| 2 | 
 C $Name$ | 
 C $Name$ | 
| 3 | 
  | 
  | 
| 4 | 
 #include "SEAICE_OPTIONS.h" | 
 #include "SEAICE_OPTIONS.h" | 
| 5 | 
  | 
 #ifdef ALLOW_AUTODIFF | 
| 6 | 
  | 
 # include "AUTODIFF_OPTIONS.h" | 
| 7 | 
  | 
 #endif | 
| 8 | 
  | 
  | 
| 9 | 
 C--  File seaice_jfnk.F: seaice jfnk dynamical solver S/R: | 
 C--  File seaice_jfnk.F: seaice jfnk dynamical solver S/R: | 
| 10 | 
 C--   Contents | 
 C--   Contents | 
| 56 | 
       INTEGER myIter | 
       INTEGER myIter | 
| 57 | 
       INTEGER myThid | 
       INTEGER myThid | 
| 58 | 
  | 
  | 
| 59 | 
 #if ( (defined SEAICE_CGRID) && \ | 
 #ifdef SEAICE_ALLOW_JFNK | 
 | 
       (defined SEAICE_ALLOW_JFNK) && \ | 
  | 
 | 
       (defined SEAICE_ALLOW_DYNAMICS) ) | 
  | 
| 60 | 
 C     !FUNCTIONS: | 
 C     !FUNCTIONS: | 
| 61 | 
       LOGICAL  DIFFERENT_MULTIPLE | 
       LOGICAL  DIFFERENT_MULTIPLE | 
| 62 | 
       EXTERNAL DIFFERENT_MULTIPLE | 
       EXTERNAL DIFFERENT_MULTIPLE | 
| 69 | 
       INTEGER newtonIter | 
       INTEGER newtonIter | 
| 70 | 
       INTEGER krylovIter, krylovFails | 
       INTEGER krylovIter, krylovFails | 
| 71 | 
       INTEGER totalKrylovItersLoc, totalNewtonItersLoc | 
       INTEGER totalKrylovItersLoc, totalNewtonItersLoc | 
| 72 | 
  | 
 C     FGMRES parameters | 
| 73 | 
  | 
 C     im      :: size of Krylov space | 
| 74 | 
  | 
 C     ifgmres :: interation counter | 
| 75 | 
  | 
       INTEGER im | 
| 76 | 
  | 
       PARAMETER ( im = 50 ) | 
| 77 | 
  | 
       INTEGER ifgmres | 
| 78 | 
 C     FGMRES flag that determines amount of output messages of fgmres | 
 C     FGMRES flag that determines amount of output messages of fgmres | 
| 79 | 
       INTEGER iOutFGMRES | 
       INTEGER iOutFGMRES | 
| 80 | 
 C     FGMRES flag that indicates what fgmres wants us to do next | 
 C     FGMRES flag that indicates what fgmres wants us to do next | 
| 82 | 
       _RL     JFNKresidual | 
       _RL     JFNKresidual | 
| 83 | 
       _RL     JFNKresidualKm1 | 
       _RL     JFNKresidualKm1 | 
| 84 | 
 C     parameters to compute convergence criterion | 
 C     parameters to compute convergence criterion | 
| 85 | 
       _RL     phi_e, alp_e, JFNKgamma_lin | 
       _RL     JFNKgamma_lin | 
| 86 | 
       _RL     FGMRESeps | 
       _RL     FGMRESeps | 
| 87 | 
       _RL     JFNKtol | 
       _RL     JFNKtol | 
| 88 | 
 C      | 
 C     backward differences extrapolation factors | 
| 89 | 
  | 
       _RL bdfFac, bdfAlpha | 
| 90 | 
  | 
 C | 
| 91 | 
       _RL     recip_deltaT | 
       _RL     recip_deltaT | 
| 92 | 
       LOGICAL JFNKconverged, krylovConverged | 
       LOGICAL JFNKconverged, krylovConverged | 
| 93 | 
       LOGICAL writeNow | 
       LOGICAL writeNow | 
| 94 | 
       CHARACTER*(MAX_LEN_MBUF) msgBuf | 
       CHARACTER*(MAX_LEN_MBUF) msgBuf | 
| 95 | 
 C | 
  | 
| 96 | 
 C     u/vIceRes :: residual of sea-ice momentum equations | 
 C     u/vIceRes :: residual of sea-ice momentum equations | 
| 97 | 
       _RL uIceRes(1-OLx:sNx+OLx,1-OLy:sNy+OLy,nSx,nSy) | 
       _RL uIceRes(1-OLx:sNx+OLx,1-OLy:sNy+OLy,nSx,nSy) | 
| 98 | 
       _RL vIceRes(1-OLx:sNx+OLx,1-OLy:sNy+OLy,nSx,nSy) | 
       _RL vIceRes(1-OLx:sNx+OLx,1-OLy:sNy+OLy,nSx,nSy) | 
| 99 | 
 C     vector version of the residuals | 
 C     extra time level required for backward difference time stepping | 
| 100 | 
       _RL resTmp (nVec,1,nSx,nSy) | 
       _RL duIcNm1(1-OLx:sNx+OLx,1-OLy:sNy+OLy,nSx,nSy) | 
| 101 | 
  | 
       _RL dvIcNm1(1-OLx:sNx+OLx,1-OLy:sNy+OLy,nSx,nSy) | 
| 102 | 
 C     du/vIce   :: ice velocity increment to be added to u/vIce | 
 C     du/vIce   :: ice velocity increment to be added to u/vIce | 
| 103 | 
       _RL duIce  (1-OLx:sNx+OLx,1-OLy:sNy+OLy,nSx,nSy) | 
       _RL duIce  (1-OLx:sNx+OLx,1-OLy:sNy+OLy,nSx,nSy) | 
| 104 | 
       _RL dvIce  (1-OLx:sNx+OLx,1-OLy:sNy+OLy,nSx,nSy) | 
       _RL dvIce  (1-OLx:sNx+OLx,1-OLy:sNy+OLy,nSx,nSy) | 
| 105 | 
 C     precomputed (= constant per Newton iteration) versions of  | 
 C     precomputed (= constant per Newton iteration) versions of | 
| 106 | 
 C     zeta, eta, and DWATN, press | 
 C     zeta, eta, and DWATN, press | 
| 107 | 
       _RL zetaPre (1-OLx:sNx+OLx,1-OLy:sNy+OLy,nSx,nSy) | 
       _RL zetaPre (1-OLx:sNx+OLx,1-OLy:sNy+OLy,nSx,nSy) | 
| 108 | 
  | 
       _RL zetaZPre(1-OLx:sNx+OLx,1-OLy:sNy+OLy,nSx,nSy) | 
| 109 | 
       _RL etaPre  (1-OLx:sNx+OLx,1-OLy:sNy+OLy,nSx,nSy) | 
       _RL etaPre  (1-OLx:sNx+OLx,1-OLy:sNy+OLy,nSx,nSy) | 
| 110 | 
       _RL etaZPre (1-OLx:sNx+OLx,1-OLy:sNy+OLy,nSx,nSy) | 
       _RL etaZPre (1-OLx:sNx+OLx,1-OLy:sNy+OLy,nSx,nSy) | 
| 111 | 
       _RL dwatPre (1-OLx:sNx+OLx,1-OLy:sNy+OLy,nSx,nSy) | 
       _RL dwatPre (1-OLx:sNx+OLx,1-OLy:sNy+OLy,nSx,nSy) | 
| 112 | 
  | 
 C     work arrays | 
| 113 | 
  | 
       _RL rhs(nVec,nSx,nSy), sol(nVec,nSx,nSy) | 
| 114 | 
  | 
       _RL vv(nVec,im+1,nSx,nSy), w(nVec,im,nSx,nSy) | 
| 115 | 
  | 
       _RL wk1(nVec,nSx,nSy), wk2(nVec,nSx,nSy) | 
| 116 | 
 CEOP | 
 CEOP | 
| 117 | 
  | 
  | 
| 118 | 
 C     Initialise | 
 C     Initialise | 
| 132 | 
      &     DIFFERENT_MULTIPLE( SEAICE_monFreq, myTime, deltaTClock ) ) | 
      &     DIFFERENT_MULTIPLE( SEAICE_monFreq, myTime, deltaTClock ) ) | 
| 133 | 
      &     iOutFGMRES=1 | 
      &     iOutFGMRES=1 | 
| 134 | 
  | 
  | 
| 135 | 
 C      | 
 C     backward difference extrapolation factors | 
| 136 | 
  | 
       bdfFac = 0. _d 0 | 
| 137 | 
  | 
       IF ( SEAICEuseBDF2 ) THEN | 
| 138 | 
  | 
        IF ( myIter.EQ.nIter0 .AND. SEAICEmomStartBDF.EQ.0 ) THEN | 
| 139 | 
  | 
         bdfFac = 0. _d 0 | 
| 140 | 
  | 
        ELSE | 
| 141 | 
  | 
         bdfFac = 0.5 _d 0 | 
| 142 | 
  | 
        ENDIF | 
| 143 | 
  | 
       ENDIF | 
| 144 | 
  | 
       bdfAlpha = 1. _d 0 + bdfFac  | 
| 145 | 
  | 
  | 
| 146 | 
       DO bj=myByLo(myThid),myByHi(myThid) | 
       DO bj=myByLo(myThid),myByHi(myThid) | 
| 147 | 
        DO bi=myBxLo(myThid),myBxHi(myThid) | 
        DO bi=myBxLo(myThid),myBxHi(myThid) | 
| 148 | 
         DO J=1-Oly,sNy+Oly | 
         DO J=1-OLy,sNy+OLy | 
| 149 | 
          DO I=1-Olx,sNx+Olx | 
          DO I=1-OLx,sNx+OLx | 
| 150 | 
           uIceRes(I,J,bi,bj) = 0. _d 0 | 
           uIceRes(I,J,bi,bj) = 0. _d 0 | 
| 151 | 
           vIceRes(I,J,bi,bj) = 0. _d 0 | 
           vIceRes(I,J,bi,bj) = 0. _d 0 | 
| 152 | 
           duIce  (I,J,bi,bj) = 0. _d 0 | 
           duIce  (I,J,bi,bj) = 0. _d 0 | 
| 153 | 
           dvIce  (I,J,bi,bj) = 0. _d 0 | 
           dvIce  (I,J,bi,bj) = 0. _d 0 | 
| 154 | 
  | 
          ENDDO | 
| 155 | 
  | 
         ENDDO | 
| 156 | 
  | 
 C     cycle ice velocities | 
| 157 | 
  | 
         DO J=1-OLy,sNy+OLy | 
| 158 | 
  | 
          DO I=1-OLx,sNx+OLx | 
| 159 | 
  | 
           duIcNm1(I,J,bi,bj) = uIce(I,J,bi,bj) * bdfAlpha  | 
| 160 | 
  | 
      &         + ( uIce(I,J,bi,bj) - uIceNm1(I,J,bi,bj) ) * bdfFac | 
| 161 | 
  | 
           dvIcNm1(I,J,bi,bj) = vIce(I,J,bi,bj) * bdfAlpha  | 
| 162 | 
  | 
      &         + ( vIce(I,J,bi,bj) - vIceNm1(I,J,bi,bj) ) * bdfFac | 
| 163 | 
           uIceNm1(I,J,bi,bj) = uIce(I,J,bi,bj) | 
           uIceNm1(I,J,bi,bj) = uIce(I,J,bi,bj) | 
| 164 | 
           vIceNm1(I,J,bi,bj) = vIce(I,J,bi,bj) | 
           vIceNm1(I,J,bi,bj) = vIce(I,J,bi,bj) | 
| 165 | 
          ENDDO | 
          ENDDO | 
| 166 | 
         ENDDO | 
         ENDDO | 
| 167 | 
  | 
 C     As long as IMEX is not properly implemented leave this commented out | 
| 168 | 
  | 
 CML        IF ( .NOT.SEAICEuseIMEX ) THEN | 
| 169 | 
 C     Compute things that do no change during the Newton iteration: | 
 C     Compute things that do no change during the Newton iteration: | 
| 170 | 
 C     sea-surface tilt and wind stress:  | 
 C     sea-surface tilt and wind stress: | 
| 171 | 
 C     FORCEX/Y0 - mass*(u/vIceNm1)/deltaT | 
 C     FORCEX/Y0 - mass*(1.5*u/vIceNm1+0.5*(u/vIceNm1-u/vIceNm2))/deltaT | 
| 172 | 
         DO J=1-Oly,sNy+Oly | 
         DO J=1-OLy,sNy+OLy | 
| 173 | 
          DO I=1-Olx,sNx+Olx | 
          DO I=1-OLx,sNx+OLx | 
| 174 | 
           FORCEX(I,J,bi,bj) = FORCEX0(I,J,bi,bj) | 
           FORCEX(I,J,bi,bj) = FORCEX0(I,J,bi,bj) | 
| 175 | 
      &         + seaiceMassU(I,J,bi,bj)*uIceNm1(I,J,bi,bj)*recip_deltaT     | 
      &         + seaiceMassU(I,J,bi,bj)*duIcNm1(I,J,bi,bj)*recip_deltaT | 
| 176 | 
           FORCEY(I,J,bi,bj) = FORCEY0(I,J,bi,bj) | 
           FORCEY(I,J,bi,bj) = FORCEY0(I,J,bi,bj) | 
| 177 | 
      &         + seaiceMassV(I,J,bi,bj)*vIceNm1(I,J,bi,bj)*recip_deltaT     | 
      &         + seaiceMassV(I,J,bi,bj)*dvIcNm1(I,J,bi,bj)*recip_deltaT | 
| 178 | 
          ENDDO | 
          ENDDO | 
| 179 | 
         ENDDO | 
         ENDDO | 
| 180 | 
  | 
 CML        ENDIF | 
| 181 | 
        ENDDO | 
        ENDDO | 
| 182 | 
       ENDDO | 
       ENDDO | 
| 183 | 
 C     Start nonlinear Newton iteration: outer loop iteration | 
 C     Start nonlinear Newton iteration: outer loop iteration | 
| 184 | 
       DO WHILE ( newtonIter.LT.SEAICEnewtonIterMax .AND. | 
       DO WHILE ( newtonIter.LT.SEAICEnonLinIterMax .AND. | 
| 185 | 
      &     .NOT.JFNKconverged ) | 
      &     .NOT.JFNKconverged ) | 
| 186 | 
        newtonIter = newtonIter + 1 | 
        newtonIter = newtonIter + 1 | 
| 187 | 
 C     Compute initial residual F(u), (includes computation of global | 
 C     Compute initial residual F(u), (includes computation of global | 
| 188 | 
 C     variables DWATN, zeta, and eta) | 
 C     variables DWATN, zeta, and eta) | 
| 189 | 
        IF ( newtonIter .EQ. 1 ) CALL SEAICE_JFNK_UPDATE(  | 
        IF ( newtonIter .EQ. 1 ) CALL SEAICE_JFNK_UPDATE( | 
| 190 | 
      I      duIce, dvIce,  | 
      I      duIce, dvIce, | 
| 191 | 
      U      uIce, vIce, JFNKresidual, | 
      U      uIce, vIce, JFNKresidual, | 
| 192 | 
      O      uIceRes, vIceRes, | 
      O      uIceRes, vIceRes, | 
| 193 | 
      I      newtonIter, myTime, myIter, myThid ) | 
      I      newtonIter, myTime, myIter, myThid ) | 
| 195 | 
 C     constant for the preconditioner | 
 C     constant for the preconditioner | 
| 196 | 
        DO bj=myByLo(myThid),myByHi(myThid) | 
        DO bj=myByLo(myThid),myByHi(myThid) | 
| 197 | 
         DO bi=myBxLo(myThid),myBxHi(myThid) | 
         DO bi=myBxLo(myThid),myBxHi(myThid) | 
| 198 | 
          DO j=1-Oly,sNy+Oly | 
          DO j=1-OLy,sNy+OLy | 
| 199 | 
           DO i=1-Olx,sNx+Olx | 
           DO i=1-OLx,sNx+OLx | 
| 200 | 
            zetaPre(I,J,bi,bj) =  zeta(I,J,bi,bj) | 
            zetaPre(I,J,bi,bj) =  zeta(I,J,bi,bj) | 
| 201 | 
  | 
            zetaZPre(I,J,bi,bj)= zetaZ(I,J,bi,bj) | 
| 202 | 
             etaPre(I,J,bi,bj) =   eta(I,J,bi,bj) | 
             etaPre(I,J,bi,bj) =   eta(I,J,bi,bj) | 
| 203 | 
            etaZPre(I,J,bi,bj) =  etaZ(I,J,bi,bj) | 
            etaZPre(I,J,bi,bj) =  etaZ(I,J,bi,bj) | 
| 204 | 
            dwatPre(I,J,bi,bj) = DWATN(I,J,bi,bj) | 
            dwatPre(I,J,bi,bj) = DWATN(I,J,bi,bj) | 
| 208 | 
        ENDDO | 
        ENDDO | 
| 209 | 
 C     compute convergence criterion for linear preconditioned FGMRES | 
 C     compute convergence criterion for linear preconditioned FGMRES | 
| 210 | 
        JFNKgamma_lin = JFNKgamma_lin_max | 
        JFNKgamma_lin = JFNKgamma_lin_max | 
| 211 | 
        IF ( newtonIter.GT.1.AND.newtonIter.LE.100 | 
        IF ( newtonIter.GT.1.AND.newtonIter.LE.SEAICE_JFNK_tolIter | 
| 212 | 
      &      .AND.JFNKresidual.LT.JFNKres_t ) THEN | 
      &      .AND.JFNKresidual.LT.JFNKres_t ) THEN | 
| 213 | 
 C     Eisenstat, 1996, equ.(2.6)       | 
 C     Eisenstat and Walker (1996), eq.(2.6) | 
| 214 | 
         phi_e = 1. _d 0 | 
         JFNKgamma_lin = SEAICE_JFNKphi | 
| 215 | 
         alp_e = 1. _d 0 | 
      &       *( JFNKresidual/JFNKresidualKm1 )**SEAICE_JFNKalpha | 
 | 
         JFNKgamma_lin = phi_e*( JFNKresidual/JFNKresidualKm1 )**alp_e | 
  | 
| 216 | 
         JFNKgamma_lin = min(JFNKgamma_lin_max, JFNKgamma_lin) | 
         JFNKgamma_lin = min(JFNKgamma_lin_max, JFNKgamma_lin) | 
| 217 | 
         JFNKgamma_lin = max(JFNKgamma_lin_min, JFNKgamma_lin) | 
         JFNKgamma_lin = max(JFNKgamma_lin_min, JFNKgamma_lin) | 
| 218 | 
        ENDIF | 
        ENDIF | 
| 219 | 
 C     save the residual for the next iteration | 
 C     save the residual for the next iteration | 
| 220 | 
        JFNKresidualKm1 = JFNKresidual | 
        JFNKresidualKm1 = JFNKresidual | 
| 221 | 
 C | 
  | 
| 222 | 
 C     The Krylov iteration using FGMRES, the preconditioner is LSOR | 
 C     The Krylov iteration using FGMRES, the preconditioner is LSOR | 
| 223 | 
 C     for now. The code is adapted from SEAICE_LSR, but heavily stripped | 
 C     for now. The code is adapted from SEAICE_LSR, but heavily stripped | 
| 224 | 
 C     down. | 
 C     down. | 
| 226 | 
 C     in that routine | 
 C     in that routine | 
| 227 | 
        krylovIter    = 0 | 
        krylovIter    = 0 | 
| 228 | 
        iCode         = 0 | 
        iCode         = 0 | 
| 229 | 
 C | 
  | 
| 230 | 
        JFNKconverged = JFNKresidual.LT.JFNKtol | 
        JFNKconverged = JFNKresidual.LT.JFNKtol | 
| 231 | 
 C | 
  | 
| 232 | 
 C     do Krylov loop only if convergence is not reached | 
 C     do Krylov loop only if convergence is not reached | 
| 233 | 
 C | 
  | 
| 234 | 
        IF ( .NOT.JFNKconverged ) THEN | 
        IF ( .NOT.JFNKconverged ) THEN | 
| 235 | 
 C | 
  | 
| 236 | 
 C     start Krylov iteration (FGMRES) | 
 C     start Krylov iteration (FGMRES) | 
| 237 | 
 C | 
  | 
| 238 | 
         krylovConverged = .FALSE. | 
         krylovConverged = .FALSE. | 
| 239 | 
         FGMRESeps = JFNKgamma_lin * JFNKresidual | 
         FGMRESeps = JFNKgamma_lin * JFNKresidual | 
| 240 | 
         DO WHILE ( .NOT.krylovConverged )  | 
 C     map first guess sol; it is zero because the solution is a correction | 
| 241 | 
  | 
        CALL SEAICE_MAP2VEC(nVec,duIce,dvIce,sol,.TRUE.,myThid) | 
| 242 | 
  | 
 C     map rhs and change its sign because we are solving J*u = -F | 
| 243 | 
  | 
         CALL SEAICE_MAP2VEC(nVec,uIceRes,vIceRes,rhs,.TRUE.,myThid) | 
| 244 | 
  | 
         DO bj=myByLo(myThid),myByHi(myThid) | 
| 245 | 
  | 
          DO bi=myBxLo(myThid),myBxHi(myThid) | 
| 246 | 
  | 
           DO j=1,nVec | 
| 247 | 
  | 
            rhs(j,bi,bj) = - rhs(j,bi,bj) | 
| 248 | 
  | 
           ENDDO | 
| 249 | 
  | 
          ENDDO | 
| 250 | 
  | 
         ENDDO | 
| 251 | 
  | 
         DO WHILE ( .NOT.krylovConverged ) | 
| 252 | 
 C     solution vector sol = du/vIce | 
 C     solution vector sol = du/vIce | 
| 253 | 
 C     residual vector (rhs) Fu = u/vIceRes | 
 C     residual vector (rhs) Fu = u/vIceRes | 
| 254 | 
 C     output work vectors wk1, -> input work vector wk2  | 
 C     output work vectors wk1, -> input work vector wk2 | 
| 255 | 
  | 
  | 
| 256 | 
  | 
 C     map preconditioner results or Jacobian times vector, | 
| 257 | 
  | 
 C     stored in du/vIce to wk2, for iCode=0, wk2 is set to zero, | 
| 258 | 
  | 
 C     because du/vIce = 0 | 
| 259 | 
  | 
          CALL SEAICE_MAP2VEC(nVec,duIce,dvIce,wk2,.TRUE.,myThid) | 
| 260 | 
  | 
 C | 
| 261 | 
  | 
          CALL SEAICE_FGMRES (nVec,im,rhs,sol,ifgmres,krylovIter, | 
| 262 | 
  | 
      U        vv,w,wk1,wk2, | 
| 263 | 
  | 
      I        FGMRESeps,SEAICElinearIterMax,iOutFGMRES, | 
| 264 | 
  | 
      U        iCode, | 
| 265 | 
  | 
      I        myThid) | 
| 266 | 
 C      | 
 C      | 
| 267 | 
          CALL SEAICE_FGMRES_DRIVER( | 
          IF ( iCode .EQ. 0 ) THEN | 
| 268 | 
      I        uIceRes, vIceRes,  | 
 C     map sol(ution) vector to du/vIce | 
| 269 | 
      U        duIce, dvIce, iCode, | 
           CALL SEAICE_MAP2VEC(nVec,duIce,dvIce,sol,.FALSE.,myThid) | 
| 270 | 
      I        FGMRESeps, iOutFGMRES, | 
          ELSE | 
| 271 | 
      I        newtonIter, krylovIter, myTime, myIter, myThid ) | 
 C     map work vector to du/vIce to either compute a preconditioner | 
| 272 | 
  | 
 C     solution (wk1=rhs) or a Jacobian times wk1 | 
| 273 | 
  | 
           CALL SEAICE_MAP2VEC(nVec,duIce,dvIce,wk1,.FALSE.,myThid) | 
| 274 | 
  | 
          ENDIF | 
| 275 | 
  | 
 C     Fill overlaps in updated fields | 
| 276 | 
  | 
          CALL EXCH_UV_XY_RL( duIce, dvIce,.TRUE.,myThid) | 
| 277 | 
 C     FGMRES returns iCode either asking for an new preconditioned vector | 
 C     FGMRES returns iCode either asking for an new preconditioned vector | 
| 278 | 
 C     or product of matrix (Jacobian) times vector. For iCode = 0, terminate | 
 C     or product of matrix (Jacobian) times vector. For iCode = 0, terminate | 
| 279 | 
 C     iteration | 
 C     iteration | 
| 280 | 
          IF (iCode.EQ.1) THEN | 
          IF (iCode.EQ.1) THEN | 
| 281 | 
 C     Call preconditioner  | 
 C     Call preconditioner | 
| 282 | 
           IF ( SOLV_MAX_ITERS .GT. 0 ) | 
           IF ( SEAICEpreconLinIter .GT. 0 ) | 
| 283 | 
      &         CALL SEAICE_PRECONDITIONER(  | 
      &         CALL SEAICE_PRECONDITIONER( | 
| 284 | 
      U         duIce, dvIce,  | 
      U         duIce, dvIce, | 
| 285 | 
      I         zetaPre, etaPre, etaZpre, dwatPre,  | 
      I         zetaPre, etaPre, etaZpre, zetaZpre, dwatPre, | 
| 286 | 
      I         newtonIter, krylovIter, myTime, myIter, myThid ) | 
      I         newtonIter, krylovIter, myTime, myIter, myThid ) | 
| 287 | 
          ELSEIF (iCode.GE.2) THEN | 
          ELSEIF (iCode.GE.2) THEN | 
| 288 | 
 C     Compute Jacobian times vector | 
 C     Compute Jacobian times vector | 
| 289 | 
           CALL SEAICE_JACVEC( | 
           CALL SEAICE_JACVEC( | 
| 290 | 
      I         uIce, vIce, uIceRes, vIceRes, | 
      I         uIce, vIce, uIceRes, vIceRes, | 
| 291 | 
      U         duIce, dvIce,   | 
      U         duIce, dvIce, | 
| 292 | 
      I         newtonIter, krylovIter, myTime, myIter, myThid ) | 
      I         newtonIter, krylovIter, myTime, myIter, myThid ) | 
| 293 | 
          ENDIF | 
          ENDIF | 
| 294 | 
          krylovConverged = iCode.EQ.0 | 
          krylovConverged = iCode.EQ.0 | 
| 298 | 
 C     some output diagnostics | 
 C     some output diagnostics | 
| 299 | 
         IF ( debugLevel.GE.debLevA ) THEN | 
         IF ( debugLevel.GE.debLevA ) THEN | 
| 300 | 
          _BEGIN_MASTER( myThid ) | 
          _BEGIN_MASTER( myThid ) | 
| 301 | 
          totalNewtonItersLoc =  | 
          totalNewtonItersLoc = | 
| 302 | 
      &        SEAICEnewtonIterMax*(myIter-nIter0)+newtonIter | 
      &        SEAICEnonLinIterMax*(myIter-nIter0)+newtonIter | 
| 303 | 
          WRITE(msgBuf,'(2A,2(1XI6),2E12.5)')  | 
          WRITE(msgBuf,'(2A,2(1XI6),2E12.5)') | 
| 304 | 
      &        ' S/R SEAICE_JFNK: Newton iterate / total, ', | 
      &        ' S/R SEAICE_JFNK: Newton iterate / total, ', | 
| 305 | 
      &        'JFNKgamma_lin, initial norm = ', | 
      &        'JFNKgamma_lin, initial norm = ', | 
| 306 | 
      &        newtonIter, totalNewtonItersLoc, | 
      &        newtonIter, totalNewtonItersLoc, | 
| 308 | 
          CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, | 
          CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, | 
| 309 | 
      &        SQUEEZE_RIGHT, myThid ) | 
      &        SQUEEZE_RIGHT, myThid ) | 
| 310 | 
          WRITE(msgBuf,'(3(A,I6))') | 
          WRITE(msgBuf,'(3(A,I6))') | 
| 311 | 
      &        ' S/R SEAICE_JFNK: Newton iterate / total = ',newtonIter,  | 
      &        ' S/R SEAICE_JFNK: Newton iterate / total = ',newtonIter, | 
| 312 | 
      &        ' / ', totalNewtonItersLoc, | 
      &        ' / ', totalNewtonItersLoc, | 
| 313 | 
      &        ', Nb. of FGMRES iterations = ', krylovIter | 
      &        ', Nb. of FGMRES iterations = ', krylovIter | 
| 314 | 
          CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, | 
          CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, | 
| 315 | 
      &        SQUEEZE_RIGHT, myThid ) | 
      &        SQUEEZE_RIGHT, myThid ) | 
| 316 | 
          _END_MASTER( myThid ) | 
          _END_MASTER( myThid ) | 
| 317 | 
         ENDIF | 
         ENDIF | 
| 318 | 
         IF ( krylovIter.EQ.SEAICEkrylovIterMax ) THEN | 
         IF ( krylovIter.EQ.SEAICElinearIterMax ) THEN | 
| 319 | 
          krylovFails = krylovFails + 1 | 
          krylovFails = krylovFails + 1 | 
| 320 | 
         ENDIF | 
         ENDIF | 
| 321 | 
 C     Set the stopping criterion for the Newton iteration | 
 C     Set the stopping criterion for the Newton iteration and the | 
| 322 | 
         IF ( newtonIter .EQ. 1 ) JFNKtol=JFNKgamma_nonlin*JFNKresidual | 
 C     criterion for the transition from accurate to approximate FGMRES | 
| 323 | 
  | 
         IF ( newtonIter .EQ. 1 ) THEN | 
| 324 | 
  | 
          JFNKtol=SEAICEnonLinTol*JFNKresidual | 
| 325 | 
  | 
          IF ( JFNKres_tFac .NE. UNSET_RL ) | 
| 326 | 
  | 
      &        JFNKres_t = JFNKresidual * JFNKres_tFac | 
| 327 | 
  | 
         ENDIF | 
| 328 | 
 C     Update linear solution vector and return to Newton iteration | 
 C     Update linear solution vector and return to Newton iteration | 
| 329 | 
 C     Do a linesearch if necessary, and compute a new residual. | 
 C     Do a linesearch if necessary, and compute a new residual. | 
| 330 | 
 C     Note that it should be possible to do the following operations | 
 C     Note that it should be possible to do the following operations | 
| 331 | 
 C     at the beginning of the Newton iteration, thereby saving us from | 
 C     at the beginning of the Newton iteration, thereby saving us from | 
| 332 | 
 C     the extra call of seaice_jfnk_update, but unfortunately that | 
 C     the extra call of seaice_jfnk_update, but unfortunately that | 
| 333 | 
 C     changes the results, so we leave the stuff here for now. | 
 C     changes the results, so we leave the stuff here for now. | 
| 334 | 
         CALL SEAICE_JFNK_UPDATE(  | 
         CALL SEAICE_JFNK_UPDATE( | 
| 335 | 
      I       duIce, dvIce,  | 
      I       duIce, dvIce, | 
| 336 | 
      U       uIce, vIce, JFNKresidual, | 
      U       uIce, vIce, JFNKresidual, | 
| 337 | 
      O       uIceRes, vIceRes, | 
      O       uIceRes, vIceRes, | 
| 338 | 
      I       newtonIter, myTime, myIter, myThid ) | 
      I       newtonIter, myTime, myIter, myThid ) | 
| 339 | 
 C     reset du/vIce here instead of setting sol = 0 in seaice_fgmres_driver | 
 C     reset du/vIce here instead of setting sol = 0 in seaice_fgmres_driver | 
| 340 | 
         DO bj=myByLo(myThid),myByHi(myThid) | 
         DO bj=myByLo(myThid),myByHi(myThid) | 
| 341 | 
          DO bi=myBxLo(myThid),myBxHi(myThid) | 
          DO bi=myBxLo(myThid),myBxHi(myThid) | 
| 342 | 
           DO J=1-Oly,sNy+Oly | 
           DO J=1-OLy,sNy+OLy | 
| 343 | 
            DO I=1-Olx,sNx+Olx | 
            DO I=1-OLx,sNx+OLx | 
| 344 | 
             duIce(I,J,bi,bj)= 0. _d 0 | 
             duIce(I,J,bi,bj)= 0. _d 0 | 
| 345 | 
             dvIce(I,J,bi,bj)= 0. _d 0 | 
             dvIce(I,J,bi,bj)= 0. _d 0 | 
| 346 | 
            ENDDO | 
            ENDDO | 
| 350 | 
        ENDIF | 
        ENDIF | 
| 351 | 
 C     end of Newton iterate | 
 C     end of Newton iterate | 
| 352 | 
       ENDDO | 
       ENDDO | 
| 353 | 
 C | 
  | 
| 354 | 
 C--   Output diagnostics | 
 C--   Output diagnostics | 
| 355 | 
 C | 
  | 
| 356 | 
       IF ( SEAICE_monFreq .GT. 0. _d 0 ) THEN | 
       IF ( SEAICE_monFreq .GT. 0. _d 0 ) THEN | 
| 357 | 
 C     Count iterations | 
 C     Count iterations | 
| 358 | 
        totalJFNKtimeSteps = totalJFNKtimeSteps + 1 | 
        totalJFNKtimeSteps = totalJFNKtimeSteps + 1 | 
| 360 | 
        totalKrylovIters   = totalKrylovIters + totalKrylovItersLoc | 
        totalKrylovIters   = totalKrylovIters + totalKrylovItersLoc | 
| 361 | 
 C     Record failure | 
 C     Record failure | 
| 362 | 
        totalKrylovFails   = totalKrylovFails + krylovFails | 
        totalKrylovFails   = totalKrylovFails + krylovFails | 
| 363 | 
        IF ( newtonIter .EQ. SEAICEnewtonIterMax ) THEN | 
        IF ( newtonIter .EQ. SEAICEnonLinIterMax ) THEN | 
| 364 | 
         totalNewtonFails = totalNewtonFails + 1  | 
         totalNewtonFails = totalNewtonFails + 1 | 
| 365 | 
        ENDIF | 
        ENDIF | 
| 366 | 
       ENDIF | 
       ENDIF | 
| 367 | 
 C     Decide whether it is time to dump and reset the counter | 
 C     Decide whether it is time to dump and reset the counter | 
| 368 | 
       writeNow = DIFFERENT_MULTIPLE(SEAICE_monFreq, | 
       writeNow = DIFFERENT_MULTIPLE(SEAICE_monFreq, | 
| 369 | 
      &     myTime+deltaTClock, deltaTClock)  | 
      &     myTime+deltaTClock, deltaTClock) | 
| 370 | 
 #ifdef ALLOW_CAL | 
 #ifdef ALLOW_CAL | 
| 371 | 
       IF ( useCAL ) THEN | 
       IF ( useCAL ) THEN | 
| 372 | 
        CALL CAL_TIME2DUMP(  | 
        CALL CAL_TIME2DUMP( | 
| 373 | 
      I      zeroRL, SEAICE_monFreq,  deltaTClock, | 
      I      zeroRL, SEAICE_monFreq,  deltaTClock, | 
| 374 | 
      U      writeNow, | 
      U      writeNow, | 
| 375 | 
      I      myTime+deltaTclock, myIter+1, myThid ) | 
      I      myTime+deltaTclock, myIter+1, myThid ) | 
| 377 | 
 #endif | 
 #endif | 
| 378 | 
       IF ( writeNow ) THEN | 
       IF ( writeNow ) THEN | 
| 379 | 
        _BEGIN_MASTER( myThid ) | 
        _BEGIN_MASTER( myThid ) | 
| 380 | 
        WRITE(msgBuf,'(A)')  | 
        WRITE(msgBuf,'(A)') | 
| 381 | 
      &' // =======================================================' | 
      &' // =======================================================' | 
| 382 | 
        CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, | 
        CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, | 
| 383 | 
      &      SQUEEZE_RIGHT, myThid ) | 
      &      SQUEEZE_RIGHT, myThid ) | 
| 384 | 
        WRITE(msgBuf,'(A)') ' // Begin JFNK statistics' | 
        WRITE(msgBuf,'(A)') ' // Begin JFNK statistics' | 
| 385 | 
        CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, | 
        CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, | 
| 386 | 
      &      SQUEEZE_RIGHT, myThid ) | 
      &      SQUEEZE_RIGHT, myThid ) | 
| 387 | 
        WRITE(msgBuf,'(A)')  | 
        WRITE(msgBuf,'(A)') | 
| 388 | 
      &' // =======================================================' | 
      &' // =======================================================' | 
| 389 | 
        CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, | 
        CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, | 
| 390 | 
      &      SQUEEZE_RIGHT, myThid ) | 
      &      SQUEEZE_RIGHT, myThid ) | 
| 391 | 
        WRITE(msgBuf,'(A,I10)')  | 
        WRITE(msgBuf,'(A,I10)') | 
| 392 | 
      &      ' %JFNK_MON: time step              = ', myIter+1 | 
      &      ' %JFNK_MON: time step              = ', myIter+1 | 
| 393 | 
        CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, | 
        CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, | 
| 394 | 
      &      SQUEEZE_RIGHT, myThid ) | 
      &      SQUEEZE_RIGHT, myThid ) | 
| 395 | 
        WRITE(msgBuf,'(A,I10)')  | 
        WRITE(msgBuf,'(A,I10)') | 
| 396 | 
      &      ' %JFNK_MON: Nb. of time steps      = ', totalJFNKtimeSteps | 
      &      ' %JFNK_MON: Nb. of time steps      = ', totalJFNKtimeSteps | 
| 397 | 
        CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, | 
        CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, | 
| 398 | 
      &      SQUEEZE_RIGHT, myThid ) | 
      &      SQUEEZE_RIGHT, myThid ) | 
| 399 | 
        WRITE(msgBuf,'(A,I10)')  | 
        WRITE(msgBuf,'(A,I10)') | 
| 400 | 
      &      ' %JFNK_MON: Nb. of Newton steps    = ', totalNewtonIters | 
      &      ' %JFNK_MON: Nb. of Newton steps    = ', totalNewtonIters | 
| 401 | 
        CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, | 
        CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, | 
| 402 | 
      &      SQUEEZE_RIGHT, myThid ) | 
      &      SQUEEZE_RIGHT, myThid ) | 
| 403 | 
        WRITE(msgBuf,'(A,I10)')  | 
        WRITE(msgBuf,'(A,I10)') | 
| 404 | 
      &      ' %JFNK_MON: Nb. of Krylov steps    = ', totalKrylovIters | 
      &      ' %JFNK_MON: Nb. of Krylov steps    = ', totalKrylovIters | 
| 405 | 
        CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, | 
        CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, | 
| 406 | 
      &      SQUEEZE_RIGHT, myThid ) | 
      &      SQUEEZE_RIGHT, myThid ) | 
| 407 | 
        WRITE(msgBuf,'(A,I10)')  | 
        WRITE(msgBuf,'(A,I10)') | 
| 408 | 
      &      ' %JFNK_MON: Nb. of Newton failures = ', totalNewtonFails | 
      &      ' %JFNK_MON: Nb. of Newton failures = ', totalNewtonFails | 
| 409 | 
        CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, | 
        CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, | 
| 410 | 
      &      SQUEEZE_RIGHT, myThid ) | 
      &      SQUEEZE_RIGHT, myThid ) | 
| 411 | 
        WRITE(msgBuf,'(A,I10)')  | 
        WRITE(msgBuf,'(A,I10)') | 
| 412 | 
      &      ' %JFNK_MON: Nb. of Krylov failures = ', totalKrylovFails | 
      &      ' %JFNK_MON: Nb. of Krylov failures = ', totalKrylovFails | 
| 413 | 
        CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, | 
        CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, | 
| 414 | 
      &      SQUEEZE_RIGHT, myThid ) | 
      &      SQUEEZE_RIGHT, myThid ) | 
| 415 | 
        WRITE(msgBuf,'(A)')  | 
        WRITE(msgBuf,'(A)') | 
| 416 | 
      &' // =======================================================' | 
      &' // =======================================================' | 
| 417 | 
        CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, | 
        CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, | 
| 418 | 
      &      SQUEEZE_RIGHT, myThid ) | 
      &      SQUEEZE_RIGHT, myThid ) | 
| 419 | 
        WRITE(msgBuf,'(A)') ' // End JFNK statistics' | 
        WRITE(msgBuf,'(A)') ' // End JFNK statistics' | 
| 420 | 
        CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, | 
        CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, | 
| 421 | 
      &      SQUEEZE_RIGHT, myThid ) | 
      &      SQUEEZE_RIGHT, myThid ) | 
| 422 | 
        WRITE(msgBuf,'(A)')  | 
        WRITE(msgBuf,'(A)') | 
| 423 | 
      &' // =======================================================' | 
      &' // =======================================================' | 
| 424 | 
        CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, | 
        CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, | 
| 425 | 
      &      SQUEEZE_RIGHT, myThid ) | 
      &      SQUEEZE_RIGHT, myThid ) | 
| 434 | 
  | 
  | 
| 435 | 
 C     Print more debugging information | 
 C     Print more debugging information | 
| 436 | 
       IF ( debugLevel.GE.debLevA ) THEN | 
       IF ( debugLevel.GE.debLevA ) THEN | 
| 437 | 
        IF ( newtonIter .EQ. SEAICEnewtonIterMax ) THEN | 
        IF ( newtonIter .EQ. SEAICEnonLinIterMax ) THEN | 
| 438 | 
         _BEGIN_MASTER( myThid ) | 
         _BEGIN_MASTER( myThid ) | 
| 439 | 
         WRITE(msgBuf,'(A,I10)')  | 
         WRITE(msgBuf,'(A,I10)') | 
| 440 | 
      &       ' S/R SEAICE_JFNK: JFNK did not converge in timestep ', | 
      &       ' S/R SEAICE_JFNK: JFNK did not converge in timestep ', | 
| 441 | 
      &       myIter+1 | 
      &       myIter+1 | 
| 442 | 
         CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, | 
         CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, | 
| 445 | 
        ENDIF | 
        ENDIF | 
| 446 | 
        IF ( krylovFails .GT. 0 ) THEN | 
        IF ( krylovFails .GT. 0 ) THEN | 
| 447 | 
         _BEGIN_MASTER( myThid ) | 
         _BEGIN_MASTER( myThid ) | 
| 448 | 
         WRITE(msgBuf,'(A,I4,A,I10)')  | 
         WRITE(msgBuf,'(A,I4,A,I10)') | 
| 449 | 
      &       ' S/R SEAICE_JFNK: FGMRES did not converge ', | 
      &       ' S/R SEAICE_JFNK: FGMRES did not converge ', | 
| 450 | 
      &       krylovFails, ' times in timestep ', myIter+1 | 
      &       krylovFails, ' times in timestep ', myIter+1 | 
| 451 | 
         CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, | 
         CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, | 
| 453 | 
         _END_MASTER( myThid ) | 
         _END_MASTER( myThid ) | 
| 454 | 
        ENDIF | 
        ENDIF | 
| 455 | 
        _BEGIN_MASTER( myThid ) | 
        _BEGIN_MASTER( myThid ) | 
| 456 | 
        WRITE(msgBuf,'(A,I6,A,I10)')  | 
        WRITE(msgBuf,'(A,I6,A,I10)') | 
| 457 | 
      &      ' S/R SEAICE_JFNK: Total number FGMRES iterations = ', | 
      &      ' S/R SEAICE_JFNK: Total number FGMRES iterations = ', | 
| 458 | 
      &      totalKrylovItersLoc, ' in timestep ', myIter+1 | 
      &      totalKrylovItersLoc, ' in timestep ', myIter+1 | 
| 459 | 
        CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, | 
        CALL PRINT_MESSAGE( msgBuf, standardMessageUnit, | 
| 469 | 
 C     !ROUTINE: SEAICE_JFNK_UPDATE | 
 C     !ROUTINE: SEAICE_JFNK_UPDATE | 
| 470 | 
 C     !INTERFACE: | 
 C     !INTERFACE: | 
| 471 | 
  | 
  | 
| 472 | 
       SUBROUTINE SEAICE_JFNK_UPDATE(  | 
       SUBROUTINE SEAICE_JFNK_UPDATE( | 
| 473 | 
      I     duIce, dvIce,  | 
      I     duIce, dvIce, | 
| 474 | 
      U     uIce, vIce, JFNKresidual, | 
      U     uIce, vIce, JFNKresidual, | 
| 475 | 
      O     uIceRes, vIceRes, | 
      O     uIceRes, vIceRes, | 
| 476 | 
      I     newtonIter, myTime, myIter, myThid ) | 
      I     newtonIter, myTime, myIter, myThid ) | 
| 529 | 
       _RL     resLoc, facLS | 
       _RL     resLoc, facLS | 
| 530 | 
       LOGICAL doLineSearch | 
       LOGICAL doLineSearch | 
| 531 | 
 C     nVec    :: size of the input vector(s) | 
 C     nVec    :: size of the input vector(s) | 
| 532 | 
 C     vector version of the residuals | 
 C     resTmp  :: vector version of the residuals | 
| 533 | 
       INTEGER nVec | 
       INTEGER nVec | 
| 534 | 
       PARAMETER ( nVec  = 2*sNx*sNy ) | 
       PARAMETER ( nVec  = 2*sNx*sNy ) | 
| 535 | 
       _RL resTmp (nVec,1,nSx,nSy) | 
       _RL resTmp (nVec,1,nSx,nSy) | 
| 536 | 
 C | 
  | 
| 537 | 
       CHARACTER*(MAX_LEN_MBUF) msgBuf | 
       CHARACTER*(MAX_LEN_MBUF) msgBuf | 
| 538 | 
 CEOP | 
 CEOP | 
| 539 | 
  | 
  | 
| 543 | 
       facLS = 1. _d 0 | 
       facLS = 1. _d 0 | 
| 544 | 
       doLineSearch = .TRUE. | 
       doLineSearch = .TRUE. | 
| 545 | 
       DO WHILE ( doLineSearch ) | 
       DO WHILE ( doLineSearch ) | 
 | 
 C     Determine, if we need more iterations | 
  | 
 | 
        doLineSearch = resLoc .GE. JFNKresidual  | 
  | 
 | 
 C     Limit the maximum number of iterations arbitrarily to four | 
  | 
 | 
        doLineSearch = doLineSearch .AND. l .LE. 4  | 
  | 
 | 
 C     For the first iteration du/vIce = 0 and there will be no | 
  | 
 | 
 C     improvement of the residual possible, so we do only the first | 
  | 
 | 
 C     iteration | 
  | 
 | 
        IF ( newtonIter .EQ. 1 ) doLineSearch = .FALSE. | 
  | 
 | 
 C     Only start a linesearch after some Newton iterations | 
  | 
 | 
        IF ( newtonIter .LE. SEAICE_JFNK_lsIter ) doLineSearch = .FALSE. | 
  | 
 | 
 C     Increment counter | 
  | 
 | 
        l = l + 1 | 
  | 
| 546 | 
 C     Create update | 
 C     Create update | 
| 547 | 
        DO bj=myByLo(myThid),myByHi(myThid) | 
        DO bj=myByLo(myThid),myByHi(myThid) | 
| 548 | 
         DO bi=myBxLo(myThid),myBxHi(myThid) | 
         DO bi=myBxLo(myThid),myBxHi(myThid) | 
| 549 | 
          DO J=1-Oly,sNy+Oly | 
          DO J=1-OLy,sNy+OLy | 
| 550 | 
           DO I=1-Olx,sNx+Olx | 
           DO I=1-OLx,sNx+OLx | 
| 551 | 
            uIce(I,J,bi,bj) = uIce(I,J,bi,bj)+facLS*duIce(I,J,bi,bj) | 
            uIce(I,J,bi,bj) = uIce(I,J,bi,bj)+facLS*duIce(I,J,bi,bj) | 
| 552 | 
            vIce(I,J,bi,bj) = vIce(I,J,bi,bj)+facLS*dvIce(I,J,bi,bj) | 
            vIce(I,J,bi,bj) = vIce(I,J,bi,bj)+facLS*dvIce(I,J,bi,bj) | 
| 553 | 
           ENDDO | 
           ENDDO | 
| 556 | 
        ENDDO | 
        ENDDO | 
| 557 | 
 C     Compute current residual F(u), (includes re-computation of global | 
 C     Compute current residual F(u), (includes re-computation of global | 
| 558 | 
 C     variables DWATN, zeta, and eta, i.e. they are different after this) | 
 C     variables DWATN, zeta, and eta, i.e. they are different after this) | 
| 559 | 
        CALL SEAICE_CALC_RESIDUAL(  | 
        CALL SEAICE_CALC_RESIDUAL( | 
| 560 | 
      I      uIce, vIce,  | 
      I      uIce, vIce, | 
| 561 | 
      O      uIceRes, vIceRes,  | 
      O      uIceRes, vIceRes, | 
| 562 | 
      I      newtonIter, 0, myTime, myIter, myThid ) | 
      I      newtonIter, 0, myTime, myIter, myThid ) | 
| 563 | 
 C     Important: Compute the norm of the residual using the same scalar | 
 C     Important: Compute the norm of the residual using the same scalar | 
| 564 | 
 C     product that SEAICE_FGMRES does | 
 C     product that SEAICE_FGMRES does | 
| 565 | 
        CALL SEAICE_MAP2VEC(nVec,uIceRes,vIceRes,resTmp,.TRUE.,myThid) | 
        CALL SEAICE_MAP2VEC(nVec,uIceRes,vIceRes,resTmp,.TRUE.,myThid) | 
| 566 | 
        CALL SEAICE_SCALPROD(nVec,1,1,1,resTmp,resTmp,resLoc,myThid) | 
        CALL SEAICE_SCALPROD(nVec,1,1,1,resTmp,resTmp,resLoc,myThid) | 
| 567 | 
        resLoc = SQRT(resLoc) | 
        resLoc = SQRT(resLoc) | 
| 568 | 
  | 
 C     Determine, if we need more iterations | 
| 569 | 
  | 
        doLineSearch = resLoc .GE. JFNKresidual | 
| 570 | 
  | 
 C     Limit the maximum number of iterations arbitrarily to four | 
| 571 | 
  | 
        doLineSearch = doLineSearch .AND. l .LT. 4 | 
| 572 | 
  | 
 C     For the first iteration du/vIce = 0 and there will be no | 
| 573 | 
  | 
 C     improvement of the residual possible, so we do only the first | 
| 574 | 
  | 
 C     iteration | 
| 575 | 
  | 
        IF ( newtonIter .EQ. 1 ) doLineSearch = .FALSE. | 
| 576 | 
  | 
 C     Only start a linesearch after some Newton iterations | 
| 577 | 
  | 
        IF ( newtonIter .LE. SEAICE_JFNK_lsIter ) doLineSearch = .FALSE. | 
| 578 | 
  | 
 C     Increment counter | 
| 579 | 
  | 
        l = l + 1 | 
| 580 | 
 C     some output diagnostics | 
 C     some output diagnostics | 
| 581 | 
        IF ( debugLevel.GE.debLevA .AND. doLineSearch ) THEN | 
        IF ( debugLevel.GE.debLevA .AND. doLineSearch ) THEN | 
| 582 | 
         _BEGIN_MASTER( myThid ) | 
         _BEGIN_MASTER( myThid ) | 
| 583 | 
         WRITE(msgBuf,'(2A,2(1XI6),3E12.5)')  | 
         WRITE(msgBuf,'(2A,2(1XI6),3E12.5)') | 
| 584 | 
      &       ' S/R SEAICE_JFNK_UPDATE: Newton iter, LSiter, ', | 
      &       ' S/R SEAICE_JFNK_UPDATE: Newton iter, LSiter, ', | 
| 585 | 
      &       'facLS, JFNKresidual, resLoc = ', | 
      &       'facLS, JFNKresidual, resLoc = ', | 
| 586 | 
      &        newtonIter, l, facLS, JFNKresidual, resLoc | 
      &        newtonIter, l, facLS, JFNKresidual, resLoc | 
| 596 | 
 C     This is the new residual | 
 C     This is the new residual | 
| 597 | 
       JFNKresidual = resLoc | 
       JFNKresidual = resLoc | 
| 598 | 
  | 
  | 
| 599 | 
 #endif /* SEAICE_ALLOW_DYNAMICS and SEAICE_CGRID and SEAICE_ALLOW_JFNK */ | 
 #endif /* SEAICE_ALLOW_JFNK */ | 
| 600 | 
  | 
  | 
| 601 | 
       RETURN | 
       RETURN | 
| 602 | 
       END | 
       END |