/[MITgcm]/MITgcm/pkg/seaice/seaice_budget_ocean.F
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Annotation of /MITgcm/pkg/seaice/seaice_budget_ocean.F

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Revision 1.3 - (hide annotations) (download)
Mon Apr 16 22:43:01 2007 UTC (17 years, 1 month ago) by mlosch
Branch: MAIN
CVS Tags: checkpoint59a, checkpoint59
Changes since 1.2: +4 -3 lines
- add myThid to argument list of seaice_budget_ice/ocean

1 mlosch 1.3 C $Header: /u/gcmpack/MITgcm/pkg/seaice/seaice_budget_ocean.F,v 1.2 2006/12/15 14:36:05 mlosch Exp $
2 mlosch 1.2 C $Name: $
3 mlosch 1.1
4     #include "SEAICE_OPTIONS.h"
5    
6     CStartOfInterface
7     SUBROUTINE SEAICE_BUDGET_OCEAN(
8     I UG,
9     U TSURF,
10     O netHeatFlux, SWHeatFlux,
11 mlosch 1.3 I bi, bj, myThid )
12 mlosch 1.1 C /================================================================\
13     C | SUBROUTINE seaice_budget_ocean |
14     C | o Calculate surface heat fluxes over open ocean |
15     C | see Hibler, MWR, 108, 1943-1973, 1980 |
16     C | If SEAICE_EXTERNAL_FLUXES is defined this routine simply |
17     C | simply copies the global fields to the seaice-local fields. |
18     C |================================================================|
19     C \================================================================/
20     IMPLICIT NONE
21    
22     C === Global variables ===
23     #include "SIZE.h"
24     #include "EEPARAMS.h"
25     #include "FFIELDS.h"
26     #include "SEAICE_PARAMS.h"
27     #include "SEAICE_FFIELDS.h"
28     #ifdef SEAICE_VARIABLE_FREEZING_POINT
29     #include "DYNVARS.h"
30     #endif /* SEAICE_VARIABLE_FREEZING_POINT */
31    
32     C === Routine arguments ===
33     C INPUT:
34     C UG :: thermal wind of atmosphere
35     C TSURF :: surface temperature of ocean in Kelvin
36     C bi,bj :: loop indices
37 mlosch 1.3 C myThid :: Thread no. that called this routine.
38 mlosch 1.1 C OUTPUT:
39     C netHeatFlux :: net surface heat flux over open water or under ice
40     C SWHeatFlux :: short wave heat flux over open water or under ice
41     _RL UG (1-OLx:sNx+OLx,1-OLy:sNy+OLy)
42     _RL TSURF (1-OLx:sNx+OLx,1-OLy:sNy+OLy,nSx,nSy)
43     _RL netHeatFlux(1-OLx:sNx+OLx,1-OLy:sNy+OLy)
44     _RL SWHeatFlux (1-OLx:sNx+OLx,1-OLy:sNy+OLy)
45 mlosch 1.3 INTEGER bi, bj, myThid
46 mlosch 1.1 CEndOfInterface
47    
48     C === Local variables ===
49     C i,j - Loop counters
50     INTEGER i, j
51     #ifndef SEAICE_EXTERNAL_FLUXES
52     INTEGER ITER
53 mlosch 1.2 _RL QS1, TB, D1, D1W, D3, TMELT
54 mlosch 1.1 C effective conductivity of combined ice and snow
55     _RL effConduct
56     C specific humidity at ice surface
57     _RL qhIce
58     C powers of temperature
59     _RL t1, t2, t3, t4
60    
61     C local copies of global variables
62     _RL tsurfLoc (1-OLx:sNx+OLx,1-OLy:sNy+OLy)
63     _RL atempLoc (1-OLx:sNx+OLx,1-OLy:sNy+OLy)
64     _RL lwdownLoc (1-OLx:sNx+OLx,1-OLy:sNy+OLy)
65     _RL ALB (1-OLx:sNx+OLx,1-OLy:sNy+OLy)
66     C coefficients of Hibler (1980), appendix B
67     _RL A1 (1-OLx:sNx+OLx,1-OLy:sNy+OLy)
68     _RL A2 (1-OLx:sNx+OLx,1-OLy:sNy+OLy)
69     _RL A3 (1-OLx:sNx+OLx,1-OLy:sNy+OLy)
70     C auxiliary variable
71     _RL B (1-OLx:sNx+OLx,1-OLy:sNy+OLy)
72    
73     C NOW DEFINE ASSORTED CONSTANTS
74     C SATURATION VAPOR PRESSURE CONSTANT
75     QS1=0.622 _d +00/1013.0 _d +00
76     C FREEZING TEMPERATURE OF SEAWATER
77     TB=271.2 _d +00
78     C SENSIBLE HEAT CONSTANT
79     D1=SEAICE_sensHeat
80     C WATER LATENT HEAT CONSTANT
81     D1W=SEAICE_latentWater
82     C STEFAN BOLTZMAN CONSTANT TIMES 0.97 EMISSIVITY
83     D3=SEAICE_emissivity
84     C MELTING TEMPERATURE OF ICE
85     TMELT=273.16 _d +00
86    
87     DO J=1,sNy
88     DO I=1,sNx
89     netHeatFlux(I,J) = 0. _d 0
90     SWHeatFlux (I,J) = 0. _d 0
91     C
92     tsurfLoc (I,J) = MIN(273.16 _d 0+MAX_TICE,TSURF(I,J,bi,bj))
93     C Is this necessary?
94     atempLoc (I,J) = MAX(273.16 _d 0+MIN_ATEMP,ATEMP(I,J,bi,bj))
95     lwdownLoc(I,J) = MAX(MIN_LWDOWN,LWDOWN(I,J,bi,bj))
96     ENDDO
97     ENDDO
98     #endif /* SEAICE_EXTERNAL_FLUXES */
99    
100     C NOW DETERMINE OPEN WATER HEAT BUD. ASSUMING TSURF=WATER TEMP.
101     C WATER ALBEDO IS ASSUMED TO BE THE CONSTANT SEAICE_waterAlbedo
102     DO J=1,sNy
103     DO I=1,sNx
104     #ifdef SEAICE_EXTERNAL_FLUXES
105     netHeatFlux(I,J) = Qnet(I,J,bi,bj)
106     SWHeatFlux (I,J) = Qsw(I,J,bi,bj)
107     #else /* SEAICE_EXTERNAL_FLUXES undefined */
108     ALB(I,J)=SEAICE_waterAlbedo
109     A1(I,J)=(ONE-ALB(I,J))*SWDOWN(I,J,bi,bj)
110     & +lwdownLoc(I,J)*0.97 _d 0
111     & +D1*UG(I,J)*atempLoc(I,J)+D1W*UG(I,J)*AQH(I,J,bi,bj)
112     B(I,J)=QS1*6.11 _d +00*EXP(17.2694 _d +00
113     & *(tsurfLoc(I,J)-TMELT)
114     & /(tsurfLoc(I,J)-TMELT+237.3 _d +00))
115     A2(I,J)=-D1*UG(I,J)*tsurfLoc(I,J)-D1W*UG(I,J)*B(I,J)
116     & -D3*(tsurfLoc(I,J)**4)
117     netHeatFlux(I,J)=-A1(I,J)-A2(I,J)
118     SWHeatFlux (I,J)=-(ONE-ALB(I,J))*SWDOWN(I,J,bi,bj)
119     #endif /* SEAICE_EXTERNAL_FLUXES */
120     ENDDO
121     ENDDO
122    
123     RETURN
124     END

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