1 |
dimitri |
1.1 |
C program to generate netcdf output files for Gruber's |
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C ocean inversion project |
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4 |
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C note that ECCO_MaskAreaBathy.nc is generated directly |
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C from the model |
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C to compile on nireas: |
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C f77 mk_output.F write_nc_phys.F nc_util.F \ |
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C handle_errors.F write_nc_basisfnctns.F \ |
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C write_nc_diag_0D.F write_nc_diag_2D.F \ |
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C -I/home/dimitri/software/netcdf/netcdf-3.5.0/include \ |
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C -L/home/dimitri/software/netcdf/netcdf-3.5.0/lib -lnetcdf |
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C to compile on orion: |
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C setenv F_UFMTENDIAN big |
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C efc -W0 -WB mk_output.F write_nc_phys.F nc_util.F \ |
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C handle_errors.F write_nc_basisfnctns.F \ |
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C write_nc_diag_0D.F write_nc_diag_2D.F \ |
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C -I/u2/dmenem/software/netcdf-3.5.0/include \ |
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C -L/u2/dmenem/software/netcdf-3.5.0/lib -lnetcdf |
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C=========================================================== |
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C Constants that depend on model configuration |
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C=========================================================== |
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C nx, ny, nz :: model domain dimensions |
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C nb_seconds_per_year :: following your model year [s] |
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C nb_timesteps_per_year:: following your model timestep |
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C StationaryYears :: total number of years for |
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C quasi-stationary integration |
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C delz :: model thicknesses |
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C p1 :: path for quasi-stationary integration model output |
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C p2 :: path for time-dependent integration model output |
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INTEGER nx , ny , nz |
36 |
dimitri |
1.4 |
PARAMETER(nx=360, ny=160, nz=23) |
37 |
dimitri |
1.1 |
INTEGER nb_seconds_per_year |
38 |
dimitri |
1.4 |
PARAMETER(nb_seconds_per_year=31536000) |
39 |
dimitri |
1.1 |
INTEGER nb_timesteps_per_year |
40 |
dimitri |
1.4 |
PARAMETER(nb_timesteps_per_year=8760) |
41 |
dimitri |
1.1 |
INTEGER StationaryYears |
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PARAMETER(StationaryYears=3001) |
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REAL delz(nz) |
44 |
dimitri |
1.4 |
DATA delz /10.,10.,15.,20.,20.,25.,35.,50.,75.,100.,150.,200., |
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& 275.,350.,415.,450.,500.,500.,500.,500.,500.,500.,500./ |
46 |
dimitri |
1.5 |
CHARACTER*(1) p1 |
47 |
dimitri |
1.1 |
PARAMETER( p1= |
48 |
dimitri |
1.4 |
& ' ') |
49 |
dimitri |
1.7 |
C 12345678911234567892123456789312345678941234567895123456789 |
50 |
dimitri |
1.6 |
CHARACTER*(37) p2 |
51 |
dimitri |
1.1 |
PARAMETER( p2= |
52 |
dimitri |
1.6 |
& '/nobackup2/menemenl/ocmip/MITgcm/exe/') |
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C 12345678911234567892123456789312345678941234567895123456789 |
54 |
dimitri |
1.1 |
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C=========================================================== |
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C Other constants and variables |
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C=========================================================== |
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C ndyetrac :: number of dye tracers |
60 |
dimitri |
1.4 |
C nrec :: number of records for time-dependent output |
61 |
dimitri |
1.1 |
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INTEGER ndyetrac |
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PARAMETER(ndyetrac=30) |
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INTEGER nrec |
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PARAMETER(nrec =56) |
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C secs_per_month = number of seconds in each model month |
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C PT = monthly potential temperature [C] |
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C SAL = monthly salinity [psu] |
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C TFLX = monthly net surface heat flux [W/m^2] |
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C H2OFLX = monthly net surface freshwater flux [m/y] |
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C Eul_U = monthly Eulerian Zonal Velocity [m/s] |
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C WS_x = monthly Zonal Wind Stress [N/m^2] |
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C Eul_V = monthly Eulerian Meridional Velocity [m/s] |
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C WS_y = monthly Meridional Wind Stress [N/m^2] |
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C has_eddy = logical flag, true if model has eddy induced velocities |
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C Eddy_U = monthly Eddy Induced Zonal Velocity [m/s] |
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C Eddy_V = monthly Eddy Induced Meridional Velocity [m/s] |
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C dye_arr= Concentration of dye tracer [mol/cm^3] |
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C time=time expressed as decimal years |
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C dye_flux=dye flux for each tracer (mol/m2/s) |
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C cum_dye_flux=cumulative dye flux for each tracer (mol/m2) |
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C global_time=time expressed as decimal years |
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C global_tot_dye=global total dye flux for this year for each tracer (mol) |
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C global_cum_dye=global cumulative dye flux for each tracer (mol) |
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C global_mean_conc= global mean dye concentration (mol/m-3) |
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C year= year of simulation [years] |
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C RAC = model area |
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C hFacC = model mask |
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91 |
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REAL secs_per_month ( 12) |
92 |
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REAL PT (nx, ny, nz, 12) |
93 |
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REAL SAL (nx, ny, nz, 12) |
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REAL TFLX (nx, ny, 12) |
95 |
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REAL H2OFLX (nx, ny, 12) |
96 |
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REAL Eul_U (nx, ny, nz, 12) |
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REAL WS_x (nx, ny, 12) |
98 |
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REAL Eul_V (nx, ny, nz, 12) |
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REAL WS_y (nx, ny, 12) |
100 |
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LOGICAL has_eddy |
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REAL Eddy_U (nx, ny, nz, 12) |
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REAL Eddy_V (nx, ny, nz, 12) |
103 |
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REAL dye_arr (nx, ny, nz, ndyetrac) |
104 |
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REAL time(nrec) |
105 |
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REAL dye_flux (nx, ny, ndyetrac, nrec) |
106 |
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REAL cum_dye_flux (nx, ny, ndyetrac, nrec) |
107 |
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REAL global_time ( StationaryYears) |
108 |
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REAL global_tot_dye (ndyetrac,StationaryYears) |
109 |
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REAL global_cum_dye (ndyetrac,StationaryYears) |
110 |
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REAL global_mean_conc(ndyetrac,StationaryYears) |
111 |
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INTEGER year |
112 |
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REAL RAC(nx, ny), hFacC(nx, ny, nz) |
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114 |
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INTEGER i, j, k, m, n, step, year, irec, start_step, end_step |
115 |
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CHARACTER*(80) fn |
116 |
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REAL tmp(nx, ny), tmp3D(nx, ny, nz) |
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118 |
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C=========================================================== |
119 |
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print*,'generate ECCO_*_phys.nc files' |
120 |
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C=========================================================== |
121 |
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122 |
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do m=1,12 |
123 |
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secs_per_month(m)=nb_seconds_per_year/12 |
124 |
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enddo |
125 |
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126 |
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C== Eddy velocity is not computed |
127 |
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has_eddy = .FALSE. |
128 |
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do m=1,12 |
129 |
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do i=1,nx |
130 |
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do j=1,ny |
131 |
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do k=1,nz |
132 |
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Eddy_U(i,j,k,m)=0 |
133 |
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enddo |
134 |
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enddo |
135 |
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enddo |
136 |
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do i=1,nx |
137 |
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do j=1,ny |
138 |
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do k=1,nz |
139 |
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Eddy_V(i,j,k,m)=0 |
140 |
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enddo |
141 |
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enddo |
142 |
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enddo |
143 |
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enddo |
144 |
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145 |
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C=========================================================== |
146 |
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print*,'Quasi-stationary, 1st year' |
147 |
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C=========================================================== |
148 |
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149 |
dimitri |
1.4 |
IF ( p1 .NE. ' ' ) THEN |
150 |
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151 |
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do m=1,12 |
152 |
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step=m*(nb_timesteps_per_year/12) |
153 |
dimitri |
1.1 |
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154 |
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C== PT = monthly potential temperature [C] |
155 |
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WRITE(fn,'(A,A,I10.10,A)') p1, 'Ttave.', step, '.data' |
156 |
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open(100,file=fn,status='old',access='direct', |
157 |
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& recl=nx*ny*4) |
158 |
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do k=1,nz |
159 |
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read(100,rec=k) tmp |
160 |
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do i=1,nx |
161 |
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do j=1,ny |
162 |
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PT (i,j,k,m)=tmp(i,j) |
163 |
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enddo |
164 |
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enddo |
165 |
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enddo |
166 |
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close(100) |
167 |
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168 |
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C== SAL = monthly salinity [psu] |
169 |
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WRITE(fn,'(A,A,I10.10,A)') p1, 'Stave.', step, '.data' |
170 |
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open(100,file=fn,status='old',access='direct', |
171 |
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& recl=nx*ny*4) |
172 |
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do k=1,nz |
173 |
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read(100,rec=k) tmp |
174 |
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do i=1,nx |
175 |
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do j=1,ny |
176 |
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SAL(i,j,k,m)=tmp(i,j) |
177 |
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enddo |
178 |
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enddo |
179 |
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enddo |
180 |
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close(100) |
181 |
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182 |
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C== TFLX = monthly net surface heat flux [W/m^2] |
183 |
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WRITE(fn,'(A,A,I10.10,A)') p1, 'tFluxtave.', step, '.data' |
184 |
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open(100,file=fn,status='old',access='direct', |
185 |
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& recl=nx*ny*4) |
186 |
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read(100,rec=1) tmp |
187 |
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do i=1,nx |
188 |
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do j=1,ny |
189 |
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TFLX(i,j,m)=-tmp(i,j) |
190 |
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enddo |
191 |
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enddo |
192 |
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close(100) |
193 |
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194 |
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C== H2OFLX = monthly net surface freshwater flux [m/y] |
195 |
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WRITE(fn,'(A,A,I10.10,A)') p1, 'sFluxtave.', step, '.data' |
196 |
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open(100,file=fn,status='old',access='direct', |
197 |
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& recl=nx*ny*4) |
198 |
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read(100,rec=1) tmp |
199 |
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do i=1,nx |
200 |
dimitri |
1.3 |
do j=1,ny |
201 |
dimitri |
1.1 |
C-- convert from PSU.kg/m^2/s to m/yr |
202 |
dimitri |
1.3 |
H2OFLX(i,j,m)=-tmp(i,j)*nb_seconds_per_year/999.8/SAL(i,j,1,m) |
203 |
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enddo |
204 |
dimitri |
1.1 |
enddo |
205 |
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close(100) |
206 |
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207 |
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C== Eul_U = monthly Eulerian Zonal Velocity [m/s] |
208 |
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WRITE(fn,'(A,A,I10.10,A)') p1, 'uVeltave.', step, '.data' |
209 |
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open(100,file=fn,status='old',access='direct', |
210 |
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& recl=nx*ny*4) |
211 |
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do k=1,nz |
212 |
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read(100,rec=k) tmp |
213 |
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do i=1,nx |
214 |
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do j=1,ny |
215 |
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Eul_U(i,j,k,m)=tmp(i,j) |
216 |
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enddo |
217 |
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enddo |
218 |
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enddo |
219 |
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close(100) |
220 |
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221 |
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C== WS_x = monthly Zonal Wind Stress [N/m^2] |
222 |
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WRITE(fn,'(A,A,I10.10,A)') p1, 'uFluxtave.', step, '.data' |
223 |
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open(100,file=fn,status='old',access='direct', |
224 |
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& recl=nx*ny*4) |
225 |
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read(100,rec=1) tmp |
226 |
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do i=1,nx |
227 |
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do j=1,ny |
228 |
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WS_x(i,j,m)=tmp(i,j) |
229 |
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enddo |
230 |
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enddo |
231 |
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close(100) |
232 |
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233 |
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C== Eul_V = monthly Eulerian Meridional Velocity [m/s] |
234 |
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WRITE(fn,'(A,A,I10.10,A)') p1, 'vVeltave.', step, '.data' |
235 |
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open(100,file=fn,status='old',access='direct', |
236 |
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& recl=nx*ny*4) |
237 |
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do k=1,nz |
238 |
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read(100,rec=k) tmp |
239 |
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do i=1,nx |
240 |
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do j=1,ny |
241 |
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Eul_V(i,j,k,m)=tmp(i,j) |
242 |
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enddo |
243 |
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enddo |
244 |
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enddo |
245 |
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close(100) |
246 |
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247 |
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C== WS_y = monthly Meridional Wind Stress [N/m^2] |
248 |
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WRITE(fn,'(A,A,I10.10,A)') p1, 'vFluxtave.', step, '.data' |
249 |
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open(100,file=fn,status='old',access='direct', |
250 |
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& recl=nx*ny*4) |
251 |
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read(100,rec=1) tmp |
252 |
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do i=1,nx |
253 |
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do j=1,ny |
254 |
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WS_y(i,j,m)=tmp(i,j) |
255 |
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enddo |
256 |
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enddo |
257 |
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close(100) |
258 |
dimitri |
1.4 |
enddo |
259 |
dimitri |
1.1 |
|
260 |
dimitri |
1.4 |
call write_nc_phys( |
261 |
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& 'ECCO1_Stationary_1','MITgcm_checkpoint51n_post', |
262 |
dimitri |
1.1 |
& secs_per_month, |
263 |
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& nx, ny, nz, |
264 |
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& PT, SAL, TFLX, H2OFLX, |
265 |
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& nz, |
266 |
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& nx, ny, Eul_U, WS_x, |
267 |
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& nx, ny, Eul_V, WS_y, |
268 |
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& has_eddy, |
269 |
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& nx, ny, Eddy_U, |
270 |
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& nx, ny, Eddy_V) |
271 |
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272 |
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C=========================================================== |
273 |
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print*,'Quasi-stationary, last year' |
274 |
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C=========================================================== |
275 |
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276 |
dimitri |
1.4 |
do m=1,12 |
277 |
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step=(StationaryYears-1)*nb_timesteps_per_year+ |
278 |
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& m*(nb_timesteps_per_year/12) |
279 |
dimitri |
1.1 |
|
280 |
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C== PT = monthly potential temperature [C] |
281 |
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WRITE(fn,'(A,A,I10.10,A)') p1, 'Ttave.', step, '.data' |
282 |
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open(100,file=fn,status='old',access='direct', |
283 |
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& recl=nx*ny*4) |
284 |
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do k=1,nz |
285 |
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read(100,rec=k) tmp |
286 |
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do i=1,nx |
287 |
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do j=1,ny |
288 |
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PT (i,j,k,m)=tmp(i,j) |
289 |
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enddo |
290 |
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enddo |
291 |
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enddo |
292 |
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close(100) |
293 |
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294 |
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C== SAL = monthly salinity [psu] |
295 |
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WRITE(fn,'(A,A,I10.10,A)') p1, 'Stave.', step, '.data' |
296 |
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open(100,file=fn,status='old',access='direct', |
297 |
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& recl=nx*ny*4) |
298 |
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do k=1,nz |
299 |
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read(100,rec=k) tmp |
300 |
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do i=1,nx |
301 |
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do j=1,ny |
302 |
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SAL(i,j,k,m)=tmp(i,j) |
303 |
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enddo |
304 |
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enddo |
305 |
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enddo |
306 |
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close(100) |
307 |
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308 |
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C== TFLX = monthly net surface heat flux [W/m^2] |
309 |
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WRITE(fn,'(A,A,I10.10,A)') p1, 'tFluxtave.', step, '.data' |
310 |
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open(100,file=fn,status='old',access='direct', |
311 |
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& recl=nx*ny*4) |
312 |
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read(100,rec=1) tmp |
313 |
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do i=1,nx |
314 |
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do j=1,ny |
315 |
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TFLX(i,j,m)=-tmp(i,j) |
316 |
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enddo |
317 |
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enddo |
318 |
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close(100) |
319 |
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|
320 |
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C== H2OFLX = monthly net surface freshwater flux [m/y] |
321 |
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WRITE(fn,'(A,A,I10.10,A)') p1, 'sFluxtave.', step, '.data' |
322 |
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open(100,file=fn,status='old',access='direct', |
323 |
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& recl=nx*ny*4) |
324 |
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read(100,rec=1) tmp |
325 |
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do i=1,nx |
326 |
dimitri |
1.3 |
do j=1,ny |
327 |
dimitri |
1.1 |
C-- convert from PSU.kg/m^2/s to m/yr |
328 |
dimitri |
1.3 |
H2OFLX(i,j,m)=-tmp(i,j)*nb_seconds_per_year/999.8/SAL(i,j,1,m) |
329 |
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enddo |
330 |
dimitri |
1.1 |
enddo |
331 |
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close(100) |
332 |
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333 |
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C== Eul_U = monthly Eulerian Zonal Velocity [m/s] |
334 |
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WRITE(fn,'(A,A,I10.10,A)') p1, 'uVeltave.', step, '.data' |
335 |
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open(100,file=fn,status='old',access='direct', |
336 |
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& recl=nx*ny*4) |
337 |
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do k=1,nz |
338 |
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read(100,rec=k) tmp |
339 |
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do i=1,nx |
340 |
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do j=1,ny |
341 |
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Eul_U(i,j,k,m)=tmp(i,j) |
342 |
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enddo |
343 |
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enddo |
344 |
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enddo |
345 |
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close(100) |
346 |
|
|
|
347 |
|
|
C== WS_x = monthly Zonal Wind Stress [N/m^2] |
348 |
|
|
WRITE(fn,'(A,A,I10.10,A)') p1, 'uFluxtave.', step, '.data' |
349 |
|
|
open(100,file=fn,status='old',access='direct', |
350 |
|
|
& recl=nx*ny*4) |
351 |
|
|
read(100,rec=1) tmp |
352 |
|
|
do i=1,nx |
353 |
|
|
do j=1,ny |
354 |
|
|
WS_x(i,j,m)=tmp(i,j) |
355 |
|
|
enddo |
356 |
|
|
enddo |
357 |
|
|
close(100) |
358 |
|
|
|
359 |
|
|
C== Eul_V = monthly Eulerian Meridional Velocity [m/s] |
360 |
|
|
WRITE(fn,'(A,A,I10.10,A)') p1, 'vVeltave.', step, '.data' |
361 |
|
|
open(100,file=fn,status='old',access='direct', |
362 |
|
|
& recl=nx*ny*4) |
363 |
|
|
do k=1,nz |
364 |
|
|
read(100,rec=k) tmp |
365 |
|
|
do i=1,nx |
366 |
|
|
do j=1,ny |
367 |
|
|
Eul_V(i,j,k,m)=tmp(i,j) |
368 |
|
|
enddo |
369 |
|
|
enddo |
370 |
|
|
enddo |
371 |
|
|
close(100) |
372 |
|
|
|
373 |
|
|
C== WS_y = monthly Meridional Wind Stress [N/m^2] |
374 |
|
|
WRITE(fn,'(A,A,I10.10,A)') p1, 'vFluxtave.', step, '.data' |
375 |
|
|
open(100,file=fn,status='old',access='direct', |
376 |
|
|
& recl=nx*ny*4) |
377 |
|
|
read(100,rec=1) tmp |
378 |
|
|
do i=1,nx |
379 |
|
|
do j=1,ny |
380 |
|
|
WS_y(i,j,m)=tmp(i,j) |
381 |
|
|
enddo |
382 |
|
|
enddo |
383 |
|
|
close(100) |
384 |
dimitri |
1.4 |
enddo |
385 |
dimitri |
1.1 |
|
386 |
dimitri |
1.4 |
call write_nc_phys( |
387 |
|
|
& 'ECCO1_Stationary_3001','MITgcm_checkpoint51n_post', |
388 |
dimitri |
1.1 |
& secs_per_month, |
389 |
|
|
& nx, ny, nz, |
390 |
|
|
& PT, SAL, TFLX, H2OFLX, |
391 |
|
|
& nz, |
392 |
|
|
& nx, ny, Eul_U, WS_x, |
393 |
|
|
& nx, ny, Eul_V, WS_y, |
394 |
|
|
& has_eddy, |
395 |
|
|
& nx, ny, Eddy_U, |
396 |
|
|
& nx, ny, Eddy_V) |
397 |
|
|
|
398 |
dimitri |
1.4 |
C IF ( p1 .NE. ' ' ) THEN |
399 |
|
|
ENDIF |
400 |
|
|
|
401 |
dimitri |
1.1 |
C=========================================================== |
402 |
|
|
print*,'Time-dependent average of last 10 years (232-241)' |
403 |
|
|
C=========================================================== |
404 |
|
|
|
405 |
dimitri |
1.4 |
IF ( p2 .NE. ' ' ) THEN |
406 |
|
|
|
407 |
|
|
do m=1,12 |
408 |
dimitri |
1.1 |
|
409 |
|
|
C== initialize to zero |
410 |
|
|
do i=1,nx |
411 |
|
|
do j=1,ny |
412 |
|
|
do k=1,nz |
413 |
|
|
PT (i,j,k,m)=0 |
414 |
|
|
SAL(i,j,k,m)=0 |
415 |
|
|
enddo |
416 |
|
|
TFLX (i,j,m)=0 |
417 |
|
|
H2OFLX(i,j,m)=0 |
418 |
|
|
enddo |
419 |
|
|
enddo |
420 |
|
|
do i=1,nx |
421 |
|
|
do j=1,ny |
422 |
|
|
do k=1,nz |
423 |
|
|
Eul_U(i,j,k,m)=0 |
424 |
|
|
enddo |
425 |
|
|
WS_x(i,j,m)=0 |
426 |
|
|
enddo |
427 |
|
|
enddo |
428 |
|
|
do i=1,nx |
429 |
|
|
do j=1,ny |
430 |
|
|
do k=1,nz |
431 |
|
|
Eul_V(i,j,k,m)=0 |
432 |
|
|
enddo |
433 |
|
|
WS_y(i,j,m)=0 |
434 |
|
|
enddo |
435 |
|
|
enddo |
436 |
|
|
|
437 |
|
|
n=0 |
438 |
|
|
do year=231,240 |
439 |
|
|
n=n+1 |
440 |
dimitri |
1.4 |
step=year*nb_timesteps_per_year+m*(nb_timesteps_per_year/12) |
441 |
dimitri |
1.1 |
|
442 |
|
|
C== PT = monthly potential temperature [C] |
443 |
|
|
WRITE(fn,'(A,A,I10.10,A)') p2, 'Ttave.', step, '.data' |
444 |
|
|
open(100,file=fn,status='old',access='direct', |
445 |
|
|
& recl=nx*ny*4) |
446 |
|
|
do k=1,nz |
447 |
|
|
read(100,rec=k) tmp |
448 |
|
|
do i=1,nx |
449 |
|
|
do j=1,ny |
450 |
|
|
PT(i,j,k,m)=PT(i,j,k,m)+tmp(i,j) |
451 |
|
|
enddo |
452 |
|
|
enddo |
453 |
|
|
enddo |
454 |
|
|
close(100) |
455 |
|
|
|
456 |
|
|
C== SAL = monthly salinity [psu] |
457 |
|
|
WRITE(fn,'(A,A,I10.10,A)') p2, 'Stave.', step, '.data' |
458 |
|
|
open(100,file=fn,status='old',access='direct', |
459 |
|
|
& recl=nx*ny*4) |
460 |
|
|
do k=1,nz |
461 |
|
|
read(100,rec=k) tmp |
462 |
|
|
do i=1,nx |
463 |
|
|
do j=1,ny |
464 |
|
|
SAL(i,j,k,m)=SAL(i,j,k,m)+tmp(i,j) |
465 |
|
|
enddo |
466 |
|
|
enddo |
467 |
|
|
enddo |
468 |
|
|
close(100) |
469 |
|
|
|
470 |
|
|
C== TFLX = monthly net surface heat flux [W/m^2] |
471 |
|
|
WRITE(fn,'(A,A,I10.10,A)') p2, 'tFluxtave.', step, '.data' |
472 |
|
|
open(100,file=fn,status='old',access='direct', |
473 |
|
|
& recl=nx*ny*4) |
474 |
|
|
read(100,rec=1) tmp |
475 |
|
|
do i=1,nx |
476 |
|
|
do j=1,ny |
477 |
|
|
TFLX(i,j,m)=TFLX(i,j,m)-tmp(i,j) |
478 |
|
|
enddo |
479 |
|
|
enddo |
480 |
|
|
close(100) |
481 |
|
|
|
482 |
|
|
C== H2OFLX = monthly net surface freshwater flux [m/y] |
483 |
|
|
WRITE(fn,'(A,A,I10.10,A)') p2, 'sFluxtave.', step, '.data' |
484 |
|
|
open(100,file=fn,status='old',access='direct', |
485 |
|
|
& recl=nx*ny*4) |
486 |
|
|
read(100,rec=1) tmp |
487 |
|
|
do i=1,nx |
488 |
|
|
do j=1,ny |
489 |
|
|
C-- convert from PSU.kg/m^2/s to m/yr |
490 |
|
|
H2OFLX(i,j,m)=H2OFLX(i,j,m)- |
491 |
dimitri |
1.3 |
& tmp(i,j)*nb_seconds_per_year/999.8/SAL(i,j,1,m) |
492 |
dimitri |
1.1 |
enddo |
493 |
|
|
enddo |
494 |
|
|
close(100) |
495 |
|
|
|
496 |
|
|
C== Eul_U = monthly Eulerian Zonal Velocity [m/s] |
497 |
|
|
WRITE(fn,'(A,A,I10.10,A)') p2, 'uVeltave.', step, '.data' |
498 |
|
|
open(100,file=fn,status='old',access='direct', |
499 |
|
|
& recl=nx*ny*4) |
500 |
|
|
do k=1,nz |
501 |
|
|
read(100,rec=k) tmp |
502 |
|
|
do i=1,nx |
503 |
|
|
do j=1,ny |
504 |
|
|
Eul_U(i,j,k,m)=Eul_U(i,j,k,m)+tmp(i,j) |
505 |
|
|
enddo |
506 |
|
|
enddo |
507 |
|
|
enddo |
508 |
|
|
close(100) |
509 |
|
|
|
510 |
|
|
C== WS_x = monthly Zonal Wind Stress [N/m^2] |
511 |
|
|
WRITE(fn,'(A,A,I10.10,A)') p2, 'uFluxtave.', step, '.data' |
512 |
|
|
open(100,file=fn,status='old',access='direct', |
513 |
|
|
& recl=nx*ny*4) |
514 |
|
|
read(100,rec=1) tmp |
515 |
|
|
do i=1,nx |
516 |
|
|
do j=1,ny |
517 |
|
|
WS_x(i,j,m)=WS_x(i,j,m)+tmp(i,j) |
518 |
|
|
enddo |
519 |
|
|
enddo |
520 |
|
|
close(100) |
521 |
|
|
|
522 |
|
|
C== Eul_V = monthly Eulerian Meridional Velocity [m/s] |
523 |
|
|
WRITE(fn,'(A,A,I10.10,A)') p2, 'vVeltave.', step, '.data' |
524 |
|
|
open(100,file=fn,status='old',access='direct', |
525 |
|
|
& recl=nx*ny*4) |
526 |
|
|
do k=1,nz |
527 |
|
|
read(100,rec=k) tmp |
528 |
|
|
do i=1,nx |
529 |
|
|
do j=1,ny |
530 |
|
|
Eul_V(i,j,k,m)=Eul_V(i,j,k,m)+tmp(i,j) |
531 |
|
|
enddo |
532 |
|
|
enddo |
533 |
|
|
enddo |
534 |
|
|
close(100) |
535 |
|
|
|
536 |
|
|
C== WS_y = monthly Meridional Wind Stress [N/m^2] |
537 |
|
|
WRITE(fn,'(A,A,I10.10,A)') p2, 'vFluxtave.', step, '.data' |
538 |
|
|
open(100,file=fn,status='old',access='direct', |
539 |
|
|
& recl=nx*ny*4) |
540 |
|
|
read(100,rec=1) tmp |
541 |
|
|
do i=1,nx |
542 |
|
|
do j=1,ny |
543 |
|
|
WS_y(i,j,m)=WS_y(i,j,m)+tmp(i,j) |
544 |
|
|
enddo |
545 |
|
|
enddo |
546 |
|
|
close(100) |
547 |
|
|
enddo |
548 |
|
|
|
549 |
|
|
C== normalize |
550 |
|
|
do i=1,nx |
551 |
|
|
do j=1,ny |
552 |
|
|
do k=1,nz |
553 |
|
|
PT (i,j,k,m)=PT (i,j,k,m)/n |
554 |
|
|
SAL(i,j,k,m)=SAL(i,j,k,m)/n |
555 |
|
|
enddo |
556 |
|
|
TFLX (i,j,m)=TFLX (i,j,m)/n |
557 |
|
|
H2OFLX(i,j,m)=H2OFLX(i,j,m)/n |
558 |
|
|
enddo |
559 |
|
|
enddo |
560 |
|
|
do i=1,nx |
561 |
|
|
do j=1,ny |
562 |
|
|
do k=1,nz |
563 |
|
|
Eul_U(i,j,k,m)=Eul_U(i,j,k,m)/n |
564 |
|
|
enddo |
565 |
|
|
WS_x(i,j,m)=WS_x(i,j,m)/n |
566 |
|
|
enddo |
567 |
|
|
enddo |
568 |
|
|
do i=1,nx |
569 |
|
|
do j=1,ny |
570 |
|
|
do k=1,nz |
571 |
|
|
Eul_V(i,j,k,m)=Eul_V(i,j,k,m)/n |
572 |
|
|
enddo |
573 |
|
|
WS_y(i,j,m)=WS_y(i,j,m)/n |
574 |
|
|
enddo |
575 |
|
|
enddo |
576 |
dimitri |
1.4 |
enddo |
577 |
dimitri |
1.1 |
|
578 |
dimitri |
1.4 |
call write_nc_phys( |
579 |
dimitri |
1.5 |
& 'ECCO_Timedep','MITgcm_checkpoint51n_post', |
580 |
dimitri |
1.1 |
& secs_per_month, |
581 |
|
|
& nx, ny, nz, |
582 |
|
|
& PT, SAL, TFLX, H2OFLX, |
583 |
|
|
& nz, |
584 |
|
|
& nx, ny, Eul_U, WS_x, |
585 |
|
|
& nx, ny, Eul_V, WS_y, |
586 |
|
|
& has_eddy, |
587 |
|
|
& nx, ny, Eddy_U, |
588 |
|
|
& nx, ny, Eddy_V) |
589 |
|
|
|
590 |
dimitri |
1.4 |
C IF ( p2 .NE. ' ' ) THEN |
591 |
|
|
ENDIF |
592 |
|
|
|
593 |
dimitri |
1.1 |
C=========================================================== |
594 |
|
|
print*,'generate ECCO_*_BasisFNCTNS_*.nc and diag_2D files' |
595 |
|
|
C=========================================================== |
596 |
|
|
|
597 |
|
|
C=========================================================== |
598 |
|
|
print*,'Quasi-stationary annual mean basis functions' |
599 |
|
|
C== dye_arr= Concentration of dye tracer [mol/cm^3] |
600 |
|
|
C=========================================================== |
601 |
|
|
|
602 |
dimitri |
1.4 |
IF ( p1 .NE. ' ' ) THEN |
603 |
|
|
|
604 |
|
|
year = StationaryYears |
605 |
|
|
step = year * nb_timesteps_per_year |
606 |
|
|
do n=1,ndyetrac |
607 |
dimitri |
1.1 |
WRITE(fn,'(A,A,I2.2,A,I10.10,A)') |
608 |
|
|
& p1, 'PTRtave', n, '.', step, '.data' |
609 |
|
|
open(100,file=fn,status='old',access='direct', |
610 |
|
|
& recl=nx*ny*4) |
611 |
|
|
do k=1,nz |
612 |
|
|
read(100,rec=k) tmp |
613 |
|
|
do i=1,nx |
614 |
|
|
do j=1,ny |
615 |
|
|
dye_arr(i,j,k,n)=100*100*100*tmp(i,j) |
616 |
|
|
enddo |
617 |
|
|
enddo |
618 |
|
|
enddo |
619 |
|
|
close(100) |
620 |
dimitri |
1.4 |
enddo |
621 |
|
|
call write_nc_basisfnctns( |
622 |
dimitri |
1.5 |
& 'ECCO','MITgcm_checkpoint51n_post','Stationary', |
623 |
dimitri |
1.1 |
& nx,ny,nz,ndyetrac, |
624 |
|
|
& year,nb_seconds_per_year,nb_timesteps_per_year, |
625 |
|
|
& dye_arr) |
626 |
|
|
|
627 |
|
|
C== 2-D diagnostics |
628 |
|
|
|
629 |
|
|
C dye_flux=dye flux for each tracer (mol/m2/s) |
630 |
dimitri |
1.4 |
time(1)=year |
631 |
|
|
do n=1,ndyetrac |
632 |
dimitri |
1.1 |
WRITE(fn,'(A,A,I2.2,A,I10.10,A)') |
633 |
|
|
& p1, 'PtrFlux', n, '.', step, '.data' |
634 |
|
|
open(100,file=fn,status='old',access='direct', |
635 |
|
|
& recl=nx*ny*4) |
636 |
|
|
read(100,rec=1) tmp |
637 |
|
|
do i=1,nx |
638 |
|
|
do j=1,ny |
639 |
|
|
dye_flux(i,j,n,1)=tmp(i,j) |
640 |
|
|
enddo |
641 |
|
|
enddo |
642 |
|
|
close(100) |
643 |
dimitri |
1.4 |
enddo |
644 |
dimitri |
1.1 |
|
645 |
|
|
C cum_dye_flux=cumulative dye flux for each tracer (mol/m2) |
646 |
dimitri |
1.4 |
do n=1,ndyetrac |
647 |
dimitri |
1.1 |
do i=1,nx |
648 |
|
|
do j=1,ny |
649 |
|
|
cum_dye_flux(i,j,n,1)=0. |
650 |
|
|
enddo |
651 |
|
|
enddo |
652 |
dimitri |
1.4 |
enddo |
653 |
|
|
do step=nb_timesteps_per_year, |
654 |
|
|
& (StationaryYears*nb_timesteps_per_year), |
655 |
|
|
& nb_timesteps_per_year |
656 |
dimitri |
1.1 |
do n=1,ndyetrac |
657 |
|
|
WRITE(fn,'(A,A,I2.2,A,I10.10,A)') |
658 |
|
|
& p1, 'PtrFlux', n, '.', step, '.data' |
659 |
|
|
open(100,file=fn,status='old',access='direct', |
660 |
|
|
& recl=nx*ny*4) |
661 |
|
|
read(100,rec=1) tmp |
662 |
|
|
do i=1,nx |
663 |
|
|
do j=1,ny |
664 |
|
|
cum_dye_flux(i,j,n,1)=cum_dye_flux(i,j,n,1)+ |
665 |
|
|
& tmp(i,j)*nb_seconds_per_year |
666 |
|
|
enddo |
667 |
|
|
enddo |
668 |
|
|
close(100) |
669 |
|
|
enddo |
670 |
dimitri |
1.4 |
enddo |
671 |
dimitri |
1.1 |
|
672 |
dimitri |
1.4 |
call write_nc_diag_2D( |
673 |
dimitri |
1.5 |
& 'ECCO','MITgcm_checkpoint51n_post','Stationary', |
674 |
dimitri |
1.1 |
& nx,ny,ndyetrac, |
675 |
|
|
& 1, time, dye_flux,cum_dye_flux) |
676 |
|
|
|
677 |
dimitri |
1.4 |
C IF ( p1 .NE. ' ' ) THEN |
678 |
|
|
ENDIF |
679 |
|
|
|
680 |
dimitri |
1.1 |
C=========================================================== |
681 |
|
|
print*,'Time-dependent annual mean basis functions' |
682 |
|
|
C== 1/10-years for 1775-1965, 1/year for 1970-2005 |
683 |
|
|
C== dye_arr= Concentration of dye tracer [mol/cm^3] |
684 |
|
|
C=========================================================== |
685 |
|
|
|
686 |
dimitri |
1.4 |
IF ( p2 .NE. ' ' ) THEN |
687 |
|
|
|
688 |
|
|
n=0 |
689 |
|
|
do year=1775,1965,10 |
690 |
dimitri |
1.1 |
n=n+1 |
691 |
|
|
time(n)=year |
692 |
dimitri |
1.4 |
enddo |
693 |
|
|
do year=1970,2005 |
694 |
dimitri |
1.1 |
n=n+1 |
695 |
|
|
time(n)=year |
696 |
dimitri |
1.4 |
enddo |
697 |
dimitri |
1.1 |
|
698 |
dimitri |
1.4 |
do irec=1,nrec |
699 |
dimitri |
1.1 |
year=time(irec) |
700 |
|
|
step = (year-1764) * nb_timesteps_per_year |
701 |
|
|
do n=1,ndyetrac |
702 |
|
|
WRITE(fn,'(A,A,I2.2,A,I10.10,A)') |
703 |
|
|
& p2, 'PTRtave', n, '.', step, '.data' |
704 |
|
|
open(100,file=fn,status='old',access='direct', |
705 |
|
|
& recl=nx*ny*4) |
706 |
|
|
do k=1,nz |
707 |
|
|
read(100,rec=k) tmp |
708 |
|
|
do i=1,nx |
709 |
|
|
do j=1,ny |
710 |
|
|
dye_arr(i,j,k,n)=100*100*100*tmp(i,j) |
711 |
|
|
enddo |
712 |
|
|
enddo |
713 |
|
|
enddo |
714 |
|
|
close(100) |
715 |
|
|
enddo |
716 |
|
|
call write_nc_basisfnctns( |
717 |
dimitri |
1.5 |
& 'ECCO','MITgcm_checkpoint51n_post','Timedep', |
718 |
dimitri |
1.1 |
& nx,ny,nz,ndyetrac, |
719 |
|
|
& year,nb_seconds_per_year,nb_timesteps_per_year, |
720 |
|
|
& dye_arr) |
721 |
|
|
|
722 |
|
|
C== 2-D diagnostics |
723 |
|
|
|
724 |
|
|
C dye_flux=dye flux for each tracer (mol/m2/s) |
725 |
|
|
do n=1,ndyetrac |
726 |
|
|
WRITE(fn,'(A,A,I2.2,A,I10.10,A)') |
727 |
|
|
& p2, 'PtrFlux', n, '.', step, '.data' |
728 |
|
|
open(100,file=fn,status='old',access='direct', |
729 |
|
|
& recl=nx*ny*4) |
730 |
|
|
read(100,rec=1) tmp |
731 |
|
|
do i=1,nx |
732 |
|
|
do j=1,ny |
733 |
dimitri |
1.2 |
dye_flux(i,j,n,irec)=tmp(i,j) |
734 |
dimitri |
1.1 |
enddo |
735 |
|
|
enddo |
736 |
|
|
close(100) |
737 |
|
|
enddo |
738 |
|
|
|
739 |
|
|
C cum_dye_flux=cumulative dye flux for each tracer (mol/m2) |
740 |
|
|
do n=1,ndyetrac |
741 |
|
|
do i=1,nx |
742 |
|
|
do j=1,ny |
743 |
|
|
if (irec.eq.1) then |
744 |
|
|
cum_dye_flux(i,j,n,irec)=0. |
745 |
|
|
else |
746 |
|
|
cum_dye_flux(i,j,n,irec)=cum_dye_flux(i,j,n,irec-1) |
747 |
|
|
endif |
748 |
|
|
enddo |
749 |
|
|
enddo |
750 |
|
|
enddo |
751 |
|
|
start_step=nb_timesteps_per_year |
752 |
|
|
if (irec.gt.1) |
753 |
|
|
& start_step=nb_timesteps_per_year+ |
754 |
|
|
& (time(irec-1)-1764)*nb_timesteps_per_year |
755 |
dimitri |
1.2 |
end_step= (year-1764) * nb_timesteps_per_year |
756 |
dimitri |
1.1 |
do step=start_step,end_step,nb_timesteps_per_year |
757 |
|
|
do n=1,ndyetrac |
758 |
|
|
WRITE(fn,'(A,A,I2.2,A,I10.10,A)') |
759 |
|
|
& p2, 'PtrFlux', n, '.', step, '.data' |
760 |
|
|
open(100,file=fn,status='old',access='direct', |
761 |
|
|
& recl=nx*ny*4) |
762 |
|
|
read(100,rec=1) tmp |
763 |
|
|
do i=1,nx |
764 |
|
|
do j=1,ny |
765 |
dimitri |
1.2 |
cum_dye_flux(i,j,n,irec)=cum_dye_flux(i,j,n,irec)+ |
766 |
dimitri |
1.1 |
& tmp(i,j)*nb_seconds_per_year |
767 |
|
|
enddo |
768 |
|
|
enddo |
769 |
|
|
close(100) |
770 |
|
|
enddo |
771 |
|
|
enddo |
772 |
dimitri |
1.4 |
enddo |
773 |
dimitri |
1.1 |
|
774 |
dimitri |
1.4 |
call write_nc_diag_2D( |
775 |
dimitri |
1.5 |
& 'ECCO','MITgcm_checkpoint51n_post','Timedep', |
776 |
dimitri |
1.1 |
& nx,ny,ndyetrac, |
777 |
|
|
& nrec, time, dye_flux,cum_dye_flux) |
778 |
|
|
|
779 |
dimitri |
1.4 |
C IF ( p2 .NE. ' ' ) THEN |
780 |
|
|
ENDIF |
781 |
|
|
|
782 |
dimitri |
1.1 |
C=========================================================== |
783 |
|
|
print*,'write_nc_diag_0D quasi-stationary diagnostics' |
784 |
|
|
C=========================================================== |
785 |
|
|
|
786 |
dimitri |
1.4 |
IF ( p1 .NE. ' ' ) THEN |
787 |
|
|
|
788 |
|
|
WRITE(fn,'(A,A)') p1, 'RAC.data' |
789 |
|
|
open(100,file=fn,status='old',access='direct', |
790 |
dimitri |
1.1 |
& recl=nx*ny*4) |
791 |
dimitri |
1.4 |
read(100,rec=1) RAC |
792 |
|
|
close(100) |
793 |
|
|
WRITE(fn,'(A,A)') p1, 'hFacC.data' |
794 |
|
|
open(100,file=fn,status='old',access='direct', |
795 |
dimitri |
1.1 |
& recl=nx*ny*nz*4) |
796 |
dimitri |
1.4 |
read(100,rec=1) hFacC |
797 |
|
|
close(100) |
798 |
dimitri |
1.1 |
|
799 |
dimitri |
1.4 |
irec=0 |
800 |
|
|
do year=1,StationaryYears |
801 |
dimitri |
1.1 |
irec=irec+1 |
802 |
|
|
global_time(irec)=year |
803 |
|
|
step=year*nb_timesteps_per_year |
804 |
|
|
do n=1,ndyetrac |
805 |
|
|
|
806 |
|
|
C global_tot_dye=global total dye flux for this year for each tracer (mol) |
807 |
|
|
WRITE(fn,'(A,A,I2.2,A,I10.10,A)') |
808 |
|
|
& p1, 'PtrFlux', n, '.', step, '.data' |
809 |
|
|
open(100,file=fn,status='old',access='direct', |
810 |
|
|
& recl=nx*ny*4) |
811 |
|
|
read(100,rec=1) tmp |
812 |
|
|
close(100) |
813 |
|
|
global_tot_dye(n,irec)=0. |
814 |
|
|
do i=1,nx |
815 |
|
|
do j=1,ny |
816 |
|
|
global_tot_dye(n,irec)=global_tot_dye(n,irec)+ |
817 |
|
|
& RAC(i,j)*hFacC(i,j,1)*tmp(i,j)*nb_seconds_per_year |
818 |
|
|
enddo |
819 |
|
|
enddo |
820 |
|
|
|
821 |
|
|
C global_cum_dye=global cumulative dye flux for each tracer (mol) |
822 |
|
|
global_cum_dye(n,irec)=global_tot_dye(n,irec) |
823 |
|
|
if (irec.gt.1) global_cum_dye(n,irec) = |
824 |
|
|
& global_cum_dye(n,irec) + global_cum_dye(n,irec-1) |
825 |
|
|
|
826 |
|
|
C global_mean_conc= global mean dye concentration (mol/m-3) |
827 |
|
|
WRITE(fn,'(A,A,I2.2,A,I10.10,A)') |
828 |
|
|
& p1, 'PTRtave', n, '.', step, '.data' |
829 |
|
|
open(100,file=fn,status='old',access='direct', |
830 |
|
|
& recl=nx*ny*nz*4) |
831 |
|
|
read(100,rec=1) tmp3D |
832 |
|
|
close(100) |
833 |
|
|
global_mean_conc(n,irec)=0. |
834 |
|
|
do i=1,nx |
835 |
|
|
do j=1,ny |
836 |
|
|
do k=1,nz |
837 |
|
|
global_mean_conc(n,irec)=global_mean_conc(n,irec)+ |
838 |
|
|
& RAC(i,j)*hFacC(i,j,k)*tmp3D(i,j,k) |
839 |
|
|
enddo |
840 |
|
|
enddo |
841 |
|
|
enddo |
842 |
|
|
enddo |
843 |
dimitri |
1.4 |
enddo |
844 |
dimitri |
1.1 |
|
845 |
dimitri |
1.4 |
call write_nc_diag_0D( |
846 |
dimitri |
1.5 |
& 'ECCO','MITgcm_checkpoint51n_post','Stationary', |
847 |
dimitri |
1.1 |
& StationaryYears, global_time, ndyetrac, |
848 |
|
|
& global_tot_dye, global_cum_dye, global_mean_conc) |
849 |
|
|
|
850 |
dimitri |
1.4 |
C IF ( p1 .NE. ' ' ) THEN |
851 |
|
|
ENDIF |
852 |
|
|
|
853 |
dimitri |
1.1 |
C=========================================================== |
854 |
|
|
print*,'write_nc_diag_0D time-dependent diagnostics' |
855 |
|
|
C=========================================================== |
856 |
|
|
|
857 |
dimitri |
1.4 |
IF ( p2 .NE. ' ' ) THEN |
858 |
|
|
|
859 |
dimitri |
1.7 |
WRITE(fn,'(A,A)') p2, 'RAC.data' |
860 |
|
|
open(100,file=fn,status='old',access='direct', |
861 |
|
|
& recl=nx*ny*4) |
862 |
|
|
read(100,rec=1) RAC |
863 |
|
|
close(100) |
864 |
|
|
WRITE(fn,'(A,A)') p2, 'hFacC.data' |
865 |
|
|
open(100,file=fn,status='old',access='direct', |
866 |
|
|
& recl=nx*ny*nz*4) |
867 |
|
|
read(100,rec=1) hFacC |
868 |
|
|
close(100) |
869 |
|
|
|
870 |
dimitri |
1.4 |
irec=0 |
871 |
|
|
do year=1765,2005 |
872 |
dimitri |
1.1 |
irec=irec+1 |
873 |
|
|
global_time(irec)=year |
874 |
|
|
step=(year-1764)*nb_timesteps_per_year |
875 |
|
|
do n=1,ndyetrac |
876 |
|
|
|
877 |
|
|
C global_tot_dye=global total dye flux for this year for each tracer (mol) |
878 |
|
|
WRITE(fn,'(A,A,I2.2,A,I10.10,A)') |
879 |
|
|
& p2, 'PtrFlux', n, '.', step, '.data' |
880 |
|
|
open(100,file=fn,status='old',access='direct', |
881 |
|
|
& recl=nx*ny*4) |
882 |
|
|
read(100,rec=1) tmp |
883 |
|
|
close(100) |
884 |
|
|
global_tot_dye(n,irec)=0. |
885 |
|
|
do i=1,nx |
886 |
|
|
do j=1,ny |
887 |
|
|
global_tot_dye(n,irec)=global_tot_dye(n,irec)+ |
888 |
|
|
& RAC(i,j)*hFacC(i,j,1)*tmp(i,j)*nb_seconds_per_year |
889 |
|
|
enddo |
890 |
|
|
enddo |
891 |
|
|
|
892 |
|
|
C global_cum_dye=global cumulative dye flux for each tracer (mol) |
893 |
|
|
global_cum_dye(n,irec)=global_tot_dye(n,irec) |
894 |
|
|
if (irec.gt.1) global_cum_dye(n,irec) = |
895 |
|
|
& global_cum_dye(n,irec) + global_cum_dye(n,irec-1) |
896 |
|
|
|
897 |
|
|
C global_mean_conc= global mean dye concentration (mol/m-3) |
898 |
|
|
WRITE(fn,'(A,A,I2.2,A,I10.10,A)') |
899 |
|
|
& p2, 'PTRtave', n, '.', step, '.data' |
900 |
|
|
open(100,file=fn,status='old',access='direct', |
901 |
|
|
& recl=nx*ny*nz*4) |
902 |
|
|
read(100,rec=1) tmp3D |
903 |
|
|
close(100) |
904 |
|
|
global_mean_conc(n,irec)=0. |
905 |
|
|
do i=1,nx |
906 |
|
|
do j=1,ny |
907 |
|
|
do k=1,nz |
908 |
|
|
global_mean_conc(n,irec)=global_mean_conc(n,irec)+ |
909 |
|
|
& RAC(i,j)*hFacC(i,j,k)*tmp3D(i,j,k) |
910 |
|
|
enddo |
911 |
|
|
enddo |
912 |
|
|
enddo |
913 |
|
|
enddo |
914 |
dimitri |
1.4 |
enddo |
915 |
dimitri |
1.1 |
|
916 |
dimitri |
1.4 |
call write_nc_diag_0D( |
917 |
dimitri |
1.5 |
& 'ECCO','MITgcm_checkpoint51n_post','Timedep', |
918 |
dimitri |
1.1 |
& irec, global_time, ndyetrac, |
919 |
|
|
& global_tot_dye, global_cum_dye, global_mean_conc) |
920 |
|
|
|
921 |
dimitri |
1.4 |
C IF ( p2 .NE. ' ' ) THEN |
922 |
|
|
ENDIF |
923 |
|
|
|
924 |
dimitri |
1.1 |
stop |
925 |
|
|
end |