148 lines
8.1 KiB
Fortran
Executable File
148 lines
8.1 KiB
Fortran
Executable File
MODULE usrdef_hgr
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!!======================================================================
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!! *** MODULE usrdef_hgr ***
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!!
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!! === ICE_RHEO configuration ===
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!!
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!! User defined : mesh and Coriolis parameter of a user configuration
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!!======================================================================
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!! History : NEMO ! 2016-08 (S. Flavoni, G. Madec) Original code
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!!----------------------------------------------------------------------
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!!----------------------------------------------------------------------
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!! usr_def_hgr : initialize the horizontal mesh for ICE_RHEO configuration
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!!----------------------------------------------------------------------
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USE dom_oce ! ocean space and time domain
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USE par_oce ! ocean space and time domain
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USE phycst ! physical constants
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USE usrdef_nam, ONLY: rn_dx, rn_dy, ln_corio, rn_ppgphi0 ! horizontal resolution in meters
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! coriolis and reference latitude
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USE in_out_manager ! I/O manager
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USE lib_mpp ! MPP library
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IMPLICIT NONE
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PRIVATE
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PUBLIC usr_def_hgr ! called by domhgr.F90
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!! * Substitutions
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# include "do_loop_substitute.h90"
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!!----------------------------------------------------------------------
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!! NEMO/OCE 4.0 , NEMO Consortium (2018)
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!! $Id: usrdef_hgr.F90 10074 2018-08-28 16:15:49Z nicolasmartin $
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!! Software governed by the CeCILL license (see ./LICENSE)
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!!----------------------------------------------------------------------
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CONTAINS
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SUBROUTINE usr_def_hgr( plamt , plamu , plamv , plamf , & ! geographic position (required)
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& pphit , pphiu , pphiv , pphif , & !
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& kff , pff_f , pff_t , & ! Coriolis parameter (if domain not on the sphere)
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& pe1t , pe1u , pe1v , pe1f , & ! scale factors (required)
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& pe2t , pe2u , pe2v , pe2f , & !
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& ke1e2u_v , pe1e2u , pe1e2v ) ! u- & v-surfaces (if gridsize reduction is used in strait(s))
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!!----------------------------------------------------------------------
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!! *** ROUTINE usr_def_hgr ***
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!!
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!! ** Purpose : user defined mesh and Coriolis parameter
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!!
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!! ** Method : set all intent(out) argument to a proper value
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!! ICE_RHEO configuration : uniform grid spacing (rn_dx)
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!! without Coriolis force (f=0)
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!!
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!! ** Action : - define longitude & latitude of t-, u-, v- and f-points (in degrees)
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!! - define coriolis parameter at f-point if the domain in not on the sphere (on beta-plane)
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!! - define i- & j-scale factors at t-, u-, v- and f-points (in meters)
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!! - define u- & v-surfaces (if gridsize reduction is used in some straits) (in m2)
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!!----------------------------------------------------------------------
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REAL(wp), DIMENSION(:,:), INTENT(out) :: plamt, plamu, plamv, plamf ! longitude outputs [degrees]
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REAL(wp), DIMENSION(:,:), INTENT(out) :: pphit, pphiu, pphiv, pphif ! latitude outputs [degrees]
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INTEGER , INTENT(out) :: kff ! =1 Coriolis parameter computed here, =0 otherwise
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REAL(wp), DIMENSION(:,:), INTENT(out) :: pff_f, pff_t ! Coriolis factor at f-point [1/s]
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REAL(wp), DIMENSION(:,:), INTENT(out) :: pe1t, pe1u, pe1v, pe1f ! i-scale factors [m]
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REAL(wp), DIMENSION(:,:), INTENT(out) :: pe2t, pe2u, pe2v, pe2f ! j-scale factors [m]
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INTEGER , INTENT(out) :: ke1e2u_v ! =1 u- & v-surfaces computed here, =0 otherwise
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REAL(wp), DIMENSION(:,:), INTENT(out) :: pe1e2u, pe1e2v ! u- & v-surfaces (if reduction in strait) [m2]
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!
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INTEGER :: ji, jj ! dummy loop indices
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REAL(wp) :: zphi0, zlam0, zbeta, zf0
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REAL(wp) :: zti, zui, ztj, zvj ! local scalars
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!!-------------------------------------------------------------------------------
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!
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IF(lwp) WRITE(numout,*)
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IF(lwp) WRITE(numout,*) 'usr_def_hgr : ICE_RHEO configuration bassin'
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IF(lwp) WRITE(numout,*)
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IF(lwp) WRITE(numout,*) ' f-plane with regular gridcell size'
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! ==========
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zlam0 = -(jpiglo-1)/2 * 1.e-3 * rn_dx
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zphi0 = -(jpjglo-1)/2 * 1.e-3 * rn_dy
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DO_2D( 1, 1, 1, 1 )
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zti = FLOAT( ji - 1 + nimpp - 1 ) ; ztj = FLOAT( jj - 1 + njmpp - 1 )
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zui = FLOAT( ji - 1 + nimpp - 1 ) + 0.5_wp ; zvj = FLOAT( jj - 1 + njmpp - 1 ) + 0.5_wp
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plamt(ji,jj) = zlam0 + rn_dx * 1.e-3 * zti
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plamu(ji,jj) = zlam0 + rn_dx * 1.e-3 * zui
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plamv(ji,jj) = plamt(ji,jj)
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plamf(ji,jj) = plamu(ji,jj)
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pphit(ji,jj) = zphi0 + rn_dy * 1.e-3 * ztj
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pphiv(ji,jj) = zphi0 + rn_dy * 1.e-3 * zvj
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pphiu(ji,jj) = pphit(ji,jj)
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pphif(ji,jj) = pphiv(ji,jj)
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END_2D
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! Horizontal scale factors (in meters)
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! ======
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!! ==> EITHER 1) variable scale factors
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!! clem: This can be used with a 1proc simulation but I think it breaks repro when >1procs are used
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!! DO_2D( 1, 1, 1, 1 )
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!! !!pe1t(ji,jj) = rn_dx * EXP( -0.8/REAL(jpiglo**2) * (mi0(ji)-REAL(jpiglo+1)*0.5)**2 ) ! gaussian shape
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!! !!pe2t(ji,jj) = rn_dy * EXP( -0.8/REAL(jpjglo**2) * (mj0(jj)-REAL(jpjglo+1)*0.5)**2 ) ! gaussian shape
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!! pe1t(ji,jj) = rn_dx * ( 1. -0.1 * ABS(REAL(mi0(ji))-REAL(jpiglo+1)*0.5) / (1.-REAL(jpiglo+1)*0.5) ) ! linear shape
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!! pe2t(ji,jj) = rn_dy * ( 1. -0.1 * ABS(REAL(mj0(jj))-REAL(jpjglo+1)*0.5) / (1.-REAL(jpjglo+1)*0.5) ) ! linear shape
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!! END_2D
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!!#if defined key_agrif
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!! IF( .NOT. Agrif_Root() ) THEN ! only works if the zoom is positioned at the center of the parent grid
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!! DO_2D( 1, 1, 1, 1 )
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!! pe1t(ji,jj) = rn_dx * ( 1. -0.1 * ABS(REAL(mi0(ji))-REAL(jpiglo+1)*0.5) / (1.-REAL(jpiglo+1)*0.5) &
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!! & * REAL(jpiglo) / REAL(Agrif_Parent(jpiglo) * Agrif_Rhox()) ) ! factor to match parent grid
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!! pe2t(ji,jj) = rn_dy * ( 1. -0.1 * ABS(REAL(mj0(jj))-REAL(jpjglo+1)*0.5) / (1.-REAL(jpjglo+1)*0.5) &
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!! & * REAL(jpjglo) / REAL(Agrif_Parent(jpjglo) * Agrif_Rhoy()) ) ! factor to match parent grid
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!! END_2D
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!! ENDIF
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!!#endif
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!! ==> OR 2) constant scale factors
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pe1t(:,:) = rn_dx
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pe2t(:,:) = rn_dy
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!! ==> END
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pe1u(:,:) = pe1t(:,:) ; pe2u(:,:) = pe2t(:,:)
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pe1v(:,:) = pe1t(:,:) ; pe2v(:,:) = pe2t(:,:)
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pe1f(:,:) = pe1t(:,:) ; pe2f(:,:) = pe2t(:,:)
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! ! NO reduction of grid size in some straits
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ke1e2u_v = 0 ! ==>> u_ & v_surfaces will be computed in dom_ghr routine
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pe1e2u(:,:) = 0._wp ! CAUTION: set to zero to avoid error with some compilers that
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pe1e2v(:,:) = 0._wp ! require an initialization of INTENT(out) arguments
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!
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!
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! !== Coriolis parameter ==!
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kff = 1 ! indicate not to compute Coriolis parameter afterward
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!
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IF( ln_corio ) THEN
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zbeta = 2._wp * omega * COS( rad * rn_ppgphi0 ) / ra
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zf0 = 2._wp * omega * SIN( rad * rn_ppgphi0 )
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pff_f(:,:) = zf0 + zbeta * pphif(:,:) * 1.e+3
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pff_t(:,:) = zf0 + zbeta * pphit(:,:) * 1.e+3
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ELSE
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pff_f(:,:) = 0.
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pff_t(:,:) = 0.
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ENDIF
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!
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END SUBROUTINE usr_def_hgr
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!!======================================================================
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END MODULE usrdef_hgr
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