1 | SUBROUTINE reevap (klon,klev,iflag_ice_thermo,t_seri,q_seri,ql_seri,qs_seri, & |
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2 | & d_t_eva,d_q_eva,d_ql_eva,d_qs_eva) |
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3 | |
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4 | |
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5 | IMPLICIT none |
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6 | !>====================================================================== |
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7 | |
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8 | INTEGER klon,klev,iflag_ice_thermo |
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9 | REAL, DIMENSION(klon,klev), INTENT(in) :: t_seri,q_seri,ql_seri,qs_seri |
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10 | REAL, DIMENSION(klon,klev), INTENT(out) :: d_t_eva,d_q_eva,d_ql_eva,d_qs_eva |
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11 | |
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12 | REAL za,zb,zdelta,zlvdcp,zlsdcp |
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13 | INTEGER i,k |
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14 | |
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15 | !--------Stochastic Boundary Layer Triggering: ALE_BL-------- |
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16 | !---Propri\'et\'es du thermiques au LCL |
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17 | include "YOMCST.h" |
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18 | include "YOETHF.h" |
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19 | include "FCTTRE.h" |
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20 | !IM 100106 BEG : pouvoir sortir les ctes de la physique |
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21 | ! |
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22 | ! Re-evaporer l'eau liquide nuageuse |
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23 | ! |
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24 | |
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25 | DO k = 1, klev ! re-evaporation de l'eau liquide nuageuse |
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26 | DO i = 1, klon |
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27 | zlvdcp=RLVTT/RCPD/(1.0+RVTMP2*q_seri(i,k)) |
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28 | !jyg< |
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29 | ! Attention : Arnaud a propose des formules completement differentes |
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30 | ! A verifier !!! |
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31 | zlsdcp=RLSTT/RCPD/(1.0+RVTMP2*q_seri(i,k)) |
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32 | IF (iflag_ice_thermo .EQ. 0) THEN |
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33 | zlsdcp=zlvdcp |
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34 | ENDIF |
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35 | !>jyg |
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36 | |
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37 | IF (iflag_ice_thermo.eq.0) THEN |
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38 | !pas necessaire a priori |
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39 | |
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40 | zdelta = MAX(0.,SIGN(1.,RTT-t_seri(i,k))) |
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41 | zb = MAX(0.0,ql_seri(i,k)) |
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42 | za = - MAX(0.0,ql_seri(i,k)) & |
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43 | * (zlvdcp*(1.-zdelta)+zlsdcp*zdelta) |
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44 | d_t_eva(i,k) = za |
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45 | d_q_eva(i,k) = zb |
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46 | d_ql_eva(i,k) = -ql_seri(i,k) |
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47 | d_qs_eva(i,k) = 0. |
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48 | |
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49 | ELSE |
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50 | |
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51 | !CR: on r\'e-\'evapore eau liquide et glace |
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52 | |
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53 | ! zdelta = MAX(0.,SIGN(1.,RTT-t_seri(i,k))) |
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54 | ! zb = MAX(0.0,ql_seri(i,k)) |
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55 | ! za = - MAX(0.0,ql_seri(i,k)) & |
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56 | ! * (zlvdcp*(1.-zdelta)+zlsdcp*zdelta) |
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57 | zb = MAX(0.0,ql_seri(i,k)+qs_seri(i,k)) |
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58 | za = - MAX(0.0,ql_seri(i,k))*zlvdcp & |
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59 | - MAX(0.0,qs_seri(i,k))*zlsdcp |
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60 | d_t_eva(i,k) = za |
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61 | d_q_eva(i,k) = zb |
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62 | d_ql_eva(i,k) = -ql_seri(i,k) |
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63 | d_qs_eva(i,k) = -qs_seri(i,k) |
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64 | ENDIF |
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65 | |
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66 | ENDDO |
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67 | ENDDO |
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68 | |
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69 | RETURN |
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70 | |
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71 | END SUBROUTINE reevap |
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