| 1 | SUBROUTINE load_ksi(ksive) |
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| 2 | |
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| 3 | use dimphy |
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| 4 | IMPLICIT none |
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| 5 | |
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| 6 | #include "YOMCST.h" |
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| 7 | #include "comcstVE.h" |
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| 8 | C |
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| 9 | C ------------------------------------------------------------------ |
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| 10 | C |
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| 11 | C PURPOSE. |
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| 12 | C -------- |
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| 13 | C |
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| 14 | c This routine loads the longwave matrix of factors Ksi |
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| 15 | c |
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| 16 | c The Ksi matrixes have been computed by Vincent Eymet |
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| 17 | C |
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| 18 | C AUTHOR. |
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| 19 | C ------- |
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| 20 | C Sebastien Lebonnois |
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| 21 | C |
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| 22 | C MODIFICATIONS. |
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| 23 | C -------------- |
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| 24 | C |
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| 25 | c New ksi matrix: possibility of different cloud model fct of lat 05/2014 |
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| 26 | C ------------------------------------------------------------------ |
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| 27 | C |
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| 28 | C* ARGUMENTS: |
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| 29 | C |
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| 30 | c inputs |
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| 31 | real psurf(klon) ! Surface pressure |
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| 32 | c outputs |
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| 33 | real ksive(0:klev+1,0:klev+1,nnuve,nbmat) ! ksi matrixes in Vincent's file |
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| 34 | |
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| 35 | c local variables |
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| 36 | integer i,j,isza,ips,band,pve,sve,nlve |
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| 37 | integer lat,Nb,m,mat |
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| 38 | character*9 tmp1 |
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| 39 | character*100 file |
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| 40 | CHARACTER*2 str2 |
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| 41 | CHARACTER*3 str3 |
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| 42 | CHARACTER*10 format_lect |
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| 43 | real lambda(nnuve) ! wavelenght in table (mu->m, middle of interval) |
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| 44 | real lambdamin(nnuve),lambdamax(nnuve) ! in microns |
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| 45 | real dlambda ! in microns |
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| 46 | |
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| 47 | nlve = klev |
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| 48 | |
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| 49 | cc GG modif below |
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| 50 | c---------------------------------- |
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| 51 | c Initialisation of values to 0 |
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| 52 | c (for all vertical levels) |
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| 53 | c---------------------------------- |
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| 54 | |
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| 55 | ksive(0:klev+1,0:klev+1,nnuve,nbmat) = 0.0 |
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| 56 | |
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| 57 | c ------------------------ |
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| 58 | c Loading the ksi file |
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| 59 | c ------------------------ |
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| 60 | |
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| 61 | file = "ksi_global.txt" |
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| 62 | open(10,file=file) |
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| 63 | |
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| 64 | read(10,*) |
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| 65 | read(10,*) nlatve |
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| 66 | read(10,*) |
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| 67 | |
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| 68 | write(*,*) 'This is subroutine load_ksi' |
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| 69 | write(*,*) 'Nb of lat bands:',nlatve |
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| 70 | |
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| 71 | do lat=1,nlatve |
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| 72 | read(10,*) !line for lat range |
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| 73 | read(10,*) indexve(lat) |
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| 74 | read(10,*) nbpsve(lat) |
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| 75 | read(10,*) |
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| 76 | read(10,*) nbszave(lat) |
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| 77 | read(10,*) |
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| 78 | |
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| 79 | do isza=1,nbszave(lat) |
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| 80 | do ips=1,nbpsve(lat) |
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| 81 | |
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| 82 | read(10,*) (tmp1,j=1,3),mat !line for matrix number |
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| 83 | read(10,*) (tmp1,j=1,2),pve |
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| 84 | psurfve(ips,lat) = pve*1.e5 ! pve in bar, psurfve in Pa |
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| 85 | read(10,*) (tmp1,j=1,3),sve |
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| 86 | szave(isza,lat) = cos(sve*RPI/180.) ! conversion in mu0 |
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| 87 | read(10,*) |
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| 88 | read(10,*) m,Nb |
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| 89 | cc GG modif below |
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| 90 | if (nlve.le.78.and.m.ne.nlve) then |
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| 91 | write(*,*) 'This is subroutine load_ksi' |
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| 92 | print*,'Dimension problem between ksi.txt and nlve' |
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| 93 | print*,'N levels = ',m,nlve |
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| 94 | stop |
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| 95 | endif |
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| 96 | if (Nb.ne.nnuve) then |
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| 97 | write(*,*) 'This is subroutine load_ksi' |
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| 98 | print*,'Dimension problem between ksi.txt and nnuve' |
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| 99 | print*,'N freq = ',Nb,nnuve |
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| 100 | stop |
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| 101 | endif |
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| 102 | c Now reading ksi matrix index "mat" |
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| 103 | if ((m+2).ge.100) then |
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| 104 | write(str3,'(i3.3)') m+2 |
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| 105 | format_lect='('//str3//'e17.9)' |
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| 106 | else |
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| 107 | write(str2,'(i2.2)') m+2 |
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| 108 | format_lect='('//str2//'e17.9)' |
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| 109 | endif |
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| 110 | do band=1,Nb |
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| 111 | read(10,*) lambdamin(band),lambdamax(band) |
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| 112 | do i=0,m+1 |
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| 113 | read(10,format_lect) (ksive(i,j,band,mat),j=0,m+1) ! no unit |
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| 114 | enddo ! i |
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| 115 | enddo ! band |
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| 116 | c print*,"Matrice ",mat," lue" |
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| 117 | c print*," psurf=",psurfve(ips,lat)," bars" |
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| 118 | if (mat+1.gt.nbmat) then |
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| 119 | write(*,*) 'This is subroutine load_ksi' |
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| 120 | print*,'Dimension problem between ksi.txt and nbmat' |
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| 121 | print*,'(max number of matrixes)' |
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| 122 | print*,'nbmat (in comcstVE.h) should be raised' |
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| 123 | stop |
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| 124 | endif |
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| 125 | |
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| 126 | enddo ! ips |
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| 127 | enddo ! isza |
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| 128 | enddo ! lat |
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| 129 | |
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| 130 | write(*,*) 'Total nb of matrixes:',mat |
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| 131 | |
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| 132 | close(10) |
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| 133 | |
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| 134 | c central wavelength and wavelength width |
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| 135 | do band=1,nnuve |
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| 136 | lambda(band)=(lambdamin(band)+lambdamax(band))/2.*1.e-6 ! in m |
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| 137 | dlambda =(lambdamax(band)-lambdamin(band)) ! in microns |
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| 138 | c print*,band,lambdamin(band),dlambda,lambdamax(band) |
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| 139 | |
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| 140 | c sign convention for ksi, |
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| 141 | c and taking into account the wavelength width (in microns): |
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| 142 | do mat=1,nbmat |
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| 143 | do i=0,nlve+1 |
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| 144 | do j=0,nlve+1 |
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| 145 | ksive(i,j,band,mat) = +ksive(i,j,band,mat)*dlambda ! in µm |
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| 146 | enddo |
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| 147 | enddo |
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| 148 | enddo |
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| 149 | c computing coeff al and bl for Planck luminance |
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| 150 | al(band) = 2.*RHPLA*RCLUM*RCLUM/(lambda(band))**5. |
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| 151 | c in W/m²/m |
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| 152 | c We need W/m²/µm : |
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| 153 | . * 1.e-6 |
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| 154 | bl(band) = RHPLA*RCLUM/(RKBOL*lambda(band)) |
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| 155 | enddo |
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| 156 | |
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| 157 | print*,"LOAD_KSI OK" |
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| 158 | |
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| 159 | return |
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| 160 | end |
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| 161 | |
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