[1] | 1 | MODULE diffusion_u_mod |
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| 2 | |
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| 3 | !------------------------------------------------------------------------------! |
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| 4 | ! Actual revisions: |
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| 5 | ! ----------------- |
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| 6 | ! |
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[77] | 7 | ! |
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[1] | 8 | ! Former revisions: |
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| 9 | ! ----------------- |
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[3] | 10 | ! $Id: diffusion_u.f90 77 2007-03-29 04:26:56Z raasch $ |
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[39] | 11 | ! |
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[77] | 12 | ! 75 2007-03-22 09:54:05Z raasch |
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| 13 | ! Wall functions now include diabatic conditions, call of routine wall_fluxes, |
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| 14 | ! z0 removed from argument list, uxrp eliminated |
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| 15 | ! |
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[39] | 16 | ! 20 2007-02-26 00:12:32Z raasch |
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| 17 | ! Bugfix: ddzw dimensioned 1:nzt"+1" |
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| 18 | ! |
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[3] | 19 | ! RCS Log replace by Id keyword, revision history cleaned up |
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| 20 | ! |
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[1] | 21 | ! Revision 1.15 2006/02/23 10:35:35 raasch |
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| 22 | ! nzb_2d replaced by nzb_u_outer in horizontal diffusion and by nzb_u_inner |
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| 23 | ! or nzb_diff_u, respectively, in vertical diffusion, |
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| 24 | ! wall functions added for north and south walls, +z0 in argument list, |
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| 25 | ! terms containing w(k-1,..) are removed from the Prandtl-layer equation |
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| 26 | ! because they cause errors at the edges of topography |
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| 27 | ! WARNING: loops containing the MAX function are still not properly vectorized! |
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| 28 | ! |
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| 29 | ! Revision 1.1 1997/09/12 06:23:51 raasch |
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| 30 | ! Initial revision |
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| 31 | ! |
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| 32 | ! |
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| 33 | ! Description: |
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| 34 | ! ------------ |
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| 35 | ! Diffusion term of the u-component |
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[51] | 36 | ! To do: additional damping (needed for non-cyclic bc) causes bad vectorization |
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| 37 | ! and slows down the speed on NEC about 5-10% |
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[1] | 38 | !------------------------------------------------------------------------------! |
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| 39 | |
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[56] | 40 | USE wall_fluxes_mod |
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| 41 | |
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[1] | 42 | PRIVATE |
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| 43 | PUBLIC diffusion_u |
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| 44 | |
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| 45 | INTERFACE diffusion_u |
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| 46 | MODULE PROCEDURE diffusion_u |
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| 47 | MODULE PROCEDURE diffusion_u_ij |
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| 48 | END INTERFACE diffusion_u |
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| 49 | |
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| 50 | CONTAINS |
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| 51 | |
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| 52 | |
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| 53 | !------------------------------------------------------------------------------! |
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| 54 | ! Call for all grid points |
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| 55 | !------------------------------------------------------------------------------! |
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[57] | 56 | SUBROUTINE diffusion_u( ddzu, ddzw, km, km_damp_y, tend, u, usws, v, w ) |
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[1] | 57 | |
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| 58 | USE control_parameters |
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| 59 | USE grid_variables |
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| 60 | USE indices |
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| 61 | |
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| 62 | IMPLICIT NONE |
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| 63 | |
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| 64 | INTEGER :: i, j, k |
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[51] | 65 | REAL :: kmym_x, kmym_y, kmyp_x, kmyp_y, kmzm, kmzp |
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[20] | 66 | REAL :: ddzu(1:nzt+1), ddzw(1:nzt+1), km_damp_y(nys-1:nyn+1) |
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[1] | 67 | REAL :: tend(nzb:nzt+1,nys-1:nyn+1,nxl-1:nxr+1) |
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| 68 | REAL, DIMENSION(:,:), POINTER :: usws |
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| 69 | REAL, DIMENSION(:,:,:), POINTER :: km, u, v, w |
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[75] | 70 | REAL, DIMENSION(nzb:nzt+1,nys:nyn,nxl:nxr) :: usvs |
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[1] | 71 | |
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[56] | 72 | ! |
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| 73 | !-- First calculate horizontal momentum flux u'v' at vertical walls, |
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| 74 | !-- if neccessary |
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| 75 | IF ( topography /= 'flat' ) THEN |
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[75] | 76 | CALL wall_fluxes( usvs, 1.0, 0.0, 0.0, 0.0, nzb_u_inner, & |
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[56] | 77 | nzb_u_outer, wall_u ) |
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| 78 | ENDIF |
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| 79 | |
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[75] | 80 | DO i = nxl, nxr |
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[1] | 81 | DO j = nys,nyn |
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| 82 | ! |
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| 83 | !-- Compute horizontal diffusion |
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| 84 | DO k = nzb_u_outer(j,i)+1, nzt |
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| 85 | ! |
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| 86 | !-- Interpolate eddy diffusivities on staggered gridpoints |
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| 87 | kmyp_x = 0.25 * & |
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| 88 | ( km(k,j,i)+km(k,j+1,i)+km(k,j,i-1)+km(k,j+1,i-1) ) |
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| 89 | kmym_x = 0.25 * & |
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| 90 | ( km(k,j,i)+km(k,j-1,i)+km(k,j,i-1)+km(k,j-1,i-1) ) |
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| 91 | kmyp_y = kmyp_x |
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| 92 | kmym_y = kmym_x |
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| 93 | ! |
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| 94 | !-- Increase diffusion at the outflow boundary in case of |
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| 95 | !-- non-cyclic lateral boundaries. Damping is only needed for |
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| 96 | !-- velocity components parallel to the outflow boundary in |
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| 97 | !-- the direction normal to the outflow boundary. |
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| 98 | IF ( bc_ns /= 'cyclic' ) THEN |
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| 99 | kmyp_y = MAX( kmyp_y, km_damp_y(j) ) |
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| 100 | kmym_y = MAX( kmym_y, km_damp_y(j) ) |
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| 101 | ENDIF |
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| 102 | |
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| 103 | tend(k,j,i) = tend(k,j,i) & |
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| 104 | & + 2.0 * ( & |
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| 105 | & km(k,j,i) * ( u(k,j,i+1) - u(k,j,i) ) & |
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| 106 | & - km(k,j,i-1) * ( u(k,j,i) - u(k,j,i-1) ) & |
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| 107 | & ) * ddx2 & |
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| 108 | & + ( kmyp_y * ( u(k,j+1,i) - u(k,j,i) ) * ddy & |
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| 109 | & + kmyp_x * ( v(k,j+1,i) - v(k,j+1,i-1) ) * ddx & |
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| 110 | & - kmym_y * ( u(k,j,i) - u(k,j-1,i) ) * ddy & |
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| 111 | & - kmym_x * ( v(k,j,i) - v(k,j,i-1) ) * ddx & |
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| 112 | & ) * ddy |
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| 113 | ENDDO |
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| 114 | |
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| 115 | ! |
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| 116 | !-- Wall functions at the north and south walls, respectively |
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| 117 | IF ( wall_u(j,i) /= 0.0 ) THEN |
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[51] | 118 | |
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[1] | 119 | DO k = nzb_u_inner(j,i)+1, nzb_u_outer(j,i) |
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| 120 | kmyp_x = 0.25 * & |
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| 121 | ( km(k,j,i)+km(k,j+1,i)+km(k,j,i-1)+km(k,j+1,i-1) ) |
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| 122 | kmym_x = 0.25 * & |
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| 123 | ( km(k,j,i)+km(k,j-1,i)+km(k,j,i-1)+km(k,j-1,i-1) ) |
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| 124 | kmyp_y = kmyp_x |
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| 125 | kmym_y = kmym_x |
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| 126 | ! |
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| 127 | !-- Increase diffusion at the outflow boundary in case of |
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| 128 | !-- non-cyclic lateral boundaries. Damping is only needed for |
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| 129 | !-- velocity components parallel to the outflow boundary in |
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| 130 | !-- the direction normal to the outflow boundary. |
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| 131 | IF ( bc_ns /= 'cyclic' ) THEN |
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| 132 | kmyp_y = MAX( kmyp_y, km_damp_y(j) ) |
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| 133 | kmym_y = MAX( kmym_y, km_damp_y(j) ) |
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| 134 | ENDIF |
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| 135 | |
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| 136 | tend(k,j,i) = tend(k,j,i) & |
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| 137 | + 2.0 * ( & |
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| 138 | km(k,j,i) * ( u(k,j,i+1) - u(k,j,i) ) & |
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| 139 | - km(k,j,i-1) * ( u(k,j,i) - u(k,j,i-1) ) & |
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| 140 | ) * ddx2 & |
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| 141 | + ( fyp(j,i) * ( & |
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| 142 | kmyp_y * ( u(k,j+1,i) - u(k,j,i) ) * ddy & |
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| 143 | + kmyp_x * ( v(k,j+1,i) - v(k,j+1,i-1) ) * ddx & |
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| 144 | ) & |
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| 145 | - fym(j,i) * ( & |
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| 146 | kmym_y * ( u(k,j,i) - u(k,j-1,i) ) * ddy & |
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| 147 | + kmym_x * ( v(k,j,i) - v(k,j,i-1) ) * ddx & |
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| 148 | ) & |
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[56] | 149 | + wall_u(j,i) * usvs(k,j,i) & |
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[1] | 150 | ) * ddy |
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| 151 | ENDDO |
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| 152 | ENDIF |
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| 153 | |
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| 154 | ! |
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| 155 | !-- Compute vertical diffusion. In case of simulating a Prandtl layer, |
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| 156 | !-- index k starts at nzb_u_inner+2. |
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| 157 | DO k = nzb_diff_u(j,i), nzt |
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| 158 | ! |
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| 159 | !-- Interpolate eddy diffusivities on staggered gridpoints |
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| 160 | kmzp = 0.25 * & |
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| 161 | ( km(k,j,i)+km(k+1,j,i)+km(k,j,i-1)+km(k+1,j,i-1) ) |
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| 162 | kmzm = 0.25 * & |
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| 163 | ( km(k,j,i)+km(k-1,j,i)+km(k,j,i-1)+km(k-1,j,i-1) ) |
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| 164 | |
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| 165 | tend(k,j,i) = tend(k,j,i) & |
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| 166 | & + ( kmzp * ( ( u(k+1,j,i) - u(k,j,i) ) * ddzu(k+1) & |
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| 167 | & + ( w(k,j,i) - w(k,j,i-1) ) * ddx & |
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| 168 | & ) & |
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| 169 | & - kmzm * ( ( u(k,j,i) - u(k-1,j,i) ) * ddzu(k) & |
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| 170 | & + ( w(k-1,j,i) - w(k-1,j,i-1) ) * ddx & |
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| 171 | & ) & |
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| 172 | & ) * ddzw(k) |
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| 173 | ENDDO |
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| 174 | |
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| 175 | ! |
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| 176 | !-- Vertical diffusion at the first grid point above the surface, |
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| 177 | !-- if the momentum flux at the bottom is given by the Prandtl law or |
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| 178 | !-- if it is prescribed by the user. |
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| 179 | !-- Difference quotient of the momentum flux is not formed over half |
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| 180 | !-- of the grid spacing (2.0*ddzw(k)) any more, since the comparison |
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| 181 | !-- with other (LES) modell showed that the values of the momentum |
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| 182 | !-- flux becomes too large in this case. |
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| 183 | !-- The term containing w(k-1,..) (see above equation) is removed here |
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| 184 | !-- because the vertical velocity is assumed to be zero at the surface. |
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| 185 | IF ( use_surface_fluxes ) THEN |
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| 186 | k = nzb_u_inner(j,i)+1 |
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| 187 | ! |
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| 188 | !-- Interpolate eddy diffusivities on staggered gridpoints |
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| 189 | kmzp = 0.25 * & |
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| 190 | ( km(k,j,i)+km(k+1,j,i)+km(k,j,i-1)+km(k+1,j,i-1) ) |
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| 191 | kmzm = 0.25 * & |
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| 192 | ( km(k,j,i)+km(k-1,j,i)+km(k,j,i-1)+km(k-1,j,i-1) ) |
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| 193 | |
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| 194 | tend(k,j,i) = tend(k,j,i) & |
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| 195 | & + ( kmzp * ( w(k,j,i) - w(k,j,i-1) ) * ddx & |
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| 196 | & ) * ddzw(k) & |
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| 197 | & + ( kmzp * ( u(k+1,j,i) - u(k,j,i) ) * ddzu(k+1) & |
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| 198 | & + usws(j,i) & |
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| 199 | & ) * ddzw(k) |
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| 200 | ENDIF |
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| 201 | |
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| 202 | ENDDO |
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| 203 | ENDDO |
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| 204 | |
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| 205 | END SUBROUTINE diffusion_u |
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| 206 | |
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| 207 | |
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| 208 | !------------------------------------------------------------------------------! |
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| 209 | ! Call for grid point i,j |
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| 210 | !------------------------------------------------------------------------------! |
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| 211 | SUBROUTINE diffusion_u_ij( i, j, ddzu, ddzw, km, km_damp_y, tend, u, usws, & |
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[57] | 212 | v, w ) |
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[1] | 213 | |
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| 214 | USE control_parameters |
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| 215 | USE grid_variables |
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| 216 | USE indices |
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| 217 | |
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| 218 | IMPLICIT NONE |
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| 219 | |
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| 220 | INTEGER :: i, j, k |
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[51] | 221 | REAL :: kmym_x, kmym_y, kmyp_x, kmyp_y, kmzm, kmzp |
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[20] | 222 | REAL :: ddzu(1:nzt+1), ddzw(1:nzt+1), km_damp_y(nys-1:nyn+1) |
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[1] | 223 | REAL :: tend(nzb:nzt+1,nys-1:nyn+1,nxl-1:nxr+1) |
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[51] | 224 | REAL, DIMENSION(nzb:nzt+1) :: usvs |
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[1] | 225 | REAL, DIMENSION(:,:), POINTER :: usws |
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| 226 | REAL, DIMENSION(:,:,:), POINTER :: km, u, v, w |
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| 227 | |
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| 228 | ! |
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| 229 | !-- Compute horizontal diffusion |
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| 230 | DO k = nzb_u_outer(j,i)+1, nzt |
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| 231 | ! |
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| 232 | !-- Interpolate eddy diffusivities on staggered gridpoints |
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| 233 | kmyp_x = 0.25 * ( km(k,j,i)+km(k,j+1,i)+km(k,j,i-1)+km(k,j+1,i-1) ) |
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| 234 | kmym_x = 0.25 * ( km(k,j,i)+km(k,j-1,i)+km(k,j,i-1)+km(k,j-1,i-1) ) |
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| 235 | kmyp_y = kmyp_x |
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| 236 | kmym_y = kmym_x |
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| 237 | |
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| 238 | ! |
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| 239 | !-- Increase diffusion at the outflow boundary in case of non-cyclic |
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| 240 | !-- lateral boundaries. Damping is only needed for velocity components |
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| 241 | !-- parallel to the outflow boundary in the direction normal to the |
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| 242 | !-- outflow boundary. |
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| 243 | IF ( bc_ns /= 'cyclic' ) THEN |
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| 244 | kmyp_y = MAX( kmyp_y, km_damp_y(j) ) |
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| 245 | kmym_y = MAX( kmym_y, km_damp_y(j) ) |
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| 246 | ENDIF |
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| 247 | |
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| 248 | tend(k,j,i) = tend(k,j,i) & |
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| 249 | & + 2.0 * ( & |
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| 250 | & km(k,j,i) * ( u(k,j,i+1) - u(k,j,i) ) & |
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| 251 | & - km(k,j,i-1) * ( u(k,j,i) - u(k,j,i-1) ) & |
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| 252 | & ) * ddx2 & |
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| 253 | & + ( kmyp_y * ( u(k,j+1,i) - u(k,j,i) ) * ddy & |
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| 254 | & + kmyp_x * ( v(k,j+1,i) - v(k,j+1,i-1) ) * ddx & |
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| 255 | & - kmym_y * ( u(k,j,i) - u(k,j-1,i) ) * ddy & |
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| 256 | & - kmym_x * ( v(k,j,i) - v(k,j,i-1) ) * ddx & |
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| 257 | & ) * ddy |
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| 258 | ENDDO |
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| 259 | |
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| 260 | ! |
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| 261 | !-- Wall functions at the north and south walls, respectively |
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| 262 | IF ( wall_u(j,i) .NE. 0.0 ) THEN |
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[51] | 263 | |
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| 264 | ! |
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| 265 | !-- Calculate the horizontal momentum flux u'v' |
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| 266 | CALL wall_fluxes( i, j, nzb_u_inner(j,i)+1, nzb_u_outer(j,i), & |
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| 267 | usvs, 1.0, 0.0, 0.0, 0.0 ) |
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| 268 | |
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[1] | 269 | DO k = nzb_u_inner(j,i)+1, nzb_u_outer(j,i) |
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| 270 | kmyp_x = 0.25 * ( km(k,j,i)+km(k,j+1,i)+km(k,j,i-1)+km(k,j+1,i-1) ) |
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| 271 | kmym_x = 0.25 * ( km(k,j,i)+km(k,j-1,i)+km(k,j,i-1)+km(k,j-1,i-1) ) |
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| 272 | kmyp_y = kmyp_x |
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| 273 | kmym_y = kmym_x |
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| 274 | ! |
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| 275 | !-- Increase diffusion at the outflow boundary in case of |
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| 276 | !-- non-cyclic lateral boundaries. Damping is only needed for |
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| 277 | !-- velocity components parallel to the outflow boundary in |
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| 278 | !-- the direction normal to the outflow boundary. |
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| 279 | IF ( bc_ns /= 'cyclic' ) THEN |
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| 280 | kmyp_y = MAX( kmyp_y, km_damp_y(j) ) |
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| 281 | kmym_y = MAX( kmym_y, km_damp_y(j) ) |
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| 282 | ENDIF |
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| 283 | |
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| 284 | tend(k,j,i) = tend(k,j,i) & |
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| 285 | + 2.0 * ( & |
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| 286 | km(k,j,i) * ( u(k,j,i+1) - u(k,j,i) ) & |
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| 287 | - km(k,j,i-1) * ( u(k,j,i) - u(k,j,i-1) ) & |
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| 288 | ) * ddx2 & |
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| 289 | + ( fyp(j,i) * ( & |
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| 290 | kmyp_y * ( u(k,j+1,i) - u(k,j,i) ) * ddy & |
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| 291 | + kmyp_x * ( v(k,j+1,i) - v(k,j+1,i-1) ) * ddx & |
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| 292 | ) & |
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| 293 | - fym(j,i) * ( & |
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| 294 | kmym_y * ( u(k,j,i) - u(k,j-1,i) ) * ddy & |
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| 295 | + kmym_x * ( v(k,j,i) - v(k,j,i-1) ) * ddx & |
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| 296 | ) & |
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[51] | 297 | + wall_u(j,i) * usvs(k) & |
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[1] | 298 | ) * ddy |
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| 299 | ENDDO |
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| 300 | ENDIF |
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| 301 | |
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| 302 | ! |
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| 303 | !-- Compute vertical diffusion. In case of simulating a Prandtl layer, |
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| 304 | !-- index k starts at nzb_u_inner+2. |
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| 305 | DO k = nzb_diff_u(j,i), nzt |
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| 306 | ! |
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| 307 | !-- Interpolate eddy diffusivities on staggered gridpoints |
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| 308 | kmzp = 0.25 * ( km(k,j,i)+km(k+1,j,i)+km(k,j,i-1)+km(k+1,j,i-1) ) |
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| 309 | kmzm = 0.25 * ( km(k,j,i)+km(k-1,j,i)+km(k,j,i-1)+km(k-1,j,i-1) ) |
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| 310 | |
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| 311 | tend(k,j,i) = tend(k,j,i) & |
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| 312 | & + ( kmzp * ( ( u(k+1,j,i) - u(k,j,i) ) * ddzu(k+1) & |
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| 313 | & + ( w(k,j,i) - w(k,j,i-1) ) * ddx & |
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| 314 | & ) & |
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| 315 | & - kmzm * ( ( u(k,j,i) - u(k-1,j,i) ) * ddzu(k) & |
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| 316 | & + ( w(k-1,j,i) - w(k-1,j,i-1) ) * ddx & |
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| 317 | & ) & |
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| 318 | & ) * ddzw(k) |
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| 319 | ENDDO |
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| 320 | |
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| 321 | ! |
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| 322 | !-- Vertical diffusion at the first grid point above the surface, if the |
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| 323 | !-- momentum flux at the bottom is given by the Prandtl law or if it is |
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| 324 | !-- prescribed by the user. |
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| 325 | !-- Difference quotient of the momentum flux is not formed over half of |
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| 326 | !-- the grid spacing (2.0*ddzw(k)) any more, since the comparison with |
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| 327 | !-- other (LES) modell showed that the values of the momentum flux becomes |
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| 328 | !-- too large in this case. |
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| 329 | !-- The term containing w(k-1,..) (see above equation) is removed here |
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| 330 | !-- because the vertical velocity is assumed to be zero at the surface. |
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| 331 | IF ( use_surface_fluxes ) THEN |
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| 332 | k = nzb_u_inner(j,i)+1 |
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| 333 | ! |
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| 334 | !-- Interpolate eddy diffusivities on staggered gridpoints |
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| 335 | kmzp = 0.25 * ( km(k,j,i)+km(k+1,j,i)+km(k,j,i-1)+km(k+1,j,i-1) ) |
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| 336 | kmzm = 0.25 * ( km(k,j,i)+km(k-1,j,i)+km(k,j,i-1)+km(k-1,j,i-1) ) |
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| 337 | |
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| 338 | tend(k,j,i) = tend(k,j,i) & |
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| 339 | & + ( kmzp * ( w(k,j,i) - w(k,j,i-1) ) * ddx & |
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| 340 | & ) * ddzw(k) & |
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| 341 | & + ( kmzp * ( u(k+1,j,i) - u(k,j,i) ) * ddzu(k+1) & |
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| 342 | & + usws(j,i) & |
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| 343 | & ) * ddzw(k) |
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| 344 | ENDIF |
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| 345 | |
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| 346 | END SUBROUTINE diffusion_u_ij |
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| 347 | |
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| 348 | END MODULE diffusion_u_mod |
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