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#include "GRID.h" |
#include "GRID.h" |
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#include "DYNVARS.h" |
#include "DYNVARS.h" |
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#include "FFIELDS.h" |
#include "FFIELDS.h" |
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#ifdef SHORTWAVE_HEATING |
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integer two |
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_RL minusone |
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parameter (two=2,minusone=-1.) |
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_RL swfracb(two) |
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#endif |
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C !INPUT/OUTPUT PARAMETERS: |
C !INPUT/OUTPUT PARAMETERS: |
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C == Routine arguments == |
C == Routine arguments == |
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INTEGER I, J |
INTEGER I, J |
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C number of surface interface layer |
C number of surface interface layer |
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INTEGER kSurface |
INTEGER kSurface |
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#ifdef SHORTWAVE_HEATING |
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integer two |
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_RL minusone |
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parameter (two=2,minusone=-1.) |
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_RL swfracb(two) |
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INTEGER kp1 |
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#endif |
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CEOP |
CEOP |
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if ( buoyancyRelation .eq. 'ATMOSPHERIC' ) then |
if ( buoyancyRelation .eq. 'ATMOSPHERIC' ) then |
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#ifdef SHORTWAVE_HEATING |
#ifdef SHORTWAVE_HEATING |
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C Penetrating SW radiation |
C Penetrating SW radiation |
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kp1 = klev+1 |
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swfracb(1)=abs(rF(klev)) |
swfracb(1)=abs(rF(klev)) |
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swfracb(2)=abs(rF(klev+1)) |
swfracb(2)=abs(rF(klev+1)) |
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call SWFRAC( |
CALL SWFRAC( |
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I two,minusone, |
I two,minusone, |
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I myCurrentTime,myThid, |
I myCurrentTime,myThid, |
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U swfracb) |
U swfracb) |
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IF (klev.EQ.Nr) THEN |
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kp1 = klev |
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swfracb(2)=0. _d 0 |
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ENDIF |
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DO j=jMin,jMax |
DO j=jMin,jMax |
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DO i=iMin,iMax |
DO i=iMin,iMax |
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gT(i,j,klev,bi,bj) = gT(i,j,klev,bi,bj) |
gT(i,j,klev,bi,bj) = gT(i,j,klev,bi,bj) |
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& -maskC(i,j,klev,bi,bj)*Qsw(i,j,bi,bj)*(swfracb(1)-swfracb(2)) |
& -Qsw(i,j,bi,bj)*(swfracb(1)*maskC(i,j,klev,bi,bj) |
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& -swfracb(2)*maskC(i,j,kp1, bi,bj)) |
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& *recip_Cp*recip_rhoConst*recip_drF(klev) |
& *recip_Cp*recip_rhoConst*recip_drF(klev) |
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ENDDO |
ENDDO |
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ENDDO |
ENDDO |