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Contents of /trunk/phylmd/stdlevvar.f

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Revision 106 - (show annotations)
Tue Sep 9 12:54:30 2014 UTC (9 years, 8 months ago) by guez
File size: 7519 byte(s)
Removed arguments klon, knon of interfoce_lim. Removed argument knon
of interfsur_lim.

1 module stdlevvar_m
2
3 IMPLICIT NONE
4
5 contains
6
7 SUBROUTINE stdlevvar(klon, knon, nsrf, zxli, u1, v1, t1, q1, z1, ts1, &
8 qsurf, rugos, psol, pat1, t_2m, q_2m, t_10m, q_10m, u_10m, ustar)
9
10 ! From LMDZ4/libf/phylmd/stdlevvar.F90, version 1.3 2005/05/25 13:10:09
11
12 USE suphec_m, ONLY: rg, rkappa
13
14 ! Objet : calcul de la température et de l'humidité relative à 2 m
15 ! et du module du vent à 10 m à partir des relations de
16 ! Dyer-Businger et des équations de Louis.
17
18 ! Reference: Hess, Colman and McAvaney (1995)
19
20 ! Author: I. Musat, 01.07.2002
21
22 INTEGER, intent(in):: klon
23 ! dimension de la grille physique (= nb_pts_latitude X nb_pts_longitude)
24
25 INTEGER, intent(in):: knon
26 ! knon----input-I- nombre de points pour un type de surface
27 INTEGER, intent(in):: nsrf
28 ! nsrf----input-I- indice pour le type de surface; voir indicesol.inc
29 LOGICAL, intent(in):: zxli
30 ! zxli----input-L- TRUE si calcul des cdrags selon Laurent Li
31 REAL, dimension(klon), intent(in):: u1
32 ! u1------input-R- vent zonal au 1er niveau du modele
33 REAL, dimension(klon), intent(in):: v1
34 ! v1------input-R- vent meridien au 1er niveau du modele
35 REAL, dimension(klon), intent(in):: t1
36 ! t1------input-R- temperature de l'air au 1er niveau du modele
37 REAL, dimension(klon), intent(in):: q1
38 ! q1------input-R- humidite relative au 1er niveau du modele
39 REAL, dimension(klon), intent(in):: z1
40 ! z1------input-R- geopotentiel au 1er niveau du modele
41 REAL, dimension(klon), intent(in):: ts1
42 ! ts1-----input-R- temperature de l'air a la surface
43 REAL, dimension(klon), intent(in):: qsurf
44 ! qsurf---input-R- humidite relative a la surface
45 REAL, dimension(klon), intent(in):: rugos
46 ! rugos---input-R- rugosite
47 REAL, dimension(klon), intent(in):: psol
48 ! psol----input-R- pression au sol
49 REAL, dimension(klon), intent(in):: pat1
50 ! pat1----input-R- pression au 1er niveau du modele
51
52 REAL, dimension(klon), intent(out):: t_2m
53 ! t_2m---output-R- temperature de l'air a 2m
54 REAL, dimension(klon), intent(out):: q_2m
55 ! q_2m---output-R- humidite relative a 2m
56 REAL, dimension(klon), intent(out):: t_10m
57 ! t_10m--output-R- temperature de l'air a 10m
58 REAL, dimension(klon), intent(out):: q_10m
59 ! q_10m--output-R- humidite specifique a 10m
60 REAL, dimension(klon), intent(out):: u_10m
61 ! u_10m--output-R- vitesse du vent a 10m
62 REAL, intent(out):: ustar(klon) ! u*
63
64 ! Local:
65
66 ! RKAR : constante de von Karman
67 REAL, PARAMETER:: RKAR=0.40
68 ! niter : nombre iterations calcul "corrector"
69 INTEGER, parameter:: niter=2, ncon=niter-1
70
71 ! Variables locales
72 INTEGER i, n
73 REAL zref
74 REAL, dimension(klon):: speed
75 ! tpot : temperature potentielle
76 REAL, dimension(klon):: tpot
77 REAL, dimension(klon):: zri1, cdran
78 REAL cdram(klon), cdrah(klon)
79 ! ri1 : nb. de Richardson entre la surface --> la 1ere couche
80 REAL, dimension(klon):: ri1
81 REAL, dimension(klon):: testar, qstar
82 REAL, dimension(klon):: zdte, zdq
83 ! lmon : longueur de Monin-Obukhov selon Hess, Colman and McAvaney
84 DOUBLE PRECISION, dimension(klon):: lmon
85 DOUBLE PRECISION, parameter:: eps=1.0D-20
86 REAL, dimension(klon):: delu, delte, delq
87 REAL, dimension(klon):: u_zref, te_zref, q_zref
88 REAL, dimension(klon):: temp, pref
89 LOGICAL okri
90 REAL, dimension(klon):: u_zref_p, temp_p, q_zref_p
91 !convertgence
92 REAL, dimension(klon):: te_zref_con, q_zref_con
93 REAL, dimension(klon):: u_zref_c, temp_c, q_zref_c
94 REAL, dimension(klon):: ok_pred, ok_corr
95
96 !-------------------------------------------------------------------------
97
98 DO i=1, knon
99 speed(i)=SQRT(u1(i)**2+v1(i)**2)
100 ri1(i) = 0.0
101 ENDDO
102
103 okri=.FALSE.
104 CALL coefcdrag(klon, knon, nsrf, zxli, speed, t1, q1, z1, psol, ts1, &
105 qsurf, rugos, okri, ri1, cdram, cdrah, cdran, zri1, pref)
106
107 ! Star variables
108
109 DO i = 1, knon
110 ri1(i) = zri1(i)
111 tpot(i) = t1(i)* (psol(i)/pat1(i))**RKAPPA
112 ustar(i) = sqrt(cdram(i) * speed(i) * speed(i))
113 zdte(i) = tpot(i) - ts1(i)
114 zdq(i) = max(q1(i), 0.0) - max(qsurf(i), 0.0)
115
116 zdte(i) = sign(max(abs(zdte(i)), 1.e-10), zdte(i))
117
118 testar(i) = (cdrah(i) * zdte(i) * speed(i))/ustar(i)
119 qstar(i) = (cdrah(i) * zdq(i) * speed(i))/ustar(i)
120 lmon(i) = (ustar(i) * ustar(i) * tpot(i))/ &
121 (RKAR * RG * testar(i))
122 ENDDO
123
124 ! First aproximation of variables at zref
125 zref = 2.0
126 CALL screenp(klon, knon, nsrf, speed, tpot, q1, &
127 ts1, qsurf, rugos, lmon, &
128 ustar, testar, qstar, zref, &
129 delu, delte, delq)
130
131 DO i = 1, knon
132 u_zref(i) = delu(i)
133 q_zref(i) = max(qsurf(i), 0.0) + delq(i)
134 te_zref(i) = ts1(i) + delte(i)
135 temp(i) = te_zref(i) * (psol(i)/pat1(i))**(-RKAPPA)
136 q_zref_p(i) = q_zref(i)
137 temp_p(i) = temp(i)
138 ENDDO
139
140 ! Iteration of the variables at the reference level zref :
141 ! corrector calculation ; see Hess & McAvaney, 1995
142
143 DO n = 1, niter
144 okri=.TRUE.
145 CALL screenc(klon, knon, nsrf, zxli, &
146 u_zref, temp, q_zref, zref, &
147 ts1, qsurf, rugos, psol, &
148 ustar, testar, qstar, okri, ri1, &
149 pref, delu, delte, delq)
150
151 DO i = 1, knon
152 u_zref(i) = delu(i)
153 q_zref(i) = delq(i) + max(qsurf(i), 0.0)
154 te_zref(i) = delte(i) + ts1(i)
155
156 ! return to normal temperature
157
158 temp(i) = te_zref(i) * (psol(i)/pref(i))**(-RKAPPA)
159
160 IF(n == ncon) THEN
161 te_zref_con(i) = te_zref(i)
162 q_zref_con(i) = q_zref(i)
163 ENDIF
164 ENDDO
165 ENDDO
166
167 ! verifier le critere de convergence : 0.25% pour te_zref et 5% pour qe_zref
168
169 DO i = 1, knon
170 q_zref_c(i) = q_zref(i)
171 temp_c(i) = temp(i)
172
173 ok_pred(i)=0.
174 ok_corr(i)=1.
175
176 t_2m(i) = temp_p(i) * ok_pred(i) + temp_c(i) * ok_corr(i)
177 q_2m(i) = q_zref_p(i) * ok_pred(i) + q_zref_c(i) * ok_corr(i)
178 ENDDO
179
180 ! First aproximation of variables at zref
181
182 zref = 10.0
183 CALL screenp(klon, knon, nsrf, speed, tpot, q1, &
184 ts1, qsurf, rugos, lmon, &
185 ustar, testar, qstar, zref, &
186 delu, delte, delq)
187
188 DO i = 1, knon
189 u_zref(i) = delu(i)
190 q_zref(i) = max(qsurf(i), 0.0) + delq(i)
191 te_zref(i) = ts1(i) + delte(i)
192 temp(i) = te_zref(i) * (psol(i)/pat1(i))**(-RKAPPA)
193 u_zref_p(i) = u_zref(i)
194 ENDDO
195
196 ! Iteration of the variables at the reference level zref:
197 ! corrector ; see Hess & McAvaney, 1995
198
199 DO n = 1, niter
200 okri=.TRUE.
201 CALL screenc(klon, knon, nsrf, zxli, &
202 u_zref, temp, q_zref, zref, &
203 ts1, qsurf, rugos, psol, &
204 ustar, testar, qstar, okri, ri1, &
205 pref, delu, delte, delq)
206
207 DO i = 1, knon
208 u_zref(i) = delu(i)
209 q_zref(i) = delq(i) + max(qsurf(i), 0.0)
210 te_zref(i) = delte(i) + ts1(i)
211 temp(i) = te_zref(i) * (psol(i)/pref(i))**(-RKAPPA)
212 ENDDO
213 ENDDO
214
215 DO i = 1, knon
216 u_zref_c(i) = u_zref(i)
217
218 u_10m(i) = u_zref_p(i) * ok_pred(i) + u_zref_c(i) * ok_corr(i)
219
220 q_zref_c(i) = q_zref(i)
221 temp_c(i) = temp(i)
222 t_10m(i) = temp_p(i) * ok_pred(i) + temp_c(i) * ok_corr(i)
223 q_10m(i) = q_zref_p(i) * ok_pred(i) + q_zref_c(i) * ok_corr(i)
224 ENDDO
225
226 END subroutine stdlevvar
227
228 end module stdlevvar_m

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