!-------------------------------------- LICENCE BEGIN ------------------------------------ !Environment Canada - Atmospheric Science and Technology License/Disclaimer, ! version 3; Last Modified: May 7, 2008. !This is free but copyrighted software; you can use/redistribute/modify it under the terms !of the Environment Canada - Atmospheric Science and Technology License/Disclaimer !version 3 or (at your option) any later version that should be found at: !http://collaboration.cmc.ec.gc.ca/science/rpn.comm/license.html ! !This software is distributed in the hope that it will be useful, but WITHOUT ANY WARRANTY; !without even the implied warranty of MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. !See the above mentioned License/Disclaimer for more details. !You should have received a copy of the License/Disclaimer along with this software; !if not, you can write to: EC-RPN COMM Group, 2121 TransCanada, suite 500, Dorval (Quebec), !CANADA, H9P 1J3; or send e-mail to service.rpn@ec.gc.ca !-------------------------------------- LICENCE END -------------------------------------- ***s/r adw_main_1_wnd_settls_tr - Equivalent to adw_main_1_wnd_settls for TRAJECTORY * #include "model_macros_f.h"*
subroutine adw_main_1_wnd_settls_tr ( F_um, F_vm, F_wm, F_nit, F_njt, F_nk ) 2,4 * #include "impnone.cdk"
* integer F_nit, F_njt, F_nk * real F_um(F_nit,F_njt,F_nk), % F_vm(F_nit,F_njt,F_nk), % F_wm(F_nit,F_njt,F_nk) * *author * monique tanguay * *revision * v2_31 - Tanguay M. - initial MPI version * v3_00 - Tanguay M. - adapt to restructured adw_main * v3_21 - Tanguay M. - Revision Openmp * v3_31 - Tanguay M. - SETTLS option * *language * fortran 77 * *object * see id section * *TRAJECTORY of *arguments *______________________________________________________________________ * | | | * NAME | DESCRIPTION | I/O | *--------------|-------------------------------------------------|-----| * F_u | u components of winds on advection grid | o | * F_v | v components of winds on advection grid | o | * F_w | w components of winds on advection grid | o | * | | | * F_nit | \ total number of points in x,y direction in | i | * F_njt | / advection grid (including halos) | i | * | | | * F_nk | number of levels | i | *______________|_________________________________________________|_____| * *implicits #include "glb_ld.cdk"
#include "glb_pil.cdk"
#include "adw.cdk"
#include "lun.cdk"
#include "inuvl.cdk"
#include "vthm.cdk"
#include "vt1m.cdk"
#include "vtwm.cdk"
* *modules integer vmmlod, vmmget, vmmuld external vmmlod, vmmget, vmmuld ************************************************************************ integer pnerr, pnlkey1(30), pnlod * integer i, j, k, i0, in, j0, jn, n, dest_ni real*8 ONE_8,sc_8 parameter( ONE_8 = 1.0 ) * real u_wrkm(LDIST_SHAPE,l_nk),v_wrkm(LDIST_SHAPE,l_nk),w_wrkm(LDIST_SHAPE,l_nk) real uth_wm(LDIST_SHAPE,l_nk),vth_wm(LDIST_SHAPE,l_nk),wth_wm(LDIST_SHAPE,l_nk) * ************************************************************************ if (Lun_debug_L) write (Lun_out,1000) * pnlkey1(1) = VMM_KEY(uthm) pnlkey1(2) = VMM_KEY(vthm) pnlkey1(3) = VMM_KEY(psdthm) pnlkey1(4) = VMM_KEY(ut1m) pnlkey1(5) = VMM_KEY(vt1m) pnlkey1(6) = VMM_KEY(psdt1m) pnlkey1(7) = VMM_KEY(utwm) pnlkey1(8) = VMM_KEY(vtwm) pnlkey1(9) = VMM_KEY(psdtwm) * pnerr = vmmlod(pnlkey1,9) * pnerr = VMM_GET_VAR(uthm) pnerr = VMM_GET_VAR(vthm) pnerr = VMM_GET_VAR(psdthm) pnerr = VMM_GET_VAR(ut1m) pnerr = VMM_GET_VAR(vt1m) pnerr = VMM_GET_VAR(psdt1m) pnerr = VMM_GET_VAR(utwm) pnerr = VMM_GET_VAR(vtwm) pnerr = VMM_GET_VAR(psdtwm) * * --------------------------------------------------------------------------------------------------- * F_um,F_vm_F_wm will contain winds components to be interpolated when evaluating upstream positions * uthm,vthm,wthm will contain winds components NOT to be interpolated when evaluating upstream positions * --------------------------------------------------------------------------------------------------- do k=1,l_nk do j=l_miny,l_maxy do i=l_minx,l_maxx u_wrkm(i,j,k) = 2.* ut1m(i,j,k) - utwm(i,j,k) v_wrkm(i,j,k) = 2.* vt1m(i,j,k) - vtwm(i,j,k) w_wrkm(i,j,k) = 2.*psdt1m(i,j,k)- psdtwm(i,j,k) enddo enddo enddo * do k=1,l_nk do j=l_miny,l_maxy do i=l_minx,l_maxx uth_wm(i,j,k) = ut1m(i,j,k) vth_wm(i,j,k) = vt1m(i,j,k) wth_wm(i,j,k) = psdt1m(i,j,k) enddo enddo enddo * *********************************************************************** * Interpolate advection winds to geopotential grid * F_u and F_v are used as work space *********************************************************************** call rpn_comm_xch_halo (u_wrkm,LDIST_DIM,l_niu,l_nj, G_nk, % G_halox,G_haloy,G_periodx,G_periody,l_ni,0) call rpn_comm_xch_halo (v_wrkm,LDIST_DIM,l_ni,l_njv,G_nk, % G_halox,G_haloy,G_periodx,G_periody,l_ni,0) * call rpn_comm_xch_halo (uth_wm,LDIST_DIM,l_niu,l_nj, G_nk, % G_halox,G_haloy,G_periodx,G_periody,l_ni,0) call rpn_comm_xch_halo (vth_wm,LDIST_DIM,l_ni,l_njv,G_nk, % G_halox,G_haloy,G_periodx,G_periody,l_ni,0) * !$omp parallel private(i0,in,j0,jn,sc_8) !$omp do do k=1,l_nk * i0 = 1 in = l_niu j0 = 1 jn = l_nj if (G_lam) then if (l_west) i0 = 3 if (l_east) in = l_niu - 1 endif do j = j0, jn do i = i0, in * F_um(i,j,k) = inuvl_wxux3_8(i,1) * u_wrkm(i-2,j,k) % + inuvl_wxux3_8(i,2) * u_wrkm(i-1,j,k) % + inuvl_wxux3_8(i,3) * u_wrkm(i ,j,k) % + inuvl_wxux3_8(i,4) * u_wrkm(i+1,j,k) * uthm(i,j,k) = inuvl_wxux3_8(i,1) * uth_wm(i-2,j,k) % + inuvl_wxux3_8(i,2) * uth_wm(i-1,j,k) % + inuvl_wxux3_8(i,3) * uth_wm(i ,j,k) % + inuvl_wxux3_8(i,4) * uth_wm(i+1,j,k) * enddo enddo * i0 = 1 in = l_ni jn = l_njv if (l_south) j0 = 3 if (l_north) jn = l_njv - 1 do j = j0, jn do i = i0, in * F_vm(i,j,k) = inuvl_wyvy3_8(j,1) * v_wrkm(i,j-2,k) % + inuvl_wyvy3_8(j,2) * v_wrkm(i,j-1,k) % + inuvl_wyvy3_8(j,3) * v_wrkm(i,j ,k) % + inuvl_wyvy3_8(j,4) * v_wrkm(i,j+1,k) * vthm(i,j,k) = inuvl_wyvy3_8(j,1) * vth_wm(i,j-2,k) % + inuvl_wyvy3_8(j,2) * vth_wm(i,j-1,k) % + inuvl_wyvy3_8(j,3) * vth_wm(i,j ,k) % + inuvl_wyvy3_8(j,4) * vth_wm(i,j+1,k) * enddo enddo if (.not.G_lam) then if (l_south) then do i = i0, in * F_vm(i,j0-2,k) = inuvl_wyvy3_8(j0-2,3) * v_wrkm(i,j0-2,k) % + inuvl_wyvy3_8(j0-2,4) * v_wrkm(i,j0-1,k) F_vm(i,j0-1,k) = inuvl_wyvy3_8(j0-1,2) * v_wrkm(i,j0-2,k) % + inuvl_wyvy3_8(j0-1,3) * v_wrkm(i,j0-1,k) % + inuvl_wyvy3_8(j0-1,4) * v_wrkm(i,j0,k ) * vthm(i,j0-2,k) = inuvl_wyvy3_8(j0-2,3) * vth_wm(i,j0-2,k) % + inuvl_wyvy3_8(j0-2,4) * vth_wm(i,j0-1,k) vthm(i,j0-1,k) = inuvl_wyvy3_8(j0-1,2) * vth_wm(i,j0-2,k) % + inuvl_wyvy3_8(j0-1,3) * vth_wm(i,j0-1,k) % + inuvl_wyvy3_8(j0-1,4) * vth_wm(i,j0,k ) * enddo endif if (l_north) then do i = i0, in * F_vm(i,jn+2,k) = inuvl_wyvy3_8(jn+2,1) * v_wrkm(i,jn ,k) % + inuvl_wyvy3_8(jn+2,2) * v_wrkm(i,jn+1,k) F_vm(i,jn+1,k) = inuvl_wyvy3_8(jn+1,1) * v_wrkm(i,jn-1,k) % + inuvl_wyvy3_8(jn+1,2) * v_wrkm(i,jn ,k) % + inuvl_wyvy3_8(jn+1,3) * v_wrkm(i,jn+1,k) * vthm(i,jn+2,k) = inuvl_wyvy3_8(jn+2,1) * vth_wm(i,jn ,k) % + inuvl_wyvy3_8(jn+2,2) * vth_wm(i,jn+1,k) vthm(i,jn+1,k) = inuvl_wyvy3_8(jn+1,1) * vth_wm(i,jn-1,k) % + inuvl_wyvy3_8(jn+1,2) * vth_wm(i,jn ,k) % + inuvl_wyvy3_8(jn+1,3) * vth_wm(i,jn+1,k) * enddo endif endif enddo !$omp enddo * do k=1,l_nk do j=l_miny,l_maxy do i=l_minx,l_maxx psdthm(i,j,k) = wth_wm(i,j,k) enddo enddo enddo * *********************************************************************** * Image to component *********************************************************************** i0=1 in=l_ni j0=1 jn=l_nj if (G_lam) then if (l_south) j0 = 3 if (l_north) jn = l_njv - 1 endif !$omp do do k = 1,l_nk do j = j0,jn * sc_8 = ONE_8/Adw_cy_8(j) * do i = i0,in * v_wrkm(i,j,k) = sc_8 * F_vm(i,j,k) * vthm (i,j,k) = sc_8 * vthm(i,j,k) * enddo enddo enddo !$omp enddo i0=1 in=l_ni j0=1 jn=l_nj if (G_lam) then if (l_west) i0 = 3 if (l_east) in = l_niu - 1 endif !$omp do do k = 1,l_nk do j = j0,jn * sc_8 = ONE_8/Adw_cy_8(j) * do i = i0,in * u_wrkm(i,j,k) = sc_8 * F_um(i,j,k) * uthm (i,j,k) = sc_8 * uthm(i,j,k) * enddo enddo enddo !$omp enddo * *********************************************************************** * Adjust wind fields to advection grid *********************************************************************** if (G_lam) then n=0 dest_ni=l_ni else n=999 dest_ni=G_ni endif * !$omp single call rpn_comm_xch_halox ( u_wrkm, LDIST_DIM, l_ni, l_nj, l_nk, % Adw_halox, Adw_haloy, G_periodx, G_periody, F_um, 1-Adw_halox, % Adw_nic+Adw_halox, 1-Adw_haloy, Adw_njc+Adw_haloy, dest_ni, n) * call rpn_comm_xch_halox ( v_wrkm, LDIST_DIM, l_ni, l_nj, l_nk, % Adw_halox, Adw_haloy, G_periodx, G_periody, F_vm, 1-Adw_halox, % Adw_nic+Adw_halox, 1-Adw_haloy, Adw_njc+Adw_haloy, dest_ni, n) * call rpn_comm_xch_halox ( w_wrkm, LDIST_DIM, l_ni, l_nj, l_nk, % Adw_halox, Adw_haloy, G_periodx, G_periody, F_wm, 1-Adw_halox, % Adw_nic+Adw_halox, 1-Adw_haloy, Adw_njc+Adw_haloy, dest_ni, n) !$omp end single * if (.not.G_lam) then * if ( l_south ) then * call adw_polw
(F_um,F_vm,Adw_cx_8,Adw_sx_8,Adw_wx_8, % Adw_sy_8,0,Adw_nic,Adw_halox,Adw_njc,Adw_haloy,l_nk) call adw_pols
(F_wm,Adw_wx_8,0,Adw_nic,Adw_halox,Adw_njc, % Adw_haloy,l_nk) endif * if ( l_north ) then * call adw_polw
(F_um,F_vm,Adw_cx_8,Adw_sx_8,Adw_wx_8, % Adw_sy_8,Adw_njc+1,Adw_nic,Adw_halox,Adw_njc,Adw_haloy,l_nk) call adw_pols
(F_wm,Adw_wx_8,Adw_njc+1,Adw_nic,Adw_halox, % Adw_njc,Adw_haloy,l_nk) endif endif !$omp end parallel * 1000 format(3X,'TRAJ of PREPARE WINDS: (S/R ADW_MAIN_1_WND_SETTLS_TR)') return end