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!MNH_LIC Copyright 1994-2024 CNRS, Meteo-France and Universite Paul Sabatier
!MNH_LIC This is part of the Meso-NH software governed by the CeCILL-C licence
!MNH_LIC version 1. See LICENSE, CeCILL-C_V1-en.txt and CeCILL-C_V1-fr.txt
!MNH_LIC for details. version 1.
!-----------------------------------------------------------------
! ####################
MODULE MODE_PRANDTL
USE YOMHOOK , ONLY : LHOOK, DR_HOOK, JPHOOK
! ####################
!
!* modification 08/2010 V. Masson smoothing of the discontinuity in functions
! used for implicitation of exchange coefficients
! 05/2020 V. Masson and C. Lac : bug in D_PHI3DTDZ2_O_DDTDZ

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! 06/2023 S. Riette add the LSMOOTH_PRANDTL key

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USE MODD_CTURB, ONLY : CSTURB_t
USE MODD_TURB_n, ONLY : TURB_t
USE MODD_DIMPHYEX, ONLY : DIMPHYEX_t

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USE MODD_PARAMETERS, ONLY : JPVEXT_TURB
USE MODE_SHUMAN_PHY, ONLY: MZM_PHY,MZF_PHY

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USE MODE_GRADIENT_M_PHY
IMPLICIT NONE
!----------------------------------------------------------------------------
CONTAINS
!----------------------------------------------------------------------------
SUBROUTINE PRANDTL(D,CST,CSTURB,TURBN,KRR,KSV,KRRI,OTURB_DIAG,&
HTURBDIM,OOCEAN,OHARAT,O2D,OCOMPUTE_SRC,&

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TPFILE, OFLAT, &
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PDXX,PDYY,PDZZ,PDZX,PDZY, &
PTHVREF,PLOCPEXNM,PATHETA,PAMOIST, &
PLM,PLEPS,PTKEM,PTHLM,PRM,PSVM,PSRCM, &
PREDTH1,PREDR1, &
PRED2TH3, PRED2R3, PRED2THR3, &
PREDS1,PRED2THS3, PRED2RS3, &
PBLL_O_E, &
PETHETA, PEMOIST )
! ###########################################################
!
!
!!**** *PRANDTL* - routine to compute the Prandtl turbulent numbers
!!
!! PURPOSE
!! -------
! The purpose of this routine is to compute the Redelsperger
! numbers and then get the turbulent Prandtl and Schmidt numbers:
! * for the heat fluxes - PHI3 = 1/ Prandtl
! * for the moisture fluxes - PSI3 = 1/ Schmidt
!
!!** METHOD
!! ------
!! The following steps are performed:
!!
!! 1 - default values of 1 are taken for phi3 and psi3 and different masks
!! are defined depending on the presence of turbulence, stratification and
!! humidity. The 1D Redelsperger numbers are computed
!! * ZREDTH1 : (g / THVREF ) (LT**2 / TKE ) ETHETA (D Theta / Dz)
!! * ZREDR1 : (g / THVREF ) (LT**2 / TKE ) EMOIST (D TW / Dz)
!! 2 - 3D Redelsperger numbers are computed only for turbulent
!! grid points where ZREDTH1 or ZREDR1 are > 0.
!! 3 - PHI3 is computed only for turbulent grid points where ZREDTH1 > 0
!! (turbulent thermally stratified points)
!! 4 - PSI3 is computed only for turbulent grid points where ZREDR1 > 0
!! (turbulent moist points)
!!
!!
!! EXTERNAL
!! --------
!! FUNCTIONs ETHETA and EMOIST :
!! allows to compute the coefficients
!! for the turbulent correlation between any variable
!! and the virtual potential temperature, of its correlations
!! with the conservative potential temperature and the humidity
!! conservative variable:
!! ------- ------- -------
!! A' Thv' = ETHETA A' Thl' + EMOIST A' Rnp'
!!
!! GX_M_M, GY_M_M, GZ_M_M : Cartesian gradient operators
!! MZM : Shuman function (mean operator in the z direction)
!! Module MODI_ETHETA : interface module for ETHETA
!! Module MODI_EMOIST : interface module for EMOIST
!! Module MODI_SHUMAN : interface module for Shuman operators
!!
!! IMPLICIT ARGUMENTS
!! ------------------
!! Module MODD_CST : contains physical constants

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!! CST%XG : gravity constant
!!
!! Module MODD_CTURB: contains the set of constants for
!! the turbulence scheme
!! TURBN%XCTV,XCPR2 : constants for the turbulent prandtl numbers
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!! XTKEMIN : minimum value allowed for the TKE
!!
!! Module MODD_PARAMETERS
!! JPVEXT_TURB : number of vertical marginal points
!!
!! REFERENCE
!! ---------
!! Book 2 of documentation (routine PRANDTL)
!! Book 1 of documentation (Chapter: Turbulence)
!!
!! AUTHOR
!! ------
!! Joan Cuxart * INM and Meteo-France *
!!
!! MODIFICATIONS
!! -------------
!! Original 18/10/94
!! Modifications: Feb 14, 1995 (J.Cuxart and J.Stein)
!! Doctorization and Optimization
!! Modifications: March 21, 1995 (J.M. Carriere)
!! Introduction of cloud water
!! Modifications: March 21, 1995 (J. Cuxart and J.Stein)
!! Phi3 and Psi3 at w point + cleaning
!! Modifications: July 2, 1995 (J.Cuxart and Ph.Bougeault)
!! change the value of Phi3 and Psi3 if negative
!! Modifications: Sept 20, 1995 (J. Stein, J. Cuxart, J.L. Redelsperger)
!! remove the Where + use REDTH1+REDR1 for the tests
!! Modifications: October 10, 1995 (J. Cuxart and J.Stein)
!! Psi3 for tPREDS1he scalar variables
!! Modifications: February 27, 1996 (J.Stein) optimization
!! Modifications: June 15, 1996 (P.Jabouille) return to the previous
!! computation of Phi3 and Psi3
!! Modifications: October 10, 1996 (J. Stein) change the temporal
!! discretization
!! Modifications: May 23, 1997 (J. Stein) bug in 3D Redels number at ground
!! with orography
!! Modifications: Feb 20, 1998 (J. Stein) bug in all the 3D cases due to
!! the use of ZW1 instead of ZW2
!! Feb 20, 2003 (JP Pinty) Add PFRAC_ICE
!! July 2005 (Tomas, Masson) implicitation of PHI3 and PSI3
!! October 2009 (G. Tanguy) add ILENCH=LEN(YCOMMENT) after
!! change of YCOMMENT
!! 2012-02 Y. Seity, add possibility to run with reversed
!! vertical levels

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!! Modifications: July 2015 (Wim de Rooy) OHARAT (Racmo turbulence) switch
!! 2017-09 J.Escobar, use epsilon XMNH_TINY_12 for R*4
!! Philippe Wautelet: 05/2016-04/2018: new data structures and calls for I/O
!! JL Redelsperger 03/2021 : adding Ocean case for temperature only
!! --------------------------------------------------------------------------
!
!* 0. DECLARATIONS
! ------------
!
!
USE MODD_CST, ONLY: CST_t
USE MODD_CTURB, ONLY: CSTURB_t
USE MODD_DIMPHYEX, ONLY: DIMPHYEX_t
USE MODD_FIELD, ONLY: TFIELDMETADATA, TYPEREAL
USE MODD_TURB_n, ONLY: TURB_t
USE MODD_IO, ONLY: TFILEDATA
!
USE MODE_EMOIST, ONLY: EMOIST
USE MODE_ETHETA, ONLY: ETHETA

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USE MODE_GRADIENT_M_PHY, ONLY: GX_M_M_PHY, GY_M_M_PHY

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USE MODE_IO_FIELD_WRITE_PHY, ONLY: IO_FIELD_WRITE_PHY
!
IMPLICIT NONE
!
!
!* 0.1 declarations of arguments
!
TYPE(DIMPHYEX_t), INTENT(IN) :: D

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TYPE(CST_t), INTENT(IN) :: CST
TYPE(CSTURB_t), INTENT(IN) :: CSTURB
TYPE(TURB_t), INTENT(IN) :: TURBN
INTEGER, INTENT(IN) :: KSV ! number of scalar variables
INTEGER, INTENT(IN) :: KRR ! number of moist var.
INTEGER, INTENT(IN) :: KRRI ! number of ice var.
!
LOGICAL, INTENT(IN) :: OTURB_DIAG ! switch to write some
! diagnostic fields in the syncronous FM-file
LOGICAL, INTENT(IN) :: OOCEAN ! switch for Ocean model version

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LOGICAL, INTENT(IN) :: OHARAT
LOGICAL, INTENT(IN) :: OCOMPUTE_SRC ! flag to define dimensions of SIGS and
LOGICAL, INTENT(IN) :: O2D ! Logical for 2D model version (modd_conf)

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LOGICAL, INTENT(IN) :: OFLAT ! Logical for zero ororography
CHARACTER(LEN=4), INTENT(IN) :: HTURBDIM ! Kind of turbulence param.
TYPE(TFILEDATA), INTENT(IN) :: TPFILE ! Output file
REAL, DIMENSION(D%NIJT,D%NKT), INTENT(IN) :: PDXX,PDYY,PDZZ,PDZX,PDZY
! metric coefficients
!
REAL, DIMENSION(D%NIJT,D%NKT), INTENT(IN) :: PTHVREF ! Virtual Potential Temp.
! of the reference state
REAL, DIMENSION(D%NIJT,D%NKT), INTENT(IN) :: PLOCPEXNM ! Lv(T)/Cp/Exner at t-1
REAL, DIMENSION(D%NIJT,D%NKT), INTENT(IN) :: PATHETA ! coefficients between
REAL, DIMENSION(D%NIJT,D%NKT), INTENT(IN) :: PAMOIST ! s and Thetal and Rnp
!
REAL, DIMENSION(D%NIJT,D%NKT), INTENT(IN) :: PLM ! Turbulent Mixing length
REAL, DIMENSION(D%NIJT,D%NKT), INTENT(IN) :: PLEPS ! Dissipative length
REAL, DIMENSION(D%NIJT,D%NKT), INTENT(IN) :: PTHLM,PTKEM! Conservative Potential
! Temperature and TKE at t-1
REAL, DIMENSION(D%NIJT,D%NKT,KRR), INTENT(IN) :: PRM ! Mixing ratios at t-1
! with PRM(:,:,:,1) = cons.
! mixing ratio
REAL, DIMENSION(D%NIJT,D%NKT,KSV), INTENT(IN) :: PSVM ! Scalars at t-1
REAL, DIMENSION(MERGE(D%NIT,0,OCOMPUTE_SRC),&
MERGE(D%NJT,0,OCOMPUTE_SRC),&
MERGE(D%NKT,0,OCOMPUTE_SRC)), INTENT(IN) :: PSRCM
! s'r'c/2Sigma_s2 at t-1 multiplied by Lambda_3
!
!
REAL, DIMENSION(D%NIJT,D%NKT), INTENT(OUT) :: PREDTH1 ! Redelsperger number R_theta
REAL, DIMENSION(D%NIJT,D%NKT), INTENT(OUT) :: PREDR1 ! Redelsperger number R_q
REAL, DIMENSION(D%NIJT,D%NKT), INTENT(OUT) :: PRED2TH3 ! Redelsperger number R*2_theta
REAL, DIMENSION(D%NIJT,D%NKT), INTENT(OUT) :: PRED2R3 ! Redelsperger number R*2_q
REAL, DIMENSION(D%NIJT,D%NKT), INTENT(OUT) :: PRED2THR3! Redelsperger number R*2_thq
REAL, DIMENSION(D%NIJT,D%NKT,KSV), INTENT(OUT):: PREDS1 ! Redelsperger number R_s
REAL, DIMENSION(D%NIJT,D%NKT,KSV), INTENT(OUT):: PRED2THS3! Redelsperger number R*2_thsv
REAL, DIMENSION(D%NIJT,D%NKT,KSV), INTENT(OUT):: PRED2RS3 ! Redelsperger number R*2_qsv
REAL, DIMENSION(D%NIJT,D%NKT), INTENT(OUT) :: PBLL_O_E! beta*Lk*Leps/tke
REAL, DIMENSION(D%NIJT,D%NKT), INTENT(OUT) :: PETHETA ! coefficient E_theta
REAL, DIMENSION(D%NIJT,D%NKT), INTENT(OUT) :: PEMOIST ! coefficient E_moist
!
!
! 0.2 declaration of local variables
!
REAL, DIMENSION(D%NIJT,D%NKT) :: &
! working variables
ZWORK1,ZWORK2,ZWORK3,ZWORK4, &

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ZGXMM_PTH,ZGYMM_PTH,ZGXMM_PRM,ZGYMM_PRM, ZGXMM_PSV,ZGYMM_PSV
! working variables for explicit array
!
INTEGER :: IKB ! vertical index value for the first inner mass point
INTEGER :: IKE ! vertical index value for the last inner mass point
INTEGER:: JSV,JIJ,JK ! loop index
INTEGER :: IIJB,IIJE,IKT,IKA,IKL
REAL :: ZMINVAL
TYPE(TFIELDMETADATA) :: TZFIELD
! ---------------------------------------------------------------------------
!
!* 1. DEFAULT VALUES, 1D REDELSPERGER NUMBERS
! ----------------------------------------
!
REAL(KIND=JPHOOK) :: ZHOOK_HANDLE
IF (LHOOK) CALL DR_HOOK('PRANDTL',0,ZHOOK_HANDLE)

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IF (OHARAT) THEN
PREDTH1(:,:)=0.
PREDR1(:,:)=0.
PRED2TH3(:,:)=0.
PRED2R3(:,:)=0.
PRED2THR3(:,:)=0.
PREDS1(:,:,:)=0.
PRED2THS3(:,:,:)=0.
PRED2RS3(:,:,:)=0.
PBLL_O_E(:,:)=0.
ENDIF
!

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IKB=D%NKTB
IKE=D%NKTE
IIJE=D%NIJE
IIJB=D%NIJB
IKT=D%NKT
IKA=D%NKA
IKL=D%NKL

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!
CALL ETHETA(D,CST,KRR,KRRI,PTHLM,PRM,PLOCPEXNM,PATHETA,PSRCM,OOCEAN,OCOMPUTE_SRC,ZWORK1)
CALL EMOIST(D,CST,KRR,KRRI,PTHLM,PRM,PLOCPEXNM,PAMOIST,PSRCM,OOCEAN,ZWORK2)

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CALL MZM_PHY(D,ZWORK1,PETHETA)
CALL MZM_PHY(D,ZWORK2,PEMOIST)
!$mnh_expand_array(JIJ=IIJB:IIJE)

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PETHETA(:,IKA) = 2.*PETHETA(:,IKB) - PETHETA(:,IKB+IKL)
PEMOIST(:,IKA) = 2.*PEMOIST(:,IKB) - PEMOIST(:,IKB+IKL)
!$mnh_end_expand_array(JIJ=IIJB:IIJE)
!
!---------------------------------------------------------------------------

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IF (.NOT. OHARAT) THEN
!
! 1.3 1D Redelsperger numbers
!

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IF (OOCEAN) THEN
!$mnh_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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ZWORK1(:,:) = CST%XG * CST%XALPHAOC * PLM(:,:) &
* PLEPS(:,:) / PTKEM(:,:)
!$mnh_end_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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ELSE
!$mnh_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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ZWORK1(:,:) = CST%XG / PTHVREF(:,:) * PLM(:,:) &
* PLEPS(:,:) / PTKEM(:,:)
!$mnh_end_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)
END IF
!

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CALL MZM_PHY(D,ZWORK1,PBLL_O_E)
CALL GZ_M_W_PHY(D,PTHLM,PDZZ,ZWORK1)
!
IF (OOCEAN) THEN
!$mnh_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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PREDTH1(:,:)= TURBN%XCTV*PBLL_O_E(:,:)*ZWORK1(:,:)
!$mnh_end_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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ELSE
IF (KRR /= 0) THEN ! moist case
CALL GZ_M_W_PHY(D,PRM(:,:,1),PDZZ,ZWORK2)
!$mnh_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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PREDTH1(:,:)= TURBN%XCTV*PBLL_O_E(:,:) * PETHETA(:,:) &
* ZWORK1(:,:)
PREDR1(:,:) = TURBN%XCTV*PBLL_O_E(:,:) * PEMOIST(:,:) &
* ZWORK2(:,:)
!$mnh_end_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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ELSE ! dry case
!$mnh_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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PREDTH1(:,:)= TURBN%XCTV*PBLL_O_E(:,:) * ZWORK1(:,:)
PREDR1(:,:) = 0.
!$mnh_end_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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END IF
END IF
!
! 3. Limits on 1D Redelperger numbers
! --------------------------------
!

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ZMINVAL = (1.-1./CSTURB%XPHI_LIM)
!
DO JK=1,IKT
DO JIJ=IIJB,IIJE
ZW1(JIJ,JK) = 1.
ZW2(JIJ,JK) = 1.
IF (PREDTH1(JIJ,JK)+PREDR1(JIJ,JK)<-ZMINVAL)THEN
ZW1(JIJ,JK) = (-ZMINVAL) / (PREDTH1(JIJ,JK)+PREDR1(JIJ,JK))
IF (PREDTH1(JIJ,JK)<-ZMINVAL)THEN
ZW2(JIJ,JK) = (-ZMINVAL) / (PREDTH1(JIJ,JK))
ZW2(JIJ,JK) = MIN(ZW1(JIJ,JK),ZW2(JIJ,JK))
ZW1(JIJ,JK) = 1.
IF (PREDR1(JIJ,JK)<-ZMINVAL)THEN
ZW1(JIJ,JK) = (-ZMINVAL) / (PREDR1(JIJ,JK))
ZW1(JIJ,JK) = MIN(ZW2(JIJ,JK),ZW1(JIJ,JK))
!
!
! 3. Modification of Mixing length and dissipative length
! ----------------------------------------------------
!
PBLL_O_E(JIJ,JK) = PBLL_O_E(JIJ,JK) * ZW1(JIJ,JK)
PREDTH1(JIJ,JK) = PREDTH1(JIJ,JK) * ZW1(JIJ,JK)
PREDR1(JIJ,JK) = PREDR1(JIJ,JK) * ZW1(JIJ,JK)
!
! 4. Threshold for very small (in absolute value) Redelperger numbers
! ----------------------------------------------------------------
!
IF(PREDTH1(JIJ,JK) < 0.) THEN
ZW2(JIJ,JK)=-1.

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PREDTH1(JIJ,JK)= ZW2(JIJ,JK) * MAX(CST%XMNH_TINY_12, ZW2(JIJ,JK)*PREDTH1(JIJ,JK))
!
IF (KRR /= 0) THEN ! moist case
IF(PREDR1(JIJ,JK) < 0.) THEN
ZW2(JIJ,JK)=-1.

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PREDR1(JIJ,JK)= ZW2(JIJ,JK) * MAX(CST%XMNH_TINY_12, ZW2(JIJ,JK)*PREDR1(JIJ,JK))
END IF
ENDDO
ENDDO
!
!
!---------------------------------------------------------------------------
!
! For the scalar variables

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DO JSV=1,KSV
CALL GZ_M_W_PHY(D,PSVM(:,:,JSV),PDZZ,ZWORK1)
!$mnh_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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PREDS1(:,:,JSV)=TURBN%XCTV*PBLL_O_E(:,:)*ZWORK1(:,:)
!$mnh_end_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)
END DO
!

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DO JSV=1,KSV
DO JK=1,IKT
DO JIJ=IIJB,IIJE
IF(PREDS1(JIJ,JK,JSV) < 0.) THEN
ZW2(JIJ,JK)=-1.

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PREDS1(JIJ,JK,JSV)= ZW2(JIJ,JK) * MAX(CST%XMNH_TINY_12, ZW2(JIJ,JK)*PREDS1(JIJ,JK,JSV))
ENDDO
ENDDO
ENDDO
!
!---------------------------------------------------------------------------
!
!* 2. 3D REDELSPERGER NUMBERS
! ------------------------
!
IF(HTURBDIM=='1DIM') THEN ! 1D case
!
!
!$mnh_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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PRED2TH3(:,:) = PREDTH1(:,:)**2
!

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PRED2R3(:,:) = PREDR1(:,:) **2
!

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PRED2THR3(:,:) = PREDTH1(:,:) * PREDR1(:,:)
!$mnh_end_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)
!

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ELSE IF (O2D) THEN ! 3D case in a 2D model
!

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CALL GX_M_M_PHY(D,OFLAT,PTHLM,PDXX,PDZZ,PDZX,ZGXMM_PTH)
!$mnh_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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ZWORK1(:,:) = ZGXMM_PTH(:,:)**2
!$mnh_end_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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CALL MZM_PHY(D,ZWORK1,ZWORK2)
!
IF (KRR /= 0) THEN ! moist 3D case
CALL GX_M_M_PHY(D,OFLAT,PRM(:,:,1),PDXX,PDZZ,PDZX,ZGXMM_PRM)
!$mnh_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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ZWORK1(:,:) = ZGXMM_PRM(:,:)**2
!$mnh_end_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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CALL MZM_PHY(D,ZWORK1,ZWORK3)
!
!$mnh_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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ZWORK1(:,:) = ZGXMM_PTH(:,:) * ZGXMM_PRM(:,:)
!$mnh_end_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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CALL MZM_PHY(D,ZWORK1,ZWORK4)
!
!$mnh_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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PRED2TH3(:,:)= PREDTH1(:,:)**2+(TURBN%XCTV*PBLL_O_E(:,:) &
*PETHETA(:,:) )**2 * ZWORK2(:,:)
!

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PRED2R3(:,:)= PREDR1(:,:)**2 + (TURBN%XCTV*PBLL_O_E(:,:) &
* PEMOIST(:,:))**2 * ZWORK3(:,:)
!

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PRED2THR3(:,:)= PREDR1(:,:) * PREDTH1(:,:) + TURBN%XCTV**2 &
* PBLL_O_E(:,:)**2 &
* PEMOIST(:,:) * PETHETA(:,:) &
* ZWORK4(:,:)
!$mnh_end_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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PRED2TH3(:,IKB)=PRED2TH3(:,IKB+IKL)
PRED2R3(:,IKB)=PRED2R3(:,IKB+IKL)
PRED2THR3(:,IKB)=PRED2THR3(:,IKB+IKL)
!
ELSE ! dry 3D case in a 2D model
!$mnh_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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PRED2TH3(:,:) = PREDTH1(:,:)**2 + TURBN%XCTV**2 &
* PBLL_O_E(:,:)**2 * ZWORK2(:,:)
!$mnh_end_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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PRED2TH3(:,IKB)=PRED2TH3(:,IKB+IKL)
!

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PRED2R3(:,:) = 0.
!

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PRED2THR3(:,:) = 0.
!
END IF
!
ELSE ! 3D case in a 3D model
!

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CALL GX_M_M_PHY(D,OFLAT,PTHLM,PDXX,PDZZ,PDZX,ZGXMM_PTH)
CALL GY_M_M_PHY(D,OFLAT,PTHLM,PDYY,PDZZ,PDZY,ZGYMM_PTH)
!$mnh_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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committed
ZWORK1(:,:) = ZGXMM_PTH(:,:)**2 + ZGYMM_PTH(:,:)**2
!$mnh_end_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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committed
CALL MZM_PHY(D,ZWORK1,ZWORK2)
!
IF (KRR /= 0) THEN ! moist 3D case
CALL GX_M_M_PHY(D,OFLAT,PRM(:,:,1),PDXX,PDZZ,PDZX,ZGXMM_PRM)
CALL GY_M_M_PHY(D,OFLAT,PRM(:,:,1),PDYY,PDZZ,PDZY,ZGYMM_PRM)
!$mnh_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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committed
ZWORK1(:,:) = ZGXMM_PRM(:,:)**2 + ZGYMM_PRM(:,:)**2
!$mnh_end_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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CALL MZM_PHY(D,ZWORK1,ZWORK3)
!
!$mnh_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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ZWORK1(:,:) = ZGXMM_PRM(:,:) * ZGXMM_PTH(:,:) &
+ ZGYMM_PRM(:,:) * ZGYMM_PTH(:,:)
!$mnh_end_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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CALL MZM_PHY(D,ZWORK1,ZWORK4)
!
!$mnh_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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PRED2TH3(:,:)= PREDTH1(:,:)**2 + ( TURBN%XCTV*PBLL_O_E(:,:) &
* PETHETA(:,:) )**2 * ZWORK2(:,:)
!

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committed
PRED2R3(:,:)= PREDR1(:,:)**2 + (TURBN%XCTV*PBLL_O_E(:,:) &
* PEMOIST(:,:))**2 * ZWORK3(:,:)
!

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committed
PRED2THR3(:,:)= PREDR1(:,:) * PREDTH1(:,:) + TURBN%XCTV**2 &
* PBLL_O_E(:,:)**2 * &
PEMOIST(:,:) * PETHETA(:,:) * ZWORK4(:,:)
!$mnh_end_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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committed
PRED2TH3(:,IKB)=PRED2TH3(:,IKB+IKL)
PRED2R3(:,IKB)=PRED2R3(:,IKB+IKL)
PRED2THR3(:,IKB)=PRED2THR3(:,IKB+IKL)
!
ELSE ! dry 3D case in a 3D model
!$mnh_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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committed
PRED2TH3(:,:) = PREDTH1(:,:)**2 + TURBN%XCTV**2 &
* PBLL_O_E(:,:)**2 * ZWORK2(:,:)
!$mnh_end_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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PRED2TH3(:,IKB)=PRED2TH3(:,IKB+IKL)
!

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PRED2R3(:,:) = 0.
!

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PRED2THR3(:,:) = 0.
!
END IF
!
END IF ! end of the if structure on the turbulence dimensionnality
!
!
!---------------------------------------------------------------------------
!
! 5. Prandtl numbers for scalars
! ---------------------------

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committed
DO JSV=1,KSV
!
IF(HTURBDIM=='1DIM') THEN
! 1D case
!$mnh_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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PRED2THS3(:,:,JSV) = PREDS1(:,:,JSV) * PREDTH1(:,:)
IF (KRR /= 0) THEN

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PRED2RS3(:,:,JSV) = PREDR1(:,:) *PREDS1(:,:,JSV)
ELSE

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PRED2RS3(:,:,JSV) = 0.
END IF
!$mnh_end_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)
!

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ELSE IF (O2D) THEN ! 3D case in a 2D model
!

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IF (OOCEAN) THEN
!$mnh_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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ZWORK1(:,:) = (CST%XG *CST%XALPHAOC * PLM(:,:) * PLEPS(:,:) &
/ PTKEM(:,:))**2
!$mnh_end_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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CALL MZM_PHY(D,ZWORK1,ZWORK2)

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IF (KRR /= 0) THEN
!$mnh_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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ZW1(:,:) = ZWORK2(:,:) * PETHETA(:,:)
!$mnh_end_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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ELSE

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ZW1 = ZWORK2

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END IF
ELSE
!$mnh_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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ZWORK1(:,:) = (CST%XG / PTHVREF(:,:) * PLM(:,:) &
* PLEPS(:,:) / PTKEM(:,:))**2
!$mnh_end_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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committed
CALL MZM_PHY(D,ZWORK1,ZW1)
!
CALL GX_M_M_PHY(D,OFLAT,PSVM(:,:,JSV),PDXX,PDZZ,PDZX,ZGXMM_PSV)

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CALL GX_M_M_PHY(D,OFLAT,PTHLM,PDXX,PDZZ,PDZX,ZGXMM_PTH)
!
!$mnh_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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committed
ZWORK1(:,:) = ZGXMM_PSV(:,:) * ZGXMM_PTH(:,:)
!$mnh_end_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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CALL MZM_PHY(D,ZWORK1,ZWORK2)
!
!$mnh_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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IF (KRR /= 0) THEN

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ZWORK1(:,:) = ZW1(:,:)*PETHETA(:,:)

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ELSE

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ZWORK1(:,:) = ZW1(:,:)

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committed
END IF

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PRED2THS3(:,:,JSV) = PREDTH1(:,:) * PREDS1(:,:,JSV) + &
ZWORK1(:,:) * ZWORK2(:,:)

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committed
!
IF (KRR /= 0) THEN
CALL GX_M_M_PHY(D,OFLAT,PRM(:,:,1),PDXX,PDZZ,PDZX,ZGXMM_PRM)
!
!$mnh_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)
ZWORK1(:,:) = ZGXMM_PSV(:,:) * ZGXMM_PRM(:,:)
!$mnh_end_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)
CALL MZM_PHY(D,ZWORK1,ZWORK3)
!

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committed
PRED2RS3(:,:,JSV) = PREDR1(:,:) * PREDS1(:,:,JSV) + &
ZW1(:,:) * PEMOIST(:,:) * ZWORK3(:,:)

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committed
ELSE

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committed
PRED2RS3(:,:,JSV) = 0.

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END IF
!$mnh_end_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)
END IF
!
ELSE ! 3D case in a 3D model
!

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committed
IF (OOCEAN) THEN
!$mnh_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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committed
ZWORK1(:,:) = (CST%XG *CST%XALPHAOC * PLM(:,:) * PLEPS(:,:) &
/ PTKEM(:,:))**2
!$mnh_end_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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committed
CALL MZM_PHY(D,ZWORK1,ZWORK2)

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IF (KRR /= 0) THEN
!$mnh_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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ZW1(:,:) = ZWORK2(:,:) * PETHETA(:,:)
!$mnh_end_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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committed
ELSE

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ZW1 = ZWORK2

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committed
END IF

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committed
ELSE
!$mnh_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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ZWORK1(:,:) = (CST%XG / PTHVREF(:,:) * PLM(:,:) &
* PLEPS(:,:) / PTKEM(:,:))**2
!$mnh_end_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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committed
CALL MZM_PHY(D,ZWORK1,ZW1)
!
CALL GX_M_M_PHY(D,OFLAT,PSVM(:,:,JSV),PDXX,PDZZ,PDZX,ZGXMM_PSV)

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committed
CALL GX_M_M_PHY(D,OFLAT,PTHLM,PDXX,PDZZ,PDZX,ZGXMM_PTH)
CALL GY_M_M_PHY(D,OFLAT,PSVM(:,:,JSV),PDYY,PDZZ,PDZY,ZGYMM_PSV)

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committed
CALL GY_M_M_PHY(D,OFLAT,PTHLM,PDYY,PDZZ,PDZY,ZGYMM_PTH)
!
!$mnh_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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committed
ZWORK1(:,:) = ZGXMM_PSV(:,:) * ZGXMM_PTH(:,:) &
+ ZGYMM_PSV(:,:) * ZGYMM_PTH(:,:)
!$mnh_end_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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committed
CALL MZM_PHY(D,ZWORK1,ZWORK2)
!

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committed
IF (KRR /= 0) THEN
CALL GX_M_M_PHY(D,OFLAT,PRM(:,:,1),PDXX,PDZZ,PDZX,ZGXMM_PRM)
CALL GY_M_M_PHY(D,OFLAT,PRM(:,:,1),PDYY,PDZZ,PDZY,ZGYMM_PRM)
!
!$mnh_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)
ZWORK1(:,:) = ZGXMM_PSV(:,:) * ZGXMM_PRM(:,:) + ZGYMM_PSV(:,:) * ZGYMM_PRM(:,:)
!$mnh_end_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)
CALL MZM_PHY(D,ZWORK1,ZWORK3)
!
!$mnh_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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committed
ZWORK1(:,:) = ZW1(:,:)*PETHETA(:,:)
!$mnh_end_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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committed
ELSE

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committed
ZWORK1(:,:) = ZW1(:,:)

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committed
END IF
!$mnh_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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committed
PRED2THS3(:,:,JSV) = PREDTH1(:,:) * PREDS1(:,:,JSV) + &
ZWORK1(:,:)*ZWORK2(:,:)
!$mnh_end_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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committed
IF (KRR /= 0) THEN
!$mnh_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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committed
PRED2RS3(:,:,JSV) = PREDR1(:,:) * PREDS1(:,:,JSV) + &
ZW1(:,:) * PEMOIST(:,:) * ZWORK3(:,:)
!$mnh_end_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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committed
ELSE

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committed
PRED2RS3(:,:,JSV) = 0.

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committed
END IF
END IF
!
END IF ! end of HTURBDIM if-block
!
END DO
!
!---------------------------------------------------------------------------
!
!* 6. SAVES THE REDELSPERGER NUMBERS
! ------------------------------
!
IF ( OTURB_DIAG .AND. TPFILE%LOPENED ) THEN
!
! stores the RED_TH1
TZFIELD = TFIELDMETADATA( &
CMNHNAME = 'RED_TH1', &
CSTDNAME = '', &
CLONGNAME = 'RED_TH1', &
CUNITS = '1', &
CDIR = 'XY', &
CCOMMENT = 'X_Y_Z_RED_TH1', &
NGRID = 4, &
NTYPE = TYPEREAL, &
NDIMS = 3, &
LTIMEDEP = .TRUE. )
CALL IO_FIELD_WRITE_PHY(D,TPFILE,TZFIELD,PREDTH1)
!
! stores the RED_R1
TZFIELD = TFIELDMETADATA( &
CMNHNAME = 'RED_R1', &
CSTDNAME = '', &
CLONGNAME = 'RED_R1', &
CUNITS = '1', &
CDIR = 'XY', &
CCOMMENT = 'X_Y_Z_RED_R1', &
NGRID = 4, &
NTYPE = TYPEREAL, &
NDIMS = 3, &
LTIMEDEP = .TRUE. )
CALL IO_FIELD_WRITE_PHY(D,TPFILE,TZFIELD,PREDR1)
!
! stores the RED2_TH3
TZFIELD = TFIELDMETADATA( &
CMNHNAME = 'RED2_TH3', &
CSTDNAME = '', &
CLONGNAME = 'RED2_TH3', &
CUNITS = '1', &
CDIR = 'XY', &
CCOMMENT = 'X_Y_Z_RED2_TH3', &
NGRID = 4, &
NTYPE = TYPEREAL, &
NDIMS = 3, &
LTIMEDEP = .TRUE. )
CALL IO_FIELD_WRITE_PHY(D,TPFILE,TZFIELD,PRED2TH3)
!
! stores the RED2_R3
TZFIELD = TFIELDMETADATA( &
CMNHNAME = 'RED2_R3', &
CSTDNAME = '', &
CLONGNAME = 'RED2_R3', &
CUNITS = '1', &
CDIR = 'XY', &
CCOMMENT = 'X_Y_Z_RED2_R3', &
NGRID = 4, &
NTYPE = TYPEREAL, &
NDIMS = 3, &
LTIMEDEP = .TRUE. )
CALL IO_FIELD_WRITE_PHY(D,TPFILE,TZFIELD,PRED2R3)
!
! stores the RED2_THR3
TZFIELD = TFIELDMETADATA( &
CMNHNAME = 'RED2_THR3', &
CSTDNAME = '', &
CLONGNAME = 'RED2_THR3', &
CUNITS = '1', &
CDIR = 'XY', &
CCOMMENT = 'X_Y_Z_RED2_THR3', &
NGRID = 4, &
NTYPE = TYPEREAL, &
NDIMS = 3, &
LTIMEDEP = .TRUE. )
CALL IO_FIELD_WRITE_PHY(D,TPFILE,TZFIELD,PRED2THR3)
!
END IF
!
!---------------------------------------------------------------------------

RODIER Quentin
committed
ENDIF ! (Done only if OHARAT is FALSE)
!
IF (LHOOK) CALL DR_HOOK('PRANDTL',1,ZHOOK_HANDLE)
END SUBROUTINE PRANDTL
!
SUBROUTINE SMOOTH_TURB_FUNCT(D,CSTURB,TURBN,PPHI3,PF_LIM,PF)

RODIER Quentin
committed
TYPE(CSTURB_t), INTENT(IN) :: CSTURB
TYPE(TURB_t), INTENT(IN) :: TURBN
TYPE(DIMPHYEX_t), INTENT(IN) :: D
REAL, DIMENSION(D%NIJT,D%NKT), INTENT(IN) :: PPHI3 ! Phi3
REAL, DIMENSION(D%NIJT,D%NKT), INTENT(IN) :: PF_LIM ! Value of F when Phi3 is
! ! larger than Phi_lim
REAL, DIMENSION(D%NIJT,D%NKT), INTENT(INOUT) :: PF ! function F to smooth
REAL, DIMENSION(D%NIJT,D%NKT) :: ZCOEF

RODIER Quentin
committed
INTEGER :: JIJ,JK, IIJB,IIJE,IKT
!
!* adds a artificial correction to smooth the function near the discontinuity
! point at Phi3 = Phi_lim
! This smoothing is applied between 0.9*phi_lim (=2.7) and Phi_lim (=3)
! Note that in the Boundary layer, phi is usually between 0.8 and 1
!
IIJE=D%NIJE
IIJB=D%NIJB

RODIER Quentin
committed
IKT=D%NKT

RIETTE Sébastien
committed
IF(TURBN%LSMOOTH_PRANDTL) THEN
!$mnh_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

RODIER Quentin
committed
ZCOEF(:,:) = MAX(MIN(( 10.*(1.-PPHI3(:,:)/CSTURB%XPHI_LIM)) ,1.), 0.)

RIETTE Sébastien
committed
!

RODIER Quentin
committed
PF(:,:) = ZCOEF(:,:) * PF(:,:) &
+ (1.-ZCOEF(:,:)) * PF_LIM(:,:)

RIETTE Sébastien
committed
!$mnh_end_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)
ENDIF
!
END SUBROUTINE SMOOTH_TURB_FUNCT
!----------------------------------------------------------------------------
SUBROUTINE PHI3(D,CSTURB,TURBN,PREDTH1,PREDR1,PRED2TH3,PRED2R3,PRED2THR3,HTURBDIM,OUSERV,PPHI3)

RODIER Quentin
committed
TYPE(CSTURB_t), INTENT(IN) :: CSTURB
TYPE(TURB_t), INTENT(IN) :: TURBN
TYPE(DIMPHYEX_t), INTENT(IN) :: D
REAL, DIMENSION(D%NIJT,D%NKT), INTENT(IN) :: PREDTH1
REAL, DIMENSION(D%NIJT,D%NKT), INTENT(IN) :: PREDR1
REAL, DIMENSION(D%NIJT,D%NKT), INTENT(IN) :: PRED2TH3
REAL, DIMENSION(D%NIJT,D%NKT), INTENT(IN) :: PRED2R3
REAL, DIMENSION(D%NIJT,D%NKT), INTENT(IN) :: PRED2THR3
CHARACTER(LEN=4), INTENT(IN) :: HTURBDIM ! 1DIM or 3DIM turb. scheme
LOGICAL, INTENT(IN) :: OUSERV ! flag to use vapor
REAL, DIMENSION(D%NIJT,D%NKT),INTENT(OUT) :: PPHI3
REAL, DIMENSION(D%NIJT,D%NKT) :: ZW1, ZW2
INTEGER :: IKB, IKE, JIJ,JK, IIJB,IIJE, IKT
REAL(KIND=JPHOOK) :: ZHOOK_HANDLE
IF (LHOOK) CALL DR_HOOK('MODE_PRANDTL:PHI3',0,ZHOOK_HANDLE)

RODIER Quentin
committed
IKB=D%NKTB
IKE=D%NKTE
IIJE=D%NIJE
IIJB=D%NIJB
IKT=D%NKT
!
IF (HTURBDIM=='3DIM') THEN
!* 3DIM case
!$mnh_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)
IF (OUSERV) THEN

RODIER Quentin
committed
ZW1(:,:) = 1. + 1.5* (PREDTH1(:,:)+PREDR1(:,:)) + &
( 0.5 * (PREDTH1(:,:)**2+PREDR1(:,:)**2) &
+ PREDTH1(:,:) * PREDR1(:,:) &

RODIER Quentin
committed
ZW2(:,:) = 0.5 * (PRED2TH3(:,:)-PRED2R3(:,:))

RODIER Quentin
committed
PPHI3(:,:)= 1. - &
( ( (1.+PREDR1(:,:)) * &
(PRED2THR3(:,:) + PRED2TH3(:,:)) / PREDTH1(:,:) &
) + ZW2(:,:) &
) / ZW1(:,:)

RODIER Quentin
committed
ZW1(:,:) = 1. + 1.5* PREDTH1(:,:) + &
0.5* PREDTH1(:,:)**2

RODIER Quentin
committed
ZW2(:,:) = 0.5* PRED2TH3(:,:)

RODIER Quentin
committed
PPHI3(:,:)= 1. - &
(PRED2TH3(:,:) / PREDTH1(:,:) + ZW2(:,:)) &
/ ZW1(:,:)
!$mnh_end_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)
!$mnh_expand_where(JIJ=IIJB:IIJE,JK=1:IKT)

RODIER Quentin
committed
WHERE( PPHI3(:,:) <= 0. .OR. PPHI3(:,:) > CSTURB%XPHI_LIM )
PPHI3(:,:) = CSTURB%XPHI_LIM
!$mnh_end_expand_where(JIJ=IIJB:IIJE,JK=1:IKT)
ELSE
!* 1DIM case
!$mnh_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)
IF (OUSERV) THEN

RODIER Quentin
committed
PPHI3(:,:)= 1./(1.+PREDTH1(:,:)+PREDR1(:,:))

RODIER Quentin
committed
PPHI3(:,:)= 1./(1.+PREDTH1(:,:))
!$mnh_end_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)
END IF
!

RODIER Quentin
committed
PPHI3(:,IKB-1)=PPHI3(:,IKB)
PPHI3(:,IKE+1)=PPHI3(:,IKE)
!
IF (LHOOK) CALL DR_HOOK('MODE_PRANDTL:PHI3',1,ZHOOK_HANDLE)
END SUBROUTINE PHI3
!----------------------------------------------------------------------------
SUBROUTINE PSI_SV(D,CSTURB,TURBN,KSV,PREDTH1,PREDR1,PREDS1,PRED2THS,PRED2RS,PPHI3,PPSI3,PPSI_SV)
TYPE(CSTURB_t), INTENT(IN) :: CSTURB
TYPE(TURB_t), INTENT(IN) :: TURBN
TYPE(DIMPHYEX_t), INTENT(IN) :: D
INTEGER, INTENT(IN) :: KSV
REAL, DIMENSION(D%NIJT,D%NKT), INTENT(IN) :: PREDTH1
REAL, DIMENSION(D%NIJT,D%NKT), INTENT(IN) :: PREDR1
REAL, DIMENSION(D%NIJT,D%NKT,KSV), INTENT(IN) :: PREDS1
REAL, DIMENSION(D%NIJT,D%NKT,KSV), INTENT(IN) :: PRED2THS
REAL, DIMENSION(D%NIJT,D%NKT,KSV), INTENT(IN) :: PRED2RS
REAL, DIMENSION(D%NIJT,D%NKT), INTENT(IN) :: PPHI3
REAL, DIMENSION(D%NIJT,D%NKT), INTENT(IN) :: PPSI3
REAL, DIMENSION(D%NIJT,D%NKT,KSV),INTENT(OUT) :: PPSI_SV

RODIER Quentin
committed
INTEGER :: IKB, IKE, IIJB,IIJE, IKT
REAL(KIND=JPHOOK) :: ZHOOK_HANDLE
IF (LHOOK) CALL DR_HOOK('MODE_PRANDTL:PSI_SV',0,ZHOOK_HANDLE)

RODIER Quentin
committed
IKB=D%NKTB
IKE=D%NKTE
IIJE=D%NIJE
IIJB=D%NIJB
IKT=D%NKT

RODIER Quentin
committed
!
DO JSV=1,KSV
!$mnh_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

RODIER Quentin
committed
PPSI_SV(:,:,JSV) = ( 1. &

RODIER Quentin
committed
- (CSTURB%XCPR3+CSTURB%XCPR5) * &

RODIER Quentin
committed
(PRED2THS(:,:,JSV)/PREDS1(:,:,JSV)-PREDTH1(:,:)) &

RODIER Quentin
committed
- (CSTURB%XCPR4+CSTURB%XCPR5) * &

RODIER Quentin
committed
(PRED2RS(:,:,JSV)/PREDS1(:,:,JSV)-PREDR1(:,:)) &

RODIER Quentin
committed
- CSTURB%XCPR3 * &

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PREDTH1(:,:) * PPHI3(:,:) &
- CSTURB%XCPR4 * PREDR1(:,:) * PPSI3(:,:) &
) / ( 1. + CSTURB%XCPR5 * ( PREDTH1(:,:) + PREDR1(:,:) ) )
!$mnh_end_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)
! control of the PSI_SV positivity
!$mnh_expand_where(JIJ=IIJB:IIJE,JK=1:IKT)

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WHERE ( (PPSI_SV(:,:,JSV) <=0.).AND. (PREDTH1(:,:)+PREDR1(:,:))<=0.)
PPSI_SV(:,:,JSV)=CSTURB%XPHI_LIM
END WHERE
!$mnh_end_expand_where(JIJ=IIJB:IIJE,JK=1:IKT)
!$mnh_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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PPSI_SV(:,:,JSV) = MAX( 1.E-4, MIN(CSTURB%XPHI_LIM,PPSI_SV(:,:,JSV)) )
!$mnh_end_expand_array(JIJ=IIJB:IIJE,JK=1:IKT)

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PPSI_SV(:,IKB-1,JSV)=PPSI_SV(:,IKB,JSV)
PPSI_SV(:,IKE+1,JSV)=PPSI_SV(:,IKE,JSV)
END DO
!
IF (LHOOK) CALL DR_HOOK('MODE_PRANDTL:PSI_SV',1,ZHOOK_HANDLE)
END SUBROUTINE PSI_SV
!----------------------------------------------------------------------------
SUBROUTINE D_PHI3DTDZ_O_DDTDZ(D,CSTURB,TURBN,PPHI3,PREDTH1,PREDR1,PRED2TH3,PRED2THR3,HTURBDIM,OUSERV,PD_PHI3DTDZ_O_DDTDZ)

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TYPE(CSTURB_t), INTENT(IN) :: CSTURB
TYPE(TURB_t), INTENT(IN) :: TURBN
TYPE(DIMPHYEX_t), INTENT(IN) :: D
REAL, DIMENSION(D%NIJT,D%NKT), INTENT(IN) :: PPHI3
REAL, DIMENSION(D%NIJT,D%NKT), INTENT(IN) :: PREDTH1
REAL, DIMENSION(D%NIJT,D%NKT), INTENT(IN) :: PREDR1
REAL, DIMENSION(D%NIJT,D%NKT), INTENT(IN) :: PRED2TH3
REAL, DIMENSION(D%NIJT,D%NKT), INTENT(IN) :: PRED2THR3
CHARACTER(LEN=4), INTENT(IN) :: HTURBDIM ! 1DIM or 3DIM turb. scheme
LOGICAL, INTENT(IN) :: OUSERV ! flag to use vapor
REAL, DIMENSION(D%NIJT,D%NKT),INTENT(OUT) :: PD_PHI3DTDZ_O_DDTDZ
INTEGER :: IKB, IKE,JIJ,JK, IIJB,IIJE,IKT
REAL(KIND=JPHOOK) :: ZHOOK_HANDLE
IF (LHOOK) CALL DR_HOOK('MODE_PRANDTL:D_PHI3DTDZ_O_DDTDZ',0,ZHOOK_HANDLE)

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IKB=D%NKTB
IKE=D%NKTE
IIJE=D%NIJE
IIJB=D%NIJB
IKT=D%NKT
!
IF (HTURBDIM=='3DIM') THEN
!* 3DIM case
IF (OUSERV) THEN
!$mnh_expand_where(JIJ=IIJB:IIJE,JK=1:IKT)

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WHERE (PPHI3(:,:)<=CSTURB%XPHI_LIM)
PD_PHI3DTDZ_O_DDTDZ(:,:) = PPHI3(:,:) &
* (1. - PREDTH1(:,:) * (3./2.+PREDTH1(:,:)+PREDR1(:,:)) &
/((1.+PREDTH1(:,:)+PREDR1(:,:)) &
*(1.+1./2.*(PREDTH1(:,:)+PREDR1(:,:))))) &
+ (1.+PREDR1(:,:))*(PRED2THR3(:,:)+PRED2TH3(:,:)) &
/ (PREDTH1(:,:)*(1.+PREDTH1(:,:)+PREDR1(:,:))* &
(1.+1./2.*(PREDTH1(:,:)+PREDR1(:,:)))) &
- (1./2.*PREDTH1(:,:)+PREDR1(:,:) &
* (1.+PREDTH1(:,:)+PREDR1(:,:))) &
/ ((1.+PREDTH1(:,:)+PREDR1(:,:))&
*(1.+1./2.*(PREDTH1(:,:)+PREDR1(:,:))))
ELSEWHERE

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PD_PHI3DTDZ_O_DDTDZ(:,:) = PPHI3(:,:)
!$mnh_end_expand_where(JIJ=IIJB:IIJE,JK=1:IKT)
!
ELSE
!$mnh_expand_where(JIJ=IIJB:IIJE,JK=1:IKT)

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WHERE (PPHI3(:,:)<=CSTURB%XPHI_LIM)
PD_PHI3DTDZ_O_DDTDZ(:,:) = PPHI3(:,:) &
* (1. - PREDTH1(:,:) * (3./2.+PREDTH1(:,:)) &
/((1.+PREDTH1(:,:))*(1.+1./2.*PREDTH1(:,:)))) &
+ PRED2TH3(:,:) &
/ (PREDTH1(:,:)*(1.+PREDTH1(:,:))*(1.+1./2.*PREDTH1(:,:))) &
- 1./2.*PREDTH1(:,:) &
/ ((1.+PREDTH1(:,:))*(1.+1./2.*PREDTH1(:,:)))
ELSEWHERE

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PD_PHI3DTDZ_O_DDTDZ(:,:) = PPHI3(:,:)
!$mnh_end_expand_where(JIJ=IIJB:IIJE,JK=1:IKT)
!
END IF
ELSE
!* 1DIM case

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DO JK=1,IKT
DO JIJ=IIJB,IIJE
IF ( ABS(PPHI3(JIJ,JK)-CSTURB%XPHI_LIM) < 1.E-12 ) THEN
PD_PHI3DTDZ_O_DDTDZ(JIJ,JK)=PPHI3(JIJ,JK)*&
& (1. - PREDTH1(JIJ,JK)*PPHI3(JIJ,JK))

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ELSE
PD_PHI3DTDZ_O_DDTDZ(JIJ,JK)=PPHI3(JIJ,JK)

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ENDIF
ENDDO
ENDDO
END IF
!

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!* smoothing
CALL SMOOTH_TURB_FUNCT(D,CSTURB,TURBN,PPHI3,PPHI3,PD_PHI3DTDZ_O_DDTDZ)

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PD_PHI3DTDZ_O_DDTDZ(:,IKB-1)=PD_PHI3DTDZ_O_DDTDZ(:,IKB)
PD_PHI3DTDZ_O_DDTDZ(:,IKE+1)=PD_PHI3DTDZ_O_DDTDZ(:,IKE)
!
IF (LHOOK) CALL DR_HOOK('MODE_PRANDTL:D_PHI3DTDZ_O_DDTDZ',1,ZHOOK_HANDLE)
END SUBROUTINE D_PHI3DTDZ_O_DDTDZ
!----------------------------------------------------------------------------
SUBROUTINE D_PHI3DRDZ_O_DDRDZ(D,CSTURB,TURBN,PPHI3,PREDTH1,PREDR1,PRED2TH3,PRED2THR3,HTURBDIM,OUSERV,PD_PHI3DRDZ_O_DDRDZ)
TYPE(CSTURB_t), INTENT(IN) :: CSTURB
TYPE(TURB_t), INTENT(IN) :: TURBN
TYPE(DIMPHYEX_t), INTENT(IN) :: D
REAL, DIMENSION(D%NIJT,D%NKT), INTENT(IN) :: PPHI3
REAL, DIMENSION(D%NIJT,D%NKT), INTENT(IN) :: PREDTH1
REAL, DIMENSION(D%NIJT,D%NKT), INTENT(IN) :: PREDR1
REAL, DIMENSION(D%NIJT,D%NKT), INTENT(IN) :: PRED2TH3
REAL, DIMENSION(D%NIJT,D%NKT), INTENT(IN) :: PRED2THR3
CHARACTER(LEN=4), INTENT(IN) :: HTURBDIM ! 1DIM or 3DIM turb. scheme
LOGICAL, INTENT(IN) :: OUSERV ! flag to use vapor
REAL, DIMENSION(D%NIJT,D%NKT),INTENT(OUT) :: PD_PHI3DRDZ_O_DDRDZ
INTEGER :: IKB, IKE, JIJ,JK, IIJB,IIJE,IKT
REAL(KIND=JPHOOK) :: ZHOOK_HANDLE
IF (LHOOK) CALL DR_HOOK('MODE_PRANDTL:D_PHI3DRDZ_O_DDRDZ',0,ZHOOK_HANDLE)

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IKB=D%NKTB
IKE=D%NKTE