[878] | 1 | ! |
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| 2 | ! $Header$ |
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| 3 | ! |
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| 4 | subroutine calltherm(dtime & |
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| 5 | & ,pplay,paprs,pphi,weak_inversion & |
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| 6 | & ,u_seri,v_seri,t_seri,q_seri,zqsat,debut & |
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| 7 | & ,d_u_ajs,d_v_ajs,d_t_ajs,d_q_ajs & |
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| 8 | & ,fm_therm,entr_therm,zqasc,clwcon0,lmax,ratqscth, & |
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[879] | 9 | & ratqsdiff,zqsatth,Ale_bl,Alp_bl,lalim_conv,wght_th) |
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[878] | 10 | |
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| 11 | implicit none |
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| 12 | #include "dimensions.h" |
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| 13 | #include "dimphy.h" |
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| 14 | #include "thermcell.h" |
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| 15 | |
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| 16 | ! A inclure eventuellement dans les fichiers de configuration |
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| 17 | data r_aspect_thermals,l_mix_thermals,tho_thermals/2.,30.,0./ |
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| 18 | data w2di_thermals/0/ |
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| 19 | |
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| 20 | REAL dtime |
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| 21 | LOGICAL debut |
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| 22 | REAL u_seri(klon,klev),v_seri(klon,klev) |
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| 23 | REAL t_seri(klon,klev),q_seri(klon,klev),qmemoire(klon,klev) |
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| 24 | REAL weak_inversion(klon) |
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| 25 | REAL paprs(klon,klev+1) |
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| 26 | REAL pplay(klon,klev) |
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| 27 | REAL pphi(klon,klev) |
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| 28 | real zlev(klon,klev+1) |
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[879] | 29 | !test: on sort lentr et a* pour alimenter KE |
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| 30 | REAL wght_th(klon,klev) |
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| 31 | INTEGER lalim_conv(klon) |
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[878] | 32 | |
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| 33 | !FH Update Thermiques |
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| 34 | REAL d_t_ajs(klon,klev), d_q_ajs(klon,klev) |
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| 35 | REAL d_u_ajs(klon,klev),d_v_ajs(klon,klev) |
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| 36 | real fm_therm(klon,klev+1),entr_therm(klon,klev) |
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| 37 | |
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| 38 | !******************************************************** |
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| 39 | ! declarations |
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| 40 | real fmc_therm(klon,klev+1),zqasc(klon,klev) |
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| 41 | real zqla(klon,klev) |
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| 42 | real wmax_sec(klon) |
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| 43 | real zmax_sec(klon) |
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| 44 | real f_sec(klon) |
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| 45 | real detrc_therm(klon,klev) |
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| 46 | save fmc_therm, detrc_therm |
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| 47 | real clwcon0(klon,klev) |
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| 48 | real zqsat(klon,klev) |
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| 49 | real zw_sec(klon,klev+1) |
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| 50 | integer lmix_sec(klon) |
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| 51 | integer lmax(klon) |
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| 52 | real ratqscth(klon,klev) |
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| 53 | real ratqsdiff(klon,klev) |
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| 54 | real zqsatth(klon,klev) |
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[879] | 55 | !nouvelles variables pour la convection |
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| 56 | real Ale_bl(klon) |
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| 57 | real Alp_bl(klon) |
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| 58 | real Ale(klon) |
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| 59 | real Alp(klon) |
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| 60 | !RC |
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[878] | 61 | !******************************************************** |
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| 62 | |
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| 63 | |
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| 64 | ! variables locales |
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| 65 | REAL d_t_the(klon,klev), d_q_the(klon,klev) |
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| 66 | REAL d_u_the(klon,klev),d_v_the(klon,klev) |
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| 67 | ! |
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| 68 | real zfm_therm(klon,klev+1),zentr_therm(klon,klev),zdt |
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| 69 | save zentr_therm,zfm_therm |
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| 70 | |
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| 71 | integer i,k |
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| 72 | |
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| 73 | !******************************************************** |
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| 74 | |
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| 75 | ! Modele du thermique |
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| 76 | ! =================== |
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| 77 | ! print*,'thermiques: WARNING on passe t au lieu de t_seri' |
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| 78 | |
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| 79 | |
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| 80 | fm_therm(:,:)=0. |
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| 81 | entr_therm(:,:)=0. |
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[879] | 82 | Ale_bl(:)=0. |
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| 83 | Alp_bl(:)=0. |
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[878] | 84 | print*,'thermV4 nsplit: ',nsplit_thermals,' weak_inversion' |
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| 85 | |
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| 86 | |
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| 87 | ! tests sur les valeurs negatives de l'eau |
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| 88 | do k=1,klev |
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| 89 | do i=1,klon |
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| 90 | if (.not.q_seri(i,k).ge.0.) then |
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| 91 | print*,'WARN eau<0 avant therm i=',i,' k=',k & |
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| 92 | & ,' dq,q',d_q_the(i,k),q_seri(i,k) |
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| 93 | q_seri(i,k)=1.e-15 |
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| 94 | endif |
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| 95 | enddo |
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| 96 | enddo |
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| 97 | |
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| 98 | |
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| 99 | zdt=dtime/float(nsplit_thermals) |
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| 100 | do isplit=1,nsplit_thermals |
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| 101 | |
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| 102 | if (iflag_thermals.eq.1) then |
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| 103 | CALL thermcell_2002(klon,klev,zdt & |
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| 104 | & ,pplay,paprs,pphi & |
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| 105 | & ,u_seri,v_seri,t_seri,q_seri & |
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| 106 | & ,d_u_the,d_v_the,d_t_the,d_q_the & |
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| 107 | & ,zfm_therm,zentr_therm & |
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| 108 | & ,r_aspect_thermals,30.,w2di_thermals & |
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| 109 | & ,tho_thermals,3) |
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| 110 | else if (iflag_thermals.eq.2) then |
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| 111 | CALL thermcell_sec(klon,klev,zdt & |
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| 112 | & ,pplay,paprs,pphi,zlev & |
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| 113 | & ,u_seri,v_seri,t_seri,q_seri & |
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| 114 | & ,d_u_the,d_v_the,d_t_the,d_q_the & |
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| 115 | & ,zfm_therm,zentr_therm & |
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| 116 | & ,r_aspect_thermals,30.,w2di_thermals & |
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| 117 | & ,tho_thermals,3) |
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| 118 | else if (iflag_thermals.eq.3) then |
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| 119 | CALL thermcell(klon,klev,zdt & |
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| 120 | & ,pplay,paprs,pphi & |
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| 121 | & ,u_seri,v_seri,t_seri,q_seri & |
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| 122 | & ,d_u_the,d_v_the,d_t_the,d_q_the & |
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| 123 | & ,zfm_therm,zentr_therm & |
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| 124 | & ,r_aspect_thermals,l_mix_thermals,w2di_thermals & |
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| 125 | & ,tho_thermals,3) |
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| 126 | else if (iflag_thermals.eq.10) then |
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| 127 | CALL thermcell_eau(klon,klev,zdt & |
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| 128 | & ,pplay,paprs,pphi & |
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| 129 | & ,u_seri,v_seri,t_seri,q_seri & |
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| 130 | & ,d_u_the,d_v_the,d_t_the,d_q_the & |
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| 131 | & ,zfm_therm,zentr_therm & |
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| 132 | & ,r_aspect_thermals,l_mix_thermals,w2di_thermals & |
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| 133 | & ,tho_thermals,3) |
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| 134 | else if (iflag_thermals.eq.11) then |
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| 135 | stop'cas non prevu dans calltherm' |
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| 136 | ! CALL thermcell_pluie(klon,klev,zdt & |
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| 137 | ! & ,pplay,paprs,pphi,zlev & |
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| 138 | ! & ,u_seri,v_seri,t_seri,q_seri & |
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| 139 | ! & ,d_u_the,d_v_the,d_t_the,d_q_the & |
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| 140 | ! & ,zfm_therm,zentr_therm,zqla & |
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| 141 | ! & ,r_aspect_thermals,l_mix_thermals,w2di_thermals & |
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| 142 | ! & ,tho_thermals,3) |
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| 143 | else if (iflag_thermals.eq.12) then |
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| 144 | CALL calcul_sec(klon,klev,zdt & |
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| 145 | & ,pplay,paprs,pphi,zlev & |
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| 146 | & ,u_seri,v_seri,t_seri,q_seri & |
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| 147 | & ,zmax_sec,wmax_sec,zw_sec,lmix_sec & |
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| 148 | & ,r_aspect_thermals,l_mix_thermals,w2di_thermals & |
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| 149 | & ,tho_thermals) |
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| 150 | ! CALL calcul_sec_entr(klon,klev,zdt |
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| 151 | ! s ,pplay,paprs,pphi,zlev,debut |
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| 152 | ! s ,u_seri,v_seri,t_seri,q_seri |
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| 153 | ! s ,zmax_sec,wmax_sec,zw_sec,lmix_sec |
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| 154 | ! s ,r_aspect_thermals,l_mix_thermals,w2di_thermals |
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| 155 | ! s ,tho_thermals,3) |
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| 156 | ! CALL thermcell_pluie_detr(klon,klev,zdt & |
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| 157 | ! & ,pplay,paprs,pphi,zlev,debut & |
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| 158 | ! & ,u_seri,v_seri,t_seri,q_seri & |
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| 159 | ! & ,d_u_the,d_v_the,d_t_the,d_q_the & |
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| 160 | ! & ,zfm_therm,zentr_therm,zqla,lmax & |
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| 161 | ! & ,zmax_sec,wmax_sec,zw_sec,lmix_sec & |
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| 162 | ! & ,ratqscth,ratqsdiff,zqsatth & |
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| 163 | ! & ,r_aspect_thermals,l_mix_thermals,w2di_thermals & |
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| 164 | ! & ,tho_thermals) |
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| 165 | else if (iflag_thermals.ge.13) then |
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| 166 | CALL thermcell_main(klon,klev,zdt & |
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| 167 | & ,pplay,paprs,pphi,debut & |
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| 168 | & ,u_seri,v_seri,t_seri,q_seri & |
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| 169 | & ,d_u_the,d_v_the,d_t_the,d_q_the & |
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| 170 | & ,zfm_therm,zentr_therm,zqla,lmax & |
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| 171 | & ,ratqscth,ratqsdiff,zqsatth & |
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| 172 | & ,r_aspect_thermals,l_mix_thermals,w2di_thermals & |
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[879] | 173 | & ,tho_thermals,Ale,Alp,lalim_conv,wght_th) |
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[878] | 174 | endif |
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| 175 | |
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| 176 | |
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| 177 | DO i=1,klon |
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| 178 | DO k=1,klev |
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| 179 | IF(iflag_thermals.lt.14.or.weak_inversion(i).gt.0.5) THEN |
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| 180 | |
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| 181 | ! transformation de la derivee en tendance |
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| 182 | d_t_the(i,k)=d_t_the(i,k)*dtime/float(nsplit_thermals) |
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| 183 | d_u_the(i,k)=d_u_the(i,k)*dtime/float(nsplit_thermals) |
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| 184 | d_v_the(i,k)=d_v_the(i,k)*dtime/float(nsplit_thermals) |
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| 185 | d_q_the(i,k)=d_q_the(i,k)*dtime/float(nsplit_thermals) |
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| 186 | fm_therm(i,k)=fm_therm(i,k) & |
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| 187 | & +zfm_therm(i,k)/float(nsplit_thermals) |
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| 188 | entr_therm(i,k)=entr_therm(i,k) & |
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| 189 | & +zentr_therm(i,k)/float(nsplit_thermals) |
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| 190 | fm_therm(:,klev+1)=0. |
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| 191 | |
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| 192 | |
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| 193 | |
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| 194 | ! accumulation de la tendance |
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| 195 | d_t_ajs(i,k)=d_t_ajs(i,k)+d_t_the(i,k) |
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| 196 | d_u_ajs(i,k)=d_u_ajs(i,k)+d_u_the(i,k) |
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| 197 | d_v_ajs(i,k)=d_v_ajs(i,k)+d_v_the(i,k) |
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| 198 | d_q_ajs(i,k)=d_q_ajs(i,k)+d_q_the(i,k) |
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| 199 | |
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| 200 | ! incrementation des variables meteo |
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| 201 | t_seri(i,k) = t_seri(i,k) + d_t_the(i,k) |
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| 202 | u_seri(i,k) = u_seri(i,k) + d_u_the(i,k) |
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| 203 | v_seri(i,k) = v_seri(i,k) + d_v_the(i,k) |
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| 204 | qmemoire(i,k)=q_seri(i,k) |
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| 205 | q_seri(i,k) = q_seri(i,k) + d_q_the(i,k) |
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| 206 | ENDIF |
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| 207 | ENDDO |
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| 208 | ENDDO |
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| 209 | |
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[879] | 210 | DO i=1,klon |
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| 211 | fm_therm(i,klev+1)=0. |
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| 212 | Ale_bl(i)=Ale_bl(i)+Ale(i)/float(nsplit_thermals) |
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| 213 | ! write(22,*)'ALE CALLTHERM',Ale_bl(i),Ale(i) |
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| 214 | Alp_bl(i)=Alp_bl(i)+Alp(i)/float(nsplit_thermals) |
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| 215 | ! write(23,*)'ALP CALLTHERM',Alp_bl(i),Alp(i) |
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| 216 | ENDDO |
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| 217 | |
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[878] | 218 | ! tests sur les valeurs negatives de l'eau |
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| 219 | DO k = 1, klev |
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| 220 | DO i = 1, klon |
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| 221 | if (.not.q_seri(i,k).ge.0.) then |
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| 222 | print*,'WARN eau<0 apres therm i=',i,' k=',k & |
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| 223 | & ,' dq,q',d_q_the(i,k),q_seri(i,k), & |
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| 224 | & 'fm=',zfm_therm(i,k),'entr=',entr_therm(i,k) |
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| 225 | q_seri(i,k)=1.e-15 |
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| 226 | ! stop |
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| 227 | endif |
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| 228 | ENDDO |
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| 229 | ENDDO |
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| 230 | ! tests sur les valeurs de la temperature |
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| 231 | DO k = 1, klev |
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| 232 | DO i = 1, klon |
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| 233 | if ((t_seri(i,k).lt.50.) .or. & |
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| 234 | & (t_seri(i,k).gt.370.)) then |
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| 235 | print*,'WARN temp apres therm i=',i,' k=',k & |
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| 236 | & ,' t_seri',t_seri(i,k) |
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| 237 | ! CALL abort |
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| 238 | endif |
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| 239 | ENDDO |
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| 240 | ENDDO |
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| 241 | |
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| 242 | enddo ! isplit |
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| 243 | |
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| 244 | ! |
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| 245 | !*************************************************************** |
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| 246 | ! calcul du flux ascencant conservatif |
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| 247 | ! print*,'<<<<calcul flux ascendant conservatif' |
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| 248 | |
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| 249 | fmc_therm=0. |
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| 250 | do k=1,klev |
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| 251 | do i=1,klon |
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| 252 | if (entr_therm(i,k).gt.0.) then |
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| 253 | fmc_therm(i,k+1)=fmc_therm(i,k)+entr_therm(i,k) |
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| 254 | else |
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| 255 | fmc_therm(i,k+1)=fmc_therm(i,k) |
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| 256 | endif |
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| 257 | detrc_therm(i,k)=(fmc_therm(i,k+1)-fm_therm(i,k+1)) & |
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| 258 | & -(fmc_therm(i,k)-fm_therm(i,k)) |
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| 259 | enddo |
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| 260 | enddo |
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| 261 | |
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| 262 | |
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| 263 | !**************************************************************** |
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| 264 | ! calcul de l'humidite dans l'ascendance |
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| 265 | ! print*,'<<<<calcul de lhumidite dans thermique' |
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| 266 | !CR:on ne le calcule que pour le cas sec |
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| 267 | if (iflag_thermals.le.11) then |
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| 268 | do i=1,klon |
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| 269 | zqasc(i,1)=q_seri(i,1) |
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| 270 | do k=2,klev |
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| 271 | if (fmc_therm(i,k+1).gt.1.e-6) then |
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| 272 | zqasc(i,k)=(fmc_therm(i,k)*zqasc(i,k-1) & |
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| 273 | & +entr_therm(i,k)*q_seri(i,k))/fmc_therm(i,k+1) |
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| 274 | !CR:test on asseche le thermique |
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| 275 | ! zqasc(i,k)=zqasc(i,k)/2. |
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| 276 | ! else |
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| 277 | ! zqasc(i,k)=q_seri(i,k) |
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| 278 | endif |
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| 279 | enddo |
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| 280 | enddo |
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| 281 | |
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| 282 | |
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| 283 | ! calcul de l'eau condensee dans l'ascendance |
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| 284 | ! print*,'<<<<calcul de leau condensee dans thermique' |
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| 285 | do i=1,klon |
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| 286 | do k=1,klev |
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| 287 | clwcon0(i,k)=zqasc(i,k)-zqsat(i,k) |
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| 288 | if (clwcon0(i,k).lt.0. .or. & |
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| 289 | & (fm_therm(i,k+1)+detrc_therm(i,k)).lt.1.e-6) then |
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| 290 | clwcon0(i,k)=0. |
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| 291 | endif |
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| 292 | enddo |
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| 293 | enddo |
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| 294 | else |
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| 295 | do i=1,klon |
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| 296 | do k=1,klev |
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| 297 | clwcon0(i,k)=zqla(i,k) |
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| 298 | if (clwcon0(i,k).lt.0. .or. & |
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| 299 | & (fm_therm(i,k+1)+detrc_therm(i,k)).lt.1.e-6) then |
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| 300 | clwcon0(i,k)=0. |
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| 301 | endif |
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| 302 | enddo |
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| 303 | enddo |
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| 304 | endif |
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| 305 | !******************************************************************* |
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| 306 | |
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| 307 | |
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| 308 | return |
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| 309 | |
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| 310 | end |
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