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Contents of /trunk/libf/dyn3d/integrd.f90

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Revision 71 - (show annotations)
Mon Jul 8 18:12:18 2013 UTC (10 years, 9 months ago) by guez
File size: 4821 byte(s)
No reason to call inidissip in ce0l.

In inidissip, set random seed to 1 beacuse PGI compiler does not
accept all zeros.

dq was computed needlessly in caladvtrac. Arguments masse and dq of
calfis not used.

Replaced real*8 by double precision.

Pass arrays with inverted order of vertical levels to conflx instead
of creating local variables for this inside conflx.

1 module integrd_m
2
3 IMPLICIT NONE
4
5 contains
6
7 SUBROUTINE integrd(vcovm1, ucovm1, tetam1, psm1, massem1, dv, dudyn, &
8 dteta, dp, vcov, ucov, teta, q, ps, masse, finvmaold, dt, leapf)
9
10 ! From dyn3d/integrd.F, version 1.1.1.1 2004/05/19 12:53:05
11 ! Author: P. Le Van
12 ! Objet: incrémentation des tendances dynamiques
13
14 USE comgeom, ONLY : aire, apoln, apols
15 USE dimens_m, ONLY : iim, jjm, llm
16 USE disvert_m, ONLY : ap, bp
17 USE filtreg_m, ONLY : filtreg
18 use massdair_m, only: massdair
19 use nr_util, only: assert
20 USE paramet_m, ONLY : iip1, iip2, ip1jm, ip1jmp1, jjp1, llmp1
21 use qminimum_m, only: qminimum
22
23 ! Arguments:
24
25 REAL vcov(ip1jm, llm), ucov((iim + 1) * (jjm + 1), llm)
26 real, intent(inout):: teta((iim + 1) * (jjm + 1), llm)
27 REAL q(:, :, :, :) ! (iim + 1, jjm + 1, llm, nq)
28 REAL, intent(inout):: ps((iim + 1) * (jjm + 1))
29 REAL masse((iim + 1) * (jjm + 1), llm)
30
31 REAL vcovm1(ip1jm, llm), ucovm1((iim + 1) * (jjm + 1), llm)
32 REAL, intent(inout):: tetam1((iim + 1) * (jjm + 1), llm)
33 REAL, intent(inout):: psm1((iim + 1) * (jjm + 1))
34 real massem1((iim + 1) * (jjm + 1), llm)
35
36 REAL dv(ip1jm, llm), dudyn((iim + 1) * (jjm + 1), llm)
37 REAL dteta((iim + 1) * (jjm + 1), llm), dp((iim + 1) * (jjm + 1))
38 REAL finvmaold((iim + 1) * (jjm + 1), llm)
39 LOGICAL, INTENT (IN) :: leapf
40 real, intent(in):: dt
41
42 ! Local variables:
43
44 INTEGER nq
45 REAL vscr(ip1jm), uscr((iim + 1) * (jjm + 1)), hscr((iim + 1) * (jjm + 1))
46 real pscr((iim + 1) * (jjm + 1))
47 REAL massescr((iim + 1) * (jjm + 1), llm)
48 real finvmasse((iim + 1) * (jjm + 1), llm)
49 REAL p((iim + 1) * (jjm + 1), llmp1)
50 REAL tpn, tps, tppn(iim), tpps(iim)
51 REAL qpn, qps, qppn(iim), qpps(iim)
52 REAL deltap((iim + 1) * (jjm + 1), llm)
53
54 INTEGER l, ij, iq
55
56 REAL ssum
57
58 !-----------------------------------------------------------------------
59
60 call assert(size(q, 1) == iim + 1, size(q, 2) == jjm + 1, &
61 size(q, 3) == llm, "integrd")
62 nq = size(q, 4)
63
64 DO l = 1, llm
65 DO ij = 1, iip1
66 ucov(ij, l) = 0.
67 ucov(ij+ip1jm, l) = 0.
68 uscr(ij) = 0.
69 uscr(ij+ip1jm) = 0.
70 END DO
71 END DO
72
73 massescr = masse
74
75 ! Integration de ps :
76
77 pscr = ps
78 ps = psm1 + dt * dp
79
80 DO ij = 1, (iim + 1) * (jjm + 1)
81 IF (ps(ij) < 0.) THEN
82 PRINT *, 'integrd: au point ij = ', ij, &
83 ', negative surface pressure ', ps(ij)
84 STOP 1
85 END IF
86 END DO
87
88 DO ij = 1, iim
89 tppn(ij) = aire(ij)*ps(ij)
90 tpps(ij) = aire(ij+ip1jm) * ps(ij+ip1jm)
91 END DO
92 tpn = ssum(iim, tppn, 1)/apoln
93 tps = ssum(iim, tpps, 1)/apols
94 DO ij = 1, iip1
95 ps(ij) = tpn
96 ps(ij+ip1jm) = tps
97 END DO
98
99 ! Calcul de la nouvelle masse d'air au dernier temps integre t+1
100
101 forall (l = 1: llm + 1) p(:, l) = ap(l) + bp(l) * ps
102 CALL massdair(p, masse)
103
104 finvmasse = masse
105 CALL filtreg(finvmasse, jjp1, llm, -2, 2, .TRUE.)
106
107 ! integration de ucov, vcov, h
108
109 DO l = 1, llm
110 DO ij = iip2, ip1jm
111 uscr(ij) = ucov(ij, l)
112 ucov(ij, l) = ucovm1(ij, l) + dt*dudyn(ij, l)
113 END DO
114
115 DO ij = 1, ip1jm
116 vscr(ij) = vcov(ij, l)
117 vcov(ij, l) = vcovm1(ij, l) + dt*dv(ij, l)
118 END DO
119
120 hscr = teta(:, l)
121 teta(:, l) = tetam1(:, l) * massem1(:, l) / masse(:, l) &
122 + dt * dteta(:, l) / masse(:, l)
123
124 ! Calcul de la valeur moyenne, unique aux poles pour teta
125
126 DO ij = 1, iim
127 tppn(ij) = aire(ij)*teta(ij, l)
128 tpps(ij) = aire(ij+ip1jm)*teta(ij+ip1jm, l)
129 END DO
130 tpn = ssum(iim, tppn, 1)/apoln
131 tps = ssum(iim, tpps, 1)/apols
132
133 DO ij = 1, iip1
134 teta(ij, l) = tpn
135 teta(ij+ip1jm, l) = tps
136 END DO
137
138 IF (leapf) THEN
139 ucovm1(:, l) =uscr
140 vcovm1(:, l) = vscr
141 tetam1(:, l) = hscr
142 END IF
143 END DO
144
145 DO l = 1, llm
146 DO ij = 1, (iim + 1) * (jjm + 1)
147 deltap(ij, l) = p(ij, l) - p(ij, l+1)
148 END DO
149 END DO
150
151 CALL qminimum(q, nq, deltap)
152
153 ! Calcul de la valeur moyenne, unique aux poles pour q
154
155 DO iq = 1, nq
156 DO l = 1, llm
157 DO ij = 1, iim
158 qppn(ij) = aire(ij)*q(ij, 1, l, iq)
159 qpps(ij) = aire(ij+ip1jm)*q(ij, jjm + 1, l, iq)
160 END DO
161 qpn = ssum(iim, qppn, 1)/apoln
162 qps = ssum(iim, qpps, 1)/apols
163
164 DO ij = 1, iip1
165 q(ij, 1, l, iq) = qpn
166 q(ij, jjm + 1, l, iq) = qps
167 END DO
168 END DO
169 END DO
170
171 finvmaold = finvmasse
172
173 ! Fin de l'integration de q
174
175 IF (leapf) THEN
176 psm1 = pscr
177 massem1 = massescr
178 END IF
179
180 END SUBROUTINE integrd
181
182 end module integrd_m

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