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jscott |
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#include "ctrparam.h" |
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! ========================================================== |
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! |
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! DRYCNV.F: THIS SUBROUTINE MIXES AIR CAUSED BY DRY |
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! CONVECTION. SINCE DRY CONVECTION IN THE |
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! BOUNDARY LAYER IS DONE IN SUBROUTINE SURFCE, |
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! THIS ROUTINE ONLY CHECKS LAYERS 2 TO LM. |
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! |
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! ---------------------------------------------------------- |
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! |
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! Author of Chemistry Modules: Chien Wang |
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! |
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! ---------------------------------------------------------- |
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! |
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! Revision History: |
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! |
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! When Who What |
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! ---- ---------- ------- |
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! 073100 Chien Wang repack based on CliChem3 and add cpp |
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! 092301 Chien Wang add bc and oc |
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! |
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! ========================================================== |
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SUBROUTINE DRYCNV 7501. |
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C**** 7502. |
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C**** THIS SUBROUTINE MIXES AIR CAUSED BY DRY CONVECTION. SINCE DRY 7503. |
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C**** CONVECTION IN THE BOUNDARY LAYER IS DONE IN SUBROUTINE SURFCE, 7504. |
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C**** THIS ROUTINE ONLY CHECKS LAYERS 2 TO LM. 7505. |
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C**** 7506. |
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#if ( defined CPL_CHEM ) |
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! |
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#include "chem_para" |
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#include "chem_com" |
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! |
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#endif |
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#include "BD2G04.COM" 7507. |
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COMMON U,V,T,P,Q 7508. |
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COMMON/WORK1/CONV(IM0,JM0,LM0),PK(IM0,JM0,LM0) 7509. |
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COMMON/WORK2/UT(IM0,JM0,LM0),VT(IM0,JM0,LM0), 7510. |
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* RA(8),ID(8),UMS(8) 7511. |
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LOGICAL POLE 7512. |
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C DATA RVAP/461.5/ 7513. |
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RVX=0. 7514. |
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C**** LOAD U,V INTO UT,VT. UT,VT WILL BE FIXED DURING DRY CONVECTION 7515. |
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C**** WHILE U,V WILL BE UPDATED. 7516. |
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DO 50 L=1,LM 7517. |
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DO 50 J=2,JM 7518. |
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DO 50 I=1,IM 7519. |
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UT(I,J,L)=U(I,J,L) 7520. |
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50 VT(I,J,L)=V(I,J,L) 7521. |
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C**** OUTSIDE LOOPS OVER J AND I 7522. |
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DO 500 J=1,JM 7523. |
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POLE=.FALSE. 7524. |
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IF(J.EQ.1.OR.J.EQ.JM) POLE=.TRUE. 7525. |
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IMAX=IM 7526. |
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IF(POLE) IMAX=IM 7527. |
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DO 120 K=1,2 7528. |
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RA(K)=RAPVS(J) 7529. |
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120 RA(K+2)=RAPVN(J) 7530. |
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IM1=IM 7531. |
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DO 500 I=1,IMAX 7532. |
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LMAX=1 7533. |
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130 LMIN=LMAX+1 7534. |
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IF(LMIN.GE.LM) GO TO 500 7535. |
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LMAX=LMIN 7536. |
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IF(T(I,J,LMIN)*(1.+Q(I,J,LMIN)*RVX).LE. 7537. |
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* T(I,J,LMIN+1)*(1.+Q(I,J,LMIN+1)*RVX)) GO TO 130 7538. |
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C**** MIX HEAT AND MOISTURE THROUGHOUT THE UNSTABLE LAYERS 7539. |
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PKMS=PK(I,J,LMIN)*DSIG(LMIN)+PK(I,J,LMIN+1)*DSIG(LMIN+1) 7540. |
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THPKMS=T(I,J,LMIN)*(PK(I,J,LMIN)*DSIG(LMIN)) 7541. |
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* +T(I,J,LMIN+1)*(PK(I,J,LMIN+1)*DSIG(LMIN+1)) 7542. |
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QMS=Q(I,J,LMIN)*DSIG(LMIN)+Q(I,J,LMIN+1)*DSIG(LMIN+1) 7543. |
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#if ( defined CPL_CHEM ) |
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! |
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! --- 032395 |
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! sigma of mixing ratios: |
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! |
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cfc11ms=cfc11(i,j,lmin) *dsig(lmin) |
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& +cfc11(i,j,lmin+1)*dsig(lmin+1) |
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cfc12ms=cfc12(i,j,lmin) *dsig(lmin) |
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& +cfc12(i,j,lmin+1)*dsig(lmin+1) |
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xn2oms =xn2o(i,j,lmin) *dsig(lmin) |
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& +xn2o(i,j,lmin+1)*dsig(lmin+1) |
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o3ms =o3(i,j,lmin) *dsig(lmin) |
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& +o3(i,j,lmin+1)*dsig(lmin+1) |
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coms =co(i,j,lmin) *dsig(lmin) |
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& +co(i,j,lmin+1)*dsig(lmin+1) |
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zco2ms =zco2(i,j,lmin) *dsig(lmin) |
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& +zco2(i,j,lmin+1)*dsig(lmin+1) |
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xnoms =xno(i,j,lmin) *dsig(lmin) |
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& +xno(i,j,lmin+1)*dsig(lmin+1) |
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xno2ms =xno2(i,j,lmin) *dsig(lmin) |
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& +xno2(i,j,lmin+1)*dsig(lmin+1) |
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xn2o5ms=xn2o5(i,j,lmin) *dsig(lmin) |
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& +xn2o5(i,j,lmin+1)*dsig(lmin+1) |
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hno3ms =hno3(i,j,lmin) *dsig(lmin) |
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& +hno3(i,j,lmin+1)*dsig(lmin+1) |
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ch4ms =ch4(i,j,lmin) *dsig(lmin) |
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& +ch4(i,j,lmin+1)*dsig(lmin+1) |
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ch2oms =ch2o(i,j,lmin) *dsig(lmin) |
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& +ch2o(i,j,lmin+1)*dsig(lmin+1) |
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so2ms =so2(i,j,lmin) *dsig(lmin) |
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& +so2(i,j,lmin+1)*dsig(lmin+1) |
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h2so4ms=h2so4(i,j,lmin) *dsig(lmin) |
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& +h2so4(i,j,lmin+1)*dsig(lmin+1) |
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! === if hfc, pfc, and sf6 are included: |
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#ifdef INC_3GASES |
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! === 032698 |
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hfc134ams = hfc134a(i,j,lmin)*dsig(lmin) |
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& + hfc134a(i,j,lmin+1)*dsig(lmin+1) |
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pfcms = pfc(i,j,lmin)*dsig(lmin) |
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& + pfc(i,j,lmin+1)*dsig(lmin+1) |
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sf6ms = sf6(i,j,lmin)*dsig(lmin) |
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& + sf6(i,j,lmin+1)*dsig(lmin+1) |
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! === |
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#endif |
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bcms = bcarbon(i,j,lmin) *dsig(lmin) |
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& + bcarbon(i,j,lmin+1)*dsig(lmin+1) |
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ocms = ocarbon(i,j,lmin) *dsig(lmin) |
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& + ocarbon(i,j,lmin+1)*dsig(lmin+1) |
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c 062295 |
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c h2o2ms =h2o2(i,j,lmin) *dsig(lmin) |
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c & +h2o2(i,j,lmin+1)*dsig(lmin+1) |
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! |
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#endif |
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IF(LMIN+1.GE.LM) GO TO 150 7544. |
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TVMS=T(I,J,LMIN)*(1.+Q(I,J,LMIN)*RVX)*(PK(I,J,LMIN)*DSIG(LMIN)) 7545. |
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* +T(I,J,LMIN+1)*(1.+Q(I,J,LMIN+1)*RVX) 7546. |
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* *(PK(I,J,LMIN+1)*DSIG(LMIN+1)) 7547. |
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THETA=TVMS/PKMS 7548. |
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LMINP2=LMIN+2 7549. |
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DO 140 L=LMINP2,LM 7550. |
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IF(THETA.LT.T(I,J,L)*(1.+Q(I,J,L)*RVX)) GO TO 160 7551. |
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PKMS=PKMS+(PK(I,J,L)*DSIG(L)) 7552. |
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THPKMS=THPKMS+T(I,J,L)*(PK(I,J,L)*DSIG(L)) 7553. |
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QMS=QMS+Q(I,J,L)*DSIG(L) 7554. |
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#if ( defined CPL_CHEM ) |
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! |
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! --- sigma of mixing ratios: |
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! |
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cfc11ms=cfc11ms+cfc11(i,j,l)*dsig(l) |
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cfc12ms=cfc12ms+cfc12(i,j,l)*dsig(l) |
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xn2oms =xn2oms+xn2o(i,j,l)*dsig(l) |
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o3ms =o3ms+o3(i,j,l)*dsig(l) |
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coms =coms+co(i,j,l)*dsig(l) |
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zco2ms =zco2ms+zco2(i,j,l)*dsig(l) |
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xnoms =xnoms+xno(i,j,l)*dsig(l) |
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xno2ms =xno2ms+xno2(i,j,l)*dsig(l) |
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xn2o5ms=xn2o5ms+xn2o5(i,j,l)*dsig(l) |
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hno3ms =hno3ms+hno3(i,j,l)*dsig(l) |
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ch4ms =ch4ms+ch4(i,j,l)*dsig(l) |
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ch2oms =ch2oms+ch2o(i,j,l)*dsig(l) |
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so2ms =so2ms+so2(i,j,l)*dsig(l) |
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h2so4ms=h2so4ms+h2so4(i,j,l)*dsig(l) |
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! === if hfc, pfc, and sf6 are included: |
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#ifdef INC_3GASES |
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! === 032698 |
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hfc134ams = hfc134ams |
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& + hfc134a(i,j,l)*dsig(l) |
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pfcms = pfcms |
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& + pfc(i,j,l)*dsig(l) |
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sf6ms = sf6ms |
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& + sf6(i,j,l)*dsig(l) |
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! === |
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#endif |
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bcms = bcms + bcarbon(i,j,l)*dsig(l) |
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ocms = ocms + ocarbon(i,j,l)*dsig(l) |
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c 062295 |
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c h2o2ms =h2o2ms+h2o2(i,j,l)*dsig(l) |
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! |
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#endif |
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TVMS=TVMS+T(I,J,L)*(1.+Q(I,J,L)*RVX)*(PK(I,J,L)*DSIG(L)) 7555. |
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140 THETA=TVMS/PKMS 7556. |
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150 L=LM+1 7557. |
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160 LMAX=L-1 7558. |
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RDSIGS=1./(SIGE(LMIN)-SIGE(LMAX+1)) 7559. |
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THM=THPKMS/PKMS 7560. |
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QMS=QMS*RDSIGS 7561. |
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#if ( defined CPL_CHEM ) |
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! |
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! --- Get post-transport mixing ratios: |
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! |
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cfc11ms = cfc11ms*rdsigs |
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cfc12ms = cfc12ms*rdsigs |
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xn2oms = xn2oms *rdsigs |
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o3ms = o3ms *rdsigs |
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coms = coms *rdsigs |
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zco2ms = zco2ms *rdsigs |
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xnoms = xnoms *rdsigs |
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xno2ms = xno2ms *rdsigs |
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xn2o5ms = xn2o5ms*rdsigs |
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hno3ms = hno3ms *rdsigs |
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ch4ms = ch4ms *rdsigs |
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ch2oms = ch2oms *rdsigs |
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so2ms = so2ms *rdsigs |
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h2so4ms = h2so4ms*rdsigs |
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! === if hfc, pfc, and sf6 are included: |
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#ifdef INC_3GASES |
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! === 032698 |
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hfc134ams = hfc134ams*rdsigs |
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pfcms = pfcms*rdsigs |
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sf6ms = sf6ms*rdsigs |
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! === |
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#endif |
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bcms = bcms*rdsigs |
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ocms = ocms*rdsigs |
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c 062295 |
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c h2o2ms = h2o2ms*rdsigs |
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! |
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#endif |
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DO 180 L=LMIN,LMAX 7562. |
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AJL(J,L,12)=AJL(J,L,12)+(THM-T(I,J,L))*PK(I,J,L)*P(I,J) 7563. |
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T(I,J,L)=THM 7564. |
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Q(I,J,L)=QMS 7565. |
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#if ( defined CPL_CHEM ) |
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! |
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! --- Remap mixing ratios: |
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! |
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cfc11(i,j,l)= cfc11ms |
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cfc12(i,j,l)= cfc12ms |
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xn2o (i,j,l)= xn2oms |
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o3 (i,j,l)= o3ms |
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co (i,j,l)= coms |
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zco2 (i,j,l)= zco2ms |
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xno (i,j,l)= xnoms |
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xno2 (i,j,l)= xno2ms |
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xn2o5(i,j,l)= xn2o5ms |
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hno3 (i,j,l)= hno3ms |
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ch4 (i,j,l)= ch4ms |
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ch2o (i,j,l)= ch2oms |
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so2 (i,j,l)= so2ms |
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h2so4(i,j,l)= h2so4ms |
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! === if hfc, pfc, and sf6 are included: |
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#ifdef INC_3GASES |
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! === 032698 |
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hfc134a(i,j,l) = hfc134ams |
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pfc(i,j,l) = pfcms |
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sf6(i,j,l) = sf6ms |
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! === |
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#endif |
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bcarbon(i,j,l) = bcms |
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ocarbon(i,j,l) = ocms |
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c 062295 |
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c h2o2(i,j,l) = h2o2ms |
| 333 |
|
|
! |
| 334 |
|
|
#endif |
| 335 |
|
|
|
| 336 |
|
|
180 continue |
| 337 |
|
|
|
| 338 |
|
|
IF(POLE) GO TO 300 7566. |
| 339 |
|
|
C**** MIX MOMENTUM THROUGHOUT UNSTABLE LAYERS AT NON-POLAR GRID BOXES 7567. |
| 340 |
|
|
ID(1)=I+(J-1)*IM 7570. |
| 341 |
|
|
ID(2)=ID(1)+IM*JM*LM 7571. |
| 342 |
|
|
ID(3)=I+J*IM 7574. |
| 343 |
|
|
ID(4)=ID(3)+IM*JM*LM 7575. |
| 344 |
|
|
DO 240 K=1,4 7576. |
| 345 |
|
|
UMS(K)=0. 7577. |
| 346 |
|
|
DO 220 L=LMIN,LMAX 7578. |
| 347 |
|
|
220 UMS(K)=UMS(K)+UT(ID(K),1,L)*DSIG(L) 7579. |
| 348 |
|
|
240 UMS(K)=UMS(K)*RDSIGS 7580. |
| 349 |
|
|
DO 260 L=LMIN,LMAX 7581. |
| 350 |
|
|
AJL(J,L,38)=AJL(J,L,38)+(UMS(1)-UT(I,J,L))*.5* 7582. |
| 351 |
|
|
* P(I,J)*RA(1) 7583. |
| 352 |
|
|
AJL(J+1,L,38)=AJL(J+1,L,38)+(UMS(3)- 7584. |
| 353 |
|
|
* UT(I,J+1,L))*P(I,J)*RA(3)*.5 7585. |
| 354 |
|
|
DO 260 K=1,4 7586. |
| 355 |
|
|
260 U(ID(K),1,L)=U(ID(K),1,L)+(UMS(K)-UT(ID(K),1,L))*RA(K) 7587. |
| 356 |
|
|
GO TO 130 7588. |
| 357 |
|
|
C**** MIX MOMENTUM THROUGHOUT UNSTABLE LAYERS AT POLAR GRID BOXES 7589. |
| 358 |
|
|
300 JVPO=2 7590. |
| 359 |
|
|
IF(J.EQ.JM) JVPO=JM 7591. |
| 360 |
|
|
RAPO=2.*RAPVN(1) 7592. |
| 361 |
|
|
DO 360 IPO=1,IM 7593. |
| 362 |
|
|
UMSPO=0. 7594. |
| 363 |
|
|
VMSPO=0. 7595. |
| 364 |
|
|
DO 320 L=LMIN,LMAX 7596. |
| 365 |
|
|
UMSPO=UMSPO+UT(IPO,JVPO,L)*DSIG(L) 7597. |
| 366 |
|
|
320 VMSPO=VMSPO+VT(IPO,JVPO,L)*DSIG(L) 7598. |
| 367 |
|
|
UMSPO=UMSPO*RDSIGS 7599. |
| 368 |
|
|
VMSPO=VMSPO*RDSIGS 7600. |
| 369 |
|
|
DO 340 L=LMIN,LMAX 7601. |
| 370 |
|
|
U(IPO,JVPO,L)=U(IPO,JVPO,L)+(UMSPO-UT(IPO,JVPO,L))*RAPO 7602. |
| 371 |
|
|
V(IPO,JVPO,L)=V(IPO,JVPO,L)+(VMSPO-VT(IPO,JVPO,L))*RAPO 7603. |
| 372 |
|
|
340 AJL(JVPO,L,38)=AJL(JVPO,L,38) 7604. |
| 373 |
|
|
* +(UMSPO-UT(IPO,JVPO,L))*P(1,J)*RAPO 7605. |
| 374 |
|
|
360 CONTINUE 7606. |
| 375 |
|
|
GO TO 130 7607. |
| 376 |
|
|
500 IM1=I 7608. |
| 377 |
|
|
RETURN 7609. |
| 378 |
|
|
END 7610. |