[248] | 1 | PROGRAM gcm1d |
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| 2 | IMPLICIT NONE |
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| 3 | |
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| 4 | #include "dimensions.h" |
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| 5 | #include "dimphy.h" |
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| 6 | #include "YOMCST.h" |
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| 7 | #include "comg1d.h" |
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| 8 | #include "clesphys.h" |
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| 9 | #include "control.h" |
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| 10 | |
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| 11 | c Arguments : |
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| 12 | c ----------- |
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| 13 | |
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| 14 | integer ngrid,nlayer,longcles,nqmax |
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| 15 | parameter (longcles=20,nqmax=3) |
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| 16 | cfleur on ne se sert pas de nqmax mais de nqmx defini dnas dimensions.h depend de la |
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| 17 | c compilation |
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| 18 | integer radpas |
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| 19 | integer nday,it,iflag_con,unit,i,itap,n_cooling |
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| 20 | integer iphys_ver,iadv_tvl,i_cvg,i_hum |
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| 21 | |
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| 22 | real fnday |
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| 23 | real h,kappa,z1,z2,sbid,sigbid |
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| 24 | real plev(klev+1),play(klev), psol |
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| 25 | real temp(klev),u(klev),v(klev),tsurf,q(klev,nqmx),w(klev+1) |
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| 26 | real ug(klev),vg(klev) |
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| 27 | real du(klev),dv(klev),dt(klev),dpsrf,dq(klev,nqmx) |
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| 28 | real du_dyn(klev),dv_dyn(klev) |
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| 29 | : ,dt_dyn(klev),dq_dyn(klev,nqmax) |
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| 30 | real phis,presnivs(klev),clesphy0(longcles) |
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| 31 | real time,timestep,ecritphy,day,tho |
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| 32 | real co2_ppm,solaire |
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| 33 | real rlat,rlon,tsol,radsol,psol_f,tsol_f,qsol_f,qsol |
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| 34 | real rugmer,rugsrel,snow,agesno,deltat,zmea,zstd,zsig,sn |
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| 35 | real zgam,zthe,zpic,zval |
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| 36 | real ema_sig(klev),ema_w(klev),ncst_cbmf,ema_cbmfz,ema_pcb |
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| 37 | : ,zz_f(klev),vu_f(klev),vv_f(klev),t_f(klev),q_f(klev,nqmax) |
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| 38 | |
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| 39 | real temp0(klev),q0(klev,3) |
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| 40 | |
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| 41 | real dt_cooling(klev),dq_cooling(klev) |
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| 42 | real d_t_cool(klev),d_q_cool(klev) |
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| 43 | real d_t_adv(klev),d_q_adv(klev,nqmax) |
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| 44 | real d_t_cvg(klev),d_q_cvg(klev) |
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| 45 | real ht(100),hq(100),hw(100) |
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| 46 | |
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| 47 | real phy_nat(360) |
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| 48 | real phy_alb(360) |
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| 49 | real phy_sst(360) |
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| 50 | real phy_bil(360) |
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| 51 | real phy_rug(360) |
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| 52 | real phy_ice(360) |
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| 53 | |
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| 54 | logical cycle_diurne,soil_model,new_oliq,ok_orodr |
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| 55 | : ,ok_orolf,ok_limitvrai |
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| 56 | |
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| 57 | logical firstcall,lastcall,flag_cool |
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| 58 | logical itsourcecont |
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| 59 | c itsourcecont permet de choisir entre les sources pour plus de 5 traceurs |
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| 60 | character*80 ans,file_forctl, file_fordat, file_start,file |
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| 61 | character*2 cnbl |
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| 62 | |
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| 63 | c----------------------------------------------------------------------- |
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| 64 | |
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| 65 | COMMON/comvert/ |
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| 66 | * s(llm),sig(llm+1),ds(llm),dsig(llm),dsig1(llm),sdsig(llm) |
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| 67 | . ,sig_s(llm) |
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| 68 | |
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| 69 | REAL s,sig,ds,dsig,dsig1,sdsig,sig_s |
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| 70 | |
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| 71 | c----------------------------------------------------------------------- |
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| 72 | c INCLUDE 'temps.h': |
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| 73 | |
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| 74 | COMMON/temps/itaufin,dtd, |
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| 75 | s day_ini,day_end,anne_ini |
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| 76 | |
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| 77 | INTEGER itaufin |
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| 78 | INTEGER*4 day_ini,day_end,anne_ini |
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| 79 | REAL dtd |
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| 80 | |
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| 81 | c----------------------------------------------------------------------- |
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| 82 | c dynamical tendencies |
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| 83 | |
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| 84 | INTEGER l,ierr,aslun,nlevel,iq,ll |
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| 85 | |
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| 86 | REAL longitude,latitude |
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| 87 | REAL zlay(klev),phi(klev) |
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| 88 | REAL paire |
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| 89 | |
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| 90 | DATA latitude,longitude/0.,0./ |
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| 91 | |
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| 92 | c----------------------------------------------------------------------- |
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| 93 | c Initialisations des constantes |
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| 94 | c ------------------------------- |
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| 95 | |
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| 96 | c constantes |
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| 97 | c ---------- |
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| 98 | |
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| 99 | time=0. |
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| 100 | tho=3600. |
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| 101 | it=0 |
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| 102 | |
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| 103 | call suphec |
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| 104 | |
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| 105 | c parametres lus dans execution_1D: |
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| 106 | c --------------------------------- |
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| 107 | |
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| 108 | read(*,*) fnday |
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| 109 | print*, 'fnday',fnday |
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| 110 | read(*,*) ecritphy |
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| 111 | print*, 'ecritphy',ecritphy |
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| 112 | read(*,*) timestep |
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| 113 | print*, 'timestep',timestep |
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| 114 | read(*,*) iflag_con |
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| 115 | print*, 'iflag_con',iflag_con |
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| 116 | read(*,*) flag_cool |
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| 117 | print*, 'flag_cool',flag_cool |
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| 118 | read(*,'(a)') cnbl |
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| 119 | print*, 'cnbl',cnbl |
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| 120 | read(*,*) radpas |
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| 121 | print*, 'radpas',radpas |
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| 122 | read(*,*) anne_ini ! sans importance mais il faut qqchose |
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| 123 | print*, 'anne_ini',anne_ini |
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| 124 | |
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| 125 | c si ecritphy=0: on ecrit la physique a chaque pas de temps: |
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| 126 | |
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| 127 | if (ecritphy.eq.0.) then |
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| 128 | ecritphy = timestep/rday |
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| 129 | endif |
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| 130 | write(*,*) 'ECRITPHY = ',ecritphy |
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| 131 | |
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| 132 | firstcall=.true. |
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| 133 | lastcall=.false. |
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| 134 | day=1. |
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| 135 | itsourcecont=.true. |
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| 136 | |
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| 137 | open(78,file='transil.dat',form='unformatted', |
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| 138 | s access='direct',recl=4*llm*llm) |
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| 139 | |
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| 140 | ngrid=1 |
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| 141 | IF (ngrid.NE.klon) THEN |
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| 142 | PRINT*,'STOP in inifis' |
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| 143 | PRINT*,'Probleme de dimenesions :' |
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| 144 | PRINT*,'ngrid = ',ngrid |
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| 145 | PRINT*,'klon = ',klon |
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| 146 | STOP |
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| 147 | ENDIF |
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| 148 | nlayer=klev |
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| 149 | nlevel=nlayer+1 |
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| 150 | |
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| 151 | c ------------------------------------------------------------------- |
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| 152 | c Initialisation de la discretisation verticale |
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| 153 | c --------------------------------------------- |
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| 154 | c sb CALL disvert(llm,rkappa,sig,dsig,s,ds,dsig1,sdsig) |
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| 155 | |
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| 156 | c ------------------------------------------------------------------- |
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| 157 | c Profils initiaux. |
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| 158 | c ----------------- |
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| 159 | |
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| 160 | unit = 80 |
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| 161 | open(unit,file='start'//cnbl//'.data',form='formatted') |
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| 162 | read(unit,*) |
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| 163 | read(unit,*) |
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| 164 | read(unit,*) (play(l),l=1,nlayer) |
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| 165 | read(unit,*) (plev(l),l=1,nlevel) |
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| 166 | read(unit,*) (temp(l),l=1,nlayer) |
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| 167 | read(unit,*) (q(l,1),l=1,nlayer) |
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| 168 | read(unit,*) (q(l,2),l=1,nlayer) |
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| 169 | read(unit,*) (ema_sig(l),l=1,nlayer) |
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| 170 | read(unit,*) (ema_w(l),l=1,nlayer) ! reinitialise + loin??? |
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| 171 | read(unit,*) ncst_cbmf, ema_cbmfz, ema_pcb |
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| 172 | read(unit,*) (zz_f(l),l=1,nlayer) |
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| 173 | read(unit,*) (vu_f(l),l=1,nlayer) |
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| 174 | read(unit,*) (vv_f(l),l=1,nlayer) |
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| 175 | close(unit) |
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| 176 | write(*,*) 'Lecture fichier start.data ok' |
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| 177 | |
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| 178 | DO l = 1, nlayer |
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| 179 | u(l) = vu_f(l) |
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| 180 | v(l) = vv_f(l) |
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| 181 | c################## |
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| 182 | cfleur ATTENTION q(3) ce nest plus la glace mais le radon si on active phytrac |
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| 183 | c##################3 |
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| 184 | q(l,3) = 0. ! on initialise la glace a zero |
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| 185 | PRINT*,plev(l),play(l) |
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| 186 | c on recopie le profil initial dans les champs de forcing: |
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| 187 | t_f(l) = temp(l) |
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| 188 | q_f(l,1) = q(l,1) |
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| 189 | q_f(l,2) = q(l,2) |
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| 190 | q_f(l,3) = q(l,3) |
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| 191 | ENDDO |
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| 192 | |
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| 193 | |
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| 194 | c Lecture/creation des conditions aux limites: |
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| 195 | c -------------------------------------------- |
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| 196 | |
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| 197 | unit = 81 |
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| 198 | open(unit,file='startphy.data',form='formatted') |
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| 199 | read(unit,*) |
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| 200 | read(unit,*) co2_ppm |
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| 201 | read(unit,*) solaire |
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| 202 | read(unit,*) rlat |
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| 203 | read(unit,*) tsol |
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| 204 | read(unit,*) radsol |
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| 205 | close(unit) |
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| 206 | write(*,*) 'Lecture fichier startphy.data ok' |
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| 207 | |
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| 208 | unit = 82 |
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| 209 | open(unit,file='condsurf.data',form='formatted') |
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| 210 | read(unit,*) psol_f |
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| 211 | read(unit,*) tsol_f |
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| 212 | read(unit,*) qsol_f |
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| 213 | close(unit) |
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| 214 | write(*,*) 'Lecture fichier condsurf.data ok' |
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| 215 | |
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| 216 | if (play(1).lt.10000.) then |
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| 217 | do l = 1, nlayer |
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| 218 | play(l) = play(l)*100. |
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| 219 | enddo |
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| 220 | endif |
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| 221 | if (plev(1).lt.10000.) then |
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| 222 | do l = 1, nlevel |
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| 223 | plev(l) = plev(l)*100. |
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| 224 | enddo |
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| 225 | endif |
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| 226 | |
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| 227 | if (abs(psol_f-plev(1)) .gt. 1.) then |
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| 228 | print *,' Incompatibilite entre psol et profil' |
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| 229 | : ,' de pression' |
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| 230 | print *,' psol = ',psol_f,' plev(1) = ',plev(1) |
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| 231 | stop |
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| 232 | endif |
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| 233 | |
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| 234 | tsol = tsol_f ! temp au sol prise dans condsurf.data |
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| 235 | psol = psol_f ! pression au sol prise dans condsurf.data |
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| 236 | qsol = qsol_f |
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| 237 | rugmer = 0.0001 ! valeur de cchlim.data |
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| 238 | rugsrel = 0.0 ! (rugsrel = rugoro) |
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| 239 | snow = 0.0 |
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| 240 | sn=0. |
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| 241 | agesno = 50.0 |
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| 242 | rlon = 0.0 |
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| 243 | deltat = 0.0 ! ne sert que pour les slab_ocean |
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| 244 | phis = 0. |
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| 245 | zmea = 0. |
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| 246 | zstd = 0. |
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| 247 | zsig = 0. |
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| 248 | zgam = 0. |
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| 249 | zthe = 0. |
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| 250 | zpic = 0. |
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| 251 | zval = 0. |
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| 252 | |
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| 253 | do i=1,360 |
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| 254 | phy_sst(i) = tsol |
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| 255 | phy_nat(i) = 0.0 ! 0=ocean libre, 1=land, 2=glacier, 3=banquise |
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| 256 | phy_alb(i) = 0.15 ! albedo land only (old value condsurf_jyg=0.3) |
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| 257 | phy_bil(i) = 1.0 ! ne sert que pour les slab_ocean |
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| 258 | phy_rug(i) = 0.1 ! longueur rugosite utilisee sur land only |
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| 259 | phy_ice(i) = 0.0 ! fraction de glace (?) |
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| 260 | enddo |
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| 261 | |
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| 262 | call writelim |
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| 263 | s (phy_nat,phy_alb,phy_sst,phy_bil,phy_rug,phy_ice) |
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| 264 | |
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| 265 | |
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| 266 | |
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| 267 | c controles du run (en 3D: lus dans run.def) : |
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| 268 | |
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| 269 | cycle_diurne = .FALSE. |
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| 270 | soil_model = .FALSE. |
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| 271 | new_oliq = .FALSE. |
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| 272 | ok_orodr = .FALSE. |
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| 273 | ok_orolf = .FALSE. |
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| 274 | ok_limitvrai = .FALSE. |
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| 275 | |
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| 276 | do i = 1, longcles |
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| 277 | clesphy0(i) = 0. |
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| 278 | enddo |
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| 279 | |
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| 280 | nbapp_rad = NINT(86400./radpas/timestep) |
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| 281 | |
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| 282 | clesphy0(1) = FLOAT( iflag_con ) |
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| 283 | clesphy0(2) = FLOAT( nbapp_rad ) |
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| 284 | if (cycle_diurne ) clesphy0(3) = 1. |
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| 285 | if ( soil_model ) clesphy0(4) = 1. |
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| 286 | if ( new_oliq ) clesphy0(5) = 1. |
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| 287 | if ( ok_orodr ) clesphy0(6) = 1. |
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| 288 | if ( ok_orolf ) clesphy0(7) = 1. |
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| 289 | if ( ok_limitvrai) clesphy0(8) = 1. |
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| 290 | |
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| 291 | |
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| 292 | c ------------------------------------------------------------------- |
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| 293 | c Discretisation verticale: |
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| 294 | c ------------------------- |
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| 295 | |
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| 296 | c calcul sig,dsig,s,ds,dsig1,sdsig a partir des play, plev lus: |
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| 297 | |
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| 298 | do l = 1, nlevel |
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| 299 | sig(l)= plev(l)/plev(1) |
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| 300 | enddo |
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| 301 | |
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| 302 | do l = 1, nlayer |
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| 303 | s(l)= sig(l)**RKAPPA |
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| 304 | enddo |
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| 305 | |
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| 306 | do l = 2, nlayer |
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| 307 | ds(l) = s(l-1) - s(l) |
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| 308 | enddo |
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| 309 | ds(1) = 1. - s(1) |
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| 310 | |
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| 311 | do l = 1, nlayer |
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| 312 | dsig(l) = sig(l)-sig(l+1) |
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| 313 | sdsig(l) = s(l) * dsig(l) |
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| 314 | dsig1(l) = 1./dsig(l) |
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| 315 | presnivs(l) = play(l)/100./100. |
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| 316 | enddo |
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| 317 | |
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| 318 | print*,'Diagnostique de la discretisation verticale' |
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| 319 | |
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| 320 | print* |
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| 321 | h=7. |
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| 322 | kappa = RKAPPA |
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| 323 | print*,'comparaison de sig(l) et (s(l)+s(l+1))/2)**(1/K)' |
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| 324 | do 14 l=1,llm-1 |
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| 325 | sigbid=(0.5*(s(l)+s(l+1)))**(1./kappa) |
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| 326 | print*,'sig(',l+1,') = ',sig(l+1), |
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| 327 | : ' valeur approchee :',sigbid,' ',dsig(l) |
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| 328 | 14 continue |
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| 329 | print* |
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| 330 | print*,'comparaison de s(l) et (sig(l)+sig(l+1))/2)**K' |
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| 331 | do 15 l=1,llm |
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| 332 | sbid=(0.5*(sig(l+1)+sig(l)))**kappa |
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| 333 | print*,' s(',l,') = ',s(l), |
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| 334 | : ' valeur approchee :',sbid |
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| 335 | 15 continue |
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| 336 | |
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| 337 | print*,'Altitude approchee z,dz' |
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| 338 | print* |
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| 339 | z1=0. |
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| 340 | print*,' l Z DZ Ztop dsig' |
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| 341 | DO 18 l=1,llm-1 |
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| 342 | z2=-h*log(sig(l+1)) |
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| 343 | write(*,'(i5,3x,4f8.4)') l,-h*log(s(l))/kappa,z2-z1,z2 |
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| 344 | : ,dsig(l) |
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| 345 | write(14,'(3x,i5,1f10.4)') l,-h*log(s(l))/kappa |
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| 346 | z1=z2 |
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| 347 | 18 CONTINUE |
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| 348 | write(*,'(i5,3x,3f8.4)') l,-h*log(s(llm))/kappa |
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| 349 | write(14,'(3x,i5,1f10.4)') l,-h*log(s(llm))/kappa |
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| 350 | |
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| 351 | c print*,'Correspondance approx pression-altitude:' |
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| 352 | c z1 = 0. |
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| 353 | c do l = 1, llm |
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| 354 | c z1 = z1 + 287.*temp(l)/9.81/play(l)*(plev(l)-plev(l+1)) |
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| 355 | c write(*,*) l,play(l),z1 |
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| 356 | c enddo |
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| 357 | |
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| 358 | c ------------------------------------------------------------------- |
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| 359 | c Ecriture de l'etat initial: |
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| 360 | c --------------------------- |
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| 361 | |
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| 362 | c call ini_fis(timestep,radpas,iflag_con,anne_ini |
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| 363 | c : ,co2_ppm,solaire,rlat,rlon,tsol,deltat |
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| 364 | c : ,qsol,snow,radsol,rugmer,agesno,zmea,zstd,zsig,zgam |
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| 365 | c : ,zthe,zpic,zval,rugsrel |
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| 366 | c : ,phy_sst,phy_nat,phy_alb,phy_bil,phy_rug,phy_ice) |
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| 367 | |
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| 368 | call physdem(rlon, rlat, timestep,radpas,co2_ppm, |
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| 369 | . solaire,tsol, qsol, |
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| 370 | . sn, radsol, deltat, rugmer, |
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| 371 | . agesno, zmea, zstd, zsig, |
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| 372 | . zgam, zthe, zpic, zval, |
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| 373 | . rugsrel) |
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| 374 | |
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| 375 | |
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| 376 | |
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| 377 | c ------------------------------------------------------------------- |
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| 378 | c Options de la simulation: |
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| 379 | c ------------------------- |
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| 380 | |
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| 381 | unit = 83 |
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| 382 | open(unit,file='version.data',form='formatted') |
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| 383 | read(unit,*) iphys_ver,iadv_tvl,i_cvg,i_hum |
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| 384 | close(unit) |
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| 385 | write(*,*) 'Lecture fichier version.data ok' |
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| 386 | |
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| 387 | write(*,*) 'physiq # ',iphys_ver,' (0=std; 1=forced glob cis; |
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| 388 | : 2=forced loc cis)' |
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| 389 | write(*,*) 'advection switch : ',iadv_tvl,' (0=no adv ; |
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| 390 | : 1=forced adv)' |
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| 391 | write(*,*) 'convergence switch : ',i_cvg,' (0=no conv; |
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| 392 | : 1=forced conv)' |
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| 393 | |
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| 394 | |
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| 395 | |
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| 396 | c Eventuellement, preparation de la "bulle froide": |
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| 397 | c ------------------------------------------------- |
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| 398 | |
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| 399 | IF (flag_cool) THEN |
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| 400 | unit = 84 |
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| 401 | open(unit,file='cool_buble.data',form='formatted') |
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| 402 | read(unit,*) n_cooling |
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| 403 | do l = 1, nlayer |
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| 404 | read(unit,*) dt_cooling(l),dq_cooling(l) |
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| 405 | enddo |
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| 406 | close(unit) |
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| 407 | write(*,*) 'Lecture fichier cool_buble.data ok' |
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| 408 | ENDIF |
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| 409 | |
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| 410 | |
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| 411 | c Eventuellement, preparation du forcage par la convergence: |
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| 412 | c ---------------------------------------------------------- |
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| 413 | |
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| 414 | IF (i_cvg .EQ. 1) THEN |
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| 415 | file_forctl = 'forcing.ctl' |
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| 416 | file_fordat = 'forcing.dat' |
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| 417 | file_start = 'start'//cnbl//'.data' |
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| 418 | |
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| 419 | call copie(klev,play,psol,file_forctl) |
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| 420 | call get_uvd2(itap,file_forctl,file_fordat,file_start |
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| 421 | : ,ht,hq,hw) |
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| 422 | ENDIF |
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| 423 | |
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| 424 | |
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| 425 | c----------------------------------------------------------------------- |
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| 426 | c initialisation pour GRADS-1D |
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| 427 | c ---------------------------- |
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| 428 | |
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| 429 | g1d_nlayer=nlayer |
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| 430 | g1d_nomfich='grads1d.dat' |
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| 431 | g1d_unitfich=30 |
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| 432 | g1d_nomctl='grads1d.ctl' |
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| 433 | g1d_unitctl=31 |
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| 434 | g1d_premier=.true. |
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| 435 | |
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| 436 | file='sort' |
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| 437 | call inigrads(1,1 |
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| 438 | s ,0.,1.,-2.,2.,1,0.,-2.,2.,1. |
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| 439 | s ,llm,presnivs,1000. |
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| 440 | s ,1800.,file,'Diagconvect') |
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| 441 | print*,'Fin de Initialisation de wrgras' |
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| 442 | |
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| 443 | |
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| 444 | c======================================================================= |
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| 445 | c DEBUT DE L'INTEGRATION TEMPORELLE: |
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| 446 | c ================================== |
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| 447 | |
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| 448 | itap = 1 |
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| 449 | |
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| 450 | 1 continue |
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| 451 | |
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| 452 | c calcul du geopotentiel: |
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| 453 | c ----------------------- |
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| 454 | |
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| 455 | phi(1)=RD*temp(1)* |
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| 456 | :(plev(1)-play(1))/(.5*(plev(1)+play(1))) |
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| 457 | do l = 1, nlayer-1 |
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| 458 | phi(l+1)=phi(l)+RD*(temp(l)+temp(l+1))* |
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| 459 | : (play(l)-play(l+1))/(play(l)+play(l+1)) |
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| 460 | enddo |
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| 461 | |
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| 462 | c PRINT*,'altitude km et T (K)' |
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| 463 | c WRITE(6,'(2f10.2)') (.001*phi(l)/g,temp(l),l=1,nlayer) |
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| 464 | |
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| 465 | |
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| 466 | c pour etre coherent avec LMDZ.3, on passe 2 arguments |
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| 467 | c en plus a physiq: phis et aire (pas utilises en 1D): |
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| 468 | paire = 1. ! aire de la maille |
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| 469 | |
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| 470 | |
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| 471 | c eventuellement, induction de la convection par chauffage du |
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| 472 | c bas et refroidissement du haut de la couche limite: |
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| 473 | c ------------------------------------------------------------ |
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| 474 | |
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| 475 | IF (flag_cool) THEN |
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| 476 | |
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| 477 | call cool_pool(itap |
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| 478 | e ,n_cooling,dt_cooling,dq_cooling |
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| 479 | s ,d_t_cool,d_q_cool) |
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| 480 | |
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| 481 | do l = 1, nlayer |
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| 482 | temp(l) = temp(l) + d_t_cool(l) |
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| 483 | q(l,1) = q(l,1) + d_q_cool(l) |
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| 484 | enddo |
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| 485 | |
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| 486 | ELSE |
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| 487 | |
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| 488 | do l = 1, nlayer |
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| 489 | d_t_cool(l) = 0. |
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| 490 | d_q_cool(l) = 0. |
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| 491 | enddo |
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| 492 | |
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| 493 | ENDIF |
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| 494 | |
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| 495 | |
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| 496 | c eventuellement, ajouter une tendance relative a une |
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| 497 | c translation du domaine (ex: pour suivre une ligne de grains): |
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| 498 | c ------------------------------------------------------------- |
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| 499 | |
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| 500 | IF (iadv_tvl .EQ. 1) THEN |
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| 501 | |
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| 502 | call advect_tvl(timestep,temp,q,vu_f,vv_f,t_f,q_f |
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| 503 | : ,d_t_adv,d_q_adv) |
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| 504 | |
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| 505 | do l = 1, nlayer |
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| 506 | temp(l) = temp(l) + d_t_adv(l) |
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| 507 | q(l,1) = q(l,1) + d_q_adv(l,1) |
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| 508 | q(l,2) = q(l,2) + d_q_adv(l,2) |
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| 509 | q(l,3) = q(l,3) + d_q_adv(l,3) |
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| 510 | enddo |
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| 511 | |
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| 512 | ELSE |
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| 513 | |
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| 514 | do l = 1, nlayer |
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| 515 | d_t_adv(l) = 0. |
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| 516 | d_q_adv(l,1) = 0. |
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| 517 | d_q_adv(l,2) = 0. |
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| 518 | d_q_adv(l,3) = 0. |
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| 519 | enddo |
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| 520 | |
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| 521 | ENDIF |
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| 522 | |
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| 523 | |
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| 524 | c eventuellement, ajouter une tendance relative a la |
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| 525 | c convergence de grande echelle: |
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| 526 | c ------------------------------------------------------------- |
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| 527 | |
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| 528 | IF (i_cvg .EQ. 1) THEN |
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| 529 | |
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| 530 | call get_uvd(itap,timestep,tsol,qsol,file_fordat,ht,hq,hw) |
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| 531 | |
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| 532 | do l = 1, nlayer |
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| 533 | |
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| 534 | temp0(l) = temp(l) ! memoire de "l'avant dynamique" |
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| 535 | q0(l,1) = q(l,1) |
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| 536 | q0(l,2) = q(l,2) |
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| 537 | q0(l,3) = q(l,3) |
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| 538 | |
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| 539 | d_t_cvg(l) = ht(l) * timestep |
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| 540 | d_q_cvg(l) = hq(l) * timestep |
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| 541 | temp(l) = temp(l) + d_t_cvg(l) |
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| 542 | q(l,1) = q(l,1) + d_q_cvg(l) |
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| 543 | c write(*,*)'d_t_cvg,d_q_cvg:',d_t_cvg(l),d_q_cvg(l) |
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| 544 | if (q(l,1).lt.0.) then ! sb |
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| 545 | print*,'OVAP negative dans main!' |
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| 546 | print*,'itap,l,q,d_q_cvg:',itap,l,q(l,1),d_q_cvg(l),hq(l) |
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| 547 | q(l,1) = MAX(q(l,1),1.e-10) ! evite les humidites negatives |
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| 548 | endif |
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| 549 | enddo |
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| 550 | |
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| 551 | if (itap.ge.30) then |
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| 552 | print*,'hq(l),ht(l),dq,dt,q:' |
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| 553 | : ,hq(16),ht(16),d_q_cvg(16),d_t_cvg(16),q(16,1) |
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| 554 | endif |
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| 555 | |
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| 556 | ELSE |
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| 557 | |
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| 558 | do l = 1, nlayer |
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| 559 | d_t_cvg(l) = 0. |
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| 560 | d_q_cvg(l) = 0. |
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| 561 | enddo |
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| 562 | |
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| 563 | ENDIF |
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| 564 | |
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| 565 | do l = 1, nlayer |
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| 566 | dt_dyn(l) = d_t_cvg(l) / timestep |
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| 567 | dq_dyn(l,1) = d_q_cvg(l) / timestep |
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| 568 | dq_dyn(l,2) = 0.0 |
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| 569 | dq_dyn(l,3) = 0.0 |
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| 570 | enddo |
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| 571 | |
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| 572 | |
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| 573 | c calcul des tendances physiques: |
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| 574 | c ------------------------------- |
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| 575 | |
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| 576 | if (itsourcecont) then |
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| 577 | do iq=5,nqmx |
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| 578 | ll=min(iq-4,18) |
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| 579 | if(firstcall) then |
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| 580 | c q(ll,iq)=5/((plev(ll)-plev(ll+1))/rg) |
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| 581 | c q(ll,iq)=5 |
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| 582 | c q(ll,iq)=5*play(ll)/((plev(ll)-plev(ll+1))/rg)/(RD*temp(ll)) |
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| 583 | q(ll,iq)=5*play(ll)/(RD*temp(ll)) |
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| 584 | endif |
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| 585 | print*,'q ll iq',q(ll,iq),ll,iq |
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| 586 | enddo |
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| 587 | else |
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| 588 | do iq=5,nqmx |
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| 589 | ll=min(iq-4,18) |
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| 590 | q(ll,iq)=q(ll,iq)+1 |
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| 591 | do l=1,llm |
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| 592 | q(l,iq)=q(l,iq)*(1-timestep/tho) |
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| 593 | print*,'q ll iq',q(ll,iq),ll,iq |
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| 594 | enddo |
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| 595 | enddo |
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| 596 | |
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| 597 | endif |
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| 598 | |
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| 599 | c CALL physiq(ecritphy,ngrid,nlayer,nqmx, |
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| 600 | c : firstcall,lastcall, |
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| 601 | c : day,day,time,timestep, |
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| 602 | c : plev,play,phi,phis,paire, |
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| 603 | c : u,v,temp,q, |
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| 604 | c : du_dyn, dv_dyn, dt_dyn, dq_dyn, |
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| 605 | c : w, |
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| 606 | c : du,dv,dt,dq,dpsrf) |
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| 607 | |
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| 608 | c CALL physiq (ecritphy,ngrid,nlayer,nqmx,firstcall,lastcall, |
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| 609 | c , day,day,time,timestep,plev,play,phi,phis,paire, |
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| 610 | c , presnivs,clesphy0,u,v,temp,q, |
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| 611 | c pour calculer proprement la tendance de cape liee a la |
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| 612 | c dynamique, il faut entrer aussi temp0 et q0: |
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| 613 | c , presnivs,clesphy0,u,v,temp,q,temp0,q0, |
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| 614 | c , du_dyn,dv_dyn,dt_dyn,dq_dyn,w, |
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| 615 | c - sorties |
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| 616 | c s du,dv,dt,dq,dpsrf) |
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| 617 | |
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| 618 | print*,'PAS DE TEMPS ',timestep |
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| 619 | print*,'ATTENTION!!! Il faudra passer temp0 et q0' |
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| 620 | CALL physiq(ngrid,nlayer,nqmx, |
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| 621 | : firstcall,lastcall, |
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| 622 | : day,day,time,timestep, |
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| 623 | : plev,play,phi,phis,paire,presnivs,clesphy0, |
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| 624 | : u,v,temp,q, |
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| 625 | : w, |
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| 626 | : du,dv,dt,dq,dpsrf) |
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| 627 | |
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| 628 | |
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| 629 | |
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| 630 | |
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| 631 | firstcall=.false. |
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| 632 | |
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| 633 | |
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| 634 | c Ajout des tendances |
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| 635 | c ------------------- |
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| 636 | DO l=1,nlayer |
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| 637 | u(l)=u(l)+timestep*du(l) |
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| 638 | v(l)=v(l)+timestep*dv(l) |
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| 639 | |
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| 640 | temp(l)=temp(l)+timestep*dt(l) |
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| 641 | ENDDO |
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| 642 | |
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| 643 | do iq=1,nqmx |
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| 644 | do l=1,nlayer |
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| 645 | q(l,iq)=q(l,iq)+timestep*dq(l,iq) |
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| 646 | enddo |
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| 647 | enddo |
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| 648 | c write(78,rec=itap) ((q(l,iq),l=1,llm),iq=5,22) |
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| 649 | write(78,rec=itap) ((q(l,iq),iq=5,22),l=1,llm) |
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| 650 | itap = itap + 1 |
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| 651 | |
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| 652 | |
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| 653 | time=time+timestep/rday |
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| 654 | it=it+1 |
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| 655 | if(mod(it,2000).eq.0) print*,'TIME=',time |
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| 656 | if(time.gt.fnday) then |
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| 657 | CALL endg1d(1,nlayer,play,int(time/ecritphy),timestep) |
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| 658 | stop |
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| 659 | endif |
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| 660 | |
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| 661 | GOTO 1 |
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| 662 | |
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| 663 | END |
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| 664 | |
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| 665 | c======================================================================= |
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| 666 | c======================================================================= |
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| 667 | c FIN DU PROGRAMMES |
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| 668 | c CI-DESSOUS, QUELQUES SOUS-PROGRAMMES UTILS |
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| 669 | c======================================================================= |
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| 670 | c======================================================================= |
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| 671 | |
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| 672 | #include "1DUTILS.h" |
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| 673 | #include "1Dconv.h" |
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