[38] | 1 | subroutine sponge(ucov,vcov,h,pext,dt,mode) |
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[575] | 2 | |
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| 3 | ! Sponge routine: Quench ucov, vcov and potential temperature near the |
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| 4 | ! top of the model |
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| 5 | ! Depending on 'mode' relaxation of variables is towards: |
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| 6 | ! mode = 0 : h -> h_mean , ucov -> 0 , vcov -> 0 |
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| 7 | ! mode = 1 : h -> h_mean , ucov -> ucov_mean , vcov -> 0 |
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| 8 | ! mode >= 2 : h -> h_mean , ucov -> ucov_mean , vcov -> vcov_mean |
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| 9 | ! Number of layer over which sponge is applied is 'nsponge' (read from def file) |
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| 10 | ! Time scale for quenching at top level is given by 'tetasponge' (read from |
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| 11 | ! def file) and doubles as level indexes decrease. |
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| 12 | |
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[38] | 13 | implicit none |
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| 14 | #include "dimensions.h" |
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| 15 | #include "paramet.h" |
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| 16 | #include "comdissip.h" |
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| 17 | #include "comvert.h" |
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| 18 | #include "comgeom2.h" |
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| 19 | #include "sponge.h" |
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| 20 | |
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[575] | 21 | ! Arguments: |
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| 22 | !------------ |
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| 23 | real,intent(inout) :: ucov(iip1,jjp1,llm) ! covariant zonal wind |
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| 24 | real,intent(inout) :: vcov(iip1,jjm,llm) ! covariant meridional wind |
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| 25 | real,intent(inout) :: h(iip1,jjp1,llm) ! potential temperature |
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| 26 | real,intent(in) :: pext(iip1,jjp1) ! extensive pressure |
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| 27 | real,intent(in) :: dt ! time step |
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| 28 | integer,intent(in) :: mode ! sponge mode |
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| 29 | |
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[38] | 30 | c Local: |
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| 31 | c ------ |
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| 32 | |
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[575] | 33 | real,save :: sig_s(llm) !sigma au milieu des couches |
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[38] | 34 | REAL vm,um,hm,ptot(jjp1) |
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[575] | 35 | real,save :: cst(llm) |
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[38] | 36 | |
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[575] | 37 | INTEGER l,i,j |
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| 38 | integer,save :: l0 ! layer down to which sponge is applied |
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[38] | 39 | |
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| 40 | real ssum |
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| 41 | |
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| 42 | real echelle,zkm |
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[575] | 43 | logical,save :: firstcall=.true. |
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[38] | 44 | |
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[575] | 45 | |
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| 46 | |
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[38] | 47 | if (firstcall) then |
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[575] | 48 | |
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| 49 | ! build approximative sigma levels at midlayer |
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| 50 | do l=1,llm |
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[38] | 51 | sig_s(l)=((ap(l)+ap(l+1))/preff+bp(l)+bp(l+1))/2. |
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[575] | 52 | enddo |
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[38] | 53 | |
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[575] | 54 | l0=llm-nsponge+1 |
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[38] | 55 | |
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[575] | 56 | PRINT* |
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| 57 | print*,'sponge mode',mode |
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| 58 | print*,'nsponge tetasponge ',nsponge,tetasponge |
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| 59 | print*,'Coeffs for the sponge layer' |
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| 60 | print*,'Z (km) tau cst' |
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| 61 | do l=llm,l0,-1 |
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| 62 | ! double time scale with every level, starting from the top |
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| 63 | cst(l)=dt/(tetasponge*2**(llm-l)) |
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| 64 | enddo |
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[38] | 65 | |
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[575] | 66 | echelle=10. |
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| 67 | do l=l0,llm |
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| 68 | zkm=-echelle*log(sig_s(l)) |
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| 69 | print*,zkm,dt/cst(l),cst(l) |
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| 70 | enddo |
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| 71 | PRINT* |
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| 72 | |
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| 73 | firstcall=.false. |
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| 74 | endif ! of if (firstcall) |
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| 75 | |
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[38] | 76 | c----------------------------------------------------------------------- |
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| 77 | c calcul de la dissipation: |
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| 78 | c ------------------------- |
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| 79 | |
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| 80 | do j=1,jjp1 |
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| 81 | ptot(j)=ssum(iim,pext(1,j),1) |
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| 82 | enddo |
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| 83 | |
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[575] | 84 | c potential temperature |
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[38] | 85 | do l=l0,llm |
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| 86 | do j=1,jjp1 |
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| 87 | hm=0. |
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| 88 | do i=1,iim |
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| 89 | hm=hm+h(i,j,l)*pext(i,j) |
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| 90 | enddo |
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| 91 | hm=hm/ptot(j) |
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| 92 | do i=1,iim |
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| 93 | h(i,j,l)=h(i,j,l)-cst(l)*(h(i,j,l)-hm) |
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| 94 | enddo |
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| 95 | h(iip1,j,l)=h(1,j,l) |
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| 96 | enddo |
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| 97 | enddo |
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| 98 | |
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[575] | 99 | c zonal wind |
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[38] | 100 | do l=l0,llm |
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| 101 | do j=2,jjm |
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| 102 | um=0. |
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| 103 | if(mode.ge.1) then |
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| 104 | do i=1,iim |
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| 105 | um=um+0.5*ucov(i,j,l)*(pext(i,j)+pext(i+1,j)) |
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| 106 | s /cu(i,j) |
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| 107 | enddo |
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| 108 | um=um/ptot(j) |
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| 109 | endif |
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| 110 | do i=1,iim |
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| 111 | ucov(i,j,l)=ucov(i,j,l)-cst(l)*(ucov(i,j,l)-um*cu(i,j)) |
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| 112 | enddo |
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| 113 | ucov(iip1,j,l)=ucov(1,j,l) |
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| 114 | enddo |
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| 115 | enddo |
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| 116 | |
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[575] | 117 | c meridional wind |
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[38] | 118 | do l=l0,llm |
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| 119 | do j=1,jjm |
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| 120 | vm=0. |
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| 121 | if(mode.ge.2) then |
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| 122 | do i=1,iim |
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| 123 | vm=vm+vcov(i,j,l)*(pext(i,j)+pext(i,j+1)) |
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| 124 | s /cv(i,j) |
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| 125 | enddo |
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| 126 | vm=vm/(ptot(j)+ptot(j+1)) |
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| 127 | endif |
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| 128 | do i=1,iim |
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| 129 | vcov(i,j,l)=vcov(i,j,l)-cst(l)*(vcov(i,j,l)-vm*cv(i,j)) |
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| 130 | enddo |
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| 131 | vcov(iip1,j,l)=vcov(1,j,l) |
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| 132 | enddo |
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| 133 | enddo |
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| 134 | |
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| 135 | end |
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