C $Header: /home/ubuntu/mnt/e9_copy/MITgcm/pkg/generic_advdiff/gad_dst3_adv_r.F,v 1.1 2001/09/10 13:09:04 adcroft Exp $ C $Name: $ #include "GAD_OPTIONS.h" SUBROUTINE GAD_DST3_ADV_R( I bi_arg,bj_arg,k,dTarg, I rTrans, wVel, I tracer, O wT, I myThid ) C /==========================================================\ C | SUBROUTINE GAD_DST3_ADV_R | C | o Compute Vertical advective Flux of Tracer using | C | 3rd Order DST Sceheme | C |==========================================================| IMPLICIT NONE C == GLobal variables == #include "SIZE.h" #include "GRID.h" #include "EEPARAMS.h" #include "PARAMS.h" #include "GAD.h" C == Routine arguments == INTEGER bi_arg,bj_arg,k _RL dTarg _RL rTrans(1-OLx:sNx+OLx,1-OLy:sNy+OLy) _RL wVel(1-OLx:sNx+OLx,1-OLy:sNy+OLy,Nr,nSx,nSy) _RL tracer(1-OLx:sNx+OLx,1-OLy:sNy+OLy,Nr,nSx,nSy) _RL wT (1-OLx:sNx+OLx,1-OLy:sNy+OLy) INTEGER myThid C == Local variables == INTEGER i,j,kp1,km1,km2,bi,bj _RL Rjm,Rj,Rjp,cfl,d0,d1 _RL psiP,psiM,thetaP,thetaM IF (.NOT. multiDimAdvection) THEN C If using the standard time-stepping/advection schemes (ie. AB-II) C then the data-structures are all global arrays bi=bi_arg bj=bj_arg ELSE C otherwise if using the multi-dimensional advection schemes C then the data-structures are all local arrays except C for maskC(...) and wVel(...) bi=1 bj=1 ENDIF km2=MAX(1,k-2) km1=MAX(1,k-1) kp1=MIN(Nr,k+1) DO j=1-Oly,sNy+Oly DO i=1-Olx,sNx+Olx Rjp=(tracer(i,j,k,bi,bj)-tracer(i,j,kp1,bi,bj)) & *maskC(i,j,kp1,bi,bj) Rj =(tracer(i,j,km1,bi,bj)-tracer(i,j,k,bi,bj)) & *maskC(i,j,k,bi,bj)*maskC(i,j,km1,bi,bj) Rjm=(tracer(i,j,km2,bi,bj)-tracer(i,j,km1,bi,bj)) & *maskC(i,j,km1,bi,bj) cfl=abs(wVel(i,j,k,bi,bj)*dTarg*recip_drc(k)) d0=(2.-cfl)*(1.-cfl)*oneSixth d1=(1.-cfl*cfl)*oneSixth c thetaP=0. c IF (Rj.NE.0.) thetaP=Rjm/Rj thetaP=Rjm/(1.D-20+Rj) psiP=d0+d1*thetaP c psiP=max(0.,min(min(1.,psiP),(1.-cfl)/(1.D-20+cfl)*thetaP)) thetaM=Rjp/(1.D-20+Rj) c thetaM=0. c IF (Rj.NE.0.) thetaM=Rjp/Rj psiM=d0+d1*thetaM c psiM=max(0.,min(min(1.,psiM),(1.-cfl)/(1.D-20+cfl)*thetaM)) wT(i,j)= & 0.5*(rTrans(i,j)+abs(rTrans(i,j))) & *( Tracer(i,j, k ,bi,bj) + psiM*Rj ) & +0.5*(rTrans(i,j)-abs(rTrans(i,j))) & *( Tracer(i,j,km1,bi,bj) - psiP*Rj ) ENDDO ENDDO RETURN END