/[MITgcm]/MITgcm/pkg/generic_advdiff/gad_dst3fl_adv_x.F
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Contents of /MITgcm/pkg/generic_advdiff/gad_dst3fl_adv_x.F

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Revision 1.13 - (show annotations) (download)
Wed Apr 4 01:39:06 2007 UTC (17 years, 1 month ago) by jmc
Branch: MAIN
CVS Tags: checkpoint59, checkpoint58y_post, checkpoint59e, checkpoint59d, checkpoint59g, checkpoint59f, checkpoint59a, checkpoint59c, checkpoint59b, checkpoint59m, checkpoint59l, checkpoint59n, checkpoint59i, checkpoint59h, checkpoint59k, checkpoint59j
Changes since 1.12: +5 -6 lines
add a logical argument "calcCFL" to DST horizontal Advection S/R
(if false, assume that uFld,vFld are already CFL number in x,y dir)

1 C $Header: /u/gcmpack/MITgcm/pkg/generic_advdiff/gad_dst3fl_adv_x.F,v 1.12 2006/12/05 22:21:50 jmc Exp $
2 C $Name: $
3
4 #include "GAD_OPTIONS.h"
5
6 SUBROUTINE GAD_DST3FL_ADV_X(
7 I bi,bj,k, calcCFL, deltaTloc,
8 I uTrans, uFld,
9 I maskLocW, tracer,
10 O uT,
11 I myThid )
12 C /==========================================================\
13 C | SUBROUTINE GAD_DST3FL_ADV_X |
14 C | o Compute Zonal advective Flux of Tracer using |
15 C | 3rd Order DST Sceheme with flux limiting |
16 C |==========================================================|
17 IMPLICIT NONE
18
19 C == GLobal variables ==
20 #include "SIZE.h"
21 #include "GRID.h"
22 #include "GAD.h"
23
24 C == Routine arguments ==
25 INTEGER bi,bj,k
26 LOGICAL calcCFL
27 _RL deltaTloc
28 _RL uTrans(1-OLx:sNx+OLx,1-OLy:sNy+OLy)
29 _RL uFld (1-OLx:sNx+OLx,1-OLy:sNy+OLy)
30 _RS maskLocW(1-OLx:sNx+OLx,1-OLy:sNy+OLy)
31 _RL tracer(1-OLx:sNx+OLx,1-OLy:sNy+OLy)
32 _RL uT (1-OLx:sNx+OLx,1-OLy:sNy+OLy)
33 INTEGER myThid
34
35 C == Local variables ==
36 INTEGER i,j
37 _RL Rjm,Rj,Rjp,uCFL,d0,d1,psiP,psiM,thetaP,thetaM
38 _RL thetaMax
39 PARAMETER( thetaMax = 1.D+20 )
40
41 C- jmc: an alternative would be to compute directly psiM*Rj & psiP*Rj
42 C (if Rj*Rjm < 0 => psiP*Rj = 0 , elsef Rj > 0 ... , else ... )
43 C with no need to compute thetaM (might be easier to differentiate)
44
45 DO j=1-Oly,sNy+Oly
46 uT(1-Olx,j)=0. _d 0
47 uT(2-Olx,j)=0. _d 0
48 uT(sNx+Olx,j)=0. _d 0
49 DO i=1-Olx+2,sNx+Olx-1
50 Rjp=(tracer(i+1,j)-tracer( i ,j))*maskLocW(i+1,j)
51 Rj =(tracer( i ,j)-tracer(i-1,j))*maskLocW( i ,j)
52 Rjm=(tracer(i-1,j)-tracer(i-2,j))*maskLocW(i-1,j)
53
54 uCFL = uFld(i,j)
55 IF ( calcCFL ) uCFL = ABS( uFld(i,j)*deltaTloc
56 & *recip_dxC(i,j,bi,bj)*recip_deepFacC(k) )
57 d0=(2. _d 0 -uCFL)*(1. _d 0 -uCFL)*oneSixth
58 d1=(1. _d 0 -uCFL*uCFL)*oneSixth
59
60 C- the old version: can produce overflow, division by zero,
61 c and is wrong for tracer with low concentration:
62 c thetaP=Rjm/(1.D-20+Rj)
63 c thetaM=Rjp/(1.D-20+Rj)
64 C- the right expression, but not bounded:
65 c thetaP=0.D0
66 c thetaM=0.D0
67 c IF (Rj.NE.0.D0) thetaP=Rjm/Rj
68 c IF (Rj.NE.0.D0) thetaM=Rjp/Rj
69 C- prevent |thetaP,M| to reach too big value:
70 IF ( ABS(Rj)*thetaMax .LE. ABS(Rjm) ) THEN
71 thetaP=SIGN(thetaMax,Rjm*Rj)
72 ELSE
73 thetaP=Rjm/Rj
74 ENDIF
75 IF ( ABS(Rj)*thetaMax .LE. ABS(Rjp) ) THEN
76 thetaM=SIGN(thetaMax,Rjp*Rj)
77 ELSE
78 thetaM=Rjp/Rj
79 ENDIF
80
81 psiP=d0+d1*thetaP
82 psiP=MAX(0. _d 0,MIN(MIN(1. _d 0,psiP),
83 & thetaP*(1. _d 0 -uCFL)/(uCFL+1. _d -20) ))
84 psiM=d0+d1*thetaM
85 psiM=MAX(0. _d 0,MIN(MIN(1. _d 0,psiM),
86 & thetaM*(1. _d 0 -uCFL)/(uCFL+1. _d -20) ))
87
88 uT(i,j)=
89 & 0.5*(uTrans(i,j)+ABS(uTrans(i,j)))
90 & *( Tracer(i-1,j) + psiP*Rj )
91 & +0.5*(uTrans(i,j)-ABS(uTrans(i,j)))
92 & *( Tracer( i ,j) - psiM*Rj )
93
94 ENDDO
95 ENDDO
96
97 RETURN
98 END

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