[3076] | 1 | MODULE soil_pem_ini_mod |
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[2895] | 2 | |
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[3076] | 3 | implicit none |
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[2895] | 4 | |
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[3076] | 5 | !======================================================================= |
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| 6 | contains |
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| 7 | !======================================================================= |
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[2895] | 8 | |
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[3076] | 9 | SUBROUTINE soil_pem_ini(ngrid,nsoil,therm_i,tsurf,tsoil) |
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| 10 | |
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| 11 | use comsoil_h_PEM, only: layer_PEM, mlayer_PEM, mthermdiff_PEM, thermdiff_PEM, coefq_PEM, coefd_PEM, mu_PEM, alph_PEM, beta_PEM, fluxgeo |
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| 12 | use comsoil_h, only: volcapa |
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| 13 | |
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| 14 | implicit none |
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| 15 | |
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[2895] | 16 | !----------------------------------------------------------------------- |
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| 17 | ! Author: LL |
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| 18 | ! Purpose: Compute soil temperature using an implict 1st order scheme, stationnary solution |
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[3076] | 19 | ! |
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| 20 | ! Note: depths of layers and mid-layers, soil thermal inertia and |
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[2895] | 21 | ! heat capacity are commons in comsoil_PEM.h |
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| 22 | !----------------------------------------------------------------------- |
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| 23 | |
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| 24 | #include "dimensions.h" |
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| 25 | |
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| 26 | !----------------------------------------------------------------------- |
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| 27 | ! arguments |
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| 28 | ! --------- |
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| 29 | ! inputs: |
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[3076] | 30 | integer, intent(in) :: ngrid ! number of (horizontal) grid-points |
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| 31 | integer, intent(in) :: nsoil ! number of soil layers |
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| 32 | real, dimension(ngrid,nsoil), intent(in) :: therm_i ! thermal inertia [SI] |
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| 33 | real, dimension(ngrid), intent(in) :: tsurf ! surface temperature [K] |
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[2895] | 34 | |
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| 35 | ! outputs: |
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[3076] | 36 | real, dimension(ngrid,nsoil), intent(inout) :: tsoil ! soil (mid-layer) temperature [K] |
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[2895] | 37 | ! local variables: |
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[3076] | 38 | integer :: ig, ik, iloop |
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[2895] | 39 | |
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| 40 | ! 0. Initialisations and preprocessing step |
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| 41 | ! 0.1 Build mthermdiff_PEM(:), the mid-layer thermal diffusivities |
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[3076] | 42 | do ig = 1,ngrid |
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| 43 | do ik = 0,nsoil - 1 |
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| 44 | mthermdiff_PEM(ig,ik) = therm_i(ig,ik + 1)*therm_i(ig,ik + 1)/volcapa |
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| 45 | enddo |
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| 46 | enddo |
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[2895] | 47 | |
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| 48 | ! 0.2 Build thermdiff(:), the "interlayer" thermal diffusivities |
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[3076] | 49 | do ig = 1,ngrid |
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| 50 | do ik = 1,nsoil - 1 |
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| 51 | thermdiff_PEM(ig,ik) = ((layer_PEM(ik) - mlayer_PEM(ik - 1))*mthermdiff_PEM(ig,ik) & |
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| 52 | + (mlayer_PEM(ik) - layer_PEM(ik))*mthermdiff_PEM(ig,ik - 1))/(mlayer_PEM(ik) - mlayer_PEM(ik - 1)) |
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| 53 | enddo |
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| 54 | enddo |
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[2895] | 55 | |
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| 56 | ! 0.3 Build coefficients mu_PEM, q_{k+1/2}, d_k, alph_PEMa_k and capcal |
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[3076] | 57 | ! mu_PEM |
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| 58 | mu_PEM = mlayer_PEM(0)/(mlayer_PEM(1) - mlayer_PEM(0)) |
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[2895] | 59 | |
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[3076] | 60 | ! q_{1/2} |
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| 61 | coefq_PEM(:) = 0. |
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| 62 | ! q_{k+1/2} |
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[2895] | 63 | |
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[3076] | 64 | do ig = 1,ngrid |
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| 65 | ! d_k |
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| 66 | do ik = 1,nsoil-1 |
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| 67 | coefd_PEM(ig,ik) = thermdiff_PEM(ig,ik)/(mlayer_PEM(ik) - mlayer_PEM(ik - 1)) |
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| 68 | enddo |
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[2895] | 69 | |
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[3076] | 70 | ! alph_PEM_{N-1} |
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| 71 | alph_PEM(ig,nsoil - 1) = coefd_PEM(ig,nsoil - 1)/(coefq_PEM(nsoil - 1) + coefd_PEM(ig,nsoil - 1)) |
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| 72 | ! alph_PEM_k |
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| 73 | do ik = nsoil - 2,1,-1 |
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| 74 | alph_PEM(ig,ik) = coefd_PEM(ig,ik)/(coefq_PEM(ik) + coefd_PEM(ig,ik + 1)*(1. - alph_PEM(ig,ik + 1)) + coefd_PEM(ig,ik)) |
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| 75 | enddo |
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| 76 | enddo ! of do ig=1,ngrid |
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[2895] | 77 | |
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[3076] | 78 | ! 1. Compute beta_PEM coefficients |
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[2895] | 79 | ! Bottom layer, beta_PEM_{N-1} |
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[3076] | 80 | do ig = 1,ngrid |
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| 81 | beta_PEM(ig,nsoil - 1) = coefq_PEM(nsoil - 1)*tsoil(ig,nsoil)/(coefq_PEM(nsoil - 1) + coefd_PEM(ig,nsoil - 1)) & |
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| 82 | + fluxgeo/(coefq_PEM(nsoil - 1) + coefd_PEM(ig,nsoil - 1)) |
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| 83 | enddo |
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[2895] | 84 | ! Other layers |
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[3076] | 85 | do ik = nsoil - 2,1,-1 |
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| 86 | do ig = 1,ngrid |
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| 87 | beta_PEM(ig,ik) = (coefq_PEM(ik)*tsoil(ig,ik + 1) + coefd_PEM(ig,ik+1)*beta_PEM(ig,ik + 1))/ & |
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| 88 | (coefq_PEM(ik) + coefd_PEM(ig,ik + 1)*(1. - alph_PEM(ig,ik + 1)) + coefd_PEM(ig,ik)) |
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| 89 | enddo |
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| 90 | enddo |
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[2895] | 91 | |
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| 92 | ! 2. Compute soil temperatures |
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| 93 | do iloop = 1,10 !just convergence |
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[3076] | 94 | ! First layer: |
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| 95 | do ig = 1,ngrid |
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| 96 | tsoil(ig,1)=(tsurf(ig) + mu_PEM*beta_PEM(ig,1)*thermdiff_PEM(ig,1)/mthermdiff_PEM(ig,0))/ & |
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| 97 | (1. + mu_PEM*(1. - alph_PEM(ig,1))*thermdiff_PEM(ig,1)/mthermdiff_PEM(ig,0)) |
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| 98 | ! Other layers: |
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| 99 | do ik = 1,nsoil - 1 |
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| 100 | tsoil(ig,ik + 1) = alph_PEM(ig,ik)*tsoil(ig,ik) + beta_PEM(ig,ik) |
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| 101 | enddo |
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| 102 | enddo |
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[2895] | 103 | |
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[3076] | 104 | enddo ! iloop |
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| 105 | |
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| 106 | END SUBROUTINE soil_pem_ini |
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| 107 | |
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| 108 | END MODULE soil_pem_ini_mod |
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