,LAY) = COLCO2(LAY) *& |
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| 77 | &(FAC00(LAY) * ABSA(IND0 ,IG) +& |
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| 78 | & FAC10(LAY) * ABSA(IND0+1,IG) +& |
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| 79 | & FAC01(LAY) * ABSA(IND1 ,IG) +& |
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| 80 | & FAC11(LAY) * ABSA(IND1+1,IG) +& |
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| 81 | &SELFFAC(LAY) * (SELFREF(INDS,IG) + & |
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| 82 | &SELFFRAC(LAY) *& |
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| 83 | &(SELFREF(INDS+1,IG) - SELFREF(INDS,IG))))& |
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| 84 | &+ TAUAERL(LAY,14) |
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| 85 | PFRAC(NGS13+IG,LAY) = FRACREFA(IG) |
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| 86 | IG=2 |
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| 87 | TAU (NGS13+IG,LAY) = COLCO2(LAY) *& |
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| 88 | &(FAC00(LAY) * ABSA(IND0 ,IG) +& |
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| 89 | & FAC10(LAY) * ABSA(IND0+1,IG) +& |
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| 90 | & FAC01(LAY) * ABSA(IND1 ,IG) +& |
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| 91 | & FAC11(LAY) * ABSA(IND1+1,IG) +& |
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| 92 | &SELFFAC(LAY) * (SELFREF(INDS,IG) +& |
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| 93 | &SELFFRAC(LAY) *& |
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| 94 | &(SELFREF(INDS+1,IG) - SELFREF(INDS,IG))))& |
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| 95 | &+ TAUAERL(LAY,14) |
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| 96 | PFRAC(NGS13+IG,LAY) = FRACREFA(IG) |
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| 97 | ! END DO |
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| 98 | !-- DS_990714 |
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| 99 | ENDDO |
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| 100 | |
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| 101 | DO LAY = LAYTROP+1, KLEV |
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| 102 | IND0 = ((JP(LAY)-13)*5+(JT(LAY)-1))*NSPB(14) + 1 |
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| 103 | IND1 = ((JP(LAY)-12)*5+(JT1(LAY)-1))*NSPB(14) + 1 |
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| 104 | !-- DS_990714 |
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| 105 | ! DO IG = 1, NG14 |
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| 106 | IG=1 |
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| 107 | TAU (NGS13+IG,LAY) = COLCO2(LAY) *& |
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| 108 | &(FAC00(LAY) * ABSB(IND0 ,IG) +& |
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| 109 | & FAC10(LAY) * ABSB(IND0+1,IG) +& |
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| 110 | & FAC01(LAY) * ABSB(IND1 ,IG) +& |
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| 111 | & FAC11(LAY) * ABSB(IND1+1,IG)) & |
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| 112 | &+ TAUAERL(LAY,14) |
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| 113 | PFRAC(NGS13+IG,LAY) = FRACREFB(IG) |
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| 114 | IG=2 |
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| 115 | TAU (NGS13+IG,LAY) = COLCO2(LAY) *& |
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| 116 | &(FAC00(LAY) * ABSB(IND0 ,IG) +& |
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| 117 | & FAC10(LAY) * ABSB(IND0+1,IG) +& |
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| 118 | & FAC01(LAY) * ABSB(IND1 ,IG) +& |
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| 119 | & FAC11(LAY) * ABSB(IND1+1,IG)) & |
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| 120 | &+ TAUAERL(LAY,14) |
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| 121 | PFRAC(NGS13+IG,LAY) = FRACREFB(IG) |
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| 122 | ! END DO |
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| 123 | !-- DS_990714 |
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| 124 | ENDDO |
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| 125 | |
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| 126 | RETURN |
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| 127 | END SUBROUTINE RRTM_TAUMOL14 |
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