[2686] | 1 | MODULE cloudth_mod |
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| 2 | |
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[4535] | 3 | |
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[2686] | 4 | IMPLICIT NONE |
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| 5 | |
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| 6 | CONTAINS |
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| 7 | |
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| 8 | SUBROUTINE cloudth(ngrid,klev,ind2, & |
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| 9 | & ztv,po,zqta,fraca, & |
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[3493] | 10 | & qcloud,ctot,zpspsk,paprs,pplay,ztla,zthl, & |
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[2686] | 11 | & ratqs,zqs,t) |
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| 12 | |
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| 13 | |
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[4535] | 14 | use lscp_ini_mod, only: iflag_cloudth_vert |
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| 15 | |
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[2686] | 16 | IMPLICIT NONE |
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| 17 | |
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| 18 | |
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| 19 | !=========================================================================== |
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| 20 | ! Auteur : Arnaud Octavio Jam (LMD/CNRS) |
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| 21 | ! Date : 25 Mai 2010 |
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| 22 | ! Objet : calcule les valeurs de qc et rneb dans les thermiques |
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| 23 | !=========================================================================== |
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| 24 | |
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| 25 | |
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[4593] | 26 | INCLUDE "YOMCST.h" |
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[4623] | 27 | INCLUDE "nuage.h" ! iflag_ratqs |
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[4593] | 28 | INCLUDE "YOETHF.h" |
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| 29 | INCLUDE "FCTTRE.h" |
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[2686] | 30 | |
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| 31 | INTEGER itap,ind1,ind2 |
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| 32 | INTEGER ngrid,klev,klon,l,ig |
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| 33 | |
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| 34 | REAL ztv(ngrid,klev) |
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| 35 | REAL po(ngrid) |
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| 36 | REAL zqenv(ngrid) |
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| 37 | REAL zqta(ngrid,klev) |
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| 38 | |
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| 39 | REAL fraca(ngrid,klev+1) |
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| 40 | REAL zpspsk(ngrid,klev) |
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| 41 | REAL paprs(ngrid,klev+1) |
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[3493] | 42 | REAL pplay(ngrid,klev) |
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[2686] | 43 | REAL ztla(ngrid,klev) |
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| 44 | REAL zthl(ngrid,klev) |
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| 45 | |
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| 46 | REAL zqsatth(ngrid,klev) |
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| 47 | REAL zqsatenv(ngrid,klev) |
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| 48 | |
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| 49 | |
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| 50 | REAL sigma1(ngrid,klev) |
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| 51 | REAL sigma2(ngrid,klev) |
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| 52 | REAL qlth(ngrid,klev) |
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| 53 | REAL qlenv(ngrid,klev) |
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| 54 | REAL qltot(ngrid,klev) |
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| 55 | REAL cth(ngrid,klev) |
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| 56 | REAL cenv(ngrid,klev) |
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| 57 | REAL ctot(ngrid,klev) |
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| 58 | REAL rneb(ngrid,klev) |
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| 59 | REAL t(ngrid,klev) |
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| 60 | REAL qsatmmussig1,qsatmmussig2,sqrt2pi,pi |
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| 61 | REAL rdd,cppd,Lv |
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| 62 | REAL alth,alenv,ath,aenv |
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| 63 | REAL sth,senv,sigma1s,sigma2s,xth,xenv |
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| 64 | REAL Tbef,zdelta,qsatbef,zcor |
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| 65 | REAL qlbef |
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| 66 | REAL ratqs(ngrid,klev) ! determine la largeur de distribution de vapeur |
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| 67 | |
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| 68 | REAL zpdf_sig(ngrid),zpdf_k(ngrid),zpdf_delta(ngrid) |
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| 69 | REAL zpdf_a(ngrid),zpdf_b(ngrid),zpdf_e1(ngrid),zpdf_e2(ngrid) |
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| 70 | REAL zqs(ngrid), qcloud(ngrid) |
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| 71 | REAL erf |
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| 72 | |
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| 73 | |
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| 74 | |
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| 75 | |
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| 76 | !!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!! |
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| 77 | ! Gestion de deux versions de cloudth |
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| 78 | !!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!! |
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| 79 | |
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| 80 | IF (iflag_cloudth_vert.GE.1) THEN |
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| 81 | CALL cloudth_vert(ngrid,klev,ind2, & |
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| 82 | & ztv,po,zqta,fraca, & |
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[3493] | 83 | & qcloud,ctot,zpspsk,paprs,pplay,ztla,zthl, & |
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[2686] | 84 | & ratqs,zqs,t) |
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| 85 | RETURN |
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| 86 | ENDIF |
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| 87 | !!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!! |
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| 88 | |
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| 89 | |
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| 90 | !------------------------------------------------------------------------------- |
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| 91 | ! Initialisation des variables r?elles |
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| 92 | !------------------------------------------------------------------------------- |
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| 93 | sigma1(:,:)=0. |
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| 94 | sigma2(:,:)=0. |
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| 95 | qlth(:,:)=0. |
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| 96 | qlenv(:,:)=0. |
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| 97 | qltot(:,:)=0. |
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| 98 | rneb(:,:)=0. |
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| 99 | qcloud(:)=0. |
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| 100 | cth(:,:)=0. |
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| 101 | cenv(:,:)=0. |
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| 102 | ctot(:,:)=0. |
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| 103 | qsatmmussig1=0. |
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| 104 | qsatmmussig2=0. |
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| 105 | rdd=287.04 |
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| 106 | cppd=1005.7 |
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| 107 | pi=3.14159 |
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| 108 | Lv=2.5e6 |
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| 109 | sqrt2pi=sqrt(2.*pi) |
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| 110 | |
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| 111 | |
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| 112 | |
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| 113 | !------------------------------------------------------------------------------- |
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| 114 | ! Calcul de la fraction du thermique et des ?cart-types des distributions |
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| 115 | !------------------------------------------------------------------------------- |
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| 116 | do ind1=1,ngrid |
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| 117 | |
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| 118 | if ((ztv(ind1,1).gt.ztv(ind1,2)).and.(fraca(ind1,ind2).gt.1.e-10)) then |
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| 119 | |
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| 120 | zqenv(ind1)=(po(ind1)-fraca(ind1,ind2)*zqta(ind1,ind2))/(1.-fraca(ind1,ind2)) |
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| 121 | |
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| 122 | |
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| 123 | ! zqenv(ind1)=po(ind1) |
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| 124 | Tbef=zthl(ind1,ind2)*zpspsk(ind1,ind2) |
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| 125 | zdelta=MAX(0.,SIGN(1.,RTT-Tbef)) |
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| 126 | qsatbef= R2ES * FOEEW(Tbef,zdelta)/paprs(ind1,ind2) |
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| 127 | qsatbef=MIN(0.5,qsatbef) |
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| 128 | zcor=1./(1.-retv*qsatbef) |
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| 129 | qsatbef=qsatbef*zcor |
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| 130 | zqsatenv(ind1,ind2)=qsatbef |
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| 131 | |
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| 132 | |
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| 133 | |
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| 134 | |
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| 135 | alenv=(0.622*Lv*zqsatenv(ind1,ind2))/(rdd*zthl(ind1,ind2)**2) |
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| 136 | aenv=1./(1.+(alenv*Lv/cppd)) |
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| 137 | senv=aenv*(po(ind1)-zqsatenv(ind1,ind2)) |
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| 138 | |
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| 139 | |
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| 140 | |
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| 141 | |
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| 142 | Tbef=ztla(ind1,ind2)*zpspsk(ind1,ind2) |
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| 143 | zdelta=MAX(0.,SIGN(1.,RTT-Tbef)) |
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| 144 | qsatbef= R2ES * FOEEW(Tbef,zdelta)/paprs(ind1,ind2) |
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| 145 | qsatbef=MIN(0.5,qsatbef) |
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| 146 | zcor=1./(1.-retv*qsatbef) |
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| 147 | qsatbef=qsatbef*zcor |
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| 148 | zqsatth(ind1,ind2)=qsatbef |
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| 149 | |
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| 150 | alth=(0.622*Lv*zqsatth(ind1,ind2))/(rdd*ztla(ind1,ind2)**2) |
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| 151 | ath=1./(1.+(alth*Lv/cppd)) |
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| 152 | sth=ath*(zqta(ind1,ind2)-zqsatth(ind1,ind2)) |
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| 153 | |
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| 154 | |
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| 155 | |
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| 156 | !------------------------------------------------------------------------------ |
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| 157 | ! Calcul des ?cart-types pour s |
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| 158 | !------------------------------------------------------------------------------ |
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| 159 | |
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| 160 | ! sigma1s=(1.1**0.5)*(fraca(ind1,ind2)**0.6)/(1-fraca(ind1,ind2))*((sth-senv)**2)**0.5+ratqs(ind1,ind2)*po(ind1) |
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| 161 | ! sigma2s=0.11*((sth-senv)**2)**0.5/(fraca(ind1,ind2)+0.02)**0.4+0.002*zqta(ind1,ind2) |
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| 162 | ! if (paprs(ind1,ind2).gt.90000) then |
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| 163 | ! ratqs(ind1,ind2)=0.002 |
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| 164 | ! else |
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| 165 | ! ratqs(ind1,ind2)=0.002+0.0*(90000-paprs(ind1,ind2))/20000 |
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| 166 | ! endif |
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| 167 | sigma1s=(1.1**0.5)*(fraca(ind1,ind2)**0.6)/(1-fraca(ind1,ind2))*((sth-senv)**2)**0.5+0.002*po(ind1) |
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| 168 | sigma2s=0.11*((sth-senv)**2)**0.5/(fraca(ind1,ind2)+0.01)**0.4+0.002*zqta(ind1,ind2) |
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| 169 | ! sigma1s=ratqs(ind1,ind2)*po(ind1) |
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| 170 | ! sigma2s=0.11*((sth-senv)**2)**0.5/(fraca(ind1,ind2)+0.02)**0.4+0.00003 |
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| 171 | |
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| 172 | !------------------------------------------------------------------------------ |
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| 173 | ! Calcul de l'eau condens?e et de la couverture nuageuse |
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| 174 | !------------------------------------------------------------------------------ |
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| 175 | sqrt2pi=sqrt(2.*pi) |
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| 176 | xth=sth/(sqrt(2.)*sigma2s) |
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| 177 | xenv=senv/(sqrt(2.)*sigma1s) |
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| 178 | cth(ind1,ind2)=0.5*(1.+1.*erf(xth)) |
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| 179 | cenv(ind1,ind2)=0.5*(1.+1.*erf(xenv)) |
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| 180 | ctot(ind1,ind2)=fraca(ind1,ind2)*cth(ind1,ind2)+(1.-1.*fraca(ind1,ind2))*cenv(ind1,ind2) |
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| 181 | |
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| 182 | qlth(ind1,ind2)=sigma2s*((exp(-1.*xth**2)/sqrt2pi)+xth*sqrt(2.)*cth(ind1,ind2)) |
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| 183 | qlenv(ind1,ind2)=sigma1s*((exp(-1.*xenv**2)/sqrt2pi)+xenv*sqrt(2.)*cenv(ind1,ind2)) |
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| 184 | qltot(ind1,ind2)=fraca(ind1,ind2)*qlth(ind1,ind2)+(1.-1.*fraca(ind1,ind2))*qlenv(ind1,ind2) |
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| 185 | |
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| 186 | !!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!! |
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| 187 | if (ctot(ind1,ind2).lt.1.e-10) then |
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| 188 | ctot(ind1,ind2)=0. |
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| 189 | qcloud(ind1)=zqsatenv(ind1,ind2) |
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| 190 | |
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| 191 | else |
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| 192 | |
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| 193 | ctot(ind1,ind2)=ctot(ind1,ind2) |
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| 194 | qcloud(ind1)=qltot(ind1,ind2)/ctot(ind1,ind2)+zqs(ind1) |
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| 195 | |
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| 196 | endif |
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| 197 | |
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| 198 | |
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| 199 | ! print*,sth,sigma2s,qlth(ind1,ind2),ctot(ind1,ind2),qltot(ind1,ind2),'verif' |
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| 200 | |
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| 201 | |
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| 202 | else ! gaussienne environnement seule |
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| 203 | |
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| 204 | zqenv(ind1)=po(ind1) |
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| 205 | Tbef=t(ind1,ind2) |
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| 206 | zdelta=MAX(0.,SIGN(1.,RTT-Tbef)) |
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| 207 | qsatbef= R2ES * FOEEW(Tbef,zdelta)/paprs(ind1,ind2) |
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| 208 | qsatbef=MIN(0.5,qsatbef) |
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| 209 | zcor=1./(1.-retv*qsatbef) |
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| 210 | qsatbef=qsatbef*zcor |
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| 211 | zqsatenv(ind1,ind2)=qsatbef |
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| 212 | |
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| 213 | |
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| 214 | ! qlbef=Max(po(ind1)-zqsatenv(ind1,ind2),0.) |
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| 215 | zthl(ind1,ind2)=t(ind1,ind2)*(101325/paprs(ind1,ind2))**(rdd/cppd) |
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| 216 | alenv=(0.622*Lv*zqsatenv(ind1,ind2))/(rdd*zthl(ind1,ind2)**2) |
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| 217 | aenv=1./(1.+(alenv*Lv/cppd)) |
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| 218 | senv=aenv*(po(ind1)-zqsatenv(ind1,ind2)) |
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| 219 | |
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| 220 | |
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| 221 | sigma1s=ratqs(ind1,ind2)*zqenv(ind1) |
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| 222 | |
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| 223 | sqrt2pi=sqrt(2.*pi) |
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| 224 | xenv=senv/(sqrt(2.)*sigma1s) |
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| 225 | ctot(ind1,ind2)=0.5*(1.+1.*erf(xenv)) |
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| 226 | qltot(ind1,ind2)=sigma1s*((exp(-1.*xenv**2)/sqrt2pi)+xenv*sqrt(2.)*cenv(ind1,ind2)) |
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| 227 | |
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| 228 | if (ctot(ind1,ind2).lt.1.e-3) then |
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| 229 | ctot(ind1,ind2)=0. |
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| 230 | qcloud(ind1)=zqsatenv(ind1,ind2) |
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| 231 | |
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| 232 | else |
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| 233 | |
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| 234 | ctot(ind1,ind2)=ctot(ind1,ind2) |
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| 235 | qcloud(ind1)=qltot(ind1,ind2)/ctot(ind1,ind2)+zqsatenv(ind1,ind2) |
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| 236 | |
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| 237 | endif |
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| 238 | |
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| 239 | |
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| 240 | |
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| 241 | |
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| 242 | |
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| 243 | |
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| 244 | endif |
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| 245 | enddo |
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| 246 | |
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| 247 | return |
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| 248 | ! end |
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| 249 | END SUBROUTINE cloudth |
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| 250 | |
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| 251 | |
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| 252 | |
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| 253 | !=========================================================================== |
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| 254 | SUBROUTINE cloudth_vert(ngrid,klev,ind2, & |
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| 255 | & ztv,po,zqta,fraca, & |
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[3493] | 256 | & qcloud,ctot,zpspsk,paprs,pplay,ztla,zthl, & |
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[2686] | 257 | & ratqs,zqs,t) |
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| 258 | |
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| 259 | !=========================================================================== |
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| 260 | ! Auteur : Arnaud Octavio Jam (LMD/CNRS) |
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| 261 | ! Date : 25 Mai 2010 |
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| 262 | ! Objet : calcule les valeurs de qc et rneb dans les thermiques |
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| 263 | !=========================================================================== |
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| 264 | |
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| 265 | |
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| 266 | USE ioipsl_getin_p_mod, ONLY : getin_p |
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[4535] | 267 | use lscp_ini_mod, only: iflag_cloudth_vert |
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[2686] | 268 | |
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| 269 | IMPLICIT NONE |
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| 270 | |
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[4593] | 271 | INCLUDE "YOMCST.h" |
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[4623] | 272 | INCLUDE "nuage.h" ! iflag_ratqs |
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[4593] | 273 | INCLUDE "YOETHF.h" |
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| 274 | INCLUDE "FCTTRE.h" |
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[2686] | 275 | |
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| 276 | INTEGER itap,ind1,ind2 |
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| 277 | INTEGER ngrid,klev,klon,l,ig |
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| 278 | |
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| 279 | REAL ztv(ngrid,klev) |
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| 280 | REAL po(ngrid) |
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| 281 | REAL zqenv(ngrid) |
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| 282 | REAL zqta(ngrid,klev) |
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| 283 | |
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| 284 | REAL fraca(ngrid,klev+1) |
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| 285 | REAL zpspsk(ngrid,klev) |
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| 286 | REAL paprs(ngrid,klev+1) |
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[3493] | 287 | REAL pplay(ngrid,klev) |
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[2686] | 288 | REAL ztla(ngrid,klev) |
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| 289 | REAL zthl(ngrid,klev) |
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| 290 | |
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| 291 | REAL zqsatth(ngrid,klev) |
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| 292 | REAL zqsatenv(ngrid,klev) |
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| 293 | |
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| 294 | |
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| 295 | REAL sigma1(ngrid,klev) |
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| 296 | REAL sigma2(ngrid,klev) |
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| 297 | REAL qlth(ngrid,klev) |
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| 298 | REAL qlenv(ngrid,klev) |
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| 299 | REAL qltot(ngrid,klev) |
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| 300 | REAL cth(ngrid,klev) |
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| 301 | REAL cenv(ngrid,klev) |
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| 302 | REAL ctot(ngrid,klev) |
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| 303 | REAL rneb(ngrid,klev) |
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| 304 | REAL t(ngrid,klev) |
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| 305 | REAL qsatmmussig1,qsatmmussig2,sqrt2pi,pi |
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| 306 | REAL rdd,cppd,Lv,sqrt2,sqrtpi |
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| 307 | REAL alth,alenv,ath,aenv |
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| 308 | REAL sth,senv,sigma1s,sigma2s,xth,xenv |
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| 309 | REAL xth1,xth2,xenv1,xenv2,deltasth, deltasenv |
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| 310 | REAL IntJ,IntI1,IntI2,IntI3,coeffqlenv,coeffqlth |
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| 311 | REAL Tbef,zdelta,qsatbef,zcor |
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| 312 | REAL qlbef |
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| 313 | REAL ratqs(ngrid,klev) ! determine la largeur de distribution de vapeur |
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| 314 | ! Change the width of the PDF used for vertical subgrid scale heterogeneity |
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| 315 | ! (J Jouhaud, JL Dufresne, JB Madeleine) |
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| 316 | REAL,SAVE :: vert_alpha |
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[2909] | 317 | !$OMP THREADPRIVATE(vert_alpha) |
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[2686] | 318 | LOGICAL, SAVE :: firstcall = .TRUE. |
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[2909] | 319 | !$OMP THREADPRIVATE(firstcall) |
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[2686] | 320 | |
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| 321 | REAL zpdf_sig(ngrid),zpdf_k(ngrid),zpdf_delta(ngrid) |
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| 322 | REAL zpdf_a(ngrid),zpdf_b(ngrid),zpdf_e1(ngrid),zpdf_e2(ngrid) |
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| 323 | REAL zqs(ngrid), qcloud(ngrid) |
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| 324 | REAL erf |
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| 325 | |
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| 326 | !------------------------------------------------------------------------------ |
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| 327 | ! Initialisation des variables r?elles |
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| 328 | !------------------------------------------------------------------------------ |
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| 329 | sigma1(:,:)=0. |
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| 330 | sigma2(:,:)=0. |
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| 331 | qlth(:,:)=0. |
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| 332 | qlenv(:,:)=0. |
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| 333 | qltot(:,:)=0. |
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| 334 | rneb(:,:)=0. |
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| 335 | qcloud(:)=0. |
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| 336 | cth(:,:)=0. |
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| 337 | cenv(:,:)=0. |
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| 338 | ctot(:,:)=0. |
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| 339 | qsatmmussig1=0. |
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| 340 | qsatmmussig2=0. |
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| 341 | rdd=287.04 |
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| 342 | cppd=1005.7 |
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| 343 | pi=3.14159 |
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| 344 | Lv=2.5e6 |
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| 345 | sqrt2pi=sqrt(2.*pi) |
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| 346 | sqrt2=sqrt(2.) |
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| 347 | sqrtpi=sqrt(pi) |
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| 348 | |
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| 349 | IF (firstcall) THEN |
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| 350 | vert_alpha=0.5 |
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| 351 | CALL getin_p('cloudth_vert_alpha',vert_alpha) |
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| 352 | WRITE(*,*) 'cloudth_vert_alpha = ', vert_alpha |
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| 353 | firstcall=.FALSE. |
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| 354 | ENDIF |
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| 355 | |
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| 356 | !------------------------------------------------------------------------------- |
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| 357 | ! Calcul de la fraction du thermique et des ?cart-types des distributions |
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| 358 | !------------------------------------------------------------------------------- |
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| 359 | do ind1=1,ngrid |
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| 360 | |
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| 361 | if ((ztv(ind1,1).gt.ztv(ind1,2)).and.(fraca(ind1,ind2).gt.1.e-10)) then |
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| 362 | |
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| 363 | zqenv(ind1)=(po(ind1)-fraca(ind1,ind2)*zqta(ind1,ind2))/(1.-fraca(ind1,ind2)) |
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| 364 | |
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| 365 | |
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| 366 | ! zqenv(ind1)=po(ind1) |
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| 367 | Tbef=zthl(ind1,ind2)*zpspsk(ind1,ind2) |
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| 368 | zdelta=MAX(0.,SIGN(1.,RTT-Tbef)) |
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| 369 | qsatbef= R2ES * FOEEW(Tbef,zdelta)/paprs(ind1,ind2) |
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| 370 | qsatbef=MIN(0.5,qsatbef) |
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| 371 | zcor=1./(1.-retv*qsatbef) |
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| 372 | qsatbef=qsatbef*zcor |
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| 373 | zqsatenv(ind1,ind2)=qsatbef |
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| 374 | |
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| 375 | |
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| 376 | |
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| 377 | |
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| 378 | alenv=(0.622*Lv*zqsatenv(ind1,ind2))/(rdd*zthl(ind1,ind2)**2) |
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| 379 | aenv=1./(1.+(alenv*Lv/cppd)) |
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| 380 | senv=aenv*(po(ind1)-zqsatenv(ind1,ind2)) |
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| 381 | |
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| 382 | |
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| 383 | |
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| 384 | |
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| 385 | Tbef=ztla(ind1,ind2)*zpspsk(ind1,ind2) |
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| 386 | zdelta=MAX(0.,SIGN(1.,RTT-Tbef)) |
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| 387 | qsatbef= R2ES * FOEEW(Tbef,zdelta)/paprs(ind1,ind2) |
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| 388 | qsatbef=MIN(0.5,qsatbef) |
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| 389 | zcor=1./(1.-retv*qsatbef) |
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| 390 | qsatbef=qsatbef*zcor |
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| 391 | zqsatth(ind1,ind2)=qsatbef |
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| 392 | |
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| 393 | alth=(0.622*Lv*zqsatth(ind1,ind2))/(rdd*ztla(ind1,ind2)**2) |
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| 394 | ath=1./(1.+(alth*Lv/cppd)) |
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| 395 | sth=ath*(zqta(ind1,ind2)-zqsatth(ind1,ind2)) |
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| 396 | |
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| 397 | |
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| 398 | |
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| 399 | !------------------------------------------------------------------------------ |
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| 400 | ! Calcul des ?cart-types pour s |
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| 401 | !------------------------------------------------------------------------------ |
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| 402 | |
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| 403 | sigma1s=(0.92**0.5)*(fraca(ind1,ind2)**0.5)/(1-fraca(ind1,ind2))*((sth-senv)**2)**0.5+ratqs(ind1,ind2)*po(ind1) |
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| 404 | sigma2s=0.09*((sth-senv)**2)**0.5/(fraca(ind1,ind2)+0.02)**0.5+0.002*zqta(ind1,ind2) |
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| 405 | ! if (paprs(ind1,ind2).gt.90000) then |
---|
| 406 | ! ratqs(ind1,ind2)=0.002 |
---|
| 407 | ! else |
---|
| 408 | ! ratqs(ind1,ind2)=0.002+0.0*(90000-paprs(ind1,ind2))/20000 |
---|
| 409 | ! endif |
---|
| 410 | ! sigma1s=(1.1**0.5)*(fraca(ind1,ind2)**0.6)/(1-fraca(ind1,ind2))*((sth-senv)**2)**0.5+0.002*po(ind1) |
---|
| 411 | ! sigma2s=0.11*((sth-senv)**2)**0.5/(fraca(ind1,ind2)+0.01)**0.4+0.002*zqta(ind1,ind2) |
---|
| 412 | ! sigma1s=ratqs(ind1,ind2)*po(ind1) |
---|
| 413 | ! sigma2s=0.11*((sth-senv)**2)**0.5/(fraca(ind1,ind2)+0.02)**0.4+0.00003 |
---|
| 414 | |
---|
| 415 | !------------------------------------------------------------------------------ |
---|
| 416 | ! Calcul de l'eau condens?e et de la couverture nuageuse |
---|
| 417 | !------------------------------------------------------------------------------ |
---|
| 418 | sqrt2pi=sqrt(2.*pi) |
---|
| 419 | xth=sth/(sqrt(2.)*sigma2s) |
---|
| 420 | xenv=senv/(sqrt(2.)*sigma1s) |
---|
| 421 | cth(ind1,ind2)=0.5*(1.+1.*erf(xth)) |
---|
| 422 | cenv(ind1,ind2)=0.5*(1.+1.*erf(xenv)) |
---|
| 423 | ctot(ind1,ind2)=fraca(ind1,ind2)*cth(ind1,ind2)+(1.-1.*fraca(ind1,ind2))*cenv(ind1,ind2) |
---|
| 424 | |
---|
| 425 | qlth(ind1,ind2)=sigma2s*((exp(-1.*xth**2)/sqrt2pi)+xth*sqrt(2.)*cth(ind1,ind2)) |
---|
| 426 | qlenv(ind1,ind2)=sigma1s*((exp(-1.*xenv**2)/sqrt2pi)+xenv*sqrt(2.)*cenv(ind1,ind2)) |
---|
| 427 | qltot(ind1,ind2)=fraca(ind1,ind2)*qlth(ind1,ind2)+(1.-1.*fraca(ind1,ind2))*qlenv(ind1,ind2) |
---|
| 428 | |
---|
| 429 | IF (iflag_cloudth_vert == 1) THEN |
---|
| 430 | !------------------------------------------------------------------------------- |
---|
| 431 | ! Version 2: Modification selon J.-Louis. On condense ?? partir de qsat-ratqs |
---|
| 432 | !------------------------------------------------------------------------------- |
---|
| 433 | ! deltasenv=aenv*ratqs(ind1,ind2)*po(ind1) |
---|
| 434 | ! deltasth=ath*ratqs(ind1,ind2)*zqta(ind1,ind2) |
---|
| 435 | deltasenv=aenv*ratqs(ind1,ind2)*zqsatenv(ind1,ind2) |
---|
| 436 | deltasth=ath*ratqs(ind1,ind2)*zqsatth(ind1,ind2) |
---|
| 437 | ! deltasenv=aenv*0.01*po(ind1) |
---|
| 438 | ! deltasth=ath*0.01*zqta(ind1,ind2) |
---|
| 439 | xenv1=(senv-deltasenv)/(sqrt(2.)*sigma1s) |
---|
| 440 | xenv2=(senv+deltasenv)/(sqrt(2.)*sigma1s) |
---|
| 441 | xth1=(sth-deltasth)/(sqrt(2.)*sigma2s) |
---|
| 442 | xth2=(sth+deltasth)/(sqrt(2.)*sigma2s) |
---|
| 443 | coeffqlenv=(sigma1s)**2/(2*sqrtpi*deltasenv) |
---|
| 444 | coeffqlth=(sigma2s)**2/(2*sqrtpi*deltasth) |
---|
| 445 | |
---|
| 446 | cth(ind1,ind2)=0.5*(1.+1.*erf(xth2)) |
---|
| 447 | cenv(ind1,ind2)=0.5*(1.+1.*erf(xenv2)) |
---|
| 448 | ctot(ind1,ind2)=fraca(ind1,ind2)*cth(ind1,ind2)+(1.-1.*fraca(ind1,ind2))*cenv(ind1,ind2) |
---|
| 449 | |
---|
| 450 | IntJ=sigma1s*(exp(-1.*xenv1**2)/sqrt2pi)+0.5*senv*(1+erf(xenv1)) |
---|
| 451 | IntI1=coeffqlenv*0.5*(0.5*sqrtpi*(erf(xenv2)-erf(xenv1))+xenv1*exp(-1.*xenv1**2)-xenv2*exp(-1.*xenv2**2)) |
---|
| 452 | IntI2=coeffqlenv*xenv2*(exp(-1.*xenv2**2)-exp(-1.*xenv1**2)) |
---|
| 453 | IntI3=coeffqlenv*0.5*sqrtpi*xenv2**2*(erf(xenv2)-erf(xenv1)) |
---|
| 454 | |
---|
| 455 | qlenv(ind1,ind2)=IntJ+IntI1+IntI2+IntI3 |
---|
| 456 | ! qlenv(ind1,ind2)=IntJ |
---|
| 457 | ! print*, qlenv(ind1,ind2),'VERIF EAU' |
---|
| 458 | |
---|
| 459 | |
---|
| 460 | IntJ=sigma2s*(exp(-1.*xth1**2)/sqrt2pi)+0.5*sth*(1+erf(xth1)) |
---|
| 461 | ! IntI1=coeffqlth*((0.5*xth1-xth2)*exp(-1.*xth1**2)+0.5*xth2*exp(-1.*xth2**2)) |
---|
| 462 | ! IntI2=coeffqlth*0.5*sqrtpi*(0.5+xth2**2)*(erf(xth2)-erf(xth1)) |
---|
| 463 | IntI1=coeffqlth*0.5*(0.5*sqrtpi*(erf(xth2)-erf(xth1))+xth1*exp(-1.*xth1**2)-xth2*exp(-1.*xth2**2)) |
---|
| 464 | IntI2=coeffqlth*xth2*(exp(-1.*xth2**2)-exp(-1.*xth1**2)) |
---|
| 465 | IntI3=coeffqlth*0.5*sqrtpi*xth2**2*(erf(xth2)-erf(xth1)) |
---|
| 466 | qlth(ind1,ind2)=IntJ+IntI1+IntI2+IntI3 |
---|
| 467 | ! qlth(ind1,ind2)=IntJ |
---|
| 468 | ! print*, IntJ,IntI1,IntI2,IntI3,qlth(ind1,ind2),'VERIF EAU2' |
---|
| 469 | qltot(ind1,ind2)=fraca(ind1,ind2)*qlth(ind1,ind2)+(1.-1.*fraca(ind1,ind2))*qlenv(ind1,ind2) |
---|
| 470 | |
---|
| 471 | ELSE IF (iflag_cloudth_vert == 2) THEN |
---|
| 472 | |
---|
| 473 | !------------------------------------------------------------------------------- |
---|
| 474 | ! Version 3: Modification Jean Jouhaud. On condense a partir de -delta s |
---|
| 475 | !------------------------------------------------------------------------------- |
---|
| 476 | ! deltasenv=aenv*ratqs(ind1,ind2)*po(ind1) |
---|
| 477 | ! deltasth=ath*ratqs(ind1,ind2)*zqta(ind1,ind2) |
---|
| 478 | ! deltasenv=aenv*ratqs(ind1,ind2)*zqsatenv(ind1,ind2) |
---|
| 479 | ! deltasth=ath*ratqs(ind1,ind2)*zqsatth(ind1,ind2) |
---|
| 480 | deltasenv=aenv*vert_alpha*sigma1s |
---|
| 481 | deltasth=ath*vert_alpha*sigma2s |
---|
| 482 | |
---|
| 483 | xenv1=-(senv+deltasenv)/(sqrt(2.)*sigma1s) |
---|
| 484 | xenv2=-(senv-deltasenv)/(sqrt(2.)*sigma1s) |
---|
| 485 | xth1=-(sth+deltasth)/(sqrt(2.)*sigma2s) |
---|
| 486 | xth2=-(sth-deltasth)/(sqrt(2.)*sigma2s) |
---|
| 487 | ! coeffqlenv=(sigma1s)**2/(2*sqrtpi*deltasenv) |
---|
| 488 | ! coeffqlth=(sigma2s)**2/(2*sqrtpi*deltasth) |
---|
| 489 | |
---|
| 490 | cth(ind1,ind2)=0.5*(1.-1.*erf(xth1)) |
---|
| 491 | cenv(ind1,ind2)=0.5*(1.-1.*erf(xenv1)) |
---|
| 492 | ctot(ind1,ind2)=fraca(ind1,ind2)*cth(ind1,ind2)+(1.-1.*fraca(ind1,ind2))*cenv(ind1,ind2) |
---|
| 493 | |
---|
| 494 | IntJ=0.5*senv*(1-erf(xenv2))+(sigma1s/sqrt2pi)*exp(-1.*xenv2**2) |
---|
| 495 | IntI1=(((senv+deltasenv)**2+(sigma1s)**2)/(8*deltasenv))*(erf(xenv2)-erf(xenv1)) |
---|
| 496 | IntI2=(sigma1s**2/(4*deltasenv*sqrtpi))*(xenv1*exp(-1.*xenv1**2)-xenv2*exp(-1.*xenv2**2)) |
---|
| 497 | IntI3=((sqrt2*sigma1s*(senv+deltasenv))/(4*sqrtpi*deltasenv))*(exp(-1.*xenv1**2)-exp(-1.*xenv2**2)) |
---|
| 498 | |
---|
| 499 | ! IntI1=0.5*(0.5*sqrtpi*(erf(xenv2)-erf(xenv1))+xenv1*exp(-1.*xenv1**2)-xenv2*exp(-1.*xenv2**2)) |
---|
| 500 | ! IntI2=xenv2*(exp(-1.*xenv2**2)-exp(-1.*xenv1**2)) |
---|
| 501 | ! IntI3=0.5*sqrtpi*xenv2**2*(erf(xenv2)-erf(xenv1)) |
---|
| 502 | |
---|
| 503 | qlenv(ind1,ind2)=IntJ+IntI1+IntI2+IntI3 |
---|
| 504 | ! qlenv(ind1,ind2)=IntJ |
---|
| 505 | ! print*, qlenv(ind1,ind2),'VERIF EAU' |
---|
| 506 | |
---|
| 507 | IntJ=0.5*sth*(1-erf(xth2))+(sigma2s/sqrt2pi)*exp(-1.*xth2**2) |
---|
| 508 | IntI1=(((sth+deltasth)**2+(sigma2s)**2)/(8*deltasth))*(erf(xth2)-erf(xth1)) |
---|
| 509 | IntI2=(sigma2s**2/(4*deltasth*sqrtpi))*(xth1*exp(-1.*xth1**2)-xth2*exp(-1.*xth2**2)) |
---|
| 510 | IntI3=((sqrt2*sigma2s*(sth+deltasth))/(4*sqrtpi*deltasth))*(exp(-1.*xth1**2)-exp(-1.*xth2**2)) |
---|
| 511 | |
---|
| 512 | qlth(ind1,ind2)=IntJ+IntI1+IntI2+IntI3 |
---|
| 513 | ! qlth(ind1,ind2)=IntJ |
---|
| 514 | ! print*, IntJ,IntI1,IntI2,IntI3,qlth(ind1,ind2),'VERIF EAU2' |
---|
| 515 | qltot(ind1,ind2)=fraca(ind1,ind2)*qlth(ind1,ind2)+(1.-1.*fraca(ind1,ind2))*qlenv(ind1,ind2) |
---|
| 516 | |
---|
| 517 | |
---|
| 518 | |
---|
| 519 | |
---|
| 520 | ENDIF ! of if (iflag_cloudth_vert==1 or 2) |
---|
| 521 | |
---|
| 522 | !!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!! |
---|
| 523 | |
---|
| 524 | if (cenv(ind1,ind2).lt.1.e-10.or.cth(ind1,ind2).lt.1.e-10) then |
---|
| 525 | ctot(ind1,ind2)=0. |
---|
| 526 | qcloud(ind1)=zqsatenv(ind1,ind2) |
---|
| 527 | |
---|
| 528 | else |
---|
| 529 | |
---|
| 530 | ctot(ind1,ind2)=ctot(ind1,ind2) |
---|
| 531 | qcloud(ind1)=qltot(ind1,ind2)/ctot(ind1,ind2)+zqs(ind1) |
---|
| 532 | ! qcloud(ind1)=fraca(ind1,ind2)*qlth(ind1,ind2)/cth(ind1,ind2) & |
---|
| 533 | ! & +(1.-1.*fraca(ind1,ind2))*qlenv(ind1,ind2)/cenv(ind1,ind2)+zqs(ind1) |
---|
| 534 | |
---|
| 535 | endif |
---|
| 536 | |
---|
| 537 | |
---|
| 538 | |
---|
| 539 | ! print*,sth,sigma2s,qlth(ind1,ind2),ctot(ind1,ind2),qltot(ind1,ind2),'verif' |
---|
| 540 | |
---|
| 541 | |
---|
| 542 | else ! gaussienne environnement seule |
---|
| 543 | |
---|
| 544 | zqenv(ind1)=po(ind1) |
---|
| 545 | Tbef=t(ind1,ind2) |
---|
| 546 | zdelta=MAX(0.,SIGN(1.,RTT-Tbef)) |
---|
| 547 | qsatbef= R2ES * FOEEW(Tbef,zdelta)/paprs(ind1,ind2) |
---|
| 548 | qsatbef=MIN(0.5,qsatbef) |
---|
| 549 | zcor=1./(1.-retv*qsatbef) |
---|
| 550 | qsatbef=qsatbef*zcor |
---|
| 551 | zqsatenv(ind1,ind2)=qsatbef |
---|
| 552 | |
---|
| 553 | |
---|
| 554 | ! qlbef=Max(po(ind1)-zqsatenv(ind1,ind2),0.) |
---|
| 555 | zthl(ind1,ind2)=t(ind1,ind2)*(101325/paprs(ind1,ind2))**(rdd/cppd) |
---|
| 556 | alenv=(0.622*Lv*zqsatenv(ind1,ind2))/(rdd*zthl(ind1,ind2)**2) |
---|
| 557 | aenv=1./(1.+(alenv*Lv/cppd)) |
---|
| 558 | senv=aenv*(po(ind1)-zqsatenv(ind1,ind2)) |
---|
| 559 | |
---|
| 560 | |
---|
| 561 | sigma1s=ratqs(ind1,ind2)*zqenv(ind1) |
---|
| 562 | |
---|
| 563 | sqrt2pi=sqrt(2.*pi) |
---|
| 564 | xenv=senv/(sqrt(2.)*sigma1s) |
---|
| 565 | ctot(ind1,ind2)=0.5*(1.+1.*erf(xenv)) |
---|
| 566 | qltot(ind1,ind2)=sigma1s*((exp(-1.*xenv**2)/sqrt2pi)+xenv*sqrt(2.)*cenv(ind1,ind2)) |
---|
| 567 | |
---|
| 568 | if (ctot(ind1,ind2).lt.1.e-3) then |
---|
| 569 | ctot(ind1,ind2)=0. |
---|
| 570 | qcloud(ind1)=zqsatenv(ind1,ind2) |
---|
| 571 | |
---|
| 572 | else |
---|
| 573 | |
---|
| 574 | ctot(ind1,ind2)=ctot(ind1,ind2) |
---|
| 575 | qcloud(ind1)=qltot(ind1,ind2)/ctot(ind1,ind2)+zqsatenv(ind1,ind2) |
---|
| 576 | |
---|
| 577 | endif |
---|
| 578 | |
---|
| 579 | |
---|
| 580 | |
---|
| 581 | |
---|
| 582 | |
---|
| 583 | |
---|
| 584 | endif |
---|
| 585 | enddo |
---|
| 586 | |
---|
| 587 | return |
---|
| 588 | ! end |
---|
| 589 | END SUBROUTINE cloudth_vert |
---|
| 590 | |
---|
[3493] | 591 | |
---|
| 592 | |
---|
| 593 | |
---|
[2686] | 594 | SUBROUTINE cloudth_v3(ngrid,klev,ind2, & |
---|
| 595 | & ztv,po,zqta,fraca, & |
---|
[3493] | 596 | & qcloud,ctot,ctot_vol,zpspsk,paprs,pplay,ztla,zthl, & |
---|
[2686] | 597 | & ratqs,zqs,t) |
---|
| 598 | |
---|
[4535] | 599 | use lscp_ini_mod, only: iflag_cloudth_vert |
---|
[2686] | 600 | |
---|
| 601 | IMPLICIT NONE |
---|
| 602 | |
---|
| 603 | |
---|
| 604 | !=========================================================================== |
---|
| 605 | ! Author : Arnaud Octavio Jam (LMD/CNRS) |
---|
| 606 | ! Date : 25 Mai 2010 |
---|
| 607 | ! Objet : calcule les valeurs de qc et rneb dans les thermiques |
---|
| 608 | !=========================================================================== |
---|
| 609 | |
---|
| 610 | |
---|
[4593] | 611 | INCLUDE "YOMCST.h" |
---|
[4623] | 612 | INCLUDE "nuage.h" ! iflag ratq |
---|
[4593] | 613 | INCLUDE "YOETHF.h" |
---|
| 614 | INCLUDE "FCTTRE.h" |
---|
[2686] | 615 | |
---|
| 616 | INTEGER itap,ind1,ind2 |
---|
| 617 | INTEGER ngrid,klev,klon,l,ig |
---|
| 618 | |
---|
| 619 | REAL ztv(ngrid,klev) |
---|
| 620 | REAL po(ngrid) |
---|
| 621 | REAL zqenv(ngrid) |
---|
| 622 | REAL zqta(ngrid,klev) |
---|
| 623 | |
---|
| 624 | REAL fraca(ngrid,klev+1) |
---|
| 625 | REAL zpspsk(ngrid,klev) |
---|
| 626 | REAL paprs(ngrid,klev+1) |
---|
[3493] | 627 | REAL pplay(ngrid,klev) |
---|
[2686] | 628 | REAL ztla(ngrid,klev) |
---|
| 629 | REAL zthl(ngrid,klev) |
---|
| 630 | |
---|
| 631 | REAL zqsatth(ngrid,klev) |
---|
| 632 | REAL zqsatenv(ngrid,klev) |
---|
| 633 | |
---|
[2945] | 634 | REAL sigma1(ngrid,klev) |
---|
[2686] | 635 | REAL sigma2(ngrid,klev) |
---|
| 636 | REAL qlth(ngrid,klev) |
---|
| 637 | REAL qlenv(ngrid,klev) |
---|
| 638 | REAL qltot(ngrid,klev) |
---|
[2945] | 639 | REAL cth(ngrid,klev) |
---|
[2686] | 640 | REAL cenv(ngrid,klev) |
---|
| 641 | REAL ctot(ngrid,klev) |
---|
[2945] | 642 | REAL cth_vol(ngrid,klev) |
---|
| 643 | REAL cenv_vol(ngrid,klev) |
---|
| 644 | REAL ctot_vol(ngrid,klev) |
---|
| 645 | REAL rneb(ngrid,klev) |
---|
[2686] | 646 | REAL t(ngrid,klev) |
---|
| 647 | REAL qsatmmussig1,qsatmmussig2,sqrt2pi,sqrt2,sqrtpi,pi |
---|
| 648 | REAL rdd,cppd,Lv |
---|
| 649 | REAL alth,alenv,ath,aenv |
---|
| 650 | REAL sth,senv,sigma1s,sigma2s,xth,xenv, exp_xenv1, exp_xenv2,exp_xth1,exp_xth2 |
---|
[3493] | 651 | REAL inverse_rho,beta,a_Brooks,b_Brooks,A_Maj_Brooks,Dx_Brooks,f_Brooks |
---|
[2686] | 652 | REAL Tbef,zdelta,qsatbef,zcor |
---|
| 653 | REAL qlbef |
---|
| 654 | REAL ratqs(ngrid,klev) ! Determine the width of the vapour distribution |
---|
| 655 | REAL zpdf_sig(ngrid),zpdf_k(ngrid),zpdf_delta(ngrid) |
---|
| 656 | REAL zpdf_a(ngrid),zpdf_b(ngrid),zpdf_e1(ngrid),zpdf_e2(ngrid) |
---|
| 657 | REAL zqs(ngrid), qcloud(ngrid) |
---|
| 658 | REAL erf |
---|
| 659 | |
---|
| 660 | |
---|
| 661 | IF (iflag_cloudth_vert.GE.1) THEN |
---|
| 662 | CALL cloudth_vert_v3(ngrid,klev,ind2, & |
---|
| 663 | & ztv,po,zqta,fraca, & |
---|
[3493] | 664 | & qcloud,ctot,ctot_vol,zpspsk,paprs,pplay,ztla,zthl, & |
---|
[2686] | 665 | & ratqs,zqs,t) |
---|
| 666 | RETURN |
---|
| 667 | ENDIF |
---|
| 668 | !!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!! |
---|
| 669 | |
---|
| 670 | |
---|
| 671 | !------------------------------------------------------------------------------- |
---|
| 672 | ! Initialisation des variables r?elles |
---|
| 673 | !------------------------------------------------------------------------------- |
---|
| 674 | sigma1(:,:)=0. |
---|
| 675 | sigma2(:,:)=0. |
---|
| 676 | qlth(:,:)=0. |
---|
| 677 | qlenv(:,:)=0. |
---|
| 678 | qltot(:,:)=0. |
---|
| 679 | rneb(:,:)=0. |
---|
| 680 | qcloud(:)=0. |
---|
| 681 | cth(:,:)=0. |
---|
| 682 | cenv(:,:)=0. |
---|
| 683 | ctot(:,:)=0. |
---|
[2945] | 684 | cth_vol(:,:)=0. |
---|
| 685 | cenv_vol(:,:)=0. |
---|
| 686 | ctot_vol(:,:)=0. |
---|
[2686] | 687 | qsatmmussig1=0. |
---|
| 688 | qsatmmussig2=0. |
---|
| 689 | rdd=287.04 |
---|
| 690 | cppd=1005.7 |
---|
| 691 | pi=3.14159 |
---|
| 692 | Lv=2.5e6 |
---|
| 693 | sqrt2pi=sqrt(2.*pi) |
---|
| 694 | sqrt2=sqrt(2.) |
---|
| 695 | sqrtpi=sqrt(pi) |
---|
| 696 | |
---|
| 697 | |
---|
| 698 | !------------------------------------------------------------------------------- |
---|
| 699 | ! Cloud fraction in the thermals and standard deviation of the PDFs |
---|
| 700 | !------------------------------------------------------------------------------- |
---|
| 701 | do ind1=1,ngrid |
---|
| 702 | |
---|
| 703 | if ((ztv(ind1,1).gt.ztv(ind1,2)).and.(fraca(ind1,ind2).gt.1.e-10)) then |
---|
| 704 | |
---|
| 705 | zqenv(ind1)=(po(ind1)-fraca(ind1,ind2)*zqta(ind1,ind2))/(1.-fraca(ind1,ind2)) |
---|
| 706 | |
---|
| 707 | Tbef=zthl(ind1,ind2)*zpspsk(ind1,ind2) |
---|
| 708 | zdelta=MAX(0.,SIGN(1.,RTT-Tbef)) |
---|
| 709 | qsatbef= R2ES*FOEEW(Tbef,zdelta)/paprs(ind1,ind2) |
---|
| 710 | qsatbef=MIN(0.5,qsatbef) |
---|
| 711 | zcor=1./(1.-retv*qsatbef) |
---|
| 712 | qsatbef=qsatbef*zcor |
---|
| 713 | zqsatenv(ind1,ind2)=qsatbef |
---|
| 714 | |
---|
| 715 | |
---|
| 716 | alenv=(0.622*Lv*zqsatenv(ind1,ind2))/(rdd*zthl(ind1,ind2)**2) !qsl, p84 |
---|
| 717 | aenv=1./(1.+(alenv*Lv/cppd)) !al, p84 |
---|
| 718 | senv=aenv*(po(ind1)-zqsatenv(ind1,ind2)) !s, p84 |
---|
| 719 | |
---|
| 720 | !po = qt de l'environnement ET des thermique |
---|
| 721 | !zqenv = qt environnement |
---|
| 722 | !zqsatenv = qsat environnement |
---|
| 723 | !zthl = Tl environnement |
---|
| 724 | |
---|
| 725 | |
---|
| 726 | Tbef=ztla(ind1,ind2)*zpspsk(ind1,ind2) |
---|
| 727 | zdelta=MAX(0.,SIGN(1.,RTT-Tbef)) |
---|
| 728 | qsatbef= R2ES * FOEEW(Tbef,zdelta)/paprs(ind1,ind2) |
---|
| 729 | qsatbef=MIN(0.5,qsatbef) |
---|
| 730 | zcor=1./(1.-retv*qsatbef) |
---|
| 731 | qsatbef=qsatbef*zcor |
---|
| 732 | zqsatth(ind1,ind2)=qsatbef |
---|
| 733 | |
---|
| 734 | alth=(0.622*Lv*zqsatth(ind1,ind2))/(rdd*ztla(ind1,ind2)**2) !qsl, p84 |
---|
| 735 | ath=1./(1.+(alth*Lv/cppd)) !al, p84 |
---|
| 736 | sth=ath*(zqta(ind1,ind2)-zqsatth(ind1,ind2)) !s, p84 |
---|
| 737 | |
---|
| 738 | !zqta = qt thermals |
---|
| 739 | !zqsatth = qsat thermals |
---|
| 740 | !ztla = Tl thermals |
---|
| 741 | |
---|
| 742 | !------------------------------------------------------------------------------ |
---|
| 743 | ! s standard deviations |
---|
| 744 | !------------------------------------------------------------------------------ |
---|
| 745 | |
---|
| 746 | ! tests |
---|
| 747 | ! sigma1s=(1.1**0.5)*(fraca(ind1,ind2)**0.6)/(1-fraca(ind1,ind2))*((sth-senv)**2)**0.5+0.002*po(ind1) |
---|
| 748 | ! sigma1s=(0.92*(fraca(ind1,ind2)**0.5)/(1-fraca(ind1,ind2))*(((sth-senv)**2)**0.5))+ratqs(ind1,ind2)*po(ind1) |
---|
| 749 | ! sigma2s=(0.09*(((sth-senv)**2)**0.5)/((fraca(ind1,ind2)+0.02)**0.5))+0.002*zqta(ind1,ind2) |
---|
| 750 | ! final option |
---|
| 751 | sigma1s=(1.1**0.5)*(fraca(ind1,ind2)**0.6)/(1-fraca(ind1,ind2))*((sth-senv)**2)**0.5+ratqs(ind1,ind2)*po(ind1) |
---|
| 752 | sigma2s=0.11*((sth-senv)**2)**0.5/(fraca(ind1,ind2)+0.01)**0.4+0.002*zqta(ind1,ind2) |
---|
| 753 | |
---|
| 754 | !------------------------------------------------------------------------------ |
---|
| 755 | ! Condensed water and cloud cover |
---|
| 756 | !------------------------------------------------------------------------------ |
---|
| 757 | xth=sth/(sqrt2*sigma2s) |
---|
| 758 | xenv=senv/(sqrt2*sigma1s) |
---|
| 759 | cth(ind1,ind2)=0.5*(1.+1.*erf(xth)) !4.18 p 111, l.7 p115 & 4.20 p 119 thesis Arnaud Jam |
---|
| 760 | cenv(ind1,ind2)=0.5*(1.+1.*erf(xenv)) !4.18 p 111, l.7 p115 & 4.20 p 119 thesis Arnaud Jam |
---|
| 761 | ctot(ind1,ind2)=fraca(ind1,ind2)*cth(ind1,ind2)+(1.-1.*fraca(ind1,ind2))*cenv(ind1,ind2) |
---|
[2945] | 762 | ctot_vol(ind1,ind2)=ctot(ind1,ind2) |
---|
[2686] | 763 | |
---|
| 764 | qlth(ind1,ind2)=sigma2s*((exp(-1.*xth**2)/sqrt2pi)+xth*sqrt2*cth(ind1,ind2)) |
---|
| 765 | qlenv(ind1,ind2)=sigma1s*((exp(-1.*xenv**2)/sqrt2pi)+xenv*sqrt2*cenv(ind1,ind2)) |
---|
| 766 | qltot(ind1,ind2)=fraca(ind1,ind2)*qlth(ind1,ind2)+(1.-1.*fraca(ind1,ind2))*qlenv(ind1,ind2) |
---|
| 767 | |
---|
| 768 | if (ctot(ind1,ind2).lt.1.e-10) then |
---|
| 769 | ctot(ind1,ind2)=0. |
---|
| 770 | qcloud(ind1)=zqsatenv(ind1,ind2) |
---|
| 771 | else |
---|
| 772 | qcloud(ind1)=qltot(ind1,ind2)/ctot(ind1,ind2)+zqs(ind1) |
---|
| 773 | endif |
---|
| 774 | |
---|
| 775 | else ! Environnement only, follow the if l.110 |
---|
| 776 | |
---|
| 777 | zqenv(ind1)=po(ind1) |
---|
| 778 | Tbef=t(ind1,ind2) |
---|
| 779 | zdelta=MAX(0.,SIGN(1.,RTT-Tbef)) |
---|
| 780 | qsatbef= R2ES * FOEEW(Tbef,zdelta)/paprs(ind1,ind2) |
---|
| 781 | qsatbef=MIN(0.5,qsatbef) |
---|
| 782 | zcor=1./(1.-retv*qsatbef) |
---|
| 783 | qsatbef=qsatbef*zcor |
---|
| 784 | zqsatenv(ind1,ind2)=qsatbef |
---|
| 785 | |
---|
| 786 | ! qlbef=Max(po(ind1)-zqsatenv(ind1,ind2),0.) |
---|
| 787 | zthl(ind1,ind2)=t(ind1,ind2)*(101325/paprs(ind1,ind2))**(rdd/cppd) |
---|
| 788 | alenv=(0.622*Lv*zqsatenv(ind1,ind2))/(rdd*zthl(ind1,ind2)**2) |
---|
| 789 | aenv=1./(1.+(alenv*Lv/cppd)) |
---|
| 790 | senv=aenv*(po(ind1)-zqsatenv(ind1,ind2)) |
---|
| 791 | |
---|
| 792 | sigma1s=ratqs(ind1,ind2)*zqenv(ind1) |
---|
| 793 | |
---|
| 794 | xenv=senv/(sqrt2*sigma1s) |
---|
| 795 | ctot(ind1,ind2)=0.5*(1.+1.*erf(xenv)) |
---|
[2945] | 796 | ctot_vol(ind1,ind2)=ctot(ind1,ind2) |
---|
[2686] | 797 | qltot(ind1,ind2)=sigma1s*((exp(-1.*xenv**2)/sqrt2pi)+xenv*sqrt2*cenv(ind1,ind2)) |
---|
| 798 | |
---|
| 799 | if (ctot(ind1,ind2).lt.1.e-3) then |
---|
| 800 | ctot(ind1,ind2)=0. |
---|
| 801 | qcloud(ind1)=zqsatenv(ind1,ind2) |
---|
| 802 | else |
---|
| 803 | qcloud(ind1)=qltot(ind1,ind2)/ctot(ind1,ind2)+zqsatenv(ind1,ind2) |
---|
| 804 | endif |
---|
| 805 | |
---|
| 806 | |
---|
| 807 | endif ! From the separation (thermal/envrionnement) et (environnement) only, l.110 et l.183 |
---|
| 808 | enddo ! from the loop on ngrid l.108 |
---|
| 809 | return |
---|
| 810 | ! end |
---|
| 811 | END SUBROUTINE cloudth_v3 |
---|
| 812 | |
---|
| 813 | |
---|
| 814 | |
---|
| 815 | !=========================================================================== |
---|
| 816 | SUBROUTINE cloudth_vert_v3(ngrid,klev,ind2, & |
---|
| 817 | & ztv,po,zqta,fraca, & |
---|
[3493] | 818 | & qcloud,ctot,ctot_vol,zpspsk,paprs,pplay,ztla,zthl, & |
---|
[2686] | 819 | & ratqs,zqs,t) |
---|
| 820 | |
---|
| 821 | !=========================================================================== |
---|
| 822 | ! Auteur : Arnaud Octavio Jam (LMD/CNRS) |
---|
| 823 | ! Date : 25 Mai 2010 |
---|
| 824 | ! Objet : calcule les valeurs de qc et rneb dans les thermiques |
---|
| 825 | !=========================================================================== |
---|
| 826 | |
---|
[4535] | 827 | use lscp_ini_mod, only: iflag_cloudth_vert |
---|
[2686] | 828 | USE ioipsl_getin_p_mod, ONLY : getin_p |
---|
[2958] | 829 | USE phys_output_var_mod, ONLY : cloudth_sth,cloudth_senv, & |
---|
| 830 | & cloudth_sigmath,cloudth_sigmaenv |
---|
[2686] | 831 | |
---|
| 832 | IMPLICIT NONE |
---|
| 833 | |
---|
[4593] | 834 | INCLUDE "YOMCST.h" |
---|
[4623] | 835 | INCLUDE "nuage.h" ! iflag ratq |
---|
[4593] | 836 | INCLUDE "YOETHF.h" |
---|
| 837 | INCLUDE "FCTTRE.h" |
---|
[2686] | 838 | |
---|
| 839 | INTEGER itap,ind1,ind2 |
---|
| 840 | INTEGER ngrid,klev,klon,l,ig |
---|
| 841 | |
---|
| 842 | REAL ztv(ngrid,klev) |
---|
| 843 | REAL po(ngrid) |
---|
| 844 | REAL zqenv(ngrid) |
---|
| 845 | REAL zqta(ngrid,klev) |
---|
| 846 | |
---|
| 847 | REAL fraca(ngrid,klev+1) |
---|
| 848 | REAL zpspsk(ngrid,klev) |
---|
| 849 | REAL paprs(ngrid,klev+1) |
---|
[3493] | 850 | REAL pplay(ngrid,klev) |
---|
[2686] | 851 | REAL ztla(ngrid,klev) |
---|
| 852 | REAL zthl(ngrid,klev) |
---|
| 853 | |
---|
| 854 | REAL zqsatth(ngrid,klev) |
---|
| 855 | REAL zqsatenv(ngrid,klev) |
---|
| 856 | |
---|
| 857 | REAL sigma1(ngrid,klev) |
---|
| 858 | REAL sigma2(ngrid,klev) |
---|
| 859 | REAL qlth(ngrid,klev) |
---|
| 860 | REAL qlenv(ngrid,klev) |
---|
| 861 | REAL qltot(ngrid,klev) |
---|
[2945] | 862 | REAL cth(ngrid,klev) |
---|
[2686] | 863 | REAL cenv(ngrid,klev) |
---|
| 864 | REAL ctot(ngrid,klev) |
---|
[2945] | 865 | REAL cth_vol(ngrid,klev) |
---|
| 866 | REAL cenv_vol(ngrid,klev) |
---|
| 867 | REAL ctot_vol(ngrid,klev) |
---|
[2686] | 868 | REAL rneb(ngrid,klev) |
---|
| 869 | REAL t(ngrid,klev) |
---|
| 870 | REAL qsatmmussig1,qsatmmussig2,sqrtpi,sqrt2,sqrt2pi,pi |
---|
| 871 | REAL rdd,cppd,Lv |
---|
| 872 | REAL alth,alenv,ath,aenv |
---|
[2957] | 873 | REAL sth,senv,sigma1s,sigma2s,sigma1s_fraca,sigma1s_ratqs |
---|
[3493] | 874 | REAL inverse_rho,beta,a_Brooks,b_Brooks,A_Maj_Brooks,Dx_Brooks,f_Brooks |
---|
[2957] | 875 | REAL xth,xenv,exp_xenv1,exp_xenv2,exp_xth1,exp_xth2 |
---|
[2686] | 876 | REAL xth1,xth2,xenv1,xenv2,deltasth, deltasenv |
---|
[2945] | 877 | REAL IntJ,IntI1,IntI2,IntI3,IntJ_CF,IntI1_CF,IntI3_CF,coeffqlenv,coeffqlth |
---|
[2686] | 878 | REAL Tbef,zdelta,qsatbef,zcor |
---|
| 879 | REAL qlbef |
---|
| 880 | REAL ratqs(ngrid,klev) ! determine la largeur de distribution de vapeur |
---|
| 881 | ! Change the width of the PDF used for vertical subgrid scale heterogeneity |
---|
| 882 | ! (J Jouhaud, JL Dufresne, JB Madeleine) |
---|
[2911] | 883 | REAL,SAVE :: vert_alpha, vert_alpha_th |
---|
| 884 | !$OMP THREADPRIVATE(vert_alpha, vert_alpha_th) |
---|
[2957] | 885 | REAL,SAVE :: sigma1s_factor=1.1 |
---|
| 886 | REAL,SAVE :: sigma1s_power=0.6 |
---|
[3570] | 887 | REAL,SAVE :: sigma2s_factor=0.09 |
---|
| 888 | REAL,SAVE :: sigma2s_power=0.5 |
---|
[2960] | 889 | REAL,SAVE :: cloudth_ratqsmin=-1. |
---|
[3570] | 890 | !$OMP THREADPRIVATE(sigma1s_factor,sigma1s_power,sigma2s_factor,sigma2s_power,cloudth_ratqsmin) |
---|
[2957] | 891 | INTEGER, SAVE :: iflag_cloudth_vert_noratqs=0 |
---|
| 892 | !$OMP THREADPRIVATE(iflag_cloudth_vert_noratqs) |
---|
| 893 | |
---|
[2686] | 894 | LOGICAL, SAVE :: firstcall = .TRUE. |
---|
[2910] | 895 | !$OMP THREADPRIVATE(firstcall) |
---|
[2686] | 896 | |
---|
| 897 | REAL zpdf_sig(ngrid),zpdf_k(ngrid),zpdf_delta(ngrid) |
---|
| 898 | REAL zpdf_a(ngrid),zpdf_b(ngrid),zpdf_e1(ngrid),zpdf_e2(ngrid) |
---|
| 899 | REAL zqs(ngrid), qcloud(ngrid) |
---|
| 900 | REAL erf |
---|
| 901 | |
---|
[3493] | 902 | REAL rhodz(ngrid,klev) |
---|
| 903 | REAL zrho(ngrid,klev) |
---|
| 904 | REAL dz(ngrid,klev) |
---|
| 905 | |
---|
| 906 | DO ind1 = 1, ngrid |
---|
| 907 | !Layer calculation |
---|
| 908 | rhodz(ind1,ind2) = (paprs(ind1,ind2)-paprs(ind1,ind2+1))/rg !kg/m2 |
---|
| 909 | zrho(ind1,ind2) = pplay(ind1,ind2)/t(ind1,ind2)/rd !kg/m3 |
---|
| 910 | dz(ind1,ind2) = rhodz(ind1,ind2)/zrho(ind1,ind2) !m : epaisseur de la couche en metre |
---|
| 911 | END DO |
---|
| 912 | |
---|
[2686] | 913 | !------------------------------------------------------------------------------ |
---|
| 914 | ! Initialize |
---|
| 915 | !------------------------------------------------------------------------------ |
---|
[3999] | 916 | |
---|
[2686] | 917 | sigma1(:,:)=0. |
---|
| 918 | sigma2(:,:)=0. |
---|
| 919 | qlth(:,:)=0. |
---|
| 920 | qlenv(:,:)=0. |
---|
| 921 | qltot(:,:)=0. |
---|
| 922 | rneb(:,:)=0. |
---|
| 923 | qcloud(:)=0. |
---|
| 924 | cth(:,:)=0. |
---|
| 925 | cenv(:,:)=0. |
---|
| 926 | ctot(:,:)=0. |
---|
[2945] | 927 | cth_vol(:,:)=0. |
---|
| 928 | cenv_vol(:,:)=0. |
---|
| 929 | ctot_vol(:,:)=0. |
---|
[2686] | 930 | qsatmmussig1=0. |
---|
| 931 | qsatmmussig2=0. |
---|
| 932 | rdd=287.04 |
---|
| 933 | cppd=1005.7 |
---|
| 934 | pi=3.14159 |
---|
| 935 | Lv=2.5e6 |
---|
| 936 | sqrt2pi=sqrt(2.*pi) |
---|
| 937 | sqrt2=sqrt(2.) |
---|
| 938 | sqrtpi=sqrt(pi) |
---|
| 939 | |
---|
| 940 | IF (firstcall) THEN |
---|
| 941 | vert_alpha=0.5 |
---|
| 942 | CALL getin_p('cloudth_vert_alpha',vert_alpha) |
---|
| 943 | WRITE(*,*) 'cloudth_vert_alpha = ', vert_alpha |
---|
[2911] | 944 | ! The factor used for the thermal is equal to that of the environment |
---|
| 945 | ! if nothing is explicitly specified in the def file |
---|
| 946 | vert_alpha_th=vert_alpha |
---|
| 947 | CALL getin_p('cloudth_vert_alpha_th',vert_alpha_th) |
---|
| 948 | WRITE(*,*) 'cloudth_vert_alpha_th = ', vert_alpha_th |
---|
[2957] | 949 | ! Factor used in the calculation of sigma1s |
---|
| 950 | CALL getin_p('cloudth_sigma1s_factor',sigma1s_factor) |
---|
| 951 | WRITE(*,*) 'cloudth_sigma1s_factor = ', sigma1s_factor |
---|
| 952 | ! Power used in the calculation of sigma1s |
---|
| 953 | CALL getin_p('cloudth_sigma1s_power',sigma1s_power) |
---|
| 954 | WRITE(*,*) 'cloudth_sigma1s_power = ', sigma1s_power |
---|
[3570] | 955 | ! Factor used in the calculation of sigma2s |
---|
| 956 | CALL getin_p('cloudth_sigma2s_factor',sigma2s_factor) |
---|
| 957 | WRITE(*,*) 'cloudth_sigma2s_factor = ', sigma2s_factor |
---|
| 958 | ! Power used in the calculation of sigma2s |
---|
| 959 | CALL getin_p('cloudth_sigma2s_power',sigma2s_power) |
---|
| 960 | WRITE(*,*) 'cloudth_sigma2s_power = ', sigma2s_power |
---|
[2960] | 961 | ! Minimum value for the environmental air subgrid water distrib |
---|
| 962 | CALL getin_p('cloudth_ratqsmin',cloudth_ratqsmin) |
---|
| 963 | WRITE(*,*) 'cloudth_ratqsmin = ', cloudth_ratqsmin |
---|
[2957] | 964 | ! Remove the dependency to ratqs from the variance of the vertical PDF |
---|
| 965 | CALL getin_p('iflag_cloudth_vert_noratqs',iflag_cloudth_vert_noratqs) |
---|
| 966 | WRITE(*,*) 'iflag_cloudth_vert_noratqs = ', iflag_cloudth_vert_noratqs |
---|
| 967 | |
---|
[2686] | 968 | firstcall=.FALSE. |
---|
| 969 | ENDIF |
---|
| 970 | |
---|
| 971 | !------------------------------------------------------------------------------- |
---|
| 972 | ! Calcul de la fraction du thermique et des ecart-types des distributions |
---|
| 973 | !------------------------------------------------------------------------------- |
---|
| 974 | do ind1=1,ngrid |
---|
| 975 | |
---|
| 976 | if ((ztv(ind1,1).gt.ztv(ind1,2)).and.(fraca(ind1,ind2).gt.1.e-10)) then !Thermal and environnement |
---|
| 977 | |
---|
| 978 | zqenv(ind1)=(po(ind1)-fraca(ind1,ind2)*zqta(ind1,ind2))/(1.-fraca(ind1,ind2)) !qt = a*qtth + (1-a)*qtenv |
---|
| 979 | |
---|
| 980 | |
---|
| 981 | Tbef=zthl(ind1,ind2)*zpspsk(ind1,ind2) |
---|
| 982 | zdelta=MAX(0.,SIGN(1.,RTT-Tbef)) |
---|
| 983 | qsatbef= R2ES*FOEEW(Tbef,zdelta)/paprs(ind1,ind2) |
---|
| 984 | qsatbef=MIN(0.5,qsatbef) |
---|
| 985 | zcor=1./(1.-retv*qsatbef) |
---|
| 986 | qsatbef=qsatbef*zcor |
---|
| 987 | zqsatenv(ind1,ind2)=qsatbef |
---|
| 988 | |
---|
| 989 | |
---|
| 990 | alenv=(0.622*Lv*zqsatenv(ind1,ind2))/(rdd*zthl(ind1,ind2)**2) !qsl, p84 |
---|
| 991 | aenv=1./(1.+(alenv*Lv/cppd)) !al, p84 |
---|
| 992 | senv=aenv*(po(ind1)-zqsatenv(ind1,ind2)) !s, p84 |
---|
| 993 | |
---|
| 994 | !zqenv = qt environnement |
---|
| 995 | !zqsatenv = qsat environnement |
---|
| 996 | !zthl = Tl environnement |
---|
| 997 | |
---|
| 998 | |
---|
| 999 | Tbef=ztla(ind1,ind2)*zpspsk(ind1,ind2) |
---|
| 1000 | zdelta=MAX(0.,SIGN(1.,RTT-Tbef)) |
---|
| 1001 | qsatbef= R2ES * FOEEW(Tbef,zdelta)/paprs(ind1,ind2) |
---|
| 1002 | qsatbef=MIN(0.5,qsatbef) |
---|
| 1003 | zcor=1./(1.-retv*qsatbef) |
---|
| 1004 | qsatbef=qsatbef*zcor |
---|
| 1005 | zqsatth(ind1,ind2)=qsatbef |
---|
| 1006 | |
---|
| 1007 | alth=(0.622*Lv*zqsatth(ind1,ind2))/(rdd*ztla(ind1,ind2)**2) !qsl, p84 |
---|
| 1008 | ath=1./(1.+(alth*Lv/cppd)) !al, p84 |
---|
| 1009 | sth=ath*(zqta(ind1,ind2)-zqsatth(ind1,ind2)) !s, p84 |
---|
| 1010 | |
---|
| 1011 | |
---|
| 1012 | !zqta = qt thermals |
---|
| 1013 | !zqsatth = qsat thermals |
---|
| 1014 | !ztla = Tl thermals |
---|
| 1015 | !------------------------------------------------------------------------------ |
---|
| 1016 | ! s standard deviation |
---|
| 1017 | !------------------------------------------------------------------------------ |
---|
| 1018 | |
---|
[2957] | 1019 | sigma1s_fraca = (sigma1s_factor**0.5)*(fraca(ind1,ind2)**sigma1s_power) / & |
---|
| 1020 | & (1-fraca(ind1,ind2))*((sth-senv)**2)**0.5 |
---|
| 1021 | ! sigma1s_fraca = (1.1**0.5)*(fraca(ind1,ind2)**0.6)/(1-fraca(ind1,ind2))*((sth-senv)**2)**0.5 |
---|
[2960] | 1022 | IF (cloudth_ratqsmin>0.) THEN |
---|
| 1023 | sigma1s_ratqs = cloudth_ratqsmin*po(ind1) |
---|
| 1024 | ELSE |
---|
| 1025 | sigma1s_ratqs = ratqs(ind1,ind2)*po(ind1) |
---|
| 1026 | ENDIF |
---|
[2957] | 1027 | sigma1s = sigma1s_fraca + sigma1s_ratqs |
---|
[4623] | 1028 | IF (iflag_ratqs.eq.11) then |
---|
| 1029 | sigma1s = ratqs(ind1,ind2)*po(ind1)*aenv |
---|
| 1030 | ENDIF |
---|
[3570] | 1031 | sigma2s=(sigma2s_factor*(((sth-senv)**2)**0.5)/((fraca(ind1,ind2)+0.02)**sigma2s_power))+0.002*zqta(ind1,ind2) |
---|
[2686] | 1032 | ! tests |
---|
| 1033 | ! sigma1s=(0.92**0.5)*(fraca(ind1,ind2)**0.5)/(1-fraca(ind1,ind2))*((sth-senv)**2)**0.5+ratqs(ind1,ind2)*po(ind1) |
---|
| 1034 | ! sigma1s=(0.92*(fraca(ind1,ind2)**0.5)/(1-fraca(ind1,ind2))*(((sth-senv)**2)**0.5))+0.002*zqenv(ind1) |
---|
| 1035 | ! sigma2s=0.09*((sth-senv)**2)**0.5/(fraca(ind1,ind2)+0.02)**0.5+0.002*zqta(ind1,ind2) |
---|
| 1036 | ! sigma2s=(0.09*(((sth-senv)**2)**0.5)/((fraca(ind1,ind2)+0.02)**0.5))+ratqs(ind1,ind2)*zqta(ind1,ind2) |
---|
| 1037 | ! if (paprs(ind1,ind2).gt.90000) then |
---|
| 1038 | ! ratqs(ind1,ind2)=0.002 |
---|
| 1039 | ! else |
---|
| 1040 | ! ratqs(ind1,ind2)=0.002+0.0*(90000-paprs(ind1,ind2))/20000 |
---|
| 1041 | ! endif |
---|
| 1042 | ! sigma1s=(1.1**0.5)*(fraca(ind1,ind2)**0.6)/(1-fraca(ind1,ind2))*((sth-senv)**2)**0.5+0.002*po(ind1) |
---|
| 1043 | ! sigma2s=0.11*((sth-senv)**2)**0.5/(fraca(ind1,ind2)+0.01)**0.4+0.002*zqta(ind1,ind2) |
---|
| 1044 | ! sigma1s=ratqs(ind1,ind2)*po(ind1) |
---|
| 1045 | ! sigma2s=0.11*((sth-senv)**2)**0.5/(fraca(ind1,ind2)+0.02)**0.4+0.00003 |
---|
| 1046 | |
---|
| 1047 | IF (iflag_cloudth_vert == 1) THEN |
---|
| 1048 | !------------------------------------------------------------------------------- |
---|
| 1049 | ! Version 2: Modification from Arnaud Jam according to JL Dufrense. Condensate from qsat-ratqs |
---|
| 1050 | !------------------------------------------------------------------------------- |
---|
| 1051 | |
---|
| 1052 | deltasenv=aenv*ratqs(ind1,ind2)*zqsatenv(ind1,ind2) |
---|
| 1053 | deltasth=ath*ratqs(ind1,ind2)*zqsatth(ind1,ind2) |
---|
| 1054 | |
---|
| 1055 | xenv1=(senv-deltasenv)/(sqrt(2.)*sigma1s) |
---|
| 1056 | xenv2=(senv+deltasenv)/(sqrt(2.)*sigma1s) |
---|
| 1057 | xth1=(sth-deltasth)/(sqrt(2.)*sigma2s) |
---|
| 1058 | xth2=(sth+deltasth)/(sqrt(2.)*sigma2s) |
---|
| 1059 | coeffqlenv=(sigma1s)**2/(2*sqrtpi*deltasenv) |
---|
| 1060 | coeffqlth=(sigma2s)**2/(2*sqrtpi*deltasth) |
---|
| 1061 | |
---|
| 1062 | cth(ind1,ind2)=0.5*(1.+1.*erf(xth2)) |
---|
| 1063 | cenv(ind1,ind2)=0.5*(1.+1.*erf(xenv2)) |
---|
| 1064 | ctot(ind1,ind2)=fraca(ind1,ind2)*cth(ind1,ind2)+(1.-1.*fraca(ind1,ind2))*cenv(ind1,ind2) |
---|
| 1065 | |
---|
| 1066 | ! Environment |
---|
| 1067 | IntJ=sigma1s*(exp(-1.*xenv1**2)/sqrt2pi)+0.5*senv*(1+erf(xenv1)) |
---|
| 1068 | IntI1=coeffqlenv*0.5*(0.5*sqrtpi*(erf(xenv2)-erf(xenv1))+xenv1*exp(-1.*xenv1**2)-xenv2*exp(-1.*xenv2**2)) |
---|
| 1069 | IntI2=coeffqlenv*xenv2*(exp(-1.*xenv2**2)-exp(-1.*xenv1**2)) |
---|
| 1070 | IntI3=coeffqlenv*0.5*sqrtpi*xenv2**2*(erf(xenv2)-erf(xenv1)) |
---|
| 1071 | |
---|
| 1072 | qlenv(ind1,ind2)=IntJ+IntI1+IntI2+IntI3 |
---|
| 1073 | |
---|
| 1074 | ! Thermal |
---|
| 1075 | IntJ=sigma2s*(exp(-1.*xth1**2)/sqrt2pi)+0.5*sth*(1+erf(xth1)) |
---|
| 1076 | IntI1=coeffqlth*0.5*(0.5*sqrtpi*(erf(xth2)-erf(xth1))+xth1*exp(-1.*xth1**2)-xth2*exp(-1.*xth2**2)) |
---|
| 1077 | IntI2=coeffqlth*xth2*(exp(-1.*xth2**2)-exp(-1.*xth1**2)) |
---|
| 1078 | IntI3=coeffqlth*0.5*sqrtpi*xth2**2*(erf(xth2)-erf(xth1)) |
---|
| 1079 | qlth(ind1,ind2)=IntJ+IntI1+IntI2+IntI3 |
---|
| 1080 | qltot(ind1,ind2)=fraca(ind1,ind2)*qlth(ind1,ind2)+(1.-1.*fraca(ind1,ind2))*qlenv(ind1,ind2) |
---|
| 1081 | |
---|
[2911] | 1082 | ELSE IF (iflag_cloudth_vert >= 3) THEN |
---|
[3493] | 1083 | IF (iflag_cloudth_vert < 5) THEN |
---|
[2686] | 1084 | !------------------------------------------------------------------------------- |
---|
| 1085 | ! Version 3: Changes by J. Jouhaud; condensation for q > -delta s |
---|
| 1086 | !------------------------------------------------------------------------------- |
---|
| 1087 | ! deltasenv=aenv*ratqs(ind1,ind2)*po(ind1) |
---|
| 1088 | ! deltasth=ath*ratqs(ind1,ind2)*zqta(ind1,ind2) |
---|
| 1089 | ! deltasenv=aenv*ratqs(ind1,ind2)*zqsatenv(ind1,ind2) |
---|
| 1090 | ! deltasth=ath*ratqs(ind1,ind2)*zqsatth(ind1,ind2) |
---|
[2911] | 1091 | IF (iflag_cloudth_vert == 3) THEN |
---|
| 1092 | deltasenv=aenv*vert_alpha*sigma1s |
---|
| 1093 | deltasth=ath*vert_alpha_th*sigma2s |
---|
| 1094 | ELSE IF (iflag_cloudth_vert == 4) THEN |
---|
[2957] | 1095 | IF (iflag_cloudth_vert_noratqs == 1) THEN |
---|
[2959] | 1096 | deltasenv=vert_alpha*max(sigma1s_fraca,1e-10) |
---|
[2957] | 1097 | deltasth=vert_alpha_th*sigma2s |
---|
| 1098 | ELSE |
---|
| 1099 | deltasenv=vert_alpha*sigma1s |
---|
| 1100 | deltasth=vert_alpha_th*sigma2s |
---|
| 1101 | ENDIF |
---|
[2911] | 1102 | ENDIF |
---|
[2686] | 1103 | |
---|
| 1104 | xenv1=-(senv+deltasenv)/(sqrt(2.)*sigma1s) |
---|
| 1105 | xenv2=-(senv-deltasenv)/(sqrt(2.)*sigma1s) |
---|
| 1106 | exp_xenv1 = exp(-1.*xenv1**2) |
---|
| 1107 | exp_xenv2 = exp(-1.*xenv2**2) |
---|
| 1108 | xth1=-(sth+deltasth)/(sqrt(2.)*sigma2s) |
---|
| 1109 | xth2=-(sth-deltasth)/(sqrt(2.)*sigma2s) |
---|
| 1110 | exp_xth1 = exp(-1.*xth1**2) |
---|
| 1111 | exp_xth2 = exp(-1.*xth2**2) |
---|
| 1112 | |
---|
[2945] | 1113 | !CF_surfacique |
---|
[2686] | 1114 | cth(ind1,ind2)=0.5*(1.-1.*erf(xth1)) |
---|
| 1115 | cenv(ind1,ind2)=0.5*(1.-1.*erf(xenv1)) |
---|
[2945] | 1116 | ctot(ind1,ind2)=fraca(ind1,ind2)*cth(ind1,ind2)+(1.-1.*fraca(ind1,ind2))*cenv(ind1,ind2) |
---|
[2686] | 1117 | |
---|
[2945] | 1118 | |
---|
| 1119 | !CF_volumique & eau condense |
---|
[2686] | 1120 | !environnement |
---|
| 1121 | IntJ=0.5*senv*(1-erf(xenv2))+(sigma1s/sqrt2pi)*exp_xenv2 |
---|
[2945] | 1122 | IntJ_CF=0.5*(1.-1.*erf(xenv2)) |
---|
[2686] | 1123 | if (deltasenv .lt. 1.e-10) then |
---|
| 1124 | qlenv(ind1,ind2)=IntJ |
---|
[2945] | 1125 | cenv_vol(ind1,ind2)=IntJ_CF |
---|
[2686] | 1126 | else |
---|
| 1127 | IntI1=(((senv+deltasenv)**2+(sigma1s)**2)/(8*deltasenv))*(erf(xenv2)-erf(xenv1)) |
---|
| 1128 | IntI2=(sigma1s**2/(4*deltasenv*sqrtpi))*(xenv1*exp_xenv1-xenv2*exp_xenv2) |
---|
| 1129 | IntI3=((sqrt2*sigma1s*(senv+deltasenv))/(4*sqrtpi*deltasenv))*(exp_xenv1-exp_xenv2) |
---|
[2945] | 1130 | IntI1_CF=((senv+deltasenv)*(erf(xenv2)-erf(xenv1)))/(4*deltasenv) |
---|
| 1131 | IntI3_CF=(sqrt2*sigma1s*(exp_xenv1-exp_xenv2))/(4*sqrtpi*deltasenv) |
---|
[2686] | 1132 | qlenv(ind1,ind2)=IntJ+IntI1+IntI2+IntI3 |
---|
[2945] | 1133 | cenv_vol(ind1,ind2)=IntJ_CF+IntI1_CF+IntI3_CF |
---|
[2686] | 1134 | endif |
---|
| 1135 | |
---|
| 1136 | !thermique |
---|
| 1137 | IntJ=0.5*sth*(1-erf(xth2))+(sigma2s/sqrt2pi)*exp_xth2 |
---|
[2945] | 1138 | IntJ_CF=0.5*(1.-1.*erf(xth2)) |
---|
| 1139 | if (deltasth .lt. 1.e-10) then |
---|
[2686] | 1140 | qlth(ind1,ind2)=IntJ |
---|
[2945] | 1141 | cth_vol(ind1,ind2)=IntJ_CF |
---|
[2686] | 1142 | else |
---|
| 1143 | IntI1=(((sth+deltasth)**2+(sigma2s)**2)/(8*deltasth))*(erf(xth2)-erf(xth1)) |
---|
| 1144 | IntI2=(sigma2s**2/(4*deltasth*sqrtpi))*(xth1*exp_xth1-xth2*exp_xth2) |
---|
| 1145 | IntI3=((sqrt2*sigma2s*(sth+deltasth))/(4*sqrtpi*deltasth))*(exp_xth1-exp_xth2) |
---|
[2945] | 1146 | IntI1_CF=((sth+deltasth)*(erf(xth2)-erf(xth1)))/(4*deltasth) |
---|
| 1147 | IntI3_CF=(sqrt2*sigma2s*(exp_xth1-exp_xth2))/(4*sqrtpi*deltasth) |
---|
[2686] | 1148 | qlth(ind1,ind2)=IntJ+IntI1+IntI2+IntI3 |
---|
[2945] | 1149 | cth_vol(ind1,ind2)=IntJ_CF+IntI1_CF+IntI3_CF |
---|
[2686] | 1150 | endif |
---|
| 1151 | |
---|
| 1152 | qltot(ind1,ind2)=fraca(ind1,ind2)*qlth(ind1,ind2)+(1.-1.*fraca(ind1,ind2))*qlenv(ind1,ind2) |
---|
[2945] | 1153 | ctot_vol(ind1,ind2)=fraca(ind1,ind2)*cth_vol(ind1,ind2)+(1.-1.*fraca(ind1,ind2))*cenv_vol(ind1,ind2) |
---|
[2686] | 1154 | |
---|
[3493] | 1155 | ELSE IF (iflag_cloudth_vert == 5) THEN |
---|
[4260] | 1156 | sigma1s=(0.71794+0.000498239*dz(ind1,ind2))*(fraca(ind1,ind2)**0.5) & |
---|
| 1157 | /(1-fraca(ind1,ind2))*(((sth-senv)**2)**0.5) & |
---|
| 1158 | +ratqs(ind1,ind2)*po(ind1) !Environment |
---|
[3493] | 1159 | sigma2s=(0.03218+0.000092655*dz(ind1,ind2))/((fraca(ind1,ind2)+0.02)**0.5)*(((sth-senv)**2)**0.5)+0.002*zqta(ind1,ind2) !Thermals |
---|
| 1160 | !sigma1s=(1.1**0.5)*(fraca(ind1,ind2)**0.6)/(1-fraca(ind1,ind2))*((sth-senv)**2)**0.5+0.002*po(ind1) |
---|
| 1161 | !sigma2s=0.11*((sth-senv)**2)**0.5/(fraca(ind1,ind2)+0.01)**0.4+0.002*zqta(ind1,ind2) |
---|
| 1162 | xth=sth/(sqrt(2.)*sigma2s) |
---|
| 1163 | xenv=senv/(sqrt(2.)*sigma1s) |
---|
| 1164 | |
---|
| 1165 | !Volumique |
---|
| 1166 | cth_vol(ind1,ind2)=0.5*(1.+1.*erf(xth)) |
---|
| 1167 | cenv_vol(ind1,ind2)=0.5*(1.+1.*erf(xenv)) |
---|
| 1168 | ctot_vol(ind1,ind2)=fraca(ind1,ind2)*cth_vol(ind1,ind2)+(1.-1.*fraca(ind1,ind2))*cenv_vol(ind1,ind2) |
---|
| 1169 | !print *,'jeanjean_CV=',ctot_vol(ind1,ind2) |
---|
| 1170 | |
---|
| 1171 | qlth(ind1,ind2)=sigma2s*((exp(-1.*xth**2)/sqrt2pi)+xth*sqrt(2.)*cth_vol(ind1,ind2)) |
---|
| 1172 | qlenv(ind1,ind2)=sigma1s*((exp(-1.*xenv**2)/sqrt2pi)+xenv*sqrt(2.)*cenv_vol(ind1,ind2)) |
---|
| 1173 | qltot(ind1,ind2)=fraca(ind1,ind2)*qlth(ind1,ind2)+(1.-1.*fraca(ind1,ind2))*qlenv(ind1,ind2) |
---|
| 1174 | |
---|
| 1175 | !Surfacique |
---|
| 1176 | !Neggers |
---|
| 1177 | !beta=0.0044 |
---|
| 1178 | !inverse_rho=1.+beta*dz(ind1,ind2) |
---|
| 1179 | !print *,'jeanjean : beta=',beta |
---|
| 1180 | !cth(ind1,ind2)=cth_vol(ind1,ind2)*inverse_rho |
---|
| 1181 | !cenv(ind1,ind2)=cenv_vol(ind1,ind2)*inverse_rho |
---|
| 1182 | !ctot(ind1,ind2)=fraca(ind1,ind2)*cth(ind1,ind2)+(1.-1.*fraca(ind1,ind2))*cenv(ind1,ind2) |
---|
| 1183 | |
---|
| 1184 | !Brooks |
---|
| 1185 | a_Brooks=0.6694 |
---|
| 1186 | b_Brooks=0.1882 |
---|
| 1187 | A_Maj_Brooks=0.1635 !-- sans shear |
---|
| 1188 | !A_Maj_Brooks=0.17 !-- ARM LES |
---|
| 1189 | !A_Maj_Brooks=0.18 !-- RICO LES |
---|
| 1190 | !A_Maj_Brooks=0.19 !-- BOMEX LES |
---|
| 1191 | Dx_Brooks=200000. |
---|
| 1192 | f_Brooks=A_Maj_Brooks*(dz(ind1,ind2)**(a_Brooks))*(Dx_Brooks**(-b_Brooks)) |
---|
| 1193 | !print *,'jeanjean_f=',f_Brooks |
---|
| 1194 | |
---|
| 1195 | cth(ind1,ind2)=1./(1.+exp(-1.*f_Brooks)*((1./max(1.e-15,min(cth_vol(ind1,ind2),1.)))- 1.)) |
---|
| 1196 | cenv(ind1,ind2)=1./(1.+exp(-1.*f_Brooks)*((1./max(1.e-15,min(cenv_vol(ind1,ind2),1.)))- 1.)) |
---|
| 1197 | ctot(ind1,ind2)=1./(1.+exp(-1.*f_Brooks)*((1./max(1.e-15,min(ctot_vol(ind1,ind2),1.)))- 1.)) |
---|
| 1198 | !print *,'JJ_ctot_1',ctot(ind1,ind2) |
---|
| 1199 | |
---|
| 1200 | |
---|
| 1201 | |
---|
| 1202 | |
---|
| 1203 | |
---|
| 1204 | ENDIF ! of if (iflag_cloudth_vert<5) |
---|
[2911] | 1205 | ENDIF ! of if (iflag_cloudth_vert==1 or 3 or 4) |
---|
[2686] | 1206 | |
---|
[3495] | 1207 | ! if (ctot(ind1,ind2).lt.1.e-10) then |
---|
| 1208 | if (cenv(ind1,ind2).lt.1.e-10.or.cth(ind1,ind2).lt.1.e-10) then |
---|
[2686] | 1209 | ctot(ind1,ind2)=0. |
---|
[2945] | 1210 | ctot_vol(ind1,ind2)=0. |
---|
[3493] | 1211 | qcloud(ind1)=zqsatenv(ind1,ind2) |
---|
[2686] | 1212 | |
---|
[3493] | 1213 | else |
---|
[2686] | 1214 | |
---|
| 1215 | qcloud(ind1)=qltot(ind1,ind2)/ctot(ind1,ind2)+zqs(ind1) |
---|
| 1216 | ! qcloud(ind1)=fraca(ind1,ind2)*qlth(ind1,ind2)/cth(ind1,ind2) & |
---|
| 1217 | ! & +(1.-1.*fraca(ind1,ind2))*qlenv(ind1,ind2)/cenv(ind1,ind2)+zqs(ind1) |
---|
| 1218 | |
---|
| 1219 | endif |
---|
| 1220 | |
---|
[3493] | 1221 | else ! gaussienne environnement seule |
---|
[2686] | 1222 | |
---|
[3999] | 1223 | |
---|
[2686] | 1224 | zqenv(ind1)=po(ind1) |
---|
| 1225 | Tbef=t(ind1,ind2) |
---|
| 1226 | zdelta=MAX(0.,SIGN(1.,RTT-Tbef)) |
---|
| 1227 | qsatbef= R2ES * FOEEW(Tbef,zdelta)/paprs(ind1,ind2) |
---|
| 1228 | qsatbef=MIN(0.5,qsatbef) |
---|
| 1229 | zcor=1./(1.-retv*qsatbef) |
---|
| 1230 | qsatbef=qsatbef*zcor |
---|
| 1231 | zqsatenv(ind1,ind2)=qsatbef |
---|
| 1232 | |
---|
| 1233 | |
---|
[3493] | 1234 | ! qlbef=Max(po(ind1)-zqsatenv(ind1,ind2),0.) |
---|
[2686] | 1235 | zthl(ind1,ind2)=t(ind1,ind2)*(101325/paprs(ind1,ind2))**(rdd/cppd) |
---|
[3495] | 1236 | alenv=(0.622*Lv*zqsatenv(ind1,ind2))/(rdd*zthl(ind1,ind2)**2) |
---|
[2686] | 1237 | aenv=1./(1.+(alenv*Lv/cppd)) |
---|
[3495] | 1238 | senv=aenv*(po(ind1)-zqsatenv(ind1,ind2)) |
---|
| 1239 | sth=0. |
---|
[3493] | 1240 | |
---|
[2686] | 1241 | |
---|
| 1242 | sigma1s=ratqs(ind1,ind2)*zqenv(ind1) |
---|
[3495] | 1243 | sigma2s=0. |
---|
[2686] | 1244 | |
---|
[3493] | 1245 | sqrt2pi=sqrt(2.*pi) |
---|
| 1246 | xenv=senv/(sqrt(2.)*sigma1s) |
---|
[2686] | 1247 | ctot(ind1,ind2)=0.5*(1.+1.*erf(xenv)) |
---|
[3495] | 1248 | ctot_vol(ind1,ind2)=ctot(ind1,ind2) |
---|
[3493] | 1249 | qltot(ind1,ind2)=sigma1s*((exp(-1.*xenv**2)/sqrt2pi)+xenv*sqrt(2.)*cenv(ind1,ind2)) |
---|
[2686] | 1250 | |
---|
| 1251 | if (ctot(ind1,ind2).lt.1.e-3) then |
---|
| 1252 | ctot(ind1,ind2)=0. |
---|
[3495] | 1253 | qcloud(ind1)=zqsatenv(ind1,ind2) |
---|
[2686] | 1254 | |
---|
| 1255 | else |
---|
| 1256 | |
---|
[3495] | 1257 | ! ctot(ind1,ind2)=ctot(ind1,ind2) |
---|
[2686] | 1258 | qcloud(ind1)=qltot(ind1,ind2)/ctot(ind1,ind2)+zqsatenv(ind1,ind2) |
---|
| 1259 | |
---|
[3493] | 1260 | endif |
---|
[2686] | 1261 | |
---|
[3493] | 1262 | |
---|
| 1263 | |
---|
| 1264 | |
---|
[2686] | 1265 | endif ! From the separation (thermal/envrionnement) et (environnement) only, l.335 et l.492 |
---|
[2958] | 1266 | ! Outputs used to check the PDFs |
---|
| 1267 | cloudth_senv(ind1,ind2) = senv |
---|
| 1268 | cloudth_sth(ind1,ind2) = sth |
---|
| 1269 | cloudth_sigmaenv(ind1,ind2) = sigma1s |
---|
| 1270 | cloudth_sigmath(ind1,ind2) = sigma2s |
---|
| 1271 | |
---|
[2686] | 1272 | enddo ! from the loop on ngrid l.333 |
---|
| 1273 | return |
---|
| 1274 | ! end |
---|
| 1275 | END SUBROUTINE cloudth_vert_v3 |
---|
| 1276 | ! |
---|
[3493] | 1277 | |
---|
| 1278 | |
---|
| 1279 | |
---|
| 1280 | |
---|
| 1281 | |
---|
| 1282 | |
---|
| 1283 | |
---|
| 1284 | |
---|
| 1285 | |
---|
| 1286 | |
---|
| 1287 | |
---|
| 1288 | SUBROUTINE cloudth_v6(ngrid,klev,ind2, & |
---|
| 1289 | & ztv,po,zqta,fraca, & |
---|
| 1290 | & qcloud,ctot_surf,ctot_vol,zpspsk,paprs,pplay,ztla,zthl, & |
---|
| 1291 | & ratqs,zqs,T) |
---|
| 1292 | |
---|
[4535] | 1293 | use lscp_ini_mod, only: iflag_cloudth_vert |
---|
[3493] | 1294 | USE ioipsl_getin_p_mod, ONLY : getin_p |
---|
| 1295 | USE phys_output_var_mod, ONLY : cloudth_sth,cloudth_senv, & |
---|
| 1296 | & cloudth_sigmath,cloudth_sigmaenv |
---|
| 1297 | |
---|
| 1298 | IMPLICIT NONE |
---|
| 1299 | |
---|
[4593] | 1300 | INCLUDE "YOMCST.h" |
---|
| 1301 | INCLUDE "YOETHF.h" |
---|
| 1302 | INCLUDE "FCTTRE.h" |
---|
[3493] | 1303 | |
---|
| 1304 | |
---|
| 1305 | !Domain variables |
---|
| 1306 | INTEGER ngrid !indice Max lat-lon |
---|
| 1307 | INTEGER klev !indice Max alt |
---|
| 1308 | INTEGER ind1 !indice in [1:ngrid] |
---|
| 1309 | INTEGER ind2 !indice in [1:klev] |
---|
| 1310 | !thermal plume fraction |
---|
| 1311 | REAL fraca(ngrid,klev+1) !thermal plumes fraction in the gridbox |
---|
| 1312 | !temperatures |
---|
| 1313 | REAL T(ngrid,klev) !temperature |
---|
| 1314 | REAL zpspsk(ngrid,klev) !factor (p/p0)**kappa (used for potential variables) |
---|
| 1315 | REAL ztv(ngrid,klev) !potential temperature (voir thermcell_env.F90) |
---|
| 1316 | REAL ztla(ngrid,klev) !liquid temperature in the thermals (Tl_th) |
---|
| 1317 | REAL zthl(ngrid,klev) !liquid temperature in the environment (Tl_env) |
---|
| 1318 | !pressure |
---|
| 1319 | REAL paprs(ngrid,klev+1) !pressure at the interface of levels |
---|
| 1320 | REAL pplay(ngrid,klev) !pressure at the middle of the level |
---|
| 1321 | !humidity |
---|
| 1322 | REAL ratqs(ngrid,klev) !width of the total water subgrid-scale distribution |
---|
| 1323 | REAL po(ngrid) !total water (qt) |
---|
| 1324 | REAL zqenv(ngrid) !total water in the environment (qt_env) |
---|
| 1325 | REAL zqta(ngrid,klev) !total water in the thermals (qt_th) |
---|
| 1326 | REAL zqsatth(ngrid,klev) !water saturation level in the thermals (q_sat_th) |
---|
| 1327 | REAL zqsatenv(ngrid,klev) !water saturation level in the environment (q_sat_env) |
---|
| 1328 | REAL qlth(ngrid,klev) !condensed water in the thermals |
---|
| 1329 | REAL qlenv(ngrid,klev) !condensed water in the environment |
---|
| 1330 | REAL qltot(ngrid,klev) !condensed water in the gridbox |
---|
| 1331 | !cloud fractions |
---|
| 1332 | REAL cth_vol(ngrid,klev) !cloud fraction by volume in the thermals |
---|
| 1333 | REAL cenv_vol(ngrid,klev) !cloud fraction by volume in the environment |
---|
| 1334 | REAL ctot_vol(ngrid,klev) !cloud fraction by volume in the gridbox |
---|
| 1335 | REAL cth_surf(ngrid,klev) !cloud fraction by surface in the thermals |
---|
| 1336 | REAL cenv_surf(ngrid,klev) !cloud fraction by surface in the environment |
---|
| 1337 | REAL ctot_surf(ngrid,klev) !cloud fraction by surface in the gridbox |
---|
| 1338 | !PDF of saturation deficit variables |
---|
| 1339 | REAL rdd,cppd,Lv |
---|
| 1340 | REAL Tbef,zdelta,qsatbef,zcor |
---|
| 1341 | REAL alth,alenv,ath,aenv |
---|
| 1342 | REAL sth,senv !saturation deficits in the thermals and environment |
---|
| 1343 | REAL sigma_env,sigma_th !standard deviations of the biGaussian PDF |
---|
| 1344 | !cloud fraction variables |
---|
| 1345 | REAL xth,xenv |
---|
| 1346 | REAL inverse_rho,beta !Neggers et al. (2011) method |
---|
| 1347 | REAL a_Brooks,b_Brooks,A_Maj_Brooks,Dx_Brooks,f_Brooks !Brooks et al. (2005) method |
---|
| 1348 | !Incloud total water variables |
---|
| 1349 | REAL zqs(ngrid) !q_sat |
---|
| 1350 | REAL qcloud(ngrid) !eau totale dans le nuage |
---|
| 1351 | !Some arithmetic variables |
---|
| 1352 | REAL erf,pi,sqrt2,sqrt2pi |
---|
| 1353 | !Depth of the layer |
---|
| 1354 | REAL dz(ngrid,klev) !epaisseur de la couche en metre |
---|
| 1355 | REAL rhodz(ngrid,klev) |
---|
| 1356 | REAL zrho(ngrid,klev) |
---|
| 1357 | DO ind1 = 1, ngrid |
---|
| 1358 | rhodz(ind1,ind2) = (paprs(ind1,ind2)-paprs(ind1,ind2+1))/rg ![kg/m2] |
---|
| 1359 | zrho(ind1,ind2) = pplay(ind1,ind2)/T(ind1,ind2)/rd ![kg/m3] |
---|
| 1360 | dz(ind1,ind2) = rhodz(ind1,ind2)/zrho(ind1,ind2) ![m] |
---|
| 1361 | END DO |
---|
| 1362 | |
---|
| 1363 | !------------------------------------------------------------------------------ |
---|
| 1364 | ! Initialization |
---|
| 1365 | !------------------------------------------------------------------------------ |
---|
| 1366 | qlth(:,:)=0. |
---|
| 1367 | qlenv(:,:)=0. |
---|
| 1368 | qltot(:,:)=0. |
---|
| 1369 | cth_vol(:,:)=0. |
---|
| 1370 | cenv_vol(:,:)=0. |
---|
| 1371 | ctot_vol(:,:)=0. |
---|
| 1372 | cth_surf(:,:)=0. |
---|
| 1373 | cenv_surf(:,:)=0. |
---|
| 1374 | ctot_surf(:,:)=0. |
---|
| 1375 | qcloud(:)=0. |
---|
| 1376 | rdd=287.04 |
---|
| 1377 | cppd=1005.7 |
---|
| 1378 | pi=3.14159 |
---|
| 1379 | Lv=2.5e6 |
---|
| 1380 | sqrt2=sqrt(2.) |
---|
| 1381 | sqrt2pi=sqrt(2.*pi) |
---|
| 1382 | |
---|
| 1383 | |
---|
| 1384 | DO ind1=1,ngrid |
---|
| 1385 | !------------------------------------------------------------------------------- |
---|
| 1386 | !Both thermal and environment in the gridbox |
---|
| 1387 | !------------------------------------------------------------------------------- |
---|
| 1388 | IF ((ztv(ind1,1).gt.ztv(ind1,2)).and.(fraca(ind1,ind2).gt.1.e-10)) THEN |
---|
| 1389 | !-------------------------------------------- |
---|
| 1390 | !calcul de qsat_env |
---|
| 1391 | !-------------------------------------------- |
---|
| 1392 | Tbef=zthl(ind1,ind2)*zpspsk(ind1,ind2) |
---|
| 1393 | zdelta=MAX(0.,SIGN(1.,RTT-Tbef)) |
---|
| 1394 | qsatbef= R2ES*FOEEW(Tbef,zdelta)/paprs(ind1,ind2) |
---|
| 1395 | qsatbef=MIN(0.5,qsatbef) |
---|
| 1396 | zcor=1./(1.-retv*qsatbef) |
---|
| 1397 | qsatbef=qsatbef*zcor |
---|
| 1398 | zqsatenv(ind1,ind2)=qsatbef |
---|
| 1399 | !-------------------------------------------- |
---|
| 1400 | !calcul de s_env |
---|
| 1401 | !-------------------------------------------- |
---|
| 1402 | alenv=(0.622*Lv*zqsatenv(ind1,ind2))/(rdd*zthl(ind1,ind2)**2) !qsl, p84 these Arnaud Jam |
---|
| 1403 | aenv=1./(1.+(alenv*Lv/cppd)) !al, p84 these Arnaud Jam |
---|
| 1404 | senv=aenv*(po(ind1)-zqsatenv(ind1,ind2)) !s, p84 these Arnaud Jam |
---|
| 1405 | !-------------------------------------------- |
---|
| 1406 | !calcul de qsat_th |
---|
| 1407 | !-------------------------------------------- |
---|
| 1408 | Tbef=ztla(ind1,ind2)*zpspsk(ind1,ind2) |
---|
| 1409 | zdelta=MAX(0.,SIGN(1.,RTT-Tbef)) |
---|
| 1410 | qsatbef= R2ES * FOEEW(Tbef,zdelta)/paprs(ind1,ind2) |
---|
| 1411 | qsatbef=MIN(0.5,qsatbef) |
---|
| 1412 | zcor=1./(1.-retv*qsatbef) |
---|
| 1413 | qsatbef=qsatbef*zcor |
---|
| 1414 | zqsatth(ind1,ind2)=qsatbef |
---|
| 1415 | !-------------------------------------------- |
---|
| 1416 | !calcul de s_th |
---|
| 1417 | !-------------------------------------------- |
---|
| 1418 | alth=(0.622*Lv*zqsatth(ind1,ind2))/(rdd*ztla(ind1,ind2)**2) !qsl, p84 these Arnaud Jam |
---|
| 1419 | ath=1./(1.+(alth*Lv/cppd)) !al, p84 these Arnaud Jam |
---|
| 1420 | sth=ath*(zqta(ind1,ind2)-zqsatth(ind1,ind2)) !s, p84 these Arnaud Jam |
---|
| 1421 | !-------------------------------------------- |
---|
| 1422 | !calcul standard deviations bi-Gaussian PDF |
---|
| 1423 | !-------------------------------------------- |
---|
| 1424 | sigma_th=(0.03218+0.000092655*dz(ind1,ind2))/((fraca(ind1,ind2)+0.01)**0.5)*(((sth-senv)**2)**0.5)+0.002*zqta(ind1,ind2) |
---|
[4260] | 1425 | sigma_env=(0.71794+0.000498239*dz(ind1,ind2))*(fraca(ind1,ind2)**0.5) & |
---|
| 1426 | /(1-fraca(ind1,ind2))*(((sth-senv)**2)**0.5) & |
---|
| 1427 | +ratqs(ind1,ind2)*po(ind1) |
---|
[3493] | 1428 | xth=sth/(sqrt2*sigma_th) |
---|
| 1429 | xenv=senv/(sqrt2*sigma_env) |
---|
| 1430 | !-------------------------------------------- |
---|
| 1431 | !Cloud fraction by volume CF_vol |
---|
| 1432 | !-------------------------------------------- |
---|
| 1433 | cth_vol(ind1,ind2)=0.5*(1.+1.*erf(xth)) |
---|
| 1434 | cenv_vol(ind1,ind2)=0.5*(1.+1.*erf(xenv)) |
---|
| 1435 | ctot_vol(ind1,ind2)=fraca(ind1,ind2)*cth_vol(ind1,ind2)+(1.-1.*fraca(ind1,ind2))*cenv_vol(ind1,ind2) |
---|
| 1436 | !-------------------------------------------- |
---|
| 1437 | !Condensed water qc |
---|
| 1438 | !-------------------------------------------- |
---|
| 1439 | qlth(ind1,ind2)=sigma_th*((exp(-1.*xth**2)/sqrt2pi)+xth*sqrt2*cth_vol(ind1,ind2)) |
---|
| 1440 | qlenv(ind1,ind2)=sigma_env*((exp(-1.*xenv**2)/sqrt2pi)+xenv*sqrt2*cenv_vol(ind1,ind2)) |
---|
| 1441 | qltot(ind1,ind2)=fraca(ind1,ind2)*qlth(ind1,ind2)+(1.-1.*fraca(ind1,ind2))*qlenv(ind1,ind2) |
---|
| 1442 | !-------------------------------------------- |
---|
| 1443 | !Cloud fraction by surface CF_surf |
---|
| 1444 | !-------------------------------------------- |
---|
| 1445 | !Method Neggers et al. (2011) : ok for cumulus clouds only |
---|
| 1446 | !beta=0.0044 (Jouhaud et al.2018) |
---|
| 1447 | !inverse_rho=1.+beta*dz(ind1,ind2) |
---|
| 1448 | !ctot_surf(ind1,ind2)=ctot_vol(ind1,ind2)*inverse_rho |
---|
| 1449 | !Method Brooks et al. (2005) : ok for all types of clouds |
---|
| 1450 | a_Brooks=0.6694 |
---|
| 1451 | b_Brooks=0.1882 |
---|
| 1452 | A_Maj_Brooks=0.1635 !-- sans dependence au cisaillement de vent |
---|
| 1453 | Dx_Brooks=200000. !-- si l'on considere des mailles de 200km de cote |
---|
| 1454 | f_Brooks=A_Maj_Brooks*(dz(ind1,ind2)**(a_Brooks))*(Dx_Brooks**(-b_Brooks)) |
---|
| 1455 | ctot_surf(ind1,ind2)=1./(1.+exp(-1.*f_Brooks)*((1./max(1.e-15,min(ctot_vol(ind1,ind2),1.)))- 1.)) |
---|
| 1456 | !-------------------------------------------- |
---|
| 1457 | !Incloud Condensed water qcloud |
---|
| 1458 | !-------------------------------------------- |
---|
| 1459 | if (ctot_surf(ind1,ind2) .lt. 1.e-10) then |
---|
| 1460 | ctot_vol(ind1,ind2)=0. |
---|
| 1461 | ctot_surf(ind1,ind2)=0. |
---|
| 1462 | qcloud(ind1)=zqsatenv(ind1,ind2) |
---|
| 1463 | else |
---|
| 1464 | qcloud(ind1)=qltot(ind1,ind2)/ctot_vol(ind1,ind2)+zqs(ind1) |
---|
| 1465 | endif |
---|
| 1466 | |
---|
| 1467 | |
---|
| 1468 | |
---|
| 1469 | !------------------------------------------------------------------------------- |
---|
| 1470 | !Environment only in the gridbox |
---|
| 1471 | !------------------------------------------------------------------------------- |
---|
| 1472 | ELSE |
---|
| 1473 | !-------------------------------------------- |
---|
| 1474 | !calcul de qsat_env |
---|
| 1475 | !-------------------------------------------- |
---|
| 1476 | Tbef=zthl(ind1,ind2)*zpspsk(ind1,ind2) |
---|
| 1477 | zdelta=MAX(0.,SIGN(1.,RTT-Tbef)) |
---|
| 1478 | qsatbef= R2ES * FOEEW(Tbef,zdelta)/paprs(ind1,ind2) |
---|
| 1479 | qsatbef=MIN(0.5,qsatbef) |
---|
| 1480 | zcor=1./(1.-retv*qsatbef) |
---|
| 1481 | qsatbef=qsatbef*zcor |
---|
| 1482 | zqsatenv(ind1,ind2)=qsatbef |
---|
| 1483 | !-------------------------------------------- |
---|
| 1484 | !calcul de s_env |
---|
| 1485 | !-------------------------------------------- |
---|
| 1486 | alenv=(0.622*Lv*zqsatenv(ind1,ind2))/(rdd*zthl(ind1,ind2)**2) !qsl, p84 these Arnaud Jam |
---|
| 1487 | aenv=1./(1.+(alenv*Lv/cppd)) !al, p84 these Arnaud Jam |
---|
| 1488 | senv=aenv*(po(ind1)-zqsatenv(ind1,ind2)) !s, p84 these Arnaud Jam |
---|
| 1489 | !-------------------------------------------- |
---|
| 1490 | !calcul standard deviations Gaussian PDF |
---|
| 1491 | !-------------------------------------------- |
---|
| 1492 | zqenv(ind1)=po(ind1) |
---|
| 1493 | sigma_env=ratqs(ind1,ind2)*zqenv(ind1) |
---|
| 1494 | xenv=senv/(sqrt2*sigma_env) |
---|
| 1495 | !-------------------------------------------- |
---|
| 1496 | !Cloud fraction by volume CF_vol |
---|
| 1497 | !-------------------------------------------- |
---|
| 1498 | ctot_vol(ind1,ind2)=0.5*(1.+1.*erf(xenv)) |
---|
| 1499 | !-------------------------------------------- |
---|
| 1500 | !Condensed water qc |
---|
| 1501 | !-------------------------------------------- |
---|
| 1502 | qltot(ind1,ind2)=sigma_env*((exp(-1.*xenv**2)/sqrt2pi)+xenv*sqrt2*ctot_vol(ind1,ind2)) |
---|
| 1503 | !-------------------------------------------- |
---|
| 1504 | !Cloud fraction by surface CF_surf |
---|
| 1505 | !-------------------------------------------- |
---|
| 1506 | !Method Neggers et al. (2011) : ok for cumulus clouds only |
---|
| 1507 | !beta=0.0044 (Jouhaud et al.2018) |
---|
| 1508 | !inverse_rho=1.+beta*dz(ind1,ind2) |
---|
| 1509 | !ctot_surf(ind1,ind2)=ctot_vol(ind1,ind2)*inverse_rho |
---|
| 1510 | !Method Brooks et al. (2005) : ok for all types of clouds |
---|
| 1511 | a_Brooks=0.6694 |
---|
| 1512 | b_Brooks=0.1882 |
---|
| 1513 | A_Maj_Brooks=0.1635 !-- sans dependence au shear |
---|
| 1514 | Dx_Brooks=200000. |
---|
| 1515 | f_Brooks=A_Maj_Brooks*(dz(ind1,ind2)**(a_Brooks))*(Dx_Brooks**(-b_Brooks)) |
---|
| 1516 | ctot_surf(ind1,ind2)=1./(1.+exp(-1.*f_Brooks)*((1./max(1.e-15,min(ctot_vol(ind1,ind2),1.)))- 1.)) |
---|
| 1517 | !-------------------------------------------- |
---|
| 1518 | !Incloud Condensed water qcloud |
---|
| 1519 | !-------------------------------------------- |
---|
| 1520 | if (ctot_surf(ind1,ind2) .lt. 1.e-8) then |
---|
| 1521 | ctot_vol(ind1,ind2)=0. |
---|
| 1522 | ctot_surf(ind1,ind2)=0. |
---|
| 1523 | qcloud(ind1)=zqsatenv(ind1,ind2) |
---|
| 1524 | else |
---|
| 1525 | qcloud(ind1)=qltot(ind1,ind2)/ctot_vol(ind1,ind2)+zqsatenv(ind1,ind2) |
---|
| 1526 | endif |
---|
| 1527 | |
---|
| 1528 | |
---|
| 1529 | END IF ! From the separation (thermal/envrionnement) et (environnement only) |
---|
| 1530 | |
---|
| 1531 | ! Outputs used to check the PDFs |
---|
| 1532 | cloudth_senv(ind1,ind2) = senv |
---|
| 1533 | cloudth_sth(ind1,ind2) = sth |
---|
| 1534 | cloudth_sigmaenv(ind1,ind2) = sigma_env |
---|
| 1535 | cloudth_sigmath(ind1,ind2) = sigma_th |
---|
| 1536 | |
---|
| 1537 | END DO ! From the loop on ngrid |
---|
| 1538 | return |
---|
| 1539 | |
---|
| 1540 | END SUBROUTINE cloudth_v6 |
---|
[3999] | 1541 | |
---|
| 1542 | |
---|
| 1543 | |
---|
| 1544 | |
---|
| 1545 | |
---|
| 1546 | !+++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++ |
---|
[4380] | 1547 | SUBROUTINE cloudth_mpc(klon,klev,ind2,iflag_mpc_bl,mpc_bl_points, & |
---|
[3999] | 1548 | & temp,ztv,po,zqta,fraca,zpspsk,paprs,pplay,ztla,zthl, & |
---|
| 1549 | & ratqs,zqs,snowflux,qcloud,qincloud,icefrac,ctot,ctot_vol) |
---|
| 1550 | !+++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++ |
---|
| 1551 | ! Author : Arnaud Octavio Jam (LMD/CNRS), Etienne Vignon (LMDZ/CNRS) |
---|
| 1552 | ! Date: Adapted from cloudth_vert_v3 in 2021 |
---|
| 1553 | ! Aim : computes qc and rneb in thermals with cold microphysical considerations |
---|
| 1554 | ! + for mixed phase boundary layer clouds, calculate ql and qi from |
---|
| 1555 | ! a stationary MPC model |
---|
| 1556 | ! IMPORTANT NOTE: we assume iflag_clouth_vert=3 |
---|
| 1557 | !+++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++ |
---|
| 1558 | |
---|
[4535] | 1559 | use lscp_ini_mod, only: iflag_cloudth_vert |
---|
[3999] | 1560 | USE ioipsl_getin_p_mod, ONLY : getin_p |
---|
| 1561 | USE phys_output_var_mod, ONLY : cloudth_sth,cloudth_senv,cloudth_sigmath,cloudth_sigmaenv |
---|
[4114] | 1562 | USE lscp_tools_mod, ONLY: CALC_QSAT_ECMWF, FALLICE_VELOCITY |
---|
[4118] | 1563 | USE phys_local_var_mod, ONLY : qlth, qith, qsith, wiceth |
---|
[3999] | 1564 | |
---|
| 1565 | IMPLICIT NONE |
---|
| 1566 | |
---|
[4593] | 1567 | INCLUDE "YOMCST.h" |
---|
[4623] | 1568 | INCLUDE "nuage.h" ! iflag_ratqs |
---|
[4593] | 1569 | INCLUDE "YOETHF.h" |
---|
| 1570 | INCLUDE "FCTTRE.h" |
---|
[3999] | 1571 | |
---|
| 1572 | |
---|
| 1573 | !------------------------------------------------------------------------------ |
---|
| 1574 | ! Declaration |
---|
| 1575 | !------------------------------------------------------------------------------ |
---|
| 1576 | |
---|
| 1577 | ! INPUT/OUTPUT |
---|
| 1578 | |
---|
| 1579 | INTEGER, INTENT(IN) :: klon,klev,ind2 |
---|
[4072] | 1580 | |
---|
[3999] | 1581 | |
---|
| 1582 | REAL, DIMENSION(klon,klev), INTENT(IN) :: temp ! Temperature [K] |
---|
| 1583 | REAL, DIMENSION(klon,klev), INTENT(IN) :: ztv ! Virtual potential temp [K] |
---|
| 1584 | REAL, DIMENSION(klon), INTENT(IN) :: po ! specific humidity [kg/kg] |
---|
| 1585 | REAL, DIMENSION(klon,klev), INTENT(IN) :: zqta ! specific humidity within thermals [kg/kg] |
---|
| 1586 | REAL, DIMENSION(klon,klev+1), INTENT(IN) :: fraca ! Fraction of the mesh covered by thermals [0-1] |
---|
| 1587 | REAL, DIMENSION(klon,klev), INTENT(IN) :: zpspsk |
---|
| 1588 | REAL, DIMENSION(klon,klev+1), INTENT(IN) :: paprs ! Pressure at layer interfaces [Pa] |
---|
| 1589 | REAL, DIMENSION(klon,klev), INTENT(IN) :: pplay ! Pressure at the center of layers [Pa] |
---|
| 1590 | REAL, DIMENSION(klon,klev), INTENT(IN) :: ztla ! Liquid temp [K] |
---|
| 1591 | REAL, DIMENSION(klon,klev), INTENT(INOUT) :: zthl ! Liquid potential temp [K] |
---|
| 1592 | REAL, DIMENSION(klon,klev), INTENT(IN) :: ratqs ! Parameter that determines the width of the total water distrib. |
---|
| 1593 | REAL, DIMENSION(klon), INTENT(IN) :: zqs ! Saturation specific humidity in the mesh [kg/kg] |
---|
| 1594 | REAL, DIMENSION(klon,klev+1), INTENT(IN) :: snowflux ! snow flux at the interface of the layer [kg/m2/s] |
---|
[4380] | 1595 | INTEGER, INTENT(IN) :: iflag_mpc_bl ! option flag for mpc boundary layer clouds param. |
---|
[3999] | 1596 | |
---|
[4380] | 1597 | |
---|
[4072] | 1598 | INTEGER, DIMENSION(klon,klev), INTENT(INOUT) :: mpc_bl_points ! grid points with convective (thermals) mixed phase clouds |
---|
| 1599 | |
---|
[3999] | 1600 | REAL, DIMENSION(klon,klev), INTENT(OUT) :: ctot ! Cloud fraction [0-1] |
---|
| 1601 | REAL, DIMENSION(klon,klev), INTENT(OUT) :: ctot_vol ! Volume cloud fraction [0-1] |
---|
| 1602 | REAL, DIMENSION(klon), INTENT(OUT) :: qcloud ! In cloud total water content [kg/kg] |
---|
| 1603 | REAL, DIMENSION(klon), INTENT(OUT) :: qincloud ! In cloud condensed water content [kg/kg] |
---|
| 1604 | REAL, DIMENSION(klon,klev), INTENT(OUT) :: icefrac ! Fraction of ice in clouds [0-1] |
---|
| 1605 | |
---|
| 1606 | |
---|
| 1607 | ! LOCAL VARIABLES |
---|
| 1608 | |
---|
| 1609 | INTEGER itap,ind1,l,ig,iter,k |
---|
[4617] | 1610 | ! INTEGER iflag_ratqs |
---|
[4072] | 1611 | INTEGER iflag_topthermals, niter |
---|
[4114] | 1612 | LOGICAL falseklon(klon) |
---|
[3999] | 1613 | |
---|
[4072] | 1614 | REAL zqsatth(klon), zqsatenv(klon), zqsatenvonly(klon) |
---|
[3999] | 1615 | REAL sigma1(klon,klev) |
---|
| 1616 | REAL sigma2(klon,klev) |
---|
| 1617 | REAL qcth(klon,klev) |
---|
| 1618 | REAL qcenv(klon,klev) |
---|
| 1619 | REAL qctot(klon,klev) |
---|
| 1620 | REAL cth(klon,klev) |
---|
| 1621 | REAL cenv(klon,klev) |
---|
| 1622 | REAL cth_vol(klon,klev) |
---|
| 1623 | REAL cenv_vol(klon,klev) |
---|
| 1624 | REAL rneb(klon,klev) |
---|
[4072] | 1625 | REAL zqenv(klon), zqth(klon), zqenvonly(klon) |
---|
[3999] | 1626 | REAL qsatmmussig1,qsatmmussig2,sqrtpi,sqrt2,sqrt2pi,pi |
---|
| 1627 | REAL rdd,cppd,Lv |
---|
| 1628 | REAL alth,alenv,ath,aenv |
---|
| 1629 | REAL sth,senv,sigma1s,sigma2s,sigma1s_fraca,sigma1s_ratqs |
---|
| 1630 | REAL inverse_rho,beta,a_Brooks,b_Brooks,A_Maj_Brooks,Dx_Brooks,f_Brooks |
---|
| 1631 | REAL xth,xenv,exp_xenv1,exp_xenv2,exp_xth1,exp_xth2 |
---|
| 1632 | REAL xth1,xth2,xenv1,xenv2,deltasth, deltasenv |
---|
| 1633 | REAL IntJ,IntI1,IntI2,IntI3,IntJ_CF,IntI1_CF,IntI3_CF,coeffqlenv,coeffqlth |
---|
[4072] | 1634 | REAL zdelta,qsatbef,zcor |
---|
[4114] | 1635 | REAL Tbefth(klon), Tbefenv(klon), Tbefenvonly(klon), rhoth(klon) |
---|
[4072] | 1636 | REAL qlbef |
---|
| 1637 | REAL dqsatenv(klon), dqsatth(klon), dqsatenvonly(klon) |
---|
[3999] | 1638 | REAL erf |
---|
| 1639 | REAL zpdf_sig(klon),zpdf_k(klon),zpdf_delta(klon) |
---|
| 1640 | REAL zpdf_a(klon),zpdf_b(klon),zpdf_e1(klon),zpdf_e2(klon) |
---|
| 1641 | REAL rhodz(klon,klev) |
---|
| 1642 | REAL zrho(klon,klev) |
---|
| 1643 | REAL dz(klon,klev) |
---|
[4072] | 1644 | REAL qslenv(klon), qslth(klon) |
---|
| 1645 | REAL alenvl, aenvl |
---|
| 1646 | REAL sthi, sthl, sthil, althl, athl, althi, athi, sthlc, deltasthc, sigma2sc |
---|
[3999] | 1647 | REAL senvi, senvl, qbase, sbase, qliqth, qiceth |
---|
[4072] | 1648 | REAL qmax, ttarget, stmp, cout, coutref, fraci |
---|
[3999] | 1649 | REAL maxi, mini, pas, temp_lim |
---|
[4072] | 1650 | REAL deltazlev_mpc(klev), temp_mpc(klev), pres_mpc(klev), fraca_mpc(klev+1), snowf_mpc(klev+1) |
---|
[3999] | 1651 | |
---|
| 1652 | ! Modifty the saturation deficit PDF in thermals |
---|
| 1653 | ! in the presence of ice crystals |
---|
| 1654 | REAL,SAVE :: C_mpc |
---|
| 1655 | !$OMP THREADPRIVATE(C_mpc) |
---|
[4072] | 1656 | REAL, SAVE :: Ni,C_cap,Ei,d_top |
---|
| 1657 | !$OMP THREADPRIVATE(Ni,C_cap,Ei,d_top) |
---|
[3999] | 1658 | ! Change the width of the PDF used for vertical subgrid scale heterogeneity |
---|
| 1659 | ! (J Jouhaud, JL Dufresne, JB Madeleine) |
---|
| 1660 | REAL,SAVE :: vert_alpha, vert_alpha_th |
---|
| 1661 | !$OMP THREADPRIVATE(vert_alpha, vert_alpha_th) |
---|
| 1662 | REAL,SAVE :: sigma1s_factor=1.1 |
---|
| 1663 | REAL,SAVE :: sigma1s_power=0.6 |
---|
| 1664 | REAL,SAVE :: sigma2s_factor=0.09 |
---|
| 1665 | REAL,SAVE :: sigma2s_power=0.5 |
---|
| 1666 | REAL,SAVE :: cloudth_ratqsmin=-1. |
---|
| 1667 | !$OMP THREADPRIVATE(sigma1s_factor,sigma1s_power,sigma2s_factor,sigma2s_power,cloudth_ratqsmin) |
---|
| 1668 | INTEGER, SAVE :: iflag_cloudth_vert_noratqs=0 |
---|
| 1669 | !$OMP THREADPRIVATE(iflag_cloudth_vert_noratqs) |
---|
| 1670 | LOGICAL, SAVE :: firstcall = .TRUE. |
---|
| 1671 | !$OMP THREADPRIVATE(firstcall) |
---|
| 1672 | |
---|
| 1673 | CHARACTER (len = 80) :: abort_message |
---|
| 1674 | CHARACTER (len = 20) :: routname = 'cloudth_mpc' |
---|
| 1675 | |
---|
| 1676 | |
---|
| 1677 | !------------------------------------------------------------------------------ |
---|
| 1678 | ! Initialisation |
---|
| 1679 | !------------------------------------------------------------------------------ |
---|
| 1680 | |
---|
| 1681 | |
---|
| 1682 | ! Few initial checksS |
---|
| 1683 | |
---|
| 1684 | IF (iflag_cloudth_vert.NE.3) THEN |
---|
| 1685 | abort_message = 'clouth_mpc cannot be used if iflag_cloudth_vert .NE. 3' |
---|
| 1686 | CALL abort_physic(routname,abort_message,1) |
---|
| 1687 | ENDIF |
---|
| 1688 | |
---|
| 1689 | DO k = 1,klev |
---|
| 1690 | DO ind1 = 1, klon |
---|
| 1691 | rhodz(ind1,k) = (paprs(ind1,k)-paprs(ind1,k+1))/rg !kg/m2 |
---|
| 1692 | zrho(ind1,k) = pplay(ind1,k)/temp(ind1,k)/rd !kg/m3 |
---|
| 1693 | dz(ind1,k) = rhodz(ind1,k)/zrho(ind1,k) !m : epaisseur de la couche en metre |
---|
| 1694 | END DO |
---|
| 1695 | END DO |
---|
| 1696 | |
---|
| 1697 | |
---|
| 1698 | sigma1(:,:)=0. |
---|
| 1699 | sigma2(:,:)=0. |
---|
| 1700 | qcth(:,:)=0. |
---|
| 1701 | qcenv(:,:)=0. |
---|
| 1702 | qctot(:,:)=0. |
---|
| 1703 | qlth(:,ind2)=0. |
---|
| 1704 | qith(:,ind2)=0. |
---|
[4118] | 1705 | wiceth(:,ind2)=0. |
---|
[3999] | 1706 | rneb(:,:)=0. |
---|
| 1707 | qcloud(:)=0. |
---|
| 1708 | cth(:,:)=0. |
---|
| 1709 | cenv(:,:)=0. |
---|
| 1710 | ctot(:,:)=0. |
---|
| 1711 | cth_vol(:,:)=0. |
---|
| 1712 | cenv_vol(:,:)=0. |
---|
| 1713 | ctot_vol(:,:)=0. |
---|
[4114] | 1714 | falseklon(:)=.false. |
---|
[3999] | 1715 | qsatmmussig1=0. |
---|
| 1716 | qsatmmussig2=0. |
---|
| 1717 | rdd=287.04 |
---|
| 1718 | cppd=1005.7 |
---|
| 1719 | pi=3.14159 |
---|
| 1720 | sqrt2pi=sqrt(2.*pi) |
---|
| 1721 | sqrt2=sqrt(2.) |
---|
| 1722 | sqrtpi=sqrt(pi) |
---|
| 1723 | icefrac(:,ind2)=0. |
---|
[4072] | 1724 | althl=0. |
---|
| 1725 | althi=0. |
---|
| 1726 | athl=0. |
---|
| 1727 | athi=0. |
---|
| 1728 | senvl=0. |
---|
| 1729 | senvi=0. |
---|
| 1730 | sthi=0. |
---|
| 1731 | sthl=0. |
---|
| 1732 | sthil=0. |
---|
[3999] | 1733 | |
---|
| 1734 | |
---|
| 1735 | |
---|
| 1736 | IF (firstcall) THEN |
---|
| 1737 | |
---|
| 1738 | vert_alpha=0.5 |
---|
| 1739 | CALL getin_p('cloudth_vert_alpha',vert_alpha) |
---|
| 1740 | WRITE(*,*) 'cloudth_vert_alpha = ', vert_alpha |
---|
| 1741 | ! The factor used for the thermal is equal to that of the environment |
---|
| 1742 | ! if nothing is explicitly specified in the def file |
---|
| 1743 | vert_alpha_th=vert_alpha |
---|
| 1744 | CALL getin_p('cloudth_vert_alpha_th',vert_alpha_th) |
---|
| 1745 | WRITE(*,*) 'cloudth_vert_alpha_th = ', vert_alpha_th |
---|
| 1746 | ! Factor used in the calculation of sigma1s |
---|
| 1747 | CALL getin_p('cloudth_sigma1s_factor',sigma1s_factor) |
---|
| 1748 | WRITE(*,*) 'cloudth_sigma1s_factor = ', sigma1s_factor |
---|
| 1749 | ! Power used in the calculation of sigma1s |
---|
| 1750 | CALL getin_p('cloudth_sigma1s_power',sigma1s_power) |
---|
| 1751 | WRITE(*,*) 'cloudth_sigma1s_power = ', sigma1s_power |
---|
| 1752 | ! Factor used in the calculation of sigma2s |
---|
| 1753 | CALL getin_p('cloudth_sigma2s_factor',sigma2s_factor) |
---|
| 1754 | WRITE(*,*) 'cloudth_sigma2s_factor = ', sigma2s_factor |
---|
| 1755 | ! Power used in the calculation of sigma2s |
---|
| 1756 | CALL getin_p('cloudth_sigma2s_power',sigma2s_power) |
---|
| 1757 | WRITE(*,*) 'cloudth_sigma2s_power = ', sigma2s_power |
---|
| 1758 | ! Minimum value for the environmental air subgrid water distrib |
---|
| 1759 | CALL getin_p('cloudth_ratqsmin',cloudth_ratqsmin) |
---|
| 1760 | WRITE(*,*) 'cloudth_ratqsmin = ', cloudth_ratqsmin |
---|
| 1761 | ! Remove the dependency to ratqs from the variance of the vertical PDF |
---|
| 1762 | CALL getin_p('iflag_cloudth_vert_noratqs',iflag_cloudth_vert_noratqs) |
---|
| 1763 | WRITE(*,*) 'iflag_cloudth_vert_noratqs = ', iflag_cloudth_vert_noratqs |
---|
| 1764 | ! Modifies the PDF in thermals when ice crystals are present |
---|
[4072] | 1765 | C_mpc=1.e4 |
---|
[3999] | 1766 | CALL getin_p('C_mpc',C_mpc) |
---|
| 1767 | WRITE(*,*) 'C_mpc = ', C_mpc |
---|
[4072] | 1768 | Ni=2.0e3 |
---|
| 1769 | CALL getin_p('Ni', Ni) |
---|
| 1770 | WRITE(*,*) 'Ni = ', Ni |
---|
| 1771 | Ei=0.5 |
---|
| 1772 | CALL getin_p('Ei', Ei) |
---|
| 1773 | WRITE(*,*) 'Ei = ', Ei |
---|
| 1774 | C_cap=0.5 |
---|
| 1775 | CALL getin_p('C_cap', C_cap) |
---|
| 1776 | WRITE(*,*) 'C_cap = ', C_cap |
---|
| 1777 | d_top=1.2 |
---|
| 1778 | CALL getin_p('d_top', d_top) |
---|
| 1779 | WRITE(*,*) 'd_top = ', d_top |
---|
[3999] | 1780 | |
---|
| 1781 | firstcall=.FALSE. |
---|
| 1782 | |
---|
| 1783 | ENDIF |
---|
| 1784 | |
---|
| 1785 | |
---|
| 1786 | |
---|
| 1787 | !------------------------------------------------------------------------------- |
---|
| 1788 | ! Identify grid points with potential mixed-phase conditions |
---|
| 1789 | !------------------------------------------------------------------------------- |
---|
| 1790 | |
---|
| 1791 | temp_lim=RTT-40.0 |
---|
| 1792 | |
---|
| 1793 | DO ind1=1,klon |
---|
| 1794 | IF ((temp(ind1,ind2) .LT. RTT) .AND. (temp(ind1,ind2) .GT. temp_lim) & |
---|
[4072] | 1795 | .AND. (iflag_mpc_bl .GE. 1) .AND. (ind2<=klev-2) & |
---|
[3999] | 1796 | .AND. (ztv(ind1,1).GT.ztv(ind1,2)) .AND.(fraca(ind1,ind2).GT.1.e-10)) THEN |
---|
| 1797 | mpc_bl_points(ind1,ind2)=1 |
---|
| 1798 | ELSE |
---|
| 1799 | mpc_bl_points(ind1,ind2)=0 |
---|
| 1800 | ENDIF |
---|
| 1801 | ENDDO |
---|
| 1802 | |
---|
| 1803 | |
---|
| 1804 | !------------------------------------------------------------------------------- |
---|
| 1805 | ! Thermal fraction calculation and standard deviation of the distribution |
---|
| 1806 | !------------------------------------------------------------------------------- |
---|
| 1807 | |
---|
[4072] | 1808 | ! calculation of temperature, humidity and saturation specific humidity |
---|
[3999] | 1809 | |
---|
[4072] | 1810 | Tbefenv(:)=zthl(:,ind2)*zpspsk(:,ind2) |
---|
| 1811 | Tbefth(:)=ztla(:,ind2)*zpspsk(:,ind2) |
---|
| 1812 | Tbefenvonly(:)=temp(:,ind2) |
---|
[4114] | 1813 | rhoth(:)=paprs(:,ind2)/Tbefth(:)/RD |
---|
[3999] | 1814 | |
---|
[4072] | 1815 | zqenv(:)=(po(:)-fraca(:,ind2)*zqta(:,ind2))/(1.-fraca(:,ind2)) !qt = a*qtth + (1-a)*qtenv |
---|
| 1816 | zqth(:)=zqta(:,ind2) |
---|
| 1817 | zqenvonly(:)=po(:) |
---|
| 1818 | |
---|
| 1819 | |
---|
| 1820 | CALL CALC_QSAT_ECMWF(klon,Tbefenvonly,zqenvonly,paprs(:,ind2),RTT,0,.false.,zqsatenvonly,dqsatenv) |
---|
| 1821 | |
---|
| 1822 | CALL CALC_QSAT_ECMWF(klon,Tbefenv,zqenv,paprs(:,ind2),RTT,0,.false.,zqsatenv,dqsatenv) |
---|
| 1823 | CALL CALC_QSAT_ECMWF(klon,Tbefenv,zqenv,paprs(:,ind2),RTT,1,.false.,qslenv,dqsatenv) |
---|
| 1824 | |
---|
| 1825 | CALL CALC_QSAT_ECMWF(klon,Tbefth,zqth,paprs(:,ind2),RTT,1,.false.,qslth,dqsatth) |
---|
| 1826 | CALL CALC_QSAT_ECMWF(klon,Tbefth,zqth,paprs(:,ind2),RTT,2,.false.,qsith(:,ind2),dqsatth) |
---|
| 1827 | CALL CALC_QSAT_ECMWF(klon,Tbefth,zqth,paprs(:,ind2),RTT,0,.false.,zqsatth,dqsatth) |
---|
| 1828 | |
---|
| 1829 | |
---|
| 1830 | DO ind1=1,klon |
---|
| 1831 | |
---|
| 1832 | |
---|
[3999] | 1833 | IF ((ztv(ind1,1).GT.ztv(ind1,2)).AND.(fraca(ind1,ind2).GT.1.e-10)) THEN !Thermal and environnement |
---|
| 1834 | |
---|
| 1835 | |
---|
| 1836 | ! Environment: |
---|
| 1837 | |
---|
| 1838 | |
---|
[4072] | 1839 | IF (Tbefenv(ind1) .GE. RTT) THEN |
---|
[3999] | 1840 | Lv=RLVTT |
---|
| 1841 | ELSE |
---|
| 1842 | Lv=RLSTT |
---|
| 1843 | ENDIF |
---|
| 1844 | |
---|
| 1845 | |
---|
[4072] | 1846 | alenv=(0.622*Lv*zqsatenv(ind1))/(rdd*zthl(ind1,ind2)**2) !qsl, p84 |
---|
[3999] | 1847 | aenv=1./(1.+(alenv*Lv/cppd)) !al, p84 |
---|
[4072] | 1848 | senv=aenv*(po(ind1)-zqsatenv(ind1)) !s, p84 |
---|
[3999] | 1849 | |
---|
| 1850 | ! For MPCs: |
---|
| 1851 | IF (mpc_bl_points(ind1,ind2) .EQ. 1) THEN |
---|
[4072] | 1852 | alenvl=(0.622*RLVTT*qslenv(ind1))/(rdd*zthl(ind1,ind2)**2) |
---|
[3999] | 1853 | aenvl=1./(1.+(alenv*Lv/cppd)) |
---|
[4072] | 1854 | senvl=aenvl*(po(ind1)-qslenv(ind1)) |
---|
| 1855 | senvi=senv |
---|
[3999] | 1856 | ENDIF |
---|
| 1857 | |
---|
| 1858 | |
---|
| 1859 | ! Thermals: |
---|
| 1860 | |
---|
| 1861 | |
---|
[4072] | 1862 | IF (Tbefth(ind1) .GE. RTT) THEN |
---|
[3999] | 1863 | Lv=RLVTT |
---|
| 1864 | ELSE |
---|
| 1865 | Lv=RLSTT |
---|
| 1866 | ENDIF |
---|
| 1867 | |
---|
| 1868 | |
---|
[4072] | 1869 | alth=(0.622*Lv*zqsatth(ind1))/(rdd*ztla(ind1,ind2)**2) |
---|
[3999] | 1870 | ath=1./(1.+(alth*Lv/cppd)) |
---|
[4072] | 1871 | sth=ath*(zqta(ind1,ind2)-zqsatth(ind1)) |
---|
[3999] | 1872 | |
---|
| 1873 | ! For MPCs: |
---|
| 1874 | IF (mpc_bl_points(ind1,ind2) .GT. 0) THEN |
---|
[4072] | 1875 | althi=alth |
---|
| 1876 | althl=(0.622*RLVTT*qslth(ind1))/(rdd*ztla(ind1,ind2)**2) |
---|
| 1877 | athl=1./(1.+(alth*RLVTT/cppd)) |
---|
| 1878 | athi=alth |
---|
| 1879 | sthl=athl*(zqta(ind1,ind2)-qslth(ind1)) |
---|
| 1880 | sthi=athi*(zqta(ind1,ind2)-qsith(ind1,ind2)) |
---|
| 1881 | sthil=athi*(zqta(ind1,ind2)-qslth(ind1)) |
---|
[3999] | 1882 | ENDIF |
---|
| 1883 | |
---|
| 1884 | |
---|
| 1885 | |
---|
| 1886 | !------------------------------------------------------------------------------- |
---|
| 1887 | ! Version 3: Changes by J. Jouhaud; condensation for q > -delta s |
---|
| 1888 | ! Rq: in this subroutine, we assume iflag_clouth_vert .EQ. 3 |
---|
| 1889 | !------------------------------------------------------------------------------- |
---|
| 1890 | |
---|
| 1891 | IF (mpc_bl_points(ind1,ind2) .EQ. 0) THEN ! No BL MPC |
---|
| 1892 | |
---|
| 1893 | ! Standard deviation of the distributions |
---|
| 1894 | |
---|
| 1895 | sigma1s_fraca = (sigma1s_factor**0.5)*(fraca(ind1,ind2)**sigma1s_power) / & |
---|
| 1896 | & (1-fraca(ind1,ind2))*((sth-senv)**2)**0.5 |
---|
| 1897 | |
---|
| 1898 | IF (cloudth_ratqsmin>0.) THEN |
---|
| 1899 | sigma1s_ratqs = cloudth_ratqsmin*po(ind1) |
---|
| 1900 | ELSE |
---|
| 1901 | sigma1s_ratqs = ratqs(ind1,ind2)*po(ind1) |
---|
| 1902 | ENDIF |
---|
| 1903 | |
---|
| 1904 | sigma1s = sigma1s_fraca + sigma1s_ratqs |
---|
[4623] | 1905 | IF (iflag_ratqs.eq.11) then |
---|
| 1906 | sigma1s = ratqs(ind1,ind2)*po(ind1)*aenv |
---|
| 1907 | ENDIF |
---|
[3999] | 1908 | sigma2s=(sigma2s_factor*(((sth-senv)**2)**0.5)/((fraca(ind1,ind2)+0.02)**sigma2s_power))+0.002*zqta(ind1,ind2) |
---|
| 1909 | |
---|
| 1910 | |
---|
| 1911 | deltasenv=aenv*vert_alpha*sigma1s |
---|
| 1912 | deltasth=ath*vert_alpha_th*sigma2s |
---|
| 1913 | |
---|
| 1914 | xenv1=-(senv+deltasenv)/(sqrt(2.)*sigma1s) |
---|
| 1915 | xenv2=-(senv-deltasenv)/(sqrt(2.)*sigma1s) |
---|
| 1916 | exp_xenv1 = exp(-1.*xenv1**2) |
---|
| 1917 | exp_xenv2 = exp(-1.*xenv2**2) |
---|
| 1918 | xth1=-(sth+deltasth)/(sqrt(2.)*sigma2s) |
---|
| 1919 | xth2=-(sth-deltasth)/(sqrt(2.)*sigma2s) |
---|
| 1920 | exp_xth1 = exp(-1.*xth1**2) |
---|
| 1921 | exp_xth2 = exp(-1.*xth2**2) |
---|
| 1922 | |
---|
| 1923 | !surface CF |
---|
| 1924 | |
---|
| 1925 | cth(ind1,ind2)=0.5*(1.-1.*erf(xth1)) |
---|
| 1926 | cenv(ind1,ind2)=0.5*(1.-1.*erf(xenv1)) |
---|
| 1927 | ctot(ind1,ind2)=fraca(ind1,ind2)*cth(ind1,ind2)+(1.-1.*fraca(ind1,ind2))*cenv(ind1,ind2) |
---|
| 1928 | |
---|
| 1929 | |
---|
| 1930 | !volume CF and condensed water |
---|
| 1931 | |
---|
| 1932 | !environnement |
---|
| 1933 | |
---|
| 1934 | IntJ=0.5*senv*(1-erf(xenv2))+(sigma1s/sqrt2pi)*exp_xenv2 |
---|
| 1935 | IntJ_CF=0.5*(1.-1.*erf(xenv2)) |
---|
| 1936 | |
---|
| 1937 | IF (deltasenv .LT. 1.e-10) THEN |
---|
| 1938 | qcenv(ind1,ind2)=IntJ |
---|
| 1939 | cenv_vol(ind1,ind2)=IntJ_CF |
---|
| 1940 | ELSE |
---|
| 1941 | IntI1=(((senv+deltasenv)**2+(sigma1s)**2)/(8*deltasenv))*(erf(xenv2)-erf(xenv1)) |
---|
| 1942 | IntI2=(sigma1s**2/(4*deltasenv*sqrtpi))*(xenv1*exp_xenv1-xenv2*exp_xenv2) |
---|
| 1943 | IntI3=((sqrt2*sigma1s*(senv+deltasenv))/(4*sqrtpi*deltasenv))*(exp_xenv1-exp_xenv2) |
---|
| 1944 | IntI1_CF=((senv+deltasenv)*(erf(xenv2)-erf(xenv1)))/(4*deltasenv) |
---|
| 1945 | IntI3_CF=(sqrt2*sigma1s*(exp_xenv1-exp_xenv2))/(4*sqrtpi*deltasenv) |
---|
| 1946 | qcenv(ind1,ind2)=IntJ+IntI1+IntI2+IntI3 |
---|
| 1947 | cenv_vol(ind1,ind2)=IntJ_CF+IntI1_CF+IntI3_CF |
---|
| 1948 | ENDIF |
---|
| 1949 | |
---|
| 1950 | |
---|
| 1951 | |
---|
| 1952 | !thermals |
---|
| 1953 | |
---|
| 1954 | IntJ=0.5*sth*(1-erf(xth2))+(sigma2s/sqrt2pi)*exp_xth2 |
---|
| 1955 | IntJ_CF=0.5*(1.-1.*erf(xth2)) |
---|
| 1956 | |
---|
| 1957 | IF (deltasth .LT. 1.e-10) THEN |
---|
| 1958 | qcth(ind1,ind2)=IntJ |
---|
| 1959 | cth_vol(ind1,ind2)=IntJ_CF |
---|
| 1960 | ELSE |
---|
| 1961 | IntI1=(((sth+deltasth)**2+(sigma2s)**2)/(8*deltasth))*(erf(xth2)-erf(xth1)) |
---|
| 1962 | IntI2=(sigma2s**2/(4*deltasth*sqrtpi))*(xth1*exp_xth1-xth2*exp_xth2) |
---|
| 1963 | IntI3=((sqrt2*sigma2s*(sth+deltasth))/(4*sqrtpi*deltasth))*(exp_xth1-exp_xth2) |
---|
| 1964 | IntI1_CF=((sth+deltasth)*(erf(xth2)-erf(xth1)))/(4*deltasth) |
---|
| 1965 | IntI3_CF=(sqrt2*sigma2s*(exp_xth1-exp_xth2))/(4*sqrtpi*deltasth) |
---|
| 1966 | qlth(ind1,ind2)=IntJ+IntI1+IntI2+IntI3 |
---|
| 1967 | cth_vol(ind1,ind2)=IntJ_CF+IntI1_CF+IntI3_CF |
---|
| 1968 | ENDIF |
---|
| 1969 | |
---|
| 1970 | qctot(ind1,ind2)=fraca(ind1,ind2)*qcth(ind1,ind2)+(1.-1.*fraca(ind1,ind2))*qcenv(ind1,ind2) |
---|
| 1971 | ctot_vol(ind1,ind2)=fraca(ind1,ind2)*cth_vol(ind1,ind2)+(1.-1.*fraca(ind1,ind2))*cenv_vol(ind1,ind2) |
---|
| 1972 | |
---|
| 1973 | |
---|
| 1974 | IF (cenv(ind1,ind2).LT.1.e-10.or.cth(ind1,ind2).LT.1.e-10) THEN |
---|
| 1975 | ctot(ind1,ind2)=0. |
---|
| 1976 | ctot_vol(ind1,ind2)=0. |
---|
[4072] | 1977 | qcloud(ind1)=zqsatenv(ind1) |
---|
[3999] | 1978 | qincloud(ind1)=0. |
---|
| 1979 | ELSE |
---|
| 1980 | qcloud(ind1)=qctot(ind1,ind2)/ctot(ind1,ind2)+zqs(ind1) |
---|
| 1981 | qincloud(ind1)=qctot(ind1,ind2)/ctot(ind1,ind2) |
---|
| 1982 | ENDIF |
---|
| 1983 | |
---|
| 1984 | |
---|
| 1985 | ELSE ! mpc_bl_points>0 |
---|
| 1986 | |
---|
| 1987 | ! Treat boundary layer mixed phase clouds |
---|
| 1988 | |
---|
| 1989 | ! thermals |
---|
| 1990 | !========= |
---|
| 1991 | |
---|
| 1992 | ! ice phase |
---|
| 1993 | !........... |
---|
| 1994 | |
---|
[4072] | 1995 | qiceth=0. |
---|
[3999] | 1996 | deltazlev_mpc=dz(ind1,:) |
---|
| 1997 | temp_mpc=ztla(ind1,:)*zpspsk(ind1,:) |
---|
| 1998 | pres_mpc=pplay(ind1,:) |
---|
| 1999 | fraca_mpc=fraca(ind1,:) |
---|
| 2000 | snowf_mpc=snowflux(ind1,:) |
---|
[4072] | 2001 | iflag_topthermals=0 |
---|
[3999] | 2002 | IF ((mpc_bl_points(ind1,ind2) .EQ. 1) .AND. (mpc_bl_points(ind1,ind2+1) .EQ. 0)) THEN |
---|
[4072] | 2003 | iflag_topthermals = 1 |
---|
| 2004 | ELSE IF ((mpc_bl_points(ind1,ind2) .EQ. 1) .AND. (mpc_bl_points(ind1,ind2+1) .EQ. 1) & |
---|
| 2005 | .AND. (mpc_bl_points(ind1,ind2+2) .EQ. 0) ) THEN |
---|
| 2006 | iflag_topthermals = 2 |
---|
| 2007 | ELSE |
---|
| 2008 | iflag_topthermals = 0 |
---|
[3999] | 2009 | ENDIF |
---|
| 2010 | |
---|
[4118] | 2011 | CALL ICE_MPC_BL_CLOUDS(ind1,ind2,klev,Ni,Ei,C_cap,d_top,iflag_topthermals,temp_mpc,pres_mpc,zqta(ind1,:), & |
---|
| 2012 | qsith(ind1,:),qlth(ind1,:),deltazlev_mpc,wiceth(ind1,:),fraca_mpc,qith(ind1,:)) |
---|
[3999] | 2013 | |
---|
[4072] | 2014 | ! qmax calculation |
---|
| 2015 | sigma2s=(sigma2s_factor*((MAX((sthl-senvl),0.)**2)**0.5)/((fraca(ind1,ind2)+0.02)**sigma2s_power))+0.002*zqta(ind1,ind2) |
---|
[3999] | 2016 | deltasth=athl*vert_alpha_th*sigma2s |
---|
| 2017 | xth1=-(sthl+deltasth)/(sqrt(2.)*sigma2s) |
---|
[4072] | 2018 | xth2=-(sthl-deltasth)/(sqrt(2.)*sigma2s) |
---|
[3999] | 2019 | exp_xth1 = exp(-1.*xth1**2) |
---|
| 2020 | exp_xth2 = exp(-1.*xth2**2) |
---|
| 2021 | IntJ=0.5*sthl*(1-erf(xth2))+(sigma2s/sqrt2pi)*exp_xth2 |
---|
| 2022 | IntJ_CF=0.5*(1.-1.*erf(xth2)) |
---|
| 2023 | IntI1=(((sthl+deltasth)**2+(sigma2s)**2)/(8*deltasth))*(erf(xth2)-erf(xth1)) |
---|
| 2024 | IntI2=(sigma2s**2/(4*deltasth*sqrtpi))*(xth1*exp_xth1-xth2*exp_xth2) |
---|
| 2025 | IntI3=((sqrt2*sigma2s*(sthl+deltasth))/(4*sqrtpi*deltasth))*(exp_xth1-exp_xth2) |
---|
| 2026 | IntI1_CF=((sthl+deltasth)*(erf(xth2)-erf(xth1)))/(4*deltasth) |
---|
| 2027 | IntI3_CF=(sqrt2*sigma2s*(exp_xth1-exp_xth2))/(4*sqrtpi*deltasth) |
---|
[4072] | 2028 | qmax=MAX(IntJ+IntI1+IntI2+IntI3,0.) |
---|
[3999] | 2029 | |
---|
[4072] | 2030 | |
---|
| 2031 | ! Liquid phase |
---|
| 2032 | !................ |
---|
| 2033 | ! We account for the effect of ice crystals in thermals on sthl |
---|
| 2034 | ! and on the width of the distribution |
---|
| 2035 | |
---|
| 2036 | sthlc=sthl*1./(1.+C_mpc*qith(ind1,ind2)) & |
---|
| 2037 | + (1.-1./(1.+C_mpc*qith(ind1,ind2))) * athl*(qsith(ind1,ind2)-qslth(ind1)) |
---|
| 2038 | |
---|
[4260] | 2039 | sigma2sc=(sigma2s_factor*((MAX((sthlc-senvl),0.)**2)**0.5) & |
---|
| 2040 | /((fraca(ind1,ind2)+0.02)**sigma2s_power)) & |
---|
| 2041 | +0.002*zqta(ind1,ind2) |
---|
[4072] | 2042 | deltasthc=athl*vert_alpha_th*sigma2sc |
---|
| 2043 | |
---|
| 2044 | |
---|
| 2045 | xth1=-(sthlc+deltasthc)/(sqrt(2.)*sigma2sc) |
---|
| 2046 | xth2=-(sthlc-deltasthc)/(sqrt(2.)*sigma2sc) |
---|
[3999] | 2047 | exp_xth1 = exp(-1.*xth1**2) |
---|
| 2048 | exp_xth2 = exp(-1.*xth2**2) |
---|
[4072] | 2049 | IntJ=0.5*sthlc*(1-erf(xth2))+(sigma2sc/sqrt2pi)*exp_xth2 |
---|
[3999] | 2050 | IntJ_CF=0.5*(1.-1.*erf(xth2)) |
---|
[4072] | 2051 | IntI1=(((sthlc+deltasthc)**2+(sigma2sc)**2)/(8*deltasthc))*(erf(xth2)-erf(xth1)) |
---|
| 2052 | IntI2=(sigma2sc**2/(4*deltasthc*sqrtpi))*(xth1*exp_xth1-xth2*exp_xth2) |
---|
| 2053 | IntI3=((sqrt2*sigma2sc*(sthlc+deltasthc))/(4*sqrtpi*deltasthc))*(exp_xth1-exp_xth2) |
---|
| 2054 | IntI1_CF=((sthlc+deltasthc)*(erf(xth2)-erf(xth1)))/(4*deltasthc) |
---|
| 2055 | IntI3_CF=(sqrt2*sigma2sc*(exp_xth1-exp_xth2))/(4*sqrtpi*deltasthc) |
---|
| 2056 | qliqth=IntJ+IntI1+IntI2+IntI3 |
---|
| 2057 | |
---|
| 2058 | qlth(ind1,ind2)=MAX(0.,qliqth) |
---|
[3999] | 2059 | |
---|
| 2060 | ! Condensed water |
---|
[4072] | 2061 | |
---|
[3999] | 2062 | qcth(ind1,ind2)=qlth(ind1,ind2)+qith(ind1,ind2) |
---|
| 2063 | |
---|
[4072] | 2064 | |
---|
| 2065 | ! consistency with subgrid distribution |
---|
| 2066 | |
---|
| 2067 | IF ((qcth(ind1,ind2) .GT. qmax) .AND. (qcth(ind1,ind2) .GT. 0)) THEN |
---|
| 2068 | fraci=qith(ind1,ind2)/qcth(ind1,ind2) |
---|
| 2069 | qcth(ind1,ind2)=qmax |
---|
| 2070 | qith(ind1,ind2)=fraci*qmax |
---|
| 2071 | qlth(ind1,ind2)=(1.-fraci)*qmax |
---|
| 2072 | ENDIF |
---|
| 2073 | |
---|
| 2074 | ! Cloud Fraction |
---|
| 2075 | !............... |
---|
[3999] | 2076 | ! calculation of qbase which is the value of the water vapor within mixed phase clouds |
---|
| 2077 | ! such that the total water in cloud = qbase+qliqth+qiceth |
---|
| 2078 | ! sbase is the value of s such that int_sbase^\intfy s ds = cloud fraction |
---|
| 2079 | ! sbase and qbase calculation (note that sbase is wrt liq so negative) |
---|
| 2080 | ! look for an approximate solution with iteration |
---|
| 2081 | |
---|
| 2082 | ttarget=qcth(ind1,ind2) |
---|
[4072] | 2083 | mini= athl*(qsith(ind1,ind2)-qslth(ind1)) |
---|
| 2084 | maxi= 0. !athl*(3.*sqrt(sigma2s)) |
---|
| 2085 | niter=20 |
---|
[3999] | 2086 | pas=(maxi-mini)/niter |
---|
| 2087 | stmp=mini |
---|
| 2088 | sbase=stmp |
---|
| 2089 | coutref=1.E6 |
---|
| 2090 | DO iter=1,niter |
---|
| 2091 | cout=ABS(sigma2s/SQRT(2.*RPI)*EXP(-((sthl-stmp)/sigma2s)**2)+(sthl-stmp)/SQRT(2.)*(1.-erf(-(sthl-stmp)/sigma2s)) & |
---|
| 2092 | + stmp/2.*(1.-erf(-(sthl-stmp)/sigma2s)) -ttarget) |
---|
| 2093 | IF (cout .LT. coutref) THEN |
---|
| 2094 | sbase=stmp |
---|
| 2095 | coutref=cout |
---|
| 2096 | ELSE |
---|
| 2097 | stmp=stmp+pas |
---|
| 2098 | ENDIF |
---|
| 2099 | ENDDO |
---|
[4072] | 2100 | qbase=MAX(0., sbase/athl+qslth(ind1)) |
---|
[3999] | 2101 | |
---|
| 2102 | ! surface cloud fraction in thermals |
---|
| 2103 | cth(ind1,ind2)=0.5*(1.-erf((sbase-sthl)/sqrt(2.)/sigma2s)) |
---|
| 2104 | cth(ind1,ind2)=MIN(MAX(cth(ind1,ind2),0.),1.) |
---|
| 2105 | |
---|
| 2106 | |
---|
| 2107 | !volume cloud fraction in thermals |
---|
| 2108 | !to be checked |
---|
| 2109 | xth1=-(sthl+deltasth-sbase)/(sqrt(2.)*sigma2s) |
---|
| 2110 | xth2=-(sthl-deltasth-sbase)/(sqrt(2.)*sigma2s) |
---|
| 2111 | exp_xth1 = exp(-1.*xth1**2) |
---|
| 2112 | exp_xth2 = exp(-1.*xth2**2) |
---|
| 2113 | |
---|
| 2114 | IntJ=0.5*sthl*(1-erf(xth2))+(sigma2s/sqrt2pi)*exp_xth2 |
---|
| 2115 | IntJ_CF=0.5*(1.-1.*erf(xth2)) |
---|
| 2116 | |
---|
| 2117 | IF (deltasth .LT. 1.e-10) THEN |
---|
| 2118 | cth_vol(ind1,ind2)=IntJ_CF |
---|
| 2119 | ELSE |
---|
| 2120 | IntI1=(((sthl+deltasth-sbase)**2+(sigma2s)**2)/(8*deltasth))*(erf(xth2)-erf(xth1)) |
---|
| 2121 | IntI2=(sigma2s**2/(4*deltasth*sqrtpi))*(xth1*exp_xth1-xth2*exp_xth2) |
---|
[4072] | 2122 | IntI3=((sqrt2*sigma2s*(sthl+deltasth))/(4*sqrtpi*deltasth))*(exp_xth1-exp_xth2) |
---|
[3999] | 2123 | IntI1_CF=((sthl-sbase+deltasth)*(erf(xth2)-erf(xth1)))/(4*deltasth) |
---|
| 2124 | IntI3_CF=(sqrt2*sigma2s*(exp_xth1-exp_xth2))/(4*sqrtpi*deltasth) |
---|
| 2125 | cth_vol(ind1,ind2)=IntJ_CF+IntI1_CF+IntI3_CF |
---|
| 2126 | ENDIF |
---|
| 2127 | cth_vol(ind1,ind2)=MIN(MAX(0.,cth_vol(ind1,ind2)),1.) |
---|
| 2128 | |
---|
[4072] | 2129 | |
---|
| 2130 | |
---|
[3999] | 2131 | ! Environment |
---|
| 2132 | !============= |
---|
| 2133 | ! In the environment/downdrafts, only liquid clouds |
---|
| 2134 | ! See Shupe et al. 2008, JAS |
---|
| 2135 | |
---|
| 2136 | ! standard deviation of the distribution in the environment |
---|
| 2137 | sth=sthl |
---|
| 2138 | senv=senvl |
---|
| 2139 | sigma1s_fraca = (sigma1s_factor**0.5)*(fraca(ind1,ind2)**sigma1s_power) / & |
---|
| 2140 | & (1-fraca(ind1,ind2))*(MAX((sth-senv),0.)**2)**0.5 |
---|
| 2141 | ! for mixed phase clouds, there is no contribution from large scale ratqs to the distribution |
---|
| 2142 | ! in the environement |
---|
| 2143 | |
---|
| 2144 | sigma1s_ratqs=1E-10 |
---|
| 2145 | IF (cloudth_ratqsmin>0.) THEN |
---|
| 2146 | sigma1s_ratqs = cloudth_ratqsmin*po(ind1) |
---|
| 2147 | ENDIF |
---|
| 2148 | |
---|
| 2149 | sigma1s = sigma1s_fraca + sigma1s_ratqs |
---|
[4623] | 2150 | IF (iflag_ratqs.eq.11) then |
---|
| 2151 | sigma1s = ratqs(ind1,ind2)*po(ind1)*aenv |
---|
| 2152 | ENDIF |
---|
| 2153 | IF (iflag_ratqs.eq.11) then |
---|
| 2154 | sigma1s = ratqs(ind1,ind2)*po(ind1)*aenvl |
---|
| 2155 | ENDIF |
---|
[3999] | 2156 | deltasenv=aenvl*vert_alpha*sigma1s |
---|
| 2157 | xenv1=-(senvl+deltasenv)/(sqrt(2.)*sigma1s) |
---|
| 2158 | xenv2=-(senvl-deltasenv)/(sqrt(2.)*sigma1s) |
---|
| 2159 | exp_xenv1 = exp(-1.*xenv1**2) |
---|
| 2160 | exp_xenv2 = exp(-1.*xenv2**2) |
---|
| 2161 | |
---|
| 2162 | !surface CF |
---|
| 2163 | cenv(ind1,ind2)=0.5*(1.-1.*erf(xenv1)) |
---|
| 2164 | |
---|
| 2165 | !volume CF and condensed water |
---|
| 2166 | IntJ=0.5*senvl*(1-erf(xenv2))+(sigma1s/sqrt2pi)*exp_xenv2 |
---|
| 2167 | IntJ_CF=0.5*(1.-1.*erf(xenv2)) |
---|
| 2168 | |
---|
| 2169 | IF (deltasenv .LT. 1.e-10) THEN |
---|
| 2170 | qcenv(ind1,ind2)=IntJ |
---|
| 2171 | cenv_vol(ind1,ind2)=IntJ_CF |
---|
| 2172 | ELSE |
---|
| 2173 | IntI1=(((senvl+deltasenv)**2+(sigma1s)**2)/(8*deltasenv))*(erf(xenv2)-erf(xenv1)) |
---|
| 2174 | IntI2=(sigma1s**2/(4*deltasenv*sqrtpi))*(xenv1*exp_xenv1-xenv2*exp_xenv2) |
---|
| 2175 | IntI3=((sqrt2*sigma1s*(senv+deltasenv))/(4*sqrtpi*deltasenv))*(exp_xenv1-exp_xenv2) |
---|
| 2176 | IntI1_CF=((senvl+deltasenv)*(erf(xenv2)-erf(xenv1)))/(4*deltasenv) |
---|
| 2177 | IntI3_CF=(sqrt2*sigma1s*(exp_xenv1-exp_xenv2))/(4*sqrtpi*deltasenv) |
---|
| 2178 | qcenv(ind1,ind2)=IntJ+IntI1+IntI2+IntI3 ! only liquid water in environment |
---|
| 2179 | cenv_vol(ind1,ind2)=IntJ_CF+IntI1_CF+IntI3_CF |
---|
| 2180 | ENDIF |
---|
| 2181 | |
---|
| 2182 | qcenv(ind1,ind2)=MAX(qcenv(ind1,ind2),0.) |
---|
| 2183 | cenv_vol(ind1,ind2)=MIN(MAX(cenv_vol(ind1,ind2),0.),1.) |
---|
| 2184 | |
---|
| 2185 | |
---|
| 2186 | |
---|
[4072] | 2187 | ! Thermals + environment |
---|
| 2188 | ! ======================= |
---|
[3999] | 2189 | ctot(ind1,ind2)=fraca(ind1,ind2)*cth(ind1,ind2)+(1.-1.*fraca(ind1,ind2))*cenv(ind1,ind2) |
---|
| 2190 | qctot(ind1,ind2)=fraca(ind1,ind2)*qcth(ind1,ind2)+(1.-1.*fraca(ind1,ind2))*qcenv(ind1,ind2) |
---|
| 2191 | ctot_vol(ind1,ind2)=fraca(ind1,ind2)*cth_vol(ind1,ind2)+(1.-1.*fraca(ind1,ind2))*cenv_vol(ind1,ind2) |
---|
| 2192 | IF (qcth(ind1,ind2) .GT. 0) THEN |
---|
[4260] | 2193 | icefrac(ind1,ind2)=fraca(ind1,ind2)*qith(ind1,ind2) & |
---|
| 2194 | /(fraca(ind1,ind2)*qcth(ind1,ind2) & |
---|
| 2195 | +(1.-1.*fraca(ind1,ind2))*qcenv(ind1,ind2)) |
---|
[3999] | 2196 | icefrac(ind1,ind2)=MAX(MIN(1.,icefrac(ind1,ind2)),0.) |
---|
| 2197 | ELSE |
---|
| 2198 | icefrac(ind1,ind2)=0. |
---|
| 2199 | ENDIF |
---|
| 2200 | |
---|
| 2201 | IF (cenv(ind1,ind2).LT.1.e-10.or.cth(ind1,ind2).LT.1.e-10) THEN |
---|
| 2202 | ctot(ind1,ind2)=0. |
---|
| 2203 | ctot_vol(ind1,ind2)=0. |
---|
| 2204 | qincloud(ind1)=0. |
---|
[4072] | 2205 | qcloud(ind1)=zqsatenv(ind1) |
---|
[3999] | 2206 | ELSE |
---|
| 2207 | qcloud(ind1)=fraca(ind1,ind2)*(qcth(ind1,ind2)/cth(ind1,ind2)+qbase) & |
---|
[4072] | 2208 | +(1.-1.*fraca(ind1,ind2))*(qcenv(ind1,ind2)/cenv(ind1,ind2)+qslenv(ind1)) |
---|
[3999] | 2209 | qincloud(ind1)=MAX(fraca(ind1,ind2)*(qcth(ind1,ind2)/cth(ind1,ind2)) & |
---|
| 2210 | +(1.-1.*fraca(ind1,ind2))*(qcenv(ind1,ind2)/cenv(ind1,ind2)),0.) |
---|
| 2211 | ENDIF |
---|
| 2212 | |
---|
| 2213 | ENDIF ! mpc_bl_points |
---|
| 2214 | |
---|
| 2215 | |
---|
| 2216 | ELSE ! gaussian for environment only |
---|
| 2217 | |
---|
| 2218 | |
---|
| 2219 | |
---|
| 2220 | |
---|
[4072] | 2221 | IF (Tbefenvonly(ind1) .GE. RTT) THEN |
---|
[3999] | 2222 | Lv=RLVTT |
---|
| 2223 | ELSE |
---|
| 2224 | Lv=RLSTT |
---|
| 2225 | ENDIF |
---|
| 2226 | |
---|
| 2227 | |
---|
| 2228 | zthl(ind1,ind2)=temp(ind1,ind2)*(101325./paprs(ind1,ind2))**(rdd/cppd) |
---|
[4072] | 2229 | alenv=(0.622*Lv*zqsatenvonly(ind1))/(rdd*zthl(ind1,ind2)**2) |
---|
[3999] | 2230 | aenv=1./(1.+(alenv*Lv/cppd)) |
---|
[4072] | 2231 | senv=aenv*(po(ind1)-zqsatenvonly(ind1)) |
---|
[3999] | 2232 | sth=0. |
---|
| 2233 | |
---|
[4072] | 2234 | sigma1s=ratqs(ind1,ind2)*zqenvonly(ind1) |
---|
[3999] | 2235 | sigma2s=0. |
---|
| 2236 | |
---|
| 2237 | sqrt2pi=sqrt(2.*pi) |
---|
| 2238 | xenv=senv/(sqrt(2.)*sigma1s) |
---|
| 2239 | ctot(ind1,ind2)=0.5*(1.+1.*erf(xenv)) |
---|
| 2240 | ctot_vol(ind1,ind2)=ctot(ind1,ind2) |
---|
| 2241 | qctot(ind1,ind2)=sigma1s*((exp(-1.*xenv**2)/sqrt2pi)+xenv*sqrt(2.)*cenv(ind1,ind2)) |
---|
| 2242 | |
---|
| 2243 | IF (ctot(ind1,ind2).LT.1.e-3) THEN |
---|
| 2244 | ctot(ind1,ind2)=0. |
---|
[4072] | 2245 | qcloud(ind1)=zqsatenvonly(ind1) |
---|
[3999] | 2246 | qincloud(ind1)=0. |
---|
| 2247 | ELSE |
---|
[4072] | 2248 | qcloud(ind1)=qctot(ind1,ind2)/ctot(ind1,ind2)+zqsatenvonly(ind1) |
---|
[3999] | 2249 | qincloud(ind1)=MAX(qctot(ind1,ind2)/ctot(ind1,ind2),0.) |
---|
| 2250 | ENDIF |
---|
| 2251 | |
---|
| 2252 | |
---|
| 2253 | ENDIF ! From the separation (thermal/envrionnement) and (environnement only,) l.335 et l.492 |
---|
| 2254 | |
---|
| 2255 | ! Outputs used to check the PDFs |
---|
| 2256 | cloudth_senv(ind1,ind2) = senv |
---|
| 2257 | cloudth_sth(ind1,ind2) = sth |
---|
| 2258 | cloudth_sigmaenv(ind1,ind2) = sigma1s |
---|
| 2259 | cloudth_sigmath(ind1,ind2) = sigma2s |
---|
| 2260 | |
---|
| 2261 | |
---|
[4114] | 2262 | ENDDO !loop on klon |
---|
[3999] | 2263 | |
---|
[4114] | 2264 | ! Calcule ice fall velocity in thermals |
---|
| 2265 | |
---|
[4118] | 2266 | CALL FALLICE_VELOCITY(klon,qith(:,ind2),Tbefth(:),rhoth(:),paprs(:,ind2),falseklon(:),wiceth(:,ind2)) |
---|
[4114] | 2267 | |
---|
[3999] | 2268 | RETURN |
---|
| 2269 | |
---|
| 2270 | |
---|
| 2271 | END SUBROUTINE cloudth_mpc |
---|
| 2272 | |
---|
| 2273 | !++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++ |
---|
[4118] | 2274 | SUBROUTINE ICE_MPC_BL_CLOUDS(ind1,ind2,klev,Ni,Ei,C_cap,d_top,iflag_topthermals,temp,pres,qth,qsith,qlth,deltazlev,vith,fraca,qith) |
---|
[3999] | 2275 | |
---|
| 2276 | ! parameterization of ice for boundary |
---|
| 2277 | ! layer mixed-phase clouds assuming a stationary system |
---|
| 2278 | ! |
---|
| 2279 | ! Note that vapor deposition on ice crystals and riming of liquid droplets |
---|
| 2280 | ! depend on the ice number concentration Ni |
---|
| 2281 | ! One could assume that Ni depends on qi, e.g., Ni=beta*(qi*rho)**xi |
---|
| 2282 | ! and use values from Hong et al. 2004, MWR for instance |
---|
| 2283 | ! One may also estimate Ni as a function of T, as in Meyers 1922 or Fletcher 1962 |
---|
| 2284 | ! One could also think of a more complex expression of Ni; |
---|
| 2285 | ! function of qi, T, the concentration in aerosols or INP .. |
---|
| 2286 | ! Here we prefer fixing Ni to a tuning parameter |
---|
| 2287 | ! By default we take 2.0L-1=2.0e3m-3, median value from measured vertical profiles near Svalbard |
---|
| 2288 | ! in Mioche et al. 2017 |
---|
| 2289 | ! |
---|
| 2290 | ! |
---|
| 2291 | ! References: |
---|
| 2292 | !------------ |
---|
| 2293 | ! This parameterization is thoroughly described in Vignon et al. |
---|
| 2294 | ! |
---|
| 2295 | ! More specifically |
---|
| 2296 | ! for the Water vapor deposition process: |
---|
| 2297 | ! |
---|
| 2298 | ! Rotstayn, L. D., 1997: A physically based scheme for the treat- |
---|
| 2299 | ! ment of stratiform cloudfs and precipitation in large-scale |
---|
| 2300 | ! models. I: Description and evaluation of the microphysical |
---|
| 2301 | ! processes. Quart. J. Roy. Meteor. Soc., 123, 1227–1282. |
---|
| 2302 | ! |
---|
| 2303 | ! Morrison, H., and A. Gettelman, 2008: A new two-moment bulk |
---|
| 2304 | ! stratiform cloud microphysics scheme in the NCAR Com- |
---|
| 2305 | ! munity Atmosphere Model (CAM3). Part I: Description and |
---|
| 2306 | ! numerical tests. J. Climate, 21, 3642–3659 |
---|
| 2307 | ! |
---|
| 2308 | ! for the Riming process: |
---|
| 2309 | ! |
---|
| 2310 | ! Rutledge, S. A., and P. V. Hobbs, 1983: The mesoscale and micro- |
---|
| 2311 | ! scale structure and organization of clouds and precipitation in |
---|
| 2312 | ! midlatitude cyclones. VII: A model for the ‘‘seeder-feeder’’ |
---|
| 2313 | ! process in warm-frontal rainbands. J. Atmos. Sci., 40, 1185–1206 |
---|
| 2314 | ! |
---|
| 2315 | ! Thompson, G., R. M. Rasmussen, and K. Manning, 004: Explicit |
---|
| 2316 | ! forecasts of winter precipitation using an improved bulk |
---|
| 2317 | ! microphysics scheme. Part I: Description and sensitivityThompson, G., R. M. Rasmussen, and K. Manning, 2004: Explicit |
---|
| 2318 | ! forecasts of winter precipitation using an improved bulk |
---|
| 2319 | ! microphysics scheme. Part I: Description and sensitivity analysis. Mon. Wea. Rev., 132, 519–542 |
---|
| 2320 | ! |
---|
| 2321 | ! For the formation of clouds by thermals: |
---|
| 2322 | ! |
---|
| 2323 | ! Rio, C., & Hourdin, F. (2008). A thermal plume model for the convective boundary layer : Representation of cumulus clouds. Journal of |
---|
| 2324 | ! the Atmospheric Sciences, 65, 407–425. |
---|
| 2325 | ! |
---|
| 2326 | ! Jam, A., Hourdin, F., Rio, C., & Couvreux, F. (2013). Resolved versus parametrized boundary-layer plumes. Part III: Derivation of a |
---|
| 2327 | ! statistical scheme for cumulus clouds. Boundary-layer Meteorology, 147, 421–441. https://doi.org/10.1007/s10546-012-9789-3 |
---|
| 2328 | ! |
---|
| 2329 | ! |
---|
| 2330 | ! |
---|
| 2331 | ! Contact: Etienne Vignon, etienne.vignon@lmd.ipsl.fr |
---|
| 2332 | !============================================================================= |
---|
| 2333 | |
---|
| 2334 | USE ioipsl_getin_p_mod, ONLY : getin_p |
---|
| 2335 | USE phys_state_var_mod, ONLY : fm_therm, detr_therm, entr_therm |
---|
| 2336 | |
---|
| 2337 | IMPLICIT none |
---|
| 2338 | |
---|
| 2339 | INCLUDE "YOMCST.h" |
---|
| 2340 | |
---|
[4072] | 2341 | INTEGER, INTENT(IN) :: ind1,ind2, klev ! horizontal and vertical indices and dimensions |
---|
| 2342 | INTEGER, INTENT(IN) :: iflag_topthermals ! uppermost layer of thermals ? |
---|
| 2343 | REAL, INTENT(IN) :: Ni ! ice number concentration [m-3] |
---|
| 2344 | REAL, INTENT(IN) :: Ei ! ice-droplet collision efficiency |
---|
| 2345 | REAL, INTENT(IN) :: C_cap ! ice crystal capacitance |
---|
| 2346 | REAL, INTENT(IN) :: d_top ! cloud-top ice crystal mixing parameter |
---|
[3999] | 2347 | REAL, DIMENSION(klev), INTENT(IN) :: temp ! temperature [K] within thermals |
---|
| 2348 | REAL, DIMENSION(klev), INTENT(IN) :: pres ! pressure [Pa] |
---|
| 2349 | REAL, DIMENSION(klev), INTENT(IN) :: qth ! mean specific water content in thermals [kg/kg] |
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[4072] | 2350 | REAL, DIMENSION(klev), INTENT(IN) :: qsith ! saturation specific humidity wrt ice in thermals [kg/kg] |
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[3999] | 2351 | REAL, DIMENSION(klev), INTENT(IN) :: qlth ! condensed liquid water in thermals, approximated value [kg/kg] |
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| 2352 | REAL, DIMENSION(klev), INTENT(IN) :: deltazlev ! layer thickness [m] |
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[4118] | 2353 | REAL, DIMENSION(klev), INTENT(IN) :: vith ! ice crystal fall velocity [m/s] |
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[3999] | 2354 | REAL, DIMENSION(klev+1), INTENT(IN) :: fraca ! fraction of the mesh covered by thermals |
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[4072] | 2355 | REAL, DIMENSION(klev), INTENT(INOUT) :: qith ! condensed ice water , thermals [kg/kg] |
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[3999] | 2356 | |
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| 2357 | |
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| 2358 | INTEGER ind2p1,ind2p2 |
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| 2359 | REAL rho(klev) |
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| 2360 | REAL unsurtaudet, unsurtaustardep, unsurtaurim |
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[4072] | 2361 | REAL qi, AA, BB, Ka, Dv, rhoi |
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| 2362 | REAL p0, t0, fp1, fp2 |
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[3999] | 2363 | REAL alpha, flux_term |
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| 2364 | REAL det_term, precip_term, rim_term, dep_term |
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| 2365 | |
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| 2366 | |
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| 2367 | ind2p1=ind2+1 |
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| 2368 | ind2p2=ind2+2 |
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| 2369 | |
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| 2370 | rho=pres/temp/RD ! air density kg/m3 |
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| 2371 | |
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| 2372 | Ka=2.4e-2 ! thermal conductivity of the air, SI |
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| 2373 | p0=101325.0 ! ref pressure |
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| 2374 | T0=273.15 ! ref temp |
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| 2375 | rhoi=500.0 ! cloud ice density following Reisner et al. 1998 |
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| 2376 | alpha=700. ! fallvelocity param |
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| 2377 | |
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| 2378 | |
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[4072] | 2379 | IF (iflag_topthermals .GT. 0) THEN ! uppermost thermals levels |
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[3999] | 2380 | |
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| 2381 | Dv=0.0001*0.211*(p0/pres(ind2))*((temp(ind2)/T0)**1.94) ! water vapor diffusivity in air, SI |
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| 2382 | |
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| 2383 | ! Detrainment term: |
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[4072] | 2384 | |
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[3999] | 2385 | unsurtaudet=detr_therm(ind1,ind2)/rho(ind2)/deltazlev(ind2) |
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| 2386 | |
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| 2387 | |
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| 2388 | ! Deposition term |
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| 2389 | AA=RLSTT/Ka/temp(ind2)*(RLSTT/RV/temp(ind2)-1.) |
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[4072] | 2390 | BB=1./(rho(ind2)*Dv*qsith(ind2)) |
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| 2391 | unsurtaustardep=C_cap*(Ni**0.66)*(qth(ind2)-qsith(ind2))/qsith(ind2) & |
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| 2392 | *4.*RPI/(AA+BB)*(6.*rho(ind2)/rhoi/RPI/Gamma(4.))**(0.33) |
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[3999] | 2393 | |
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| 2394 | ! Riming term neglected at this level |
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| 2395 | !unsurtaurim=rho(ind2)*alpha*3./rhoi/2.*Ei*qlth(ind2)*((p0/pres(ind2))**0.4) |
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| 2396 | |
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[4072] | 2397 | qi=fraca(ind2)*unsurtaustardep/MAX((d_top*unsurtaudet),1E-12) |
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[3999] | 2398 | qi=MAX(qi,0.)**(3./2.) |
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| 2399 | |
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| 2400 | ELSE ! other levels, estimate qi(k) from variables at k+1 and k+2 |
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| 2401 | |
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| 2402 | Dv=0.0001*0.211*(p0/pres(ind2p1))*((temp(ind2p1)/T0)**1.94) ! water vapor diffusivity in air, SI |
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| 2403 | |
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| 2404 | ! Detrainment term: |
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| 2405 | |
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| 2406 | unsurtaudet=detr_therm(ind1,ind2p1)/rho(ind2p1)/deltazlev(ind2p1) |
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| 2407 | det_term=-unsurtaudet*qith(ind2p1)*rho(ind2p1) |
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| 2408 | |
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| 2409 | |
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| 2410 | ! Deposition term |
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| 2411 | |
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| 2412 | AA=RLSTT/Ka/temp(ind2p1)*(RLSTT/RV/temp(ind2p1)-1.) |
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[4072] | 2413 | BB=1./(rho(ind2p1)*Dv*qsith(ind2p1)) |
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[4260] | 2414 | unsurtaustardep=C_cap*(Ni**0.66)*(qth(ind2p1)-qsith(ind2p1)) & |
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| 2415 | /qsith(ind2p1)*4.*RPI/(AA+BB) & |
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| 2416 | *(6.*rho(ind2p1)/rhoi/RPI/Gamma(4.))**(0.33) |
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[4072] | 2417 | dep_term=rho(ind2p1)*fraca(ind2p1)*(qith(ind2p1)**0.33)*unsurtaustardep |
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[3999] | 2418 | |
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| 2419 | ! Riming term |
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| 2420 | |
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| 2421 | unsurtaurim=rho(ind2p1)*alpha*3./rhoi/2.*Ei*qlth(ind2p1)*((p0/pres(ind2p1))**0.4) |
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[4072] | 2422 | rim_term=rho(ind2p1)*fraca(ind2p1)*qith(ind2p1)*unsurtaurim |
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[3999] | 2423 | |
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| 2424 | ! Precip term |
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| 2425 | |
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[4072] | 2426 | ! We assume that there is no solid precipitation outside thermals |
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| 2427 | ! so the precipitation flux within thermals is equal to the precipitation flux |
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| 2428 | ! at mesh-scale divided by thermals fraction |
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| 2429 | |
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| 2430 | fp2=0. |
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| 2431 | fp1=0. |
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| 2432 | IF (fraca(ind2p1) .GT. 0.) THEN |
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[4118] | 2433 | fp2=-qith(ind2p2)*rho(ind2p2)*vith(ind2p2)*fraca(ind2p2)! flux defined positive upward |
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| 2434 | fp1=-qith(ind2p1)*rho(ind2p1)*vith(ind2p1)*fraca(ind2p1) |
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[4072] | 2435 | ENDIF |
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[3999] | 2436 | |
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[4072] | 2437 | precip_term=-1./deltazlev(ind2p1)*(fp2-fp1) |
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| 2438 | |
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[3999] | 2439 | ! Calculation in a top-to-bottom loop |
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| 2440 | |
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| 2441 | IF (fm_therm(ind1,ind2p1) .GT. 0.) THEN |
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[4072] | 2442 | qi= 1./fm_therm(ind1,ind2p1)* & |
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| 2443 | (deltazlev(ind2p1)*(-rim_term-dep_term-det_term-precip_term) + & |
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| 2444 | fm_therm(ind1,ind2p2)*(qith(ind2p1))) |
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| 2445 | END IF |
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[3999] | 2446 | |
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[4072] | 2447 | ENDIF ! top thermals |
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[3999] | 2448 | |
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[4072] | 2449 | qith(ind2)=MAX(0.,qi) |
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| 2450 | |
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[3999] | 2451 | RETURN |
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| 2452 | |
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| 2453 | END SUBROUTINE ICE_MPC_BL_CLOUDS |
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| 2454 | |
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| 2455 | |
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| 2456 | |
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| 2457 | |
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[2686] | 2458 | END MODULE cloudth_mod |
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[3493] | 2459 | |
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| 2460 | |
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| 2461 | |
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| 2462 | |
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