/[MITgcm]/MITgcm/pkg/generic_advdiff/gad_fluxlimit_adv_y.F
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Revision 1.5 - (show annotations) (download)
Mon Mar 29 03:33:51 2004 UTC (20 years, 1 month ago) by edhill
Branch: MAIN
CVS Tags: checkpoint54d_post, checkpoint54e_post, checkpoint55, checkpoint54, checkpoint53, checkpoint54f_post, checkpoint55c_post, checkpoint53d_post, checkpoint54b_post, checkpoint52m_post, checkpoint54a_pre, checkpoint53c_post, checkpoint54a_post, checkpoint55b_post, checkpoint53a_post, checkpoint53g_post, checkpoint53f_post, checkpoint52n_post, checkpoint53b_pre, checkpoint55a_post, checkpoint53b_post, checkpoint53d_pre, checkpoint54c_post
Changes since 1.4: +12 -12 lines
 o new "poster children" for the API reference:
   - generic_advdiff
   - mnc

1 C $Header: /u/gcmpack/MITgcm/pkg/generic_advdiff/gad_fluxlimit_adv_y.F,v 1.4 2002/03/06 01:29:36 jmc Exp $
2 C $Name: $
3
4 #include "GAD_OPTIONS.h"
5
6 CBOP
7 C !ROUTINE: GAD_FLUXLIMIT_ADV_Y
8
9 C !INTERFACE: ==========================================================
10 SUBROUTINE GAD_FLUXLIMIT_ADV_Y(
11 I bi,bj,k,deltaT,
12 I vTrans, vVel,
13 I tracer,
14 O vT,
15 I myThid )
16
17 C !DESCRIPTION:
18 C Calculates the area integrated meridional flux due to advection of a tracer
19 C using second-order interpolation with a flux limiter:
20 C \begin{equation*}
21 C F^y_{adv} = V \overline{ \theta }^j
22 C - \frac{1}{2} \left(
23 C [ 1 - \psi(C_r) ] |V|
24 C + V \frac{v \Delta t}{\Delta y_c} \psi(C_r)
25 C \right) \delta_j \theta
26 C \end{equation*}
27 C where the $\psi(C_r)$ is the limiter function and $C_r$ is
28 C the slope ratio.
29
30 C !USES: ===============================================================
31 IMPLICIT NONE
32 #include "SIZE.h"
33 #include "GRID.h"
34
35 C !INPUT PARAMETERS: ===================================================
36 C bi,bj :: tile indices
37 C k :: vertical level
38 C vTrans :: meridional volume transport
39 C vVel :: meridional flow
40 C tracer :: tracer field
41 C myThid :: thread number
42 INTEGER bi,bj,k
43 _RL deltaT
44 _RL vTrans(1-OLx:sNx+OLx,1-OLy:sNy+OLy)
45 _RL vVel (1-OLx:sNx+OLx,1-OLy:sNy+OLy,Nr,nSx,nSy)
46 _RL tracer(1-OLx:sNx+OLx,1-OLy:sNy+OLy)
47 INTEGER myThid
48
49 C !OUTPUT PARAMETERS: ==================================================
50 C vT :: meridional advective flux
51 _RL vT (1-OLx:sNx+OLx,1-OLy:sNy+OLy)
52
53 C !LOCAL VARIABLES: ====================================================
54 C i,j :: loop indices
55 C Cr :: slope ratio
56 C Rjm,Rj,Rjp :: differences at j-1,j,j+1
57 C vFld :: velocity [m/s], meridional component
58 INTEGER i,j
59 _RL Cr,Rjm,Rj,Rjp
60 _RL vFld
61 C Statement function provides Limiter(Cr)
62 #include "GAD_FLUX_LIMITER.h"
63 CEOP
64
65 DO i=1-Olx,sNx+Olx
66 vT(i,1-Oly)=0.
67 vT(i,2-Oly)=0.
68 vT(i,sNy+Oly)=0.
69 ENDDO
70 DO j=1-Oly+2,sNy+Oly-1
71 DO i=1-Olx,sNx+Olx
72
73 c vFld = vVel(i,j,k,bi,bj)
74 vFld = vTrans(i,j)*recip_dxG(i,j,bi,bj)
75 & *recip_drF(k)*recip_hFacS(i,j,k,bi,bj)
76 Rjp=(tracer(i,j+1)-tracer(i,j))*maskS(i,j+1,k,bi,bj)
77 Rj=(tracer(i,j)-tracer(i,j-1))*maskS(i,j,k,bi,bj)
78 Rjm=(tracer(i,j-1)-tracer(i,j-2))*maskS(i,j-1,k,bi,bj)
79
80 IF (Rj.NE.0.) THEN
81 IF (vTrans(i,j).GT.0) THEN
82 Cr=Rjm/Rj
83 ELSE
84 Cr=Rjp/Rj
85 ENDIF
86 ELSE
87 IF (vTrans(i,j).GT.0) THEN
88 Cr=Rjm*1.E20
89 ELSE
90 Cr=Rjp*1.E20
91 ENDIF
92 ENDIF
93 Cr=Limiter(Cr)
94 vT(i,j) =
95 & vTrans(i,j)*(Tracer(i,j)+Tracer(i,j-1))*0.5 _d 0
96 & -0.5*(
97 & (1-Cr)*ABS(vTrans(i,j))
98 & +vTrans(i,j)*vFld*deltaT
99 & *recip_dyC(i,j,bi,bj)*Cr
100 & )*Rj
101 ENDDO
102 ENDDO
103
104 RETURN
105 END

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