source: trunk/LMDZ.GENERIC/libf/phystd/optcv.F90 @ 2026

Last change on this file since 2026 was 2004, checked in by jleconte, 7 years ago

02/10/2018 == JL

  • correct a bug introduced in commit 1987 in optcv.
  • Property svn:executable set to *
File size: 12.8 KB
RevLine 
[716]1SUBROUTINE OPTCV(DTAUV,TAUV,TAUCUMV,PLEV,  &
2     QXVAER,QSVAER,GVAER,WBARV,COSBV,       &
3     TAURAY,TAUAERO,TMID,PMID,TAUGSURF,QVAR,MUVAR)
[253]4
[716]5  use radinc_h
[1194]6  use radcommon_h, only: gasv, tlimit, wrefVAR, Cmk, tgasref, pfgasref,wnov,scalep,indv,glat_ig
[716]7  use gases_h
[1384]8  use comcstfi_mod, only: g, r, mugaz
[1397]9  use callkeys_mod, only: kastprof,continuum,graybody,H2Ocont_simple,callgasvis
[253]10
[716]11  implicit none
[253]12
[716]13  !==================================================================
14  !     
15  !     Purpose
16  !     -------
17  !     Calculates shortwave optical constants at each level.
18  !     
19  !     Authors
20  !     -------
21  !     Adapted from the NASA Ames code by R. Wordsworth (2009)
22  !     
23  !==================================================================
24  !     
25  !     THIS SUBROUTINE SETS THE OPTICAL CONSTANTS IN THE VISUAL 
[1715]26  !     IT CALCULATES FOR EACH LAYER, FOR EACH SPECTRAL INTERVAL IN THE VISUAL
[716]27  !     LAYER: WBAR, DTAU, COSBAR
28  !     LEVEL: TAU
29  !     
30  !     TAUV(L,NW,NG) is the cumulative optical depth at the top of radiation code
31  !     layer L. NW is spectral wavelength interval, ng the Gauss point index.
32  !     
33  !     TLEV(L) - Temperature at the layer boundary
34  !     PLEV(L) - Pressure at the layer boundary (i.e. level)
35  !     GASV(NT,NPS,NW,NG) - Visible k-coefficients
36  !     
37  !-------------------------------------------------------------------
[253]38
39
[716]40  real*8 DTAUV(L_NLAYRAD,L_NSPECTV,L_NGAUSS)
[1715]41  real*8 DTAUKV(L_LEVELS,L_NSPECTV,L_NGAUSS)
[716]42  real*8 TAUV(L_NLEVRAD,L_NSPECTV,L_NGAUSS)
43  real*8 TAUCUMV(L_LEVELS,L_NSPECTV,L_NGAUSS)
44  real*8 PLEV(L_LEVELS)
45  real*8 TMID(L_LEVELS), PMID(L_LEVELS)
46  real*8 COSBV(L_NLAYRAD,L_NSPECTV,L_NGAUSS)
47  real*8 WBARV(L_NLAYRAD,L_NSPECTV,L_NGAUSS)
[253]48
[716]49  ! for aerosols
[1715]50  real*8  QXVAER(L_LEVELS,L_NSPECTV,NAERKIND)
51  real*8  QSVAER(L_LEVELS,L_NSPECTV,NAERKIND)
52  real*8  GVAER(L_LEVELS,L_NSPECTV,NAERKIND)
53  real*8  TAUAERO(L_LEVELS,NAERKIND)
54  real*8  TAUAEROLK(L_LEVELS,L_NSPECTV,NAERKIND)
[873]55  real*8  TAEROS(L_LEVELS,L_NSPECTV,NAERKIND)
[253]56
[873]57  integer L, NW, NG, K, LK, IAER
[716]58  integer MT(L_LEVELS), MP(L_LEVELS), NP(L_LEVELS)
59  real*8  ANS, TAUGAS
[873]60  real*8  TAURAY(L_NSPECTV)
[716]61  real*8  TRAY(L_LEVELS,L_NSPECTV)
62  real*8  DPR(L_LEVELS), U(L_LEVELS)
63  real*8  LCOEF(4), LKCOEF(L_LEVELS,4)
[253]64
[873]65  real*8 taugsurf(L_NSPECTV,L_NGAUSS-1)
[918]66  real*8 DCONT,DAERO
[1715]67  real*8 DRAYAER
[873]68  double precision wn_cont, p_cont, p_air, T_cont, dtemp, dtempc
69  double precision p_cross
[253]70
[716]71  ! variable species mixing ratio variables
[873]72  real*8  QVAR(L_LEVELS), WRATIO(L_LEVELS), MUVAR(L_LEVELS)
73  real*8  KCOEF(4)
[716]74  integer NVAR(L_LEVELS)
[1725]75 
76  ! temporary variables to reduce memory access time to gasv
77  real*8 tmpk(2,2)
78  real*8 tmpkvar(2,2,2)
[253]79
[716]80  ! temporary variables for multiple aerosol calculation
[918]81  real*8 atemp(L_NLAYRAD,L_NSPECTV)
82  real*8 btemp(L_NLAYRAD,L_NSPECTV)
83  real*8 ctemp(L_NLAYRAD,L_NSPECTV)
[253]84
[716]85  ! variables for k in units m^-1
[873]86  real*8 dz(L_LEVELS)
[253]87
[716]88  integer igas, jgas
[253]89
[873]90  integer interm
91
92  !! AS: to save time in computing continuum (see bilinearbig)
93  IF (.not.ALLOCATED(indv)) THEN
[878]94      ALLOCATE(indv(L_NSPECTV,ngasmx,ngasmx))
[873]95      indv = -9999 ! this initial value means "to be calculated"
96  ENDIF
97
[716]98  !=======================================================================
99  !     Determine the total gas opacity throughout the column, for each
100  !     spectral interval, NW, and each Gauss point, NG.
101  !     Calculate the continuum opacities, i.e., those that do not depend on
102  !     NG, the Gauss index.
[253]103
[716]104  taugsurf(:,:) = 0.0
105  dpr(:)        = 0.0
106  lkcoef(:,:)   = 0.0
[253]107
[716]108  do K=2,L_LEVELS
109     DPR(k) = PLEV(K)-PLEV(K-1)
[253]110
[716]111     ! if we have continuum opacities, we need dz
112     if(kastprof)then
[1016]113        dz(k) = dpr(k)*(1000.0d0*8.3145d0/muvar(k))*TMID(K)/(g*PMID(K))
114        U(k)  = Cmk*DPR(k)*mugaz/muvar(k)
[716]115     else
[1194]116        dz(k) = dpr(k)*R*TMID(K)/(glat_ig*PMID(K))*mugaz/muvar(k)
[1016]117        U(k)  = Cmk*DPR(k)*mugaz/muvar(k)     ! only Cmk line in optci.F 
118            !JL13 the mugaz/muvar factor takes into account water meanmolecular weight if water is present
[716]119     endif
[253]120
[716]121     call tpindex(PMID(K),TMID(K),QVAR(K),pfgasref,tgasref,WREFVAR, &
122          LCOEF,MT(K),MP(K),NVAR(K),WRATIO(K))
[253]123
[716]124     do LK=1,4
125        LKCOEF(K,LK) = LCOEF(LK)
126     end do
[918]127  end do                    ! levels
[253]128
[1715]129  ! Spectral dependance of aerosol absorption
[1987]130            !JL18 It seems to be good to have aerosols in the first "radiative layer" of the gcm in the IR
131            !   but visible does not handle very well diffusion in first layer.
132            !   The tauaero and tauray are thus set to 0 (a small value for rayleigh because the code crashes otherwise)
133            !   in the 4 first semilayers in optcv, but not optci.
134            !   This solves random variations of the sw heating at the model top.
[918]135  do iaer=1,naerkind
136     do NW=1,L_NSPECTV
[1987]137        TAEROS(1:4,NW,IAER)=0.d0
138        do K=5,L_LEVELS
[873]139           TAEROS(K,NW,IAER) = TAUAERO(K,IAER) * QXVAER(K,NW,IAER)
[918]140        end do                    ! levels
141     end do
142  end do
[1715]143 
144  ! Rayleigh scattering
[918]145  do NW=1,L_NSPECTV
[1987]146     TRAY(1:4,NW)   = 1d-30
147     do K=5,L_LEVELS
[873]148        TRAY(K,NW)   = TAURAY(NW) * DPR(K)
[918]149     end do                    ! levels
150  end do
151 
[716]152  !     we ignore K=1...
153  do K=2,L_LEVELS
[873]154
[716]155     do NW=1,L_NSPECTV
[253]156
[1715]157        DRAYAER = TRAY(K,NW)
158        !     DRAYAER is Tau RAYleigh scattering, plus AERosol opacity
[716]159        do iaer=1,naerkind
[1715]160           DRAYAER = DRAYAER + TAEROS(K,NW,IAER)
[716]161        end do
[253]162
[716]163        DCONT = 0.0 ! continuum absorption
[253]164
[873]165        if(continuum.and.(.not.graybody).and.callgasvis)then
[716]166           ! include continua if necessary
167           wn_cont = dble(wnov(nw))
168           T_cont  = dble(TMID(k))
169           do igas=1,ngasmx
[305]170
[716]171              if(gfrac(igas).eq.-1)then ! variable
172                 p_cont  = dble(PMID(k)*scalep*QVAR(k)) ! qvar = mol/mol
173              else
174                 p_cont  = dble(PMID(k)*scalep*gfrac(igas)*(1.-QVAR(k)))
175              endif
[305]176
[716]177              dtemp=0.0
178              if(igas.eq.igas_N2)then
[253]179
[878]180                 interm = indv(nw,igas,igas)
181!                 call interpolateN2N2(wn_cont,T_cont,p_cont,dtemp,.false.,interm)
182                 indv(nw,igas,igas) = interm
[716]183                 ! only goes to 500 cm^-1, so unless we're around a cold brown dwarf, this is irrelevant in the visible
[253]184
[716]185              elseif(igas.eq.igas_H2)then
[253]186
[716]187                 ! first do self-induced absorption
[878]188                 interm = indv(nw,igas,igas)
[873]189                 call interpolateH2H2(wn_cont,T_cont,p_cont,dtemp,.false.,interm)
[878]190                 indv(nw,igas,igas) = interm
[253]191
[716]192                 ! then cross-interactions with other gases
193                 do jgas=1,ngasmx
194                    p_cross = dble(PMID(k)*scalep*gfrac(jgas)*(1.-QVAR(k)))
[873]195                    dtempc  = 0.0
196                    if(jgas.eq.igas_N2)then
[878]197                       interm = indv(nw,igas,jgas)
198                       call interpolateN2H2(wn_cont,T_cont,p_cross,p_cont,dtempc,.false.,interm)
199                       indv(nw,igas,jgas) = interm
[716]200                       ! should be irrelevant in the visible
201                    elseif(jgas.eq.igas_He)then
[878]202                       interm = indv(nw,igas,jgas)
[873]203                       call interpolateH2He(wn_cont,T_cont,p_cross,p_cont,dtempc,.false.,interm)
[878]204                       indv(nw,igas,jgas) = interm
[716]205                    endif
[873]206                    dtemp = dtemp + dtempc
[716]207                 enddo
[253]208
[716]209              elseif(igas.eq.igas_H2O.and.T_cont.gt.200.0)then
[253]210
[716]211                 p_air = dble(PMID(k)*scalep) - p_cont ! note assumes background is air!
212                 if(H2Ocont_simple)then
213                    call interpolateH2Ocont_PPC(wn_cont,T_cont,p_cont,p_air,dtemp,.false.)
214                 else
[878]215                    interm = indv(nw,igas,igas)
216                    call interpolateH2Ocont_CKD(wn_cont,T_cont,p_cont,p_air,dtemp,.false.,interm)
217                    indv(nw,igas,igas) = interm
[716]218                 endif
[253]219
[716]220              endif
[253]221
[716]222              DCONT = DCONT + dtemp
[253]223
[716]224           enddo
[253]225
[873]226           DCONT = DCONT*dz(k)
227
[716]228        endif
[253]229
[873]230        do ng=1,L_NGAUSS-1
[305]231
[873]232           ! Now compute TAUGAS
[253]233
[873]234           ! Interpolate between water mixing ratios
235           ! WRATIO = 0.0 if the requested water amount is equal to, or outside the
236           ! the water data range
237
238           if(L_REFVAR.eq.1)then ! added by RW for special no variable case
[1725]239           
240              ! JVO 2017 : added tmpk because the repeated calls to gasi/v increased dramatically
241              ! the execution time of optci/v -> ~ factor 2 on the whole radiative
242              ! transfer on the tested simulations !
243
244              tmpk = GASV(MT(K):MT(K)+1,MP(K):MP(K)+1,1,NW,NG)
245             
246              KCOEF(1) = tmpk(1,1) ! KCOEF(1) = GASV(MT(K),MP(K),1,NW,NG)
247              KCOEF(2) = tmpk(1,2) ! KCOEF(2) = GASV(MT(K),MP(K)+1,1,NW,NG)
248              KCOEF(3) = tmpk(2,2) ! KCOEF(3) = GASV(MT(K)+1,MP(K)+1,1,NW,NG)
249              KCOEF(4) = tmpk(2,1) ! KCOEF(4) = GASV(MT(K)+1,MP(K),1,NW,NG)
250
[716]251           else
[873]252
[1725]253              tmpkvar = GASV(MT(K):MT(K)+1,MP(K):MP(K)+1,NVAR(K):NVAR(K)+1,NW,NG)
[253]254
[1725]255              KCOEF(1) = tmpkvar(1,1,1) + WRATIO(K) *  &
256                        ( tmpkvar(1,1,2)-tmpkvar(1,1,1) )
[253]257
[1725]258              KCOEF(2) = tmpkvar(1,2,1) + WRATIO(K) *  &
259                        ( tmpkvar(1,2,2)-tmpkvar(1,2,1) )
[253]260
[1725]261              KCOEF(3) = tmpkvar(2,2,1) + WRATIO(K) *  &
262                        ( tmpkvar(2,2,2)-tmpkvar(2,2,1) )
263             
264              KCOEF(4) = tmpkvar(2,1,1) + WRATIO(K) *  &
265                        ( tmpkvar(2,1,2)-tmpkvar(2,1,1) )
[873]266
[1725]267
[716]268           endif
[253]269
[873]270           ! Interpolate the gaseous k-coefficients to the requested T,P values
[253]271
[873]272           ANS = LKCOEF(K,1)*KCOEF(1) + LKCOEF(K,2)*KCOEF(2) +            &
[716]273                LKCOEF(K,3)*KCOEF(3) + LKCOEF(K,4)*KCOEF(4)
[253]274
[873]275           TAUGAS  = U(k)*ANS
[253]276
[716]277           TAUGSURF(NW,NG) = TAUGSURF(NW,NG) + TAUGAS + DCONT
[873]278           DTAUKV(K,nw,ng) = TAUGAS &
[1715]279                             + DRAYAER & ! DRAYAER includes all scattering contributions
[873]280                             + DCONT ! For parameterized continuum aborption
[253]281
[716]282        end do
[253]283
[873]284        ! Now fill in the "clear" part of the spectrum (NG = L_NGAUSS),
285        ! which holds continuum opacity only
[253]286
[873]287        NG              = L_NGAUSS
[1715]288        DTAUKV(K,nw,ng) = DRAYAER + DCONT ! Scattering + parameterized continuum absorption
[253]289
[716]290     end do
291  end do
[253]292
293
[716]294  !=======================================================================
295  !     Now the full treatment for the layers, where besides the opacity
296  !     we need to calculate the scattering albedo and asymmetry factors
[253]297
[1987]298            !JL18 It seems to be good to have aerosols in the first "radiative layer" of the gcm in the IR
299            !   but not in the visible
300            !   The tauaero is thus set to 0 in the 4 first semilayers in optcv, but not optci.
301            !   This solves random variations of the sw heating at the model top.
[873]302  do iaer=1,naerkind
[918]303    DO NW=1,L_NSPECTV
[1987]304      TAUAEROLK(1:4,NW,IAER)=0.d0
305      DO K=5,L_LEVELS
[1715]306           TAUAEROLK(K,NW,IAER) = TAUAERO(K,IAER) * QSVAER(K,NW,IAER) ! effect of scattering albedo
[918]307      ENDDO
308    ENDDO
[873]309  end do
[253]310
[716]311  DO NW=1,L_NSPECTV
[919]312     DO L=1,L_NLAYRAD-1
[918]313        K              = 2*L+1
314        atemp(L,NW) = SUM(GVAER(K,NW,1:naerkind) * TAUAEROLK(K,NW,1:naerkind))+SUM(GVAER(K+1,NW,1:naerkind) * TAUAEROLK(K+1,NW,1:naerkind))
315        btemp(L,NW) = SUM(TAUAEROLK(K,NW,1:naerkind)) + SUM(TAUAEROLK(K+1,NW,1:naerkind))
[1715]316        ctemp(L,NW) = btemp(L,NW) + 0.9999*(TRAY(K,NW) + TRAY(K+1,NW))  ! JVO 2017 : does this 0.999 is really meaningful ?
[918]317        btemp(L,NW) = btemp(L,NW) + TRAY(K,NW) + TRAY(K+1,NW)
318        COSBV(L,NW,1:L_NGAUSS) = atemp(L,NW)/btemp(L,NW)
319     END DO ! L vertical loop
[919]320     
[1715]321     ! Last level
322     L           = L_NLAYRAD
323     K           = 2*L+1
324     atemp(L,NW) = SUM(GVAER(K,NW,1:naerkind) * TAUAEROLK(K,NW,1:naerkind))
[919]325     btemp(L,NW) = SUM(TAUAEROLK(K,NW,1:naerkind))
[1715]326     ctemp(L,NW) = btemp(L,NW) + 0.9999*TRAY(K,NW) ! JVO 2017 : does this 0.999 is really meaningful ?
[919]327     btemp(L,NW) = btemp(L,NW) + TRAY(K,NW)
328     COSBV(L,NW,1:L_NGAUSS) = atemp(L,NW)/btemp(L,NW)
329     
330     
[918]331  END DO                    ! NW spectral loop
332
333  DO NG=1,L_NGAUSS
334    DO NW=1,L_NSPECTV
[873]335     DO L=1,L_NLAYRAD-1
[253]336
[873]337        K              = 2*L+1
338        DTAUV(L,nw,ng) = DTAUKV(K,NW,NG) + DTAUKV(K+1,NW,NG)
[918]339        WBARV(L,nw,ng) = ctemp(L,NW) / DTAUV(L,nw,ng)
[253]340
[873]341      END DO ! L vertical loop
[253]342
[1715]343        ! Last level
[253]344
[716]345        L              = L_NLAYRAD
346        K              = 2*L+1
[919]347        DTAUV(L,nw,ng) = DTAUKV(K,NW,NG)
348
349        WBARV(L,NW,NG) = ctemp(L,NW) / DTAUV(L,NW,NG)
[1722]350
[918]351     END DO                 ! NW spectral loop
352  END DO                    ! NG Gauss loop
[716]353
354  ! Total extinction optical depths
355
[918]356  DO NG=1,L_NGAUSS       ! full gauss loop
357     DO NW=1,L_NSPECTV       
[716]358        TAUCUMV(1,NW,NG)=0.0D0
359        DO K=2,L_LEVELS
360           TAUCUMV(K,NW,NG)=TAUCUMV(K-1,NW,NG)+DTAUKV(K,NW,NG)
361        END DO
[1987]362
[2004]363        DO L=1,L_NLAYRAD
[1987]364           TAUV(L,NW,NG)=TAUCUMV(2*L,NW,NG)
365        END DO
[2004]366        TAUV(L,NW,NG)=TAUCUMV(2*L_NLAYRAD+1,NW,NG)
[918]367     END DO           
368  END DO                 ! end full gauss loop
[716]369
370
[873]371  return
372
373
374end subroutine optcv
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