GCC Code Coverage Report
Directory: ./ Exec Total Coverage
File: phylmd/ener_conserv.F90 Lines: 81 140 57.9 %
Date: 2023-06-30 12:56:34 Branches: 146 368 39.7 %

Line Branch Exec Source
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subroutine ener_conserv(klon,klev,pdtphys, &
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 &                      puo,pvo,pto,qx,ivap,iliq,isol, &
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 &                      pun,pvn,ptn,pqn,pqln,pqsn,dtke,masse,exner,d_t_ec)
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!=============================================================
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! Energy conservation
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! Based on the TKE equation
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! The M2 and N2 terms at the origin of TKE production are
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! concerted into heating in the d_t_ec term
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! Option 1 is the standard
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!        101 is for M2 term only
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!        101 for N2 term only
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!         -1 is a previours treatment for kinetic energy only
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!  FH (hourdin@lmd.jussieu.fr), 2013/04/25
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!=============================================================
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!=============================================================
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! Declarations
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!=============================================================
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! From module
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USE phys_local_var_mod, ONLY : d_u_vdf,d_v_vdf,d_t_vdf,d_u_ajs,d_v_ajs,d_t_ajs, &
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 &                             d_u_con,d_v_con,d_t_con,d_t_diss
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USE phys_local_var_mod, ONLY : d_t_eva,d_t_lsc,d_q_eva,d_q_lsc
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USE phys_local_var_mod, ONLY : d_u_oro,d_v_oro,d_u_lif,d_v_lif
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USE phys_local_var_mod, ONLY : du_gwd_hines,dv_gwd_hines,dv_gwd_front,dv_gwd_rando
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USE phys_state_var_mod, ONLY : du_gwd_front,du_gwd_rando
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USE phys_output_var_mod, ONLY : bils_ec,bils_ech,bils_tke,bils_kinetic,bils_enthalp,bils_latent,bils_diss
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USE add_phys_tend_mod, ONLY : fl_cor_ebil
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USE infotrac_phy, ONLY: nqtot
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IMPLICIT none
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INCLUDE "YOMCST.h"
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INCLUDE "YOETHF.h"
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INCLUDE "clesphys.h"
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INCLUDE "compbl.h"
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! Arguments
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INTEGER, INTENT(IN) :: klon,klev
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REAL, INTENT(IN) :: pdtphys
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REAL, DIMENSION(klon,klev), INTENT(IN)      :: puo,pvo,pto
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REAL, DIMENSION(klon,klev,nqtot), INTENT(IN):: qx
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INTEGER, INTENT(IN)                         :: ivap, iliq, isol
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REAL, DIMENSION(klon,klev), INTENT(IN)      :: pun,pvn,ptn,pqn,pqln,pqsn
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REAL, DIMENSION(klon,klev), INTENT(IN)      :: masse,exner
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REAL, DIMENSION(klon,klev+1), INTENT(IN)    :: dtke
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!
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REAL, DIMENSION(klon,klev), INTENT(OUT)     :: d_t_ec
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! Local
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      integer k,i
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REAL, DIMENSION(klon,klev+1) :: fluxu,fluxv,fluxt
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REAL, DIMENSION(klon,klev+1) :: dddu,dddv,dddt
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REAL, DIMENSION(klon,klev) :: d_u,d_v,d_t,zv,zu,d_t_ech, pqo, pql0, pqs0
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REAL ZRCPD
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character*80 abort_message
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character*20 :: modname
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modname='ener_conser'
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11176128
d_t_ec(:,:)=0.
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IF(ivap == 0) CALL abort_physic (modname,'can''t run without water vapour',1)
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IF(iliq == 0) CALL abort_physic (modname,'can''t run without liquid water',1)
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11176128
pqo  = qx(:,:,ivap)
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pql0 = qx(:,:,iliq)
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11176128
IF(isol /= 0) pqs0 = qx(:,:,isol)
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IF (iflag_ener_conserv==-1) THEN
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!+jld ec_conser
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   DO k = 1, klev
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   DO i = 1, klon
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     IF (fl_cor_ebil .GT. 0) then
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       ZRCPD = RCPD*(1.0+RVTMP2*(pqn(i,k)+pqln(i,k)+pqsn(i,k)))
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     ELSE
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       ZRCPD = RCPD*(1.0+RVTMP2*pqn(i,k))
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     ENDIF
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     d_t_ec(i,k)=0.5/ZRCPD &
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 &     *(puo(i,k)**2+pvo(i,k)**2-pun(i,k)**2-pvn(i,k)**2)
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   ENDDO
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   ENDDO
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!-jld ec_conser
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ELSEIF (iflag_ener_conserv>=1) THEN
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   IF (iflag_ener_conserv<=2) THEN
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!     print*,'ener_conserv pbl=',iflag_pbl
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      IF (iflag_pbl>=20 .AND. iflag_pbl<=27) THEN !d_t_diss accounts for conserv
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         d_t(:,:)=d_t_ajs(:,:)   ! d_t_ajs = adjust + thermals
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         d_u(:,:)=d_u_ajs(:,:)+d_u_con(:,:)
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         d_v(:,:)=d_v_ajs(:,:)+d_v_con(:,:)
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      ELSE
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         d_t(:,:)=d_t_vdf(:,:)+d_t_ajs(:,:)   ! d_t_ajs = adjust + thermals
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         d_u(:,:)=d_u_vdf(:,:)+d_u_ajs(:,:)+d_u_con(:,:)
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         d_v(:,:)=d_v_vdf(:,:)+d_v_ajs(:,:)+d_v_con(:,:)
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      ENDIF
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   ELSEIF (iflag_ener_conserv==101) THEN
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      d_t(:,:)=0.
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      d_u(:,:)=d_u_vdf(:,:)+d_u_ajs(:,:)+d_u_con(:,:)
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      d_v(:,:)=d_v_vdf(:,:)+d_v_ajs(:,:)+d_v_con(:,:)
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   ELSEIF (iflag_ener_conserv==110) THEN
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      d_t(:,:)=d_t_vdf(:,:)+d_t_ajs(:,:)
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      d_u(:,:)=0.
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      d_v(:,:)=0.
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   ELSEIF (iflag_ener_conserv==3) THEN
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      d_t(:,:)=0.
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      d_u(:,:)=0.
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      d_v(:,:)=0.
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   ELSEIF (iflag_ener_conserv==4) THEN
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      d_t(:,:)=0.
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      d_u(:,:)=d_u_vdf(:,:)
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      d_v(:,:)=d_v_vdf(:,:)
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   ELSEIF (iflag_ener_conserv==5) THEN
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      d_t(:,:)=d_t_vdf(:,:)
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      d_u(:,:)=d_u_vdf(:,:)
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      d_v(:,:)=d_v_vdf(:,:)
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   ELSEIF (iflag_ener_conserv==6) THEN
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      d_t(:,:)=d_t_vdf(:,:)
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      d_u(:,:)=d_u_vdf(:,:)+d_u_ajs(:,:)
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      d_v(:,:)=d_v_vdf(:,:)+d_v_ajs(:,:)
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   ELSEIF (iflag_ener_conserv==7) THEN
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      d_t(:,:)=d_t_vdf(:,:)+d_t_ajs(:,:)
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      d_u(:,:)=d_u_vdf(:,:)+d_u_ajs(:,:)
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      d_v(:,:)=d_v_vdf(:,:)+d_v_ajs(:,:)
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   ELSEIF (iflag_ener_conserv==8) THEN
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      d_t(:,:)=d_t_vdf(:,:)
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      d_u(:,:)=d_u_vdf(:,:)+d_u_ajs(:,:)+d_u_con(:,:)
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      d_v(:,:)=d_v_vdf(:,:)+d_v_ajs(:,:)+d_v_con(:,:)
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   ELSEIF (iflag_ener_conserv==9) THEN
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      d_t(:,:)=d_t_vdf(:,:)
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      d_u(:,:)=d_u_vdf(:,:)+d_u_ajs(:,:)+d_u_con(:,:)+d_u_oro(:,:)
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      d_v(:,:)=d_v_vdf(:,:)+d_v_ajs(:,:)+d_v_con(:,:)+d_v_oro(:,:)
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   ELSEIF (iflag_ener_conserv==10) THEN
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      d_t(:,:)=d_t_vdf(:,:)
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      d_u(:,:)=d_u_vdf(:,:)+d_u_ajs(:,:)+d_u_con(:,:)+d_u_oro(:,:)+d_u_lif(:,:)
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      d_v(:,:)=d_v_vdf(:,:)+d_v_ajs(:,:)+d_v_con(:,:)+d_v_oro(:,:)+d_v_lif(:,:)
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   ELSEIF (iflag_ener_conserv==11) THEN
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      d_t(:,:)=d_t_vdf(:,:)
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      d_u(:,:)=d_u_vdf(:,:)+d_u_ajs(:,:)+d_u_con(:,:)+d_u_oro(:,:)+d_u_lif(:,:)
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      d_v(:,:)=d_v_vdf(:,:)+d_v_ajs(:,:)+d_v_con(:,:)+d_v_oro(:,:)+d_v_lif(:,:)
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      IF (ok_hines) THEN
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         d_u_vdf(:,:)=d_u_vdf(:,:)+du_gwd_hines(:,:)
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         d_v_vdf(:,:)=d_v_vdf(:,:)+dv_gwd_hines(:,:)
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      ENDIF
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      IF (.not. ok_hines .and. ok_gwd_rando) THEN
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         d_u_vdf(:,:)=d_u_vdf(:,:)+du_gwd_front(:,:)
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         d_v_vdf(:,:)=d_v_vdf(:,:)+dv_gwd_front(:,:)
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      ENDIF
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      IF (ok_gwd_rando) THEN
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         d_u_vdf(:,:)=d_u_vdf(:,:)+du_gwd_rando(:,:)
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         d_v_vdf(:,:)=d_v_vdf(:,:)+dv_gwd_rando(:,:)
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      ENDIF
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   ELSE
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      abort_message = 'iflag_ener_conserv non prevu'
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      CALL abort_physic (modname,abort_message,1)
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   ENDIF
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!----------------------------------------------------------------------------
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! Two options wether we consider time integration in the energy conservation
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!----------------------------------------------------------------------------
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   if (iflag_ener_conserv==2) then
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      zu(:,:)=puo(:,:)
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      zv(:,:)=pvo(:,:)
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   else
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      IF (iflag_pbl>=20 .AND. iflag_pbl<=27) THEN
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         zu(:,:)=puo(:,:)+d_u_vdf(:,:)+0.5*d_u(:,:)
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         zv(:,:)=pvo(:,:)+d_v_vdf(:,:)+0.5*d_v(:,:)
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      ELSE
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         zu(:,:)=puo(:,:)+0.5*d_u(:,:)
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         zv(:,:)=pvo(:,:)+0.5*d_v(:,:)
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      ENDIF
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   endif
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   fluxu(:,klev+1)=0.
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   fluxv(:,klev+1)=0.
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   fluxt(:,klev+1)=0.
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   do k=klev,1,-1
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      fluxu(:,k)=fluxu(:,k+1)+masse(:,k)*d_u(:,k)
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      fluxv(:,k)=fluxv(:,k+1)+masse(:,k)*d_v(:,k)
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      fluxt(:,k)=fluxt(:,k+1)+masse(:,k)*d_t(:,k)/exner(:,k)
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   enddo
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   dddu(:,1)=2*zu(:,1)*fluxu(:,1)
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   dddv(:,1)=2*zv(:,1)*fluxv(:,1)
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   dddt(:,1)=(exner(:,1)-1.)*fluxt(:,1)
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   do k=2,klev
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10889280
      dddu(:,k)=(zu(:,k)-zu(:,k-1))*fluxu(:,k)
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10889280
      dddv(:,k)=(zv(:,k)-zv(:,k-1))*fluxv(:,k)
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10889568
      dddt(:,k)=(exner(:,k)-exner(:,k-1))*fluxt(:,k)
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   enddo
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286560
   dddu(:,klev+1)=0.
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286560
   dddv(:,klev+1)=0.
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286560
   dddt(:,klev+1)=0.
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   do k=1,klev
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11175840
      d_t_ech(:,k)=-(rcpd*(dddt(:,k)+dddt(:,k+1)))/(2.*rcpd*masse(:,k))
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11176128
      d_t_ec(:,k)=-(dddu(:,k)+dddu(:,k+1)+dddv(:,k)+dddv(:,k+1))/(2.*rcpd*masse(:,k))+d_t_ech(:,k)
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   enddo
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ENDIF
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!================================================================
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!  Computation of integrated enthalpie and kinetic energy variation
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!  FH (hourdin@lmd.jussieu.fr), 2013/04/25
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!  bils_ec : energie conservation term
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!  bils_ech : part of this term linked to temperature
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!  bils_tke : change of TKE
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!  bils_diss : dissipation of TKE (when activated)
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!  bils_kinetic : change of kinetic energie of the column
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!  bils_enthalp : change of enthalpie
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!  bils_latent  : change of latent heat. Computed between
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!          after reevaporation (at the beginning of the physics)
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!          and before large scale condensation (fisrtilp)
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!================================================================
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286560
      bils_ec(:)=0.
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      bils_ech(:)=0.
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286560
      bils_tke(:)=0.
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      bils_diss(:)=0.
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      bils_kinetic(:)=0.
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286560
      bils_enthalp(:)=0.
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286560
      bils_latent(:)=0.
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      DO k=1,klev
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11175840
        bils_ec(:)=bils_ec(:)-d_t_ec(:,k)*masse(:,k)
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11175840
        bils_diss(:)=bils_diss(:)-d_t_diss(:,k)*masse(:,k)
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        bils_kinetic(:)=bils_kinetic(:)+masse(:,k)* &
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     &           (pun(:,k)*pun(:,k)+pvn(:,k)*pvn(:,k) &
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11175840
     &            -puo(:,k)*puo(:,k)-pvo(:,k)*pvo(:,k))
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        bils_enthalp(:)= &
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11175840
     &  bils_enthalp(:)+masse(:,k)*(ptn(:,k)-pto(:,k)+d_t_ec(:,k)-d_t_eva(:,k)-d_t_lsc(:,k))
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!    &  bils_enthalp(:)+masse(:,k)*(ptn(:,k)-pto(:,k)+d_t_ec(:,k))
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        bils_latent(:)=bils_latent(:)+masse(:,k)* &
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!    &             (pqn(:,k)-pqo(:,k))
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11176128
     &             (pqn(:,k)-pqo(:,k)-d_q_eva(:,k)-d_q_lsc(:,k))
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      ENDDO
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286560
      bils_ec(:)=rcpd*bils_ec(:)/pdtphys
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286560
      bils_diss(:)=rcpd*bils_diss(:)/pdtphys
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286560
      bils_kinetic(:)= 0.5*bils_kinetic(:)/pdtphys
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286560
      bils_enthalp(:)=rcpd*bils_enthalp(:)/pdtphys
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286560
      bils_latent(:)=rlvtt*bils_latent(:)/pdtphys
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!jyg<
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      IF (iflag_pbl > 1) THEN
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11520
        DO k=1,klev
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11176128
          bils_tke(:)=bils_tke(:)+0.5*(dtke(:,k)+dtke(:,k+1))*masse(:,k)
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        ENDDO
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286560
        bils_tke(:)=bils_tke(:)/pdtphys
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      ENDIF  ! (iflag_pbl > 1)
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!>jyg
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IF (iflag_ener_conserv>=1) THEN
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286560
      bils_ech(:)=0.
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11520
      DO k=1,klev
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11176128
        bils_ech(:)=bils_ech(:)-d_t_ech(:,k)*masse(:,k)
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      ENDDO
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286560
      bils_ech(:)=rcpd*bils_ech(:)/pdtphys
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ENDIF
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RETURN
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END