/[lmdze]/trunk/Sources/phylmd/coefcdrag.f
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Contents of /trunk/Sources/phylmd/coefcdrag.f

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Revision 246 - (show annotations)
Wed Nov 15 13:56:45 2017 UTC (6 years, 5 months ago) by guez
File size: 3842 byte(s)
In procedure clmain, no need for intermediary variables ykmm and ykmn.

In module coefcdrag_m, remove unused procedures fsta and fins.

1 module coefcdrag_m
2
3 IMPLICIT NONE
4
5 contains
6
7 SUBROUTINE coefcdrag (nsrf, speed, t, q, zgeop, psol, ts, qsurf, rugos, &
8 cdram, cdrah, cdran, zri1, pref)
9
10 ! From LMDZ4/libf/phylmd/coefcdrag.F90, version 1.1.1.1, 2004/05/19 12:53:07
11
12 ! Objet : calcul des cdrags pour le moment (cdram) et les flux de
13 ! chaleur sensible et latente (cdrah), du cdrag neutre (cdran), du
14 ! nombre de Richardson entre la surface et le niveau de reference
15 ! (zri1) et de la pression au niveau de reference (pref).
16
17 ! I. Musat, 01.07.2002
18
19 use indicesol, only: is_oce
20 use SUPHEC_M, only: rd, retv, rg, rkappa
21 use dimphy, only: klon
22
23 INTEGER, intent(in) :: nsrf
24 ! nsrf----input-I- indice pour le type de surface; voir indicesol.inc
25 REAL, intent(in) :: speed(:), t(:), q(:), zgeop(:), psol(:) ! (knon)
26 ! speed---input-R- module du vent au 1er niveau du modele
27 ! t-------input-R- temperature de l'air au 1er niveau du modele
28 ! q-------input-R- humidite de l'air au 1er niveau du modele
29 ! zgeop---input-R- geopotentiel au 1er niveau du modele
30 ! psol----input-R- pression au sol
31 REAL, dimension(klon), intent(in) :: ts, qsurf, rugos
32 ! ts------input-R- temperature de l'air a la surface
33 ! qsurf---input-R- humidite de l'air a la surface
34 ! rugos---input-R- rugosite
35
36 REAL, dimension(klon), intent(out) :: cdram, cdrah, cdran, zri1, pref
37 ! cdram--output-R- cdrag pour le moment
38 ! cdrah--output-R- cdrag pour les flux de chaleur latente et sensible
39 ! cdran--output-R- cdrag neutre
40 ! zri1---output-R- nb. Richardson entre la surface et la couche zgeop/RG
41 ! pref---output-R- pression au niveau zgeop/RG
42
43 ! Local:
44 REAL, parameter :: RKAR=0.40, CB=5.0, CC=5.0, CD=5.0
45 INTEGER :: i
46 REAL, dimension(klon) :: zdu2, zdphi, ztsolv, ztvd
47 REAL, dimension(klon) :: zscf, friv, frih, zucf, zcr
48 REAL, dimension(klon) :: zcfm1, zcfh1
49 REAL, dimension(klon) :: zcfm2, zcfh2
50 REAL, dimension(klon) :: trm0, trm1
51
52 !-------------------------------------------------------------------------
53
54 DO i = 1, size(speed)
55 zdphi(i) = zgeop(i)
56 zdu2(i) = speed(i)**2
57 pref(i) = exp(log(psol(i)) - zdphi(i)/(RD*t(i)* &
58 (1.+ RETV * max(q(i), 0.0))))
59 ztsolv(i) = ts(i)
60 ztvd(i) = t(i) * (psol(i)/pref(i))**RKAPPA
61 trm0(i) = 1. + RETV * max(qsurf(i), 0.0)
62 trm1(i) = 1. + RETV * max(q(i), 0.0)
63 ztsolv(i) = ztsolv(i) * trm0(i)
64 ztvd(i) = ztvd(i) * trm1(i)
65 zri1(i) = zdphi(i)*(ztvd(i)-ztsolv(i))/(zdu2(i)*ztvd(i))
66 cdran(i) = (RKAR/log(1.+zdphi(i)/(RG*rugos(i))))**2
67
68 IF (zri1(i) >= 0.) THEN
69 ! situation stable : pour eviter les inconsistances dans les cas
70 ! tres stables on limite zri1 a 20. cf Hess et al. (1995)
71 zri1(i) = min(20., zri1(i))
72 zscf(i) = SQRT(1.+CD*ABS(zri1(i)))
73 friv(i) = max(1. / (1.+2.*CB*zri1(i)/ zscf(i)), 0.1)
74 zcfm1(i) = cdran(i) * friv(i)
75 frih(i) = max(1./ (1.+3.*CB*zri1(i)*zscf(i)), 0.1)
76 zcfh1(i) = cdran(i) * frih(i)
77 cdram(i) = zcfm1(i)
78 cdrah(i) = zcfh1(i)
79 ELSE
80 ! situation instable
81 zucf(i) = 1./(1.+3.0*CB*CC*cdran(i)*SQRT(ABS(zri1(i)) &
82 *(1.0+zdphi(i)/(RG*rugos(i)))))
83 zcfm2(i) = cdran(i)*max((1.-2.0*CB*zri1(i)*zucf(i)), 0.1)
84 zcfh2(i) = cdran(i)*max((1.-3.0*CB*zri1(i)*zucf(i)), 0.1)
85 cdram(i) = zcfm2(i)
86 cdrah(i) = zcfh2(i)
87
88 ! cdrah sur l'ocean cf. Miller et al. (1992)
89
90 zcr(i) = (0.0016/(cdran(i)*SQRT(zdu2(i))))*ABS(ztvd(i)-ztsolv(i)) &
91 **(1./3.)
92 IF (nsrf == is_oce) cdrah(i) = cdran(i)*(1.0+zcr(i)**1.25) &
93 **(1./1.25)
94 ENDIF
95 END DO
96
97 END SUBROUTINE coefcdrag
98
99 end module coefcdrag_m

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