source: CONFIG_DEVT/ORCHIDEE_OL_TP/ENSEMBLE/PARAM/orchidee.default

Last change on this file was 5570, checked in by aclsce, 3 years ago

Created ORCHIDEE_OL_TP configuration : temporary configuration to be used during prectical session.

File size: 92.4 KB
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1#
2#
3#  WARNING !!!
4#  DO NOT MODIFY THIS FILE.
5#  THIS FILE IS ONLY PROVIDING INFORMATION ABOUT DEFAULT PARAMETER SETTINGS IN ORCHIDEE.
6#
7#*******************************************************************************************
8#                    Namelist for ORCHIDEE
9#*******************************************************************************************
10#
11#  For more details, see : http://forge.ipsl.jussieu.fr/orchidee/wiki/Documentation/OrchideeParameters
12#
13#  Note : [m] : meters; [K] : Kelvin degrees; [C] : Celsius degrees
14#
15
16#*******************************************************************************************
17#          ORCHIDEE driver parameters (read in Off-line mode only)
18#*******************************************************************************************
19
20# LWDOWN_CONS ([FLAG]) :  Conserve longwave downwelling radiation in the forcing        {}
21LWDOWN_CONS =  n
22
23# SWDOWN_CONS ([FLAG]) :  Conserve shortwave downwelling radiation in the forcing       {}
24SWDOWN_CONS =  LWDOWN_CONS
25
26# FORCING_FILE ([FILE] ) :  Name of file containing the forcing data    {[-]}
27FORCING_FILE =  forcing_file.nc
28
29# DT_SECHIBA ([seconds]) :  Time-step of the SECHIBA component  {NOT(WEATHERGEN)}
30DT_SECHIBA =  1800.
31
32# RESTART_FILEIN ([FILE]) :  Name of restart to READ for initial conditions     {[-]}
33RESTART_FILEIN =  NONE
34
35# RESTART_FILEOUT ([FILE]) :  Name of restart files to be created by the driver         {[-]}
36RESTART_FILEOUT =  driver_rest_out.nc
37
38# DRIVER_reset_time ([FLAG]) :  Overwrite time values from the driver restart file      {[-]}
39DRIVER_reset_time =  n
40
41# TIME_SKIP ([seconds, days, months, years]) :  Time in the forcing file at which the model is started.         {[-]}
42TIME_SKIP =  0
43
44# TIME_LENGTH ([seconds, days, months, years]) :  Length of the integration in time.    {[-]}
45TIME_LENGTH =  Full length of the forcing file 
46
47# RELAXATION ([FLAG]) :  method of forcing      {[-]}
48RELAXATION =  n
49
50# RELAX_A ([days?]) :  Time constant of the relaxation layer    {RELAXATION}
51RELAX_A =  1.0
52
53# SPRED_PREC ([-]) :  Spread the precipitation.         {[-]}
54SPRED_PREC =  Half of the forcing time step or uniform, depending on dt_force and dt_sechiba
55
56# ATM_CO2 ([ppm]) :  Value to precribe atmosoheric CO2  {[FORCE_CO2_VEG=y or Offline mode]}
57ATM_CO2 =  350.
58
59# CO2_varying ([y/n]) :  A flag to specify if CO2 level will vary within the simulation         {[FORCE_CO2_VEG=y or Offline mode]}
60CO2_varying =  .FALSE.
61
62# CO2_inc ([-]) :  Relative yearly increase of the CO2 level    {[FORCE_CO2_VEG=y or Offline mode]}
63CO2_inc =  1.
64
65# ALLOW_WEATHERGEN ([FLAG]) :  Allow weather generator to create data   {[-]}
66ALLOW_WEATHERGEN =  n
67
68# DT_WEATHGEN ([seconds]) :  Calling frequency of weather generator     {ALLOW_WEATHERGEN}
69DT_WEATHGEN =  1800.
70
71# LIMIT_WEST ([Degrees] ) :  Western limit of region    {[-]}
72LIMIT_WEST =  -180.
73
74# LIMIT_EAST ([Degrees] ) :  Eastern limit of region    {[-]}
75LIMIT_EAST =  180.
76
77# LIMIT_NORTH ([Degrees]) :  Northern limit of region   {[-]}
78LIMIT_NORTH =  90.
79
80# LIMIT_SOUTH ([Degrees]) :  Southern limit of region   {[-]}
81LIMIT_SOUTH =  -90.
82
83# MERID_RES ([Degrees]) :  North-South Resolution       {ALLOW_WEATHERGEN}
84MERID_RES =  2.
85
86# ZONAL_RES ([Degrees] ) :  East-West Resolution        {ALLOW_WEATHERGEN}
87ZONAL_RES =  2.
88
89# HEIGHT_LEV1 ([m]) :  Height at which T and Q are given        {offline mode}
90HEIGHT_LEV1 =  2.0
91
92# HEIGHT_LEVW ([m]) :  Height at which the wind is given        {offline mode}
93HEIGHT_LEVW =  10.0
94
95# NBUFF (-) :  Number of time steps of data to buffer between each reading of the forcing file  {OFF_LINE}
96NBUFF =  1
97
98# IPPREC ([-] ) :  Use prescribed values        {ALLOW_WEATHERGEN}
99IPPREC =  0
100
101# WEATHGEN_PRECIP_EXACT ([FLAG]) :  Exact monthly precipitation         {ALLOW_WEATHERGEN}
102WEATHGEN_PRECIP_EXACT =  n
103
104# DUMP_WEATHER ([FLAG]) :  Write weather from generator into a forcing file     {ALLOW_WEATHERGEN  }
105DUMP_WEATHER =  n
106
107# DUMP_WEATHER_FILE ([FILE]) :  Name of the file that contains the weather from generator       {DUMP_WEATHER}
108DUMP_WEATHER_FILE =  weather_dump.nc
109
110# DUMP_WEATHER_GATHERED ([FLAG]) :  Dump weather data on gathered grid  {DUMP_WEATHER}
111DUMP_WEATHER_GATHERED =  y
112
113# HEIGHT_LEV1_DUMP ([m]) :      {DUMP_WEATHER}
114HEIGHT_LEV1_DUMP =  10.
115
116#*******************************************************************************************
117#          ORCHIDEE parameters 
118#*******************************************************************************************
119
120# SOILTYPE_CLASSIF ([-]) :  Type of classification used for the map of soil types       {!IMPOSE_VEG}
121SOILTYPE_CLASSIF =  zobler
122
123# RIVER_ROUTING ([FLAG]) :  Decides if we route the water or not        {OK_SECHIBA}
124RIVER_ROUTING =  y
125
126# DO_IRRIGATION ([FLAG]) :  Should we compute an irrigation flux        {RIVER_ROUTING }
127DO_IRRIGATION =  n
128
129# DO_FLOODPLAINS ([FLAG]  ) :  Should we include floodplains    {RIVER_ROUTING }
130DO_FLOODPLAINS =  n
131
132# STOMATE_OK_STOMATE ([FLAG]) :  Activate STOMATE?      {OK_SECHIBA}
133STOMATE_OK_STOMATE =  y
134
135# DO_WOOD_HARVEST ([FLAG]) :  Activate Wood Harvest ?   {OK_STOMATE}
136DO_WOOD_HARVEST =  y
137
138# STOMATE_OK_NCYCLE  ([FLAG] ) :  Activate dynamic N cycle      {OK_STOMATE }
139STOMATE_OK_NCYCLE  =  y 
140
141# STOMATE_IMPOSE_CN ([FLAG] ) :  Impose the CN ratio of leaves          {OK_STOMATE }
142STOMATE_IMPOSE_CN =  n 
143
144# RESET_IMPOSE_CN ([FLAG] ) :  Reset the CN ratio of leaves     {OK_STOMATE }
145RESET_IMPOSE_CN =  n 
146
147# STOMATE_READ_CN ([FLAG] ) :  Read the CN ratio of leaves      {OK_STOMATE }
148STOMATE_READ_CN =  n 
149
150# STOMATE_OK_DGVM ([FLAG]) :  Activate DGVM?    {OK_STOMATE}
151STOMATE_OK_DGVM =  n
152
153# CHEMISTRY_BVOC ([FLAG]) :  Activate calculations for BVOC     {OK_SECHIBA}
154CHEMISTRY_BVOC =  n
155
156# CHEMISTRY_LEAFAGE ([FLAG]) :  Activate LEAFAGE?       {CHEMISTRY_BVOC}
157CHEMISTRY_LEAFAGE =  n
158
159# CANOPY_EXTINCTION  ([FLAG]) :  Use canopy radiative transfer model?   {CHEMISTRY_BVOC }
160CANOPY_EXTINCTION  =  n
161
162# CANOPY_MULTILAYER ([FLAG]) :  Use canopy radiative transfer model with multi-layers   {CANOPY_EXTINCTION }
163CANOPY_MULTILAYER =  n
164
165# NOx_RAIN_PULSE ([FLAG]) :  Calculate NOx emissions with pulse?        {CHEMISTRY_BVOC }
166NOx_RAIN_PULSE =  n
167
168# NOx_BBG_FERTIL ([FLAG]) :  Calculate NOx emissions with bbg fertilizing effect?       {CHEMISTRY_BVOC }
169NOx_BBG_FERTIL =  n
170
171# NOx_FERTILIZERS_USE ([FLAG] ) :  Calculate NOx emissions with fertilizers use?        {CHEMISTRY_BVOC }
172NOx_FERTILIZERS_USE =  n
173
174# NVM ([-]) :  number of PFTs           {OK_SECHIBA or OK_STOMATE}
175NVM =  13
176
177# IMPOSE_PARAM ([FLAG]) :  Do you impose the values of the parameters?  {OK_SECHIBA or OK_STOMATE}
178IMPOSE_PARAM =  y
179
180# DEPTH_MAX_T (m) :  Maximum depth of the soil thermodynamics   {}
181DEPTH_MAX_T =  90.0
182
183# DEPTH_MAX_H (m) :  Maximum depth of soil moisture     {}
184DEPTH_MAX_H =  2.0
185
186# DEPTH_TOPTHICK (m) :  Thickness of upper most Layer   {}
187DEPTH_TOPTHICK =  9.77517107e-04
188
189# DEPTH_CSTTHICK (m) :  Depth at which constant layer thickness start   {}
190DEPTH_CSTTHICK =  DEPTH_MAX_H 
191
192# REFINEBOTTOM (-) :  Depth at which the hydrology layers will be refined towards the bottom.   {}
193REFINEBOTTOM =  .FALSE.
194
195# DEPTH_GEOM (m) :  Depth at which we resume geometrical increases for temperature      {}
196DEPTH_GEOM =  DEPTH_MAX_H 
197
198# RATIO_GEOM_BELOW (-) :  Ratio of the geometrical series defining the thickness below DEPTH_GEOM       {}
199RATIO_GEOM_BELOW =  2
200
201# ALMA_OUTPUT ([FLAG]) :  Should the output follow the ALMA convention  {OK_SECHIBA}
202ALMA_OUTPUT =  n
203
204# OUTPUT_FILE ([FILE]) :  Name of file in which the output is going to be written       {OK_SECHIBA}
205OUTPUT_FILE =  sechiba_history.nc
206
207# WRITE_STEP ([seconds]) :  Frequency in seconds for sechiba_history.nc file with IOIPSL        {OK_SECHIBA, NOT XIOS_ORCHIDEE_OK}
208WRITE_STEP =  86400.
209
210# SECHIBA_HISTLEVEL ([-]) :  SECHIBA history output level (0..10)       {OK_SECHIBA and HF}
211SECHIBA_HISTLEVEL =  5
212
213# SECHIBA_HISTFILE2 ([FLAG]) :  Flag to switch on histfile 2 for SECHIBA (hi-frequency ?)       {OK_SECHIBA}
214SECHIBA_HISTFILE2 =  n
215
216# WRITE_STEP2 ([seconds]) :  Frequency in seconds at which to WRITE output      {SECHIBA_HISTFILE2}
217WRITE_STEP2 =  1800.0
218
219# SECHIBA_OUTPUT_FILE2 ([FILE]) :  Name of file in which the output number 2 is going to be written     {SECHIBA_HISTFILE2}
220SECHIBA_OUTPUT_FILE2 =  sechiba_out_2.nc
221
222# SECHIBA_HISTLEVEL2 ([-] ) :  SECHIBA history 2 output level (0..10)   {SECHIBA_HISTFILE2}
223SECHIBA_HISTLEVEL2 =  1
224
225# STOMATE_OUTPUT_FILE ([FILE]) :  Name of file in which STOMATE's output is going to be written         {OK_STOMATE}
226STOMATE_OUTPUT_FILE =  stomate_history.nc
227
228# STOMATE_HIST_DT ([days]) :  STOMATE history time step         {OK_STOMATE}
229STOMATE_HIST_DT =  10.
230
231# STOMATE_IPCC_OUTPUT_FILE ([FILE]) :  Name of file in which STOMATE's output is going to be written    {OK_STOMATE}
232STOMATE_IPCC_OUTPUT_FILE =  stomate_ipcc_history.nc
233
234# STOMATE_IPCC_HIST_DT ([days]) :  STOMATE IPCC history time step       {OK_STOMATE}
235STOMATE_IPCC_HIST_DT =  0.
236
237# OK_HISTSYNC ([FLAG]) :  Syncronize and write IOIPSL output files at each time step    {}
238OK_HISTSYNC =  FALSE
239
240# STOMATE_HISTLEVEL ([-]) :  STOMATE history output level (0..10)       {OK_STOMATE}
241STOMATE_HISTLEVEL =  10
242
243# SECHIBA_restart_in ([FILE]) :  Name of restart to READ for initial conditions         {OK_SECHIBA }
244SECHIBA_restart_in =  NONE
245
246# SECHIBA_rest_out ([FILE]) :  Name of restart files to be created by SECHIBA   {OK_SECHIBA}
247SECHIBA_rest_out =  sechiba_rest_out.nc
248
249# STOMATE_RESTART_FILEIN ([FILE]) :  Name of restart to READ for initial conditions of STOMATE  {STOMATE_OK_STOMATE}
250STOMATE_RESTART_FILEIN =  NONE
251
252# STOMATE_RESTART_FILEOUT ([FILE]) :  Name of restart files to be created by STOMATE    {STOMATE_OK_STOMATE}
253STOMATE_RESTART_FILEOUT =  stomate_rest_out.nc
254
255# FORCE_CO2_VEG ([FLAG]) :  Flag to force the value of atmospheric CO2 for vegetation.  {Only in coupled mode}
256FORCE_CO2_VEG =  FALSE
257
258# TAU_OUTFLOW ([days]) :  Number of days over which the coastal- and riverflow will be distributed      {Only in coupled mode}
259TAU_OUTFLOW =  0
260
261# ECCENTRICITY ([-]) :  Use prescribed values   {ALLOW_WEATHERGEN}
262ECCENTRICITY =  0.016724
263
264# PERIHELIE ([-]) :  Use prescribed values      {ALLOW_WEATHERGEN}
265PERIHELIE =  102.04
266
267# OBLIQUITY ([Degrees]) :  Use prescribed values        {ALLOW_WEATHERGEN}
268OBLIQUITY =  23.446
269
270# PFT_TO_MTC ([-]) :  correspondance array linking a PFT to MTC         {OK_SECHIBA or OK_STOMATE}
271PFT_TO_MTC =  1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13
272
273# PFT_NAME ([-]) :  Name of a PFT       {OK_SECHIBA or OK_STOMATE}
274PFT_NAME =  bare ground, tropical broad-leaved evergreen, tropical broad-leaved raingreen, temperate needleleaf evergreen, temperate broad-leaved evergreen, temperate broad-leaved summergreen,  boreal needleleaf evergreen, boreal broad-leaved summergreen, boreal needleleaf summergreen,  C3 grass, C4 grass, C3 agriculture, C4 agriculture 
275
276# LEAF_TAB ([-] ) :  leaf type : 1      {OK_STOMATE}
277LEAF_TAB =  4, 1, 1, 2, 1, 1, 2, 1, 2, 3, 3, 3, 3 
278
279# PHENO_MODEL ([-] ) :  which phenology model is used? (tabulated)      {OK_STOMATE}
280PHENO_MODEL =  none, none, moi, none, none, ncdgdd, none, ncdgdd, ngd, moigdd, moigdd, moigdd, moigdd
281
282# SECHIBA_LAI ([m^2/m^2]) :  laimax for maximum lai(see also type of lai interpolation)         {OK_SECHIBA or IMPOSE_VEG}
283SECHIBA_LAI =  0., 8., 8., 4., 4.5, 4.5, 4., 4.5, 4., 2., 2., 2., 2.
284
285# LLAIMIN ([m^2/m^2]) :  laimin for minimum lai(see also type of lai interpolation)     {OK_SECHIBA or IMPOSE_VEG}
286LLAIMIN =  0., 8., 0., 4., 4.5, 0., 4., 0., 0., 0., 0., 0., 0.
287
288# SLOWPROC_HEIGHT ([m] ) :  prescribed height of vegetation     {OK_SECHIBA}
289SLOWPROC_HEIGHT =  0., 30., 30., 20., 20., 20., 15., 15., 15., .5, .6, 1., 1.
290
291# Z0_OVER_HEIGHT ([-] ) :  factor to calculate roughness height from height of canopy   {OK_SECHIBA}
292Z0_OVER_HEIGHT =  0., 0.0625, 0.0625, 0.0625, 0.0625, 0.0625, 0.0625, 0.0625, 0.0625, 0.0625, 0.0625, 0.0625, 0.0625
293
294# RATIO_Z0M_Z0H ([-]) :  Ratio between z0m and z0h      {OK_SECHIBA}
295RATIO_Z0M_Z0H =  1.0, 1.0, 1.0, 1.0, 1.0, 1.0, 1.0, 1.0, 1.0, 1.0, 1.0, 1.0, 1.0 
296
297# TYPE_OF_LAI ([-]) :  Type of behaviour of the LAI evolution algorithm         {OK_SECHIBA}
298TYPE_OF_LAI =  inter, inter, inter, inter, inter, inter, inter, inter, inter, inter, inter, inter, inter
299
300# NATURAL ([BOOLEAN]) :  natural?       {OK_SECHIBA, OK_STOMATE}
301NATURAL =  y, y, y, y, y, y, y, y, y, y, y, n, n 
302
303# IS_C4 ([BOOLEAN]) :  flag for C4 vegetation types     {OK_SECHIBA or OK_STOMATE}
304IS_C4 =  n, n, n, n, n, n, n, n, n, n, n, y, n, y
305
306# VCMAX_FIX ([micromol/m^2/s] ) :  values used for vcmax when STOMATE is not activated  {OK_SECHIBA and NOT(OK_STOMATE)}
307VCMAX_FIX =  0., 40., 50., 30., 35., 40.,30., 40., 35., 60., 60., 70., 70.
308
309# DOWNREG_CO2 ([-]) :  coefficient for CO2 downregulation (unitless)    {}
310DOWNREG_CO2 =  0., 0.38, 0.38, 0.28, 0.28, 0.28, 0.22, 0.22, 0.22, 0.26, 0.26, 0.26, 0.26
311
312# E_KmC ([J mol-1]) :  Energy of activation for KmC     {}
313E_KmC =  -9999.,  79430., 79430., 79430., 79430., 79430., 79430., 79430., 79430., 79430., 79430., 79430., 79430.
314
315# E_KmO ([J mol-1]) :  Energy of activation for KmO     {}
316E_KmO =  -9999., 36380.,  36380.,  36380.,  36380.,  36380., 36380., 36380., 36380., 36380., 36380., 36380., 36380.
317
318# E_Sco ([J mol-1]) :  Energy of activation for Sco     {}
319E_Sco =  -9999., -24460., -24460., -24460., -24460., -24460., -24460., -24460., -24460., -24460., -24460., -24460., -24460.
320
321# E_gamma_star ([J mol-1]) :  Energy of activation for gamma_star       {}
322E_gamma_star =  -9999., 37830.,  37830.,  37830.,  37830.,  37830., 37830., 37830., 37830., 37830., 37830., 37830., 37830.
323
324# E_Vcmax ([J mol-1]) :  Energy of activation for Vcmax         {}
325E_Vcmax =  -9999., 71513., 71513., 71513., 71513., 71513., 71513., 71513., 71513., 71513., 67300., 71513., 67300.
326
327# E_Jmax ([J mol-1]) :  Energy of activation for Jmax   {}
328E_Jmax =  -9999., 49884., 49884., 49884., 49884., 49884., 49884., 49884., 49884., 49884., 77900., 49884., 77900. 
329
330# aSV ([J K-1 mol-1]) :  a coefficient of the linear regression (a+bT) defining the Entropy term for Vcmax      {}
331aSV =  -9999., 668.39, 668.39, 668.39, 668.39, 668.39, 668.39, 668.39, 668.39, 668.39, 641.64, 668.39, 641.64 
332
333# bSV ([J K-1 mol-1 °C-1]) :  b coefficient of the linear regression (a+bT) defining the Entropy term for Vcmax        {}
334bSV =  -9999., -1.07, -1.07, -1.07, -1.07, -1.07, -1.07, -1.07, -1.07, -1.07, 0., -1.07, 0. 
335
336# TPHOTO_MIN ([-]) :  minimum photosynthesis temperature (deg C)        {OK_STOMATE}
337TPHOTO_MIN =  -9999.,  -4., -4., -4., -4.,-4.,-4., -4., -4., -4., -4., -4., -4.
338
339# TPHOTO_MAX ([-]) :  maximum photosynthesis temperature (deg C)        {OK_STOMATE}
340TPHOTO_MAX =  -9999., 55., 55., 55., 55., 55., 55., 55., 55., 55., 55., 55., 55.
341
342# aSJ ([J K-1 mol-1]) :  a coefficient of the linear regression (a+bT) defining the Entropy term for Jmax       {}
343aSJ =  -9999., 659.70, 659.70, 659.70, 659.70, 659.70, 659.70, 659.70, 659.70, 659.70, 630., 659.70, 630. 
344
345# bSJ ([J K-1 mol-1 °C-1]) :  b coefficient of the linear regression (a+bT) defining the Entropy term for Jmax         {}
346bSJ =  -9999., -0.75, -0.75, -0.75, -0.75, -0.75, -0.75, -0.75, -0.75, -0.75, 0., -0.75, 0. 
347
348# D_Vcmax ([J mol-1]) :  Energy of deactivation for Vcmax       {}
349D_Vcmax =  -9999., 200000., 200000., 200000., 200000., 200000., 200000., 200000., 200000., 200000., 192000., 200000., 192000.
350
351# D_Jmax ([J mol-1]) :  Energy of deactivation for Jmax         {}
352D_Jmax =  -9999., 200000., 200000., 200000., 200000., 200000., 200000., 200000., 200000., 200000., 192000., 200000., 192000.
353
354# E_gm  ([J mol-1] ) :  Energy of activation for gm     { }
355E_gm  =  -9999., 49600., 49600., 49600., 49600., 49600., 49600., 49600., 49600., 49600., -9999., 49600., -9999. 
356
357# S_gm  ([J K-1 mol-1] ) :  Entropy term for gm         { }
358S_gm  =  -9999., 1400., 1400., 1400., 1400., 1400., 1400., 1400., 1400., 1400., -9999., 1400., -9999. 
359
360# D_gm  ([J mol-1] ) :  Energy of deactivation for gm   { }
361D_gm  =  -9999., 437400., 437400., 437400., 437400., 437400., 437400., 437400., 437400., 437400., -9999., 437400., -9999. 
362
363# E_Rd ([J mol-1]) :  Energy of activation for Rd       {}
364E_Rd =  -9999., 46390., 46390., 46390., 46390., 46390., 46390., 46390., 46390., 46390., 46390., 46390., 46390.
365
366# VCMAX25 ([micromol/m^2/s]) :  Maximum rate of Rubisco activity-limited carboxylation at 25°C         {OK_STOMATE}
367VCMAX25 =  -9999., 45.0, 45.0, 35.0, 40.0, 50.0, 45.0, 35.0, 35.0, 50.0, 50.0, 60.0, 60.0
368
369# ARJV ([mu mol e- (mu mol CO2)-1]) :  a coefficient of the linear regression (a+bT) defining the Jmax25/Vcmax25 ratio          {OK_STOMATE}
370ARJV =  -9999., 2.59, 2.59, 2.59, 2.59, 2.59, 2.59, 2.59, 2.59, 2.59, 1.715, 2.59, 1.715
371
372# BRJV ([(mu mol e- (mu mol CO2)-1) (°C)-1]) :  b coefficient of the linear regression (a+bT) defining the Jmax25/Vcmax25 ratio        {OK_STOMATE}
373BRJV =  -9999., -0.035, -0.035, -0.035, -0.035, -0.035, -0.035, -0.035, -0.035, -0.035, 0., -0.035, 0.
374
375# KmC25 ([ubar]) :  Michaelis–Menten constant of Rubisco for CO2 at 25°C     {}
376KmC25 =  -9999., 404.9, 404.9, 404.9, 404.9, 404.9, 404.9, 404.9, 404.9, 404.9, 650., 404.9, 650.
377
378# KmO25 ([ubar]) :  Michaelis–Menten constant of Rubisco for O2 at 25°C      {}
379KmO25 =  -9999., 278400., 278400., 278400., 278400., 278400., 278400., 278400., 278400., 278400., 450000., 278400., 450000.
380
381# Sco25 ([bar bar-1]) :  Relative CO2 /O2 specificity factor for Rubisco at 25°C     {}
382Sco25 =  -9999., 2800., 2800., 2800., 2800., 2800., 2800., 2800., 2800., 2800., 2590., 2800., 2590.
383
384# gm25  ([mol m-2 s-1 bar-1] ) :  Mesophyll diffusion conductance at 25°C        { }
385gm25  =  -9999., 0.4, 0.4, 0.4, 0.4, 0.4, 0.4, 0.4, 0.4, 0.4, -9999., 0.4, -9999. 
386
387# gamma_star25 ([ubar]) :  Ci-based CO2 compensation point in the absence of Rd at 25°C (ubar)         {}
388gamma_star25 =  -9999., 42.75, 42.75, 42.75, 42.75, 42.75, 42.75, 42.75, 42.75, 42.75, 42.75, 42.75, 42.75
389
390# a1 ([-]) :  Empirical factor involved in the calculation of fvpd      {}
391a1 =  -9999., 0.85, 0.85, 0.85, 0.85, 0.85, 0.85, 0.85, 0.85, 0.85, 0.72, 0.85, 0.72
392
393# b1 ([-]) :  Empirical factor involved in the calculation of fvpd      {}
394b1 =  -9999., 0.14, 0.14, 0.14, 0.14, 0.14, 0.14, 0.14, 0.14, 0.14, 0.20, 0.14, 0.20
395
396# g0 ([mol m−2 s−1 bar−1]) :  Residual stomatal conductance when irradiance approaches zero       {}
397g0 =  -9999., 0.00625, 0.00625, 0.00625, 0.00625, 0.00625, 0.00625, 0.00625, 0.00625, 0.00625, 0.01875, 0.00625, 0.01875 
398
399# h_protons ([mol mol-1]) :  Number of protons required to produce one ATP      {}
400h_protons =  -9999., 4., 4., 4., 4., 4., 4., 4., 4., 4., 4., 4., 4. 
401
402# fpsir ([-]) :  Fraction of PSII e− transport rate partitioned to the C4 cycle       {}
403fpsir =  -9999., -9999., -9999., -9999., -9999., -9999., -9999., -9999., -9999., -9999., 0.4, -9999., 0.4 
404
405# fQ ([-]) :  Fraction of electrons at reduced plastoquinone that follow the Q-cycle    {}
406fQ =  -9999., -9999., -9999., -9999., -9999., -9999., -9999., -9999., -9999., -9999., 1., -9999., 1.
407
408# fpseudo ([-]) :  Fraction of electrons at PSI that follow pseudocyclic transport      {}
409fpseudo =  -9999., -9999., -9999., -9999., -9999., -9999., -9999., -9999., -9999., -9999., 0.1, -9999., 0.1
410
411# kp ([mol m−2 s−1 bar−1]) :  Initial carboxylation efficiency of the PEP carboxylase     {}
412kp =  -9999., -9999., -9999., -9999., -9999., -9999., -9999., -9999., -9999., -9999., 0.7, -9999., 0.7
413
414# alpha ([-]) :  Fraction of PSII activity in the bundle sheath         {}
415alpha =  -9999., -9999., -9999., -9999., -9999., -9999., -9999., -9999., -9999., -9999., 0.1, -9999., 0.1
416
417# gbs ([mol m−2 s−1 bar−1]) :  Bundle-sheath conductance  {}
418gbs =  -9999., -9999., -9999., -9999., -9999., -9999., -9999., -9999., -9999., -9999., 0.003, -9999., 0.003
419
420# theta ([−]) :  Convexity factor for response of J to irradiance     {}
421theta =  -9999., 0.7, 0.7, 0.7, 0.7, 0.7, 0.7, 0.7, 0.7, 0.7, 0.7, 0.7, 0.7
422
423# alpha_LL ([mol e− (mol photon)−1]) :  Conversion efficiency of absorbed light into J at strictly limiting light   {}
424alpha_LL =  -9999., 0.372, 0.372, 0.372, 0.372, 0.372, 0.372, 0.372, 0.372, 0.372, 0.372, 0.372, 0.372
425
426# STRESS_VCMAX ([-]) :  Stress on vcmax         {OK_SECHIBA or OK_STOMATE}
427STRESS_VCMAX =  1., 1., 1., 1., 1., 1., 1., 1., 1., 1., 1., 1., 1.
428
429# STRESS_GS ([-]) :  Stress on gs       {OK_SECHIBA or OK_STOMATE}
430STRESS_GS =  1., 1., 1., 1., 1., 1., 1., 1., 1., 1., 1., 1., 1.
431
432# STRESS_GM ([-]) :  Stress on gm       {OK_SECHIBA or OK_STOMATE}
433STRESS_GM =  1., 1., 1., 1., 1., 1., 1., 1., 1., 1., 1., 1., 1.
434
435# EXT_COEFF ([-]) :  extinction coefficient of the Monsi&Seaki relationship (1953)      {OK_SECHIBA or OK_STOMATE}
436EXT_COEFF =  .5, .5, .5, .5, .5, .5, .5, .5, .5, .5, .5, .5, .5
437
438# EXT_COEFF_VEGETFRAC ([-]) :  extinction coefficient used for the calculation of the bare soil fraction        {OK_SECHIBA or OK_STOMATE}
439EXT_COEFF_VEGETFRAC =  1., 1., 1., 1., 1., 1., 1., 1., 1., 1., 1., 1., 1.
440
441# HYDROL_HUMCSTE ([m]) :  Root profile  {OK_SECHIBA}
442HYDROL_HUMCSTE =  humcste_ref2m or humcste_ref4m depending on zmaxh
443
444# PREF_SOIL_VEG ([-]        ) :  The soil tile number for each vegetation       {OK_SECHIBA or OK_STOMATE}
445PREF_SOIL_VEG =  1, 2, 2, 2, 2, 2, 2, 2, 2, 3, 3, 3, 3
446
447# RSTRUCT_CONST ([s/m]) :  Structural resistance        {OK_SECHIBA}
448RSTRUCT_CONST =  0.0, 25.0, 25.0, 25.0, 25.0, 25.0, 25.0, 25.0, 25.0,  2.5,  2.0,  2.0,  2.0
449
450# KZERO ([kg/m^2/s]) :  A vegetation dependent constant used in the calculation of the surface resistance.      {OK_SECHIBA}
451KZERO =  0.0, 12.E-5, 12.E-5, 12.e-5, 12.e-5, 25.e-5, 12.e-5,25.e-5, 25.e-5, 30.e-5, 30.e-5, 30.e-5, 30.e-5 
452
453# RVEG_PFT ([-]) :  Artificial parameter to increase or decrease canopy resistance.     {OK_SECHIBA}
454RVEG_PFT =  1., 1., 1., 1., 1., 1., 1., 1., 1., 1., 1., 1., 1.
455
456# WMAX_VEG ([kg/m^3]) :  Maximum field capacity for each of the vegetations (Temporary): max quantity of water  {OK_SECHIBA}
457WMAX_VEG =  150., 150., 150., 150., 150., 150., 150.,150., 150., 150., 150., 150., 150.
458
459# PERCENT_THROUGHFALL_PFT ([%]) :  Percent by PFT of precip that is not intercepted by the canopy. Default value depend on run mode.    {OK_SECHIBA}
460PERCENT_THROUGHFALL_PFT =  Case offline [0. 0. 0....] else [30. 30. 30.....]
461
462# SNOWA_AGED_VIS ([-]) :  Minimum snow albedo value for each vegetation type after aging (dirty old snow), visible albedo       {OK_SECHIBA}
463SNOWA_AGED_VIS =  0.74, 0.0, 0.0, 0.08, 0.24, 0.07, 0.18, 0.18, 0.33, 0.57, 0.57, 0.57, 0.57
464
465# SNOWA_AGED_NIR ([-]) :  Minimum snow albedo value for each vegetation type after aging (dirty old snow), near infrared albedo         {OK_SECHIBA}
466SNOWA_AGED_NIR =  0.50, 0.0, 0.0, 0.10, 0.37, 0.08, 0.16, 0.17, 0.27, 0.44, 0.44, 0.44, 0.44   
467
468# SNOWA_DEC_VIS ([-]) :  Decay rate of snow albedo value for each vegetation type as it will be used in condveg_snow, visible albedo    {OK_SECHIBA}
469SNOWA_DEC_VIS =  0.21, 0.0, 0.0, 0.14, 0.08, 0.17, 0.05, 0.06, 0.09, 0.15, 0.15, 0.15, 0.15 
470
471# SNOWA_DEC_NIR ([-]) :  Decay rate of snow albedo value for each vegetation type as it will be used in condveg_snow, near infrared albedo      {OK_SECHIBA}
472SNOWA_DEC_NIR =  0.13, 0.0, 0.0, 0.10, 0.10, 0.16, 0.04, 0.07, 0.08, 0.12, 0.12, 0.12, 0.12
473
474# ALB_LEAF_VIS ([-]) :  leaf albedo of vegetation type, visible albedo  {OK_SECHIBA}
475ALB_LEAF_VIS =  0.00, 0.04, 0.04, 0.04, 0.04, 0.03, 0.03, 0.03, 0.03, 0.06, 0.06, 0.06, 0.06
476
477# ALB_LEAF_NIR ([-]) :  leaf albedo of vegetation type, near infrared albedo    {OK_SECHIBA}
478ALB_LEAF_NIR =  0.00, 0.23, 0.18, 0.18, 0.20, 0.24, 0.15, 0.26, 0.20, 0.24, 0.27, 0.28, 0.26
479
480# ISO_ACTIVITY ([-]) :  Biogenic activity for each age class : isoprene         {CHEMISTRY_BVOC}
481ISO_ACTIVITY =  0.5, 1.5, 1.5, 0.5
482
483# METHANOL_ACTIVITY ([-]) :  Isoprene emission factor for each age class : methanol     {CHEMISTRY_BVOC}
484METHANOL_ACTIVITY =  1., 1., 0.5, 0.5
485
486# EM_FACTOR_ISOPRENE ([ugC/g/h] ) :  Isoprene emission factor   {CHEMISTRY_BVOC}
487EM_FACTOR_ISOPRENE =  0., 24., 24., 8., 16., 45., 8., 18., 0.5, 12., 18., 5., 5.
488
489# EM_FACTOR_MONOTERPENE ([ugC/g/h] ) :  Monoterpene emission factor     {CHEMISTRY_BVOC }
490EM_FACTOR_MONOTERPENE =  0., 2.0, 2.0, 1.8, 1.4, 1.6, 1.8, 1.4, 1.8, 0.8, 0.8,  0.22, 0.22
491
492# C_LDF_MONO  ([]) :  Monoterpenes fraction dependancy to light         {CHEMISTRY_BVOC}
493C_LDF_MONO  =  0.6
494
495# C_LDF_SESQ  ([]) :  Sesquiterpenes fraction dependancy to light       {CHEMISTRY_BVOC}
496C_LDF_SESQ  =  0.5
497
498# C_LDF_METH  ([]) :  Methanol fraction dependancy to light     {CHEMISTRY_BVOC}
499C_LDF_METH  =  0.8
500
501# C_LDF_ACET  ([]) :  Acetone fraction dependancy to light      {CHEMISTRY_BVOC}
502C_LDF_ACET  =  0.2
503
504# EM_FACTOR_APINENE  ([ugC/g/h] ) :  Alfa pinene  emission factor       {CHEMISTRY_BVOC }
505EM_FACTOR_APINENE  =  0., 1.35, 1.35, 0.85, 0.95, 0.75, 0.85, 0.60, 1.98, 0.30, 0.30, 0.09, 0.09
506
507# EM_FACTOR_BPINENE ([ugC/g/h] ) :  Beta pinene  emission factor        {CHEMISTRY_BVOC }
508EM_FACTOR_BPINENE =  0., 0.30, 0.30, 0.35, 0.25, 0.20, 0.35, 0.12, 0.45, 0.16, 0.12, 0.05, 0.05
509
510# EM_FACTOR_LIMONENE ([ugC/g/h] ) :  Limonene  emission factor  {CHEMISTRY_BVOC}
511EM_FACTOR_LIMONENE =  0., 0.25, 0.25, 0.20, 0.25, 0.14, 0.20, 0.135, 0.11, 0.19, 0.42, 0.03, 0.03
512
513# EM_FACTOR_MYRCENE ([ugC/g/h] ) :  Myrcene  emission factor    {CHEMISTRY_BVOC}
514EM_FACTOR_MYRCENE =  0., 0.20, 0.20, 0.12, 0.11, 0.065, 0.12, 0.036, 0.075, 0.08,  0.085, 0.015, 0.015
515
516# EM_FACTOR_SABINENE ([ugC/g/h] ) :  Sabinene  emission factor  {CHEMISTRY_BVOC}
517EM_FACTOR_SABINENE =  0., 0.20, 0.20, 0.12, 0.17, 0.70, 0.12, 0.50, 0.09, 0.085, 0.075, 0.02, 0.02
518
519# EM_FACTOR_CAMPHENE  ([ugC/g/h] ) :  Camphene  emission factor         {CHEMISTRY_BVOC}
520EM_FACTOR_CAMPHENE  =  0., 0.15, 0.15, 0.10, 0.10, 0.01, 0.10, 0.01, 0.07, 0.07, 0.08, 0.01, 0.01
521
522# EM_FACTOR_3CARENE  ([ugC/g/h] ) :  3-Carene  emission factor  {CHEMISTRY_BVOC}
523EM_FACTOR_3CARENE  =  0., 0.13, 0.13, 0.42, 0.02, 0.055, 0.42,0.025, 0.125, 0.085, 0.085, 0.065, 0.065
524
525# EM_FACTOR_TBOCIMENE ([ugC/g/h] ) :  T-beta-ocimene  emission factor   {CHEMISTRY_BVOC}
526EM_FACTOR_TBOCIMENE =  0., 0.25, 0.25, 0.13, 0.09, 0.26, 0.13, 0.20, 0.085, 0.18, 0.18, 0.01, 0.01
527
528# EM_FACTOR_OTHERMONOT ([ugC/g/h] ) :  Other monoterpenes  emission factor      {CHEMISTRY_BVOC}
529EM_FACTOR_OTHERMONOT =  0., 0.17, 0.17, 0.11, 0.11, 0.125, 0.11, 0.274, 0.01, 0.15, 0.155, 0.035, 0.035
530
531# EM_FACTOR_SESQUITERP  ([ugC/g/h] ) :  Sesquiterpenes  emission factor         {CHEMISTRY_BVOC}
532EM_FACTOR_SESQUITERP  =  0., 0.45, 0.45, 0.13, 0.3, 0.36, 0.15, 0.3, 0.25, 0.6, 0.6, 0.08, 0.08
533
534# C_BETA_MONO  ([]) :  Monoterpenes temperature dependency coefficient  {CHEMISTRY_BVOC}
535C_BETA_MONO  =  0.1
536
537# C_BETA_SESQ  ([]) :  Sesquiterpenes temperature dependency coefficient        {CHEMISTRY_BVOC}
538C_BETA_SESQ  =  0.17
539
540# C_BETA_METH  ([]) :  Methanol temperature dependency coefficient      {CHEMISTRY_BVOC}
541C_BETA_METH  =  0.08
542
543# C_BETA_ACET  ([]) :  Acetone temperature dependency coefficient       {CHEMISTRY_BVOC}
544C_BETA_ACET  =  0.1
545
546# C_BETA_OXYVOC  ([]) :  Other oxygenated BVOC temperature dependency coefficient       {CHEMISTRY_BVOC}
547C_BETA_OXYVOC  =  0.13
548
549# EM_FACTOR_ORVOC ([ugC/g/h]  ) :  ORVOC emissions factor       {CHEMISTRY_BVOC }
550EM_FACTOR_ORVOC =  0., 1.5, 1.5, 1.5, 1.5, 1.5, 1.5, 1.5, 1.5, 1.5, 1.5, 1.5, 1.5
551
552# EM_FACTOR_OVOC ([ugC/g/h]        ) :  OVOC emissions factor   {CHEMISTRY_BVOC}
553EM_FACTOR_OVOC =  0., 1.5, 1.5, 1.5, 1.5, 1.5, 1.5, 1.5, 1.5, 1.5, 1.5, 1.5, 1.5
554
555# EM_FACTOR_MBO ([ugC/g/h]  ) :  MBO emissions factor   {CHEMISTRY_BVOC }
556EM_FACTOR_MBO =  0., 2.e-5, 2.e-5, 1.4, 2.e-5, 2.e-5, 0.14, 2.e-5, 2.e-5, 2.e-5, 2.e-5, 2.e-5, 2.e-5
557
558# EM_FACTOR_METHANOL ([ugC/g/h]  ) :  Methanol emissions factor         {CHEMISTRY_BVOC }
559EM_FACTOR_METHANOL =  0., 0.8, 0.8, 1.8, 0.9, 1.9, 1.8, 1.8, 1.8, 0.7, 0.9, 2., 2.
560
561# EM_FACTOR_ACETONE ([ugC/g/h]     ) :  Acetone emissions factor        {CHEMISTRY_BVOC }
562EM_FACTOR_ACETONE =  0., 0.25, 0.25, 0.3, 0.2, 0.33, 0.3, 0.25, 0.25, 0.2, 0.2, 0.08, 0.08
563
564# EM_FACTOR_ACETAL ([ugC/g/h]  ) :  Acetaldehyde emissions factor       {CHEMISTRY_BVOC}
565EM_FACTOR_ACETAL =  0., 0.2, 0.2, 0.2, 0.2, 0.25, 0.25, 0.16, 0.16, 0.12, 0.12, 0.035, 0.02
566
567# EM_FACTOR_FORMAL ([ugC/g/h]  ) :  Formaldehyde emissions factor       {CHEMISTRY_BVOC }
568EM_FACTOR_FORMAL =  0., 0.04, 0.04, 0.08, 0.04, 0.04, 0.04, 0.04, 0.04, 0.025, 0.025, 0.013, 0.013
569
570# EM_FACTOR_ACETIC ([ugC/g/h]  ) :  Acetic Acid emissions factor        {CHEMISTRY_BVOC }
571EM_FACTOR_ACETIC =  0., 0.025, 0.025,0.025,0.022,0.08,0.025,0.022,0.013,0.012,0.012,0.008,0.008
572
573# EM_FACTOR_FORMIC ([ugC/g/h]  ) :  Formic Acid emissions factor        {CHEMISTRY_BVOC}
574EM_FACTOR_FORMIC =  0., 0.015, 0.015, 0.02, 0.02, 0.025, 0.025, 0.015, 0.015,0.010,0.010,0.008,0.008
575
576# EM_FACTOR_NO_WET ([ngN/m^2/s]) :  NOx emissions factor wet soil emissions and exponential dependancy factor   {CHEMISTRY_BVOC}
577EM_FACTOR_NO_WET =  0., 2.6, 0.06, 0.03, 0.03, 0.03, 0.03, 0.03, 0.03, 0.36, 0.36, 0.36, 0.36
578
579# EM_FACTOR_NO_DRY ([ngN/m^2/s] ) :  NOx emissions factor dry soil emissions and exponential dependancy factor          {CHEMISTRY_BVOC}
580EM_FACTOR_NO_DRY =  0., 8.60, 0.40, 0.22, 0.22, 0.22, 0.22, 0.22, 0.22, 2.65, 2.65, 2.65, 2.65
581
582# LARCH ([-]  ) :  Larcher 1991 SAI/LAI ratio   {CHEMISTRY_BVOC }
583LARCH =  0., 0.015, 0.015, 0.003, 0.005, 0.005, 0.003, 0.005, 0.003, 0.005, 0.005, 0.008, 0.008
584
585# SLA ([m^2/gC]) :  specif leaf area    {OK_STOMATE}
586SLA =  1.5E-2, 1.53E-2, 2.6E-2, 9.26E-3, 2E-2, 2.6E-2, 9.26E-3, 2.6E-2, 1.9E-2, 2.6E-2, 2.6E-2, 2.6E-2, 2.6E-2
587
588# SLAINIT ([m^2/gC]) :  specif leaf area        {OK_STOMATE}
589SLAINIT =  1.5E-2, 1.53E-2, 2.6E-2, 9.26E-3, 2E-2, 2.6E-2, 9.26E-3, 2.6E-2, 1.9E-2, 2.6E-2, 2.6E-2, 2.6E-2, 2.6E-2
590
591# AVAILABILITY_FACT  ([-]   ) :  Calculate dynamic mortality in lpj_gap, pft dependent parameter        {OK_STOMATE }
592AVAILABILITY_FACT  =  -9999., 0.14, 0.14, 0.10, 0.10, 0.10, 0.05, 0.05, 0.05, -9999., -9999., -9999., -9999. 
593
594# NUE_OPT ([(mumol[CO2] s-1) (gN[leaf])-1]) :  Nitrogen use efficiency of Vcmax         {OK_STOMATE}
595NUE_OPT =  -9999.,  22.,  22., 20., 33.,  33., 20., 33., 22.,  45.,  45.,  60.,  60.   
596
597# EXT_COEFF_N ([(m2[ground]) (m-2[leaf])]) :  Extinction coefficient of the leaf N content profile within the canopy    {OK_STOMATE}
598EXT_COEFF_N =   0.15, 0.15, 0.15,0.15,0.15, 0.15,0.15,0.15,0.15, 0.15, 0.15, 0.15, 0.15
599
600# R0  ([-]    ) :  Standard root allocation     {OK_STOMATE }
601R0  =  -9999., .30, .30, .30, .30, .30, .30, .30, .30, .30, .30, .30, .30
602
603# S0  ([-]    ) :  Standard sapwood allocation          {OK_STOMATE }
604S0  =  -9999., .25, .25, .30, .30, .30, .30, .30, .30, .30, .30, .30, .30
605
606# FRAC_GROWTHRESP ([-]) :  fraction of GPP which is lost as growth respiration  {OK_STOMATE}
607FRAC_GROWTHRESP =  -9999., 0.35, 0.35, 0.28, 0.28, 0.28, 0.35, 0.35, 0.35, 0.28, 0.28, 0.28, 0.28
608
609# COEFF_MAINT_INIT ([gC/gN/day]) :  maintenance respiration coefficient at 10 deg C     {OK_STOMATE}
610COEFF_MAINT_INIT =  -9999., 3.06E-2, 3.06E-2, 6.46E-2, 6.46E-2, 6.46E-2, 6.46E-2, 6.46E-2, 6.46E-2, 6.46E-2, 6.46E-2, 6.46E-2, 6.46E-2
611
612# TREF_MAINT_RESP ([degC]) :  maintenance respiration Temperature coefficient   {OK_STOMATE}
613TREF_MAINT_RESP =    &  -9999., 56.02, 56.02, 56.02, 56.02, 56.02, 56.02, 56.02, 56.02, 56.02, 56.02, 56.02, 56.02  /)   
614
615# TMIN_MAINT_RESP ([degC]) :  maintenance respiration Temperature coefficient   {OK_STOMATE}
616TMIN_MAINT_RESP =    &  -9999., 46.02, 46.02, 46.02, 46.02, 46.02, 46.02, 46.02, 46.02, 46.02, 46.02, 46.02, 46.02  /)   
617
618# E0_MAINT_RESP ([-]) :  maintenance respiration Temperature coefficient        {OK_STOMATE}
619E0_MAINT_RESP =    &  -9999., 308.56, 308.56, 308.56, 308.56, 308.56, 308.56, 308.56, 308.56, 308.56, 308.56, 308.56, 308.56  /)   
620
621# FLAM ([-]) :  flamability: critical fraction of water holding capacity        {OK_STOMATE}
622FLAM =  -9999., .15, .25, .25, .25, .25, .25, .25, .25, .25, .25, .35, .35
623
624# RESIST ([-]) :  fire resistance       {OK_STOMATE}
625RESIST =  -9999., .95, .90, .12, .50, .12, .12, .12, .12, .0, .0, .0, .0 
626
627# COEFF_LCCHANGE_1 ([-]) :  Coeff of biomass export for the year        {OK_STOMATE}
628COEFF_LCCHANGE_1 =  -9999., 0.897, 0.897, 0.597, 0.597, 0.597, 0.597, 0.597, 0.597, 0.597, 0.597, 0.597, 0.597 
629
630# COEFF_LCCHANGE_10 ([-]) :  Coeff of biomass export for the decade     {OK_STOMATE}
631COEFF_LCCHANGE_10 =  -9999., 0.103, 0.103, 0.299, 0.299, 0.299, 0.299, 0.299, 0.299, 0.299, 0.403, 0.299, 0.403
632
633# COEFF_LCCHANGE_100 ([-]) :  Coeff of biomass export for the century   {OK_STOMATE}
634COEFF_LCCHANGE_100 =  -9999., 0., 0., 0.104, 0.104, 0.104, 0.104, 0.104, 0.104, 0.104, 0., 0.104, 0.
635
636# LAI_MAX_TO_HAPPY ([-]) :  threshold of LAI below which plant uses carbohydrate reserves       {OK_STOMATE}
637LAI_MAX_TO_HAPPY =  -9999., .5, .5, .5, .5, .5, .5, .5, .5, .5, .5, .5, .5 
638
639# LAI_MAX ([m^2/m^2]) :  maximum LAI, PFT-specific      {OK_STOMATE}
640LAI_MAX =  -9999., 7.0, 5.0, 5.0, 4.0, 5.0, 3.5, 4.0, 3.0, 2.5, 2.0, 5.0, 5.0
641
642# PHENO_TYPE ([-]) :  type of phenology, 0      {OK_STOMATE}
643PHENO_TYPE =  0, 1, 3, 1, 1, 2, 1, 2, 2, 4, 4, 2, 3
644
645# PHENO_GDD_CRIT_C ([-]) :  critical gdd, tabulated (C), constant c of aT^2+bT+c        {OK_STOMATE}
646PHENO_GDD_CRIT_C =  -9999., -9999., -9999., -9999., -9999., -9999., -9999., -9999., -9999., 270., 400., 125., 400.
647
648# PHENO_GDD_CRIT_B ([-]) :  critical gdd, tabulated (C), constant b of aT^2+bT+c        {OK_STOMATE}
649PHENO_GDD_CRIT_B =  -9999., -9999., -9999., -9999., -9999., -9999., -9999.,-9999., -9999., 6.25, 0., 0., 0.
650
651# PHENO_GDD_CRIT_A ([-]) :  critical gdd, tabulated (C), constant a of aT^2+bT+c        {OK_STOMATE}
652PHENO_GDD_CRIT_A =  -9999., -9999., -9999., -9999., -9999., -9999., -9999., -9999., -9999., 0.03125,  0., 0., 0.
653
654# PHENO_MOIGDD_T_CRIT ([C]) :  Average temperature threashold for C4 grass used in pheno_moigdd         {OK_STOMATE}
655PHENO_MOIGDD_T_CRIT =  -9999., -9999., -9999., -9999., -9999., -9999., -9999., -9999., -9999., -9999., 22.0, -9999., -9999.
656
657# NGD_CRIT ([days]) :  critical ngd, tabulated. Threshold -5 degrees    {OK_STOMATE}
658NGD_CRIT =  -9999., -9999., -9999., -9999., -9999., -9999., -9999., 0., -9999., -9999., -9999., -9999., -9999.
659
660# NCDGDD_TEMP ([C] ) :  critical temperature for the ncd vs. gdd function in phenology  {OK_STOMATE}
661NCDGDD_TEMP =  -9999., -9999., -9999., -9999., -9999., 5., -9999., 0., -9999., -9999., -9999., -9999., -9999.
662
663# HUM_FRAC ([%]) :  critical humidity (relative to min/max) for phenology       {OK_STOMATE}
664HUM_FRAC =  -9999., -9999., .5, -9999., -9999., -9999., -9999., -9999.,  -9999., .5, .5, .5,.5     
665
666# HUM_MIN_TIME ([days]) :  minimum time elapsed since moisture minimum  {OK_STOMATE}
667HUM_MIN_TIME =  -9999., -9999., 50., -9999., -9999., -9999., -9999., -9999., -9999., 35., 35., 75., 75.
668
669# TAU_SAP ([days]) :  sapwood -> heartwood conversion time      {OK_STOMATE}
670TAU_SAP =  -9999., 730., 730., 730., 730., 730., 730., 730., 730., -9999., -9999., -9999., -9999.
671
672# TAU_LEAFINIT ([days]) :  time to attain the initial foliage using the carbohydrate reserve    {OK_STOMATE}
673TAU_LEAFINIT =  -9999., 10., 10., 10., 10., 10., 10., 10., 10., 10., 10., 10., 10.
674
675# TAU_FRUIT ([days]) :  fruit lifetime  {OK_STOMATE}
676TAU_FRUIT =  -9999., 90., 90., 90., 90., 90., 90., 90., 90., -9999., -9999., -9999., -9999.
677
678# TAU_ROOT ([days]) :  root longivety   {OK_STOMATE}
679TAU_ROOT =  -9999., 256., 256., 256., 256., 256., 256., 256., 256., 256., 256., 256., 256.
680
681# ECUREUIL ([-]) :  fraction of primary leaf and root allocation put into reserve       {OK_STOMATE}
682ECUREUIL =  -9999., .0, 1., .0, .0, 1., .0, 1., 1., 1., 1., 1., 1.
683
684# ALLOC_MIN ([-]) :  minimum allocation above/below     {OK_STOMATE}
685ALLOC_MIN =  -9999., 0.2, 0.2, 0.2, 0.2, 0.2, 0.2, 0.2, 0.2, -9999., -9999., -9999., -9999. 
686
687# ALLOC_MAX ([-]) :  maximum allocation above/below     {OK_STOMATE}
688ALLOC_MAX =  -9999., 0.8, 0.8, 0.8, 0.8, 0.8, 0.8, 0.8, 0.8, -9999., -9999., -9999., -9999.
689
690# DEMI_ALLOC  ([-]) :  mean allocation above/below      {OK_STOMATE}
691DEMI_ALLOC  =  -9999., 5., 5., 5., 5., 5., 5., 5., 5., -9999., -9999., -9999., -9999.
692
693# LEAFLIFE_TAB ([years]) :  leaf longevity      {OK_STOMATE}
694LEAFLIFE_TAB =  -9999., .5, 2., .33, 1., 2., .33, 2., 2., 2., 2., 2., 2. 
695
696# K_LATOSA_MAX ([-] ) :  Maximum leaf-to-sapwood area ratio     {OK_STOMATE}
697K_LATOSA_MAX =  (-9999., 5., 5., 5., 3., 5., 5., 5., 5., -9999., -9999., -9999., -9999.)*1.e3
698
699# K_LATOSA_MIN ([-] ) :  Minimum leaf-to-sapwood area ratio     {OK_STOMATE}
700K_LATOSA_MIN =  (-9999., 5., 5., 5., 3., 5., 5., 5., 5., -9999., -9999., -9999., -9999.)*1.e3
701
702# LC_leaf  ([-]   ) :  Lignine/C ratio of leaf pool     {OK_STOMATE }
703LC_leaf  =  -9999., 0.18, 0.18, 0.24, 0.18, 0.18, 0.24, 0.18, 0.24, 0.09, 0.09, 0.09, 0.09
704
705# LC_sapabove  ([-]   ) :  Lignine/C ratio of sapabove pool     {OK_STOMATE }
706LC_sapabove  =  -9999., 0.23, 0.23, 0.29, 0.23, 0.23, 0.29, 0.23, 0.29, 0.09, 0.09, 0.09, 0.09
707
708# LC_sapbelow  ([-]   ) :  Lignine/C ratio of sapbelow pool     {OK_STOMATE }
709LC_sapbelow  =  -9999., 0.23, 0.23, 0.29, 0.23, 0.23, 0.29, 0.23, 0.29, 0.09, 0.09, 0.09, 0.09
710
711# LC_heartabove  ([-]   ) :  Lignine/C ratio of heartabove pool         {OK_STOMATE }
712LC_heartabove  =  -9999., 0.23, 0.23, 0.29, 0.23, 0.23, 0.29, 0.23, 0.29, 0.09, 0.09, 0.09, 0.09
713
714# LC_heartbelow  ([-]   ) :  Lignine/C ratio of heartbelow pool         {OK_STOMATE }
715LC_heartbelow  =  -9999., 0.23, 0.23, 0.29, 0.23, 0.23, 0.29, 0.23, 0.29, 0.09, 0.09, 0.09, 0.09
716
717# LC_fruit ([-]   ) :  Lignine/C ratio of fruit pool    {OK_STOMATE }
718LC_fruit =  -9999., 0.09, 0.09, 0.09, 0.09, 0.09, 0.09, 0.09, 0.09, 0.09, 0.09, 0.09, 0.09
719
720# LC_root ([-]   ) :  Lignine/C ratio of fruit pool     {OK_STOMATE }
721LC_root =  -9999., 0.22, 0.22, 0.22, 0.22, 0.22, 0.22, 0.22, 0.22, 0.22, 0.22, 0.22, 0.22
722
723# LC_carbres ([-]   ) :  Lignine/C ratio of carbres pool        {OK_STOMATE }
724LC_carbres =  -9999., 0., 0., 0., 0., 0., 0., 0., 0., 0., 0., 0., 0.
725
726# LC_labile ([-]   ) :  Lignine/C ratio of labile pool  {OK_STOMATE }
727LC_labile =  -9999., 0., 0., 0., 0., 0., 0., 0., 0., 0., 0., 0., 0.
728
729# DECOMP_FACTOR  () :  Multpliactive factor modifying the standard decomposition factor for each SOM pool       {}
730DECOMP_FACTOR  =  -9999., 1., 1., 1., 1., 1., 1., 1., 1., 1., 1., 1.2, 1.4 
731
732# PIPE_DENSITY  () :    {}
733PIPE_DENSITY  =  -9999., 3.e5, 3.e5, 2.e5, 3.e5, 3.e5, 2.e5, 3.e5, 2.e5, 2.e5, 2.e5, 2.e5, 2.e5
734
735# TREE_FF ([-]  ) :  Tree form factor reducing the volume of a cylinder         {OK_STOMATE }
736TREE_FF =  -9999., 0.6, 0.6, 0.6, 0.6, 0.6, 0.8, 0.8, 0.8, 0., 0., 0., 0.
737
738# PIPE_TUNE1 ([-]    ) :  crown area    {OK_STOMATE }
739PIPE_TUNE1 =  -9999., 100., 100., 100., 100., 100., 100., 100., 100., 0., 0., 0., 0. 
740
741# PIPE_TUNE2  ([-]      ) :  height     {OK_STOMATE }
742PIPE_TUNE2  =  -9999., 40., 40., 40., 40., 40., 40., 40., 40., 0., 0., 0., 0.   
743
744# PIPE_TUNE3 ([-]    ) :  height        {OK_STOMATE }
745PIPE_TUNE3 =  -9999., 0.5, 0.5, 0.5, 0.5, 0.5, 0.5, 0.5, 0.5, 0., 0., 0., 0.   
746
747# PIPE_TUNE4 ([-]  ) :  needed for stem diameter        {OK_STOMATE }
748PIPE_TUNE4 =  -9999., 0.3, 0.3, 0.3, 0.3, 0.3, 0.3, 0.3, 0.3, 0., 0., 0., 0.
749
750# PIPE_K1  ([-]   ) :           {OK_STOMATE }
751PIPE_K1  =  -9999., 8.e3, 8.e3, 8.e3, 8.e3, 8.e3, 8.e3, 8.e3, 8.e3, 0., 0., 0., 0. 
752
753# PIPE_TUNE_EXP_COEFF  ([-]   ) :  pipe tune exponential coeff          {OK_STOMATE }
754PIPE_TUNE_EXP_COEFF  =  -9999., 1.6, 1.6, 1.6, 1.6, 1.6, 1.6, 1.6, 1.6, 0., 0., 0., 0.   
755
756# MASS_RATIO_HEART_SAP  ([-]   ) :  mass ratio (heartwood+sapwood)/heartwood    {OK_STOMATE }
757MASS_RATIO_HEART_SAP  =  -9999., 3., 3., 3., 3., 3., 3., 3., 3., 0., 0., 0., 0.   
758
759# CANOPY_COVER ([-] ) :  Test values for canopy cover   {OK_STOMATE, OK_FUNCTIONAL_ALLOCATION}
760CANOPY_COVER =  -9999., 0.9, 0.9, 0.7, 0.7, 0.7, 0.6, 0.5, 0.5, 0.9, 0.9, 0.9, 0.9
761
762# NMAXTREES ([trees ha-1]) :  number of seedlings planted at the start of a rotation    {FOREST_MANAGEMENT }
763NMAXTREES =  (-9999., 10., 10., 10., 10., 10., 2., 2., 2., 10., 10., 10., 10.)*1.e3
764
765# HEIGHT_INIT_MIN ([m]) :       {FUNCTIONAL ALLOCATION }
766HEIGHT_INIT_MIN =  -9999., 2, 2, 2, 2, 2, 3, 3, 3, 3, 0.1, 0.1, 0.1, 0.1
767
768# HEIGHT_INIT_MAX ([m]) :       {FUNCTIONAL ALLOCATION }
769HEIGHT_INIT_MAX =  -9999., 3, 3, 3, 3, 3, 4, 4, 4, 4, 0.2, 0.2, 0.2, 0.2
770
771# LAI_TO_HEIGHT ([m m2 m-2] ) :  Convertion factor from lai to vegetation height for grasses and crops  {OK_STOMATE, OK_FUNCTIONAL_ALLOCATION}
772LAI_TO_HEIGHT =  -9999., 
773
774# DELEUZE_A () :  intercept of the intra-tree competition within a stand        {OK_STOMATE, functional allocation }
775DELEUZE_A =  -9999., 0.23, 0.23, 0.23, 0.23, 0.23, 0.23, 0.23, 0.23, 0.23, -9999., -9999., -9999., -9999.
776
777# DELEUZE_B () :  slope of the intra-tree competition within a stand    {OK_STOMATE, functional allocation  }
778DELEUZE_B =  -9999., 0.58, 0.58, 0.58, 0.58, 0.58, 0.58, 0.58, 0.58, 0.58, -9999., -9999., -9999., -9999.
779
780# DELEUZE_P_ALL () :  Percentile of the circumferences that receives photosynthates     {OK_STOMATE, functional allocation  }
781DELEUZE_P_ALL =  -9999., 0.5, 0.5, 0.99, 0.99, 0.99, 0.99, 0.99, 0.99, 0.99, -9999., -9999., -9999., -9999.
782
783# M_DV () :     {FOREST_MANAGEMENT }
784M_DV =  -9999., 1.05, 1.05, 1.05, 1.05, 1.05, 1.05, 1.05, 1.05, 1.05, -9999., -9999., -9999., -9999.
785
786# FRUIT_ALLOC ([-] ) :  Guestimates - should be confirmed       {OK_STOMATE}
787FRUIT_ALLOC =  (-9999., 0.1, 0.1, 0.1, 0.1, 0.1, 0.1, 0.1, 0.1, 0., 0., 0., 0.)
788
789# LABILE_RESERVE  () :  Depends on the allocation scheme        {}
790LABILE_RESERVE  =  -9999., 30., 60., 60., 30., 60., 30., 30., 30., 30., 30., 30. 
791
792# EVERGREEN_RESERVE ([-]  ) :  Fraction of sapwood mass stored in the reserve pool of evergreen trees   {OK_STOMATE, functional allocation }
793EVERGREEN_RESERVE =  -9999., 0.05, 0.05, 0.05, 0.05, 0.05, 0.05, 0.05, 0.05, 0.05, 0.05, 0.05, 0.05 
794
795# DECIDUOUS_RESERVE ([-]  ) :  Fraction of sapwood mass stored in the reserve pool of   {OK_STOMATE, functional allocation }
796DECIDUOUS_RESERVE =  -9999., 0.12, 0.12, 0.12, 0.12, 0.12, 0.12, 0.12, 0.12, 0.12, 0.12, 0.12, 0.12
797
798# SENESCENSE_RESERVE ([-]  ) :  Fraction of sapwood mass stored in the reserve pool of          {OK_STOMATE, functional allocation }
799SENESCENSE_RESERVE =  -9999., 0.15, 0.15, 0.15, 0.15, 0.15, 0.15, 0.15, 0.15, 0.15, 0.15, 0.15, 0.15 
800
801# FCN_WOOD ([-] ) :  CN of wood for allocation, relative to leaf CN according to stich et al 2003       {OK_STOMATE}
802FCN_WOOD =  -9999., .087, .087, .087, .087, .087, .087, .087, .087, 1., 1., 1.
803
804# FCN_ROOT ([-] ) :  CN roots for allocation, relative to leaf CN according to stich et al 2003         {OK_STOMATE}
805FCN_ROOT =  -9999., 1., 1., 1., 1., 1., 1., 1., 1., 1., 1., 1.
806
807# BRANCH_RATIO () :     {FOREST_MANAGEMENT }
808BRANCH_RATIO =  0.0, 0.38, 0.38, 0.25, 0.38, 0.38, 0.25, 0.38, 0.25, 0.0, 0.0, 0.0, 0.0   
809
810# CN_LEAF_INIT () :     {}
811CN_LEAF_INIT =  -9999., 29., 29., 29., 29., 29., 29., 29., 29., 29., 29., 29., 29.
812
813# K_ROOT ([m^{3} kg^{-1} s^{-1} MPa^{-1}] ) :  Fine root specific conductivity  {OK_STOMATE}
814K_ROOT =  (-9999., 4., 4., 4., 4., 4., 4., 4., 4., 50., 50., 50., 50.)*1.e-7 
815
816# K_SAP ([m^{2} s^{-1} MPa^{-1}] ) :  Sapwood specific conductivity     {OK_STOMATE}
817K_SAP =  (-9999., 50., 10., 8., 5., 30., 8., 20., 8., -9999., -9999., -9999., -9999.)*1.e-4
818
819# LEAFFALL ([days]) :  length of death of leaves, tabulated     {OK_STOMATE}
820LEAFFALL =  -9999., -9999., 10., -9999., -9999., 10., -9999., 10., 10., 10., 10., 10., 10. 
821
822# LEAFAGECRIT ([days]) :  critical leaf age, tabulated  {OK_STOMATE}
823LEAFAGECRIT =  -9999., 730., 180., 910., 730., 180., 910., 180., 180., 120., 120., 90., 90.   
824
825# SENESCENCE_TYPE ([-]) :  type of senescence, tabulated        {OK_STOMATE}
826SENESCENCE_TYPE =  none, none, dry, none, none, cold, none, cold, cold, mixed, mixed, mixed, mixed 
827
828# SENESCENCE_HUM ([-] ) :  critical relative moisture availability for senescence       {OK_STOMATE}
829SENESCENCE_HUM =  -9999., -9999., .3, -9999., -9999., -9999., -9999., -9999., -9999., .2, .2, .3, .2 
830
831# NOSENESCENCE_HUM ([-]) :  relative moisture availability above which there is no humidity-related senescence  {OK_STOMATE}
832NOSENESCENCE_HUM =  -9999., -9999., .8, -9999., -9999., -9999., -9999., -9999., -9999., .3, .3, .3, .3 
833
834# MAX_TURNOVER_TIME ([days]) :  maximum turnover time for grasse        {OK_STOMATE}
835MAX_TURNOVER_TIME =  -9999., -9999., -9999., -9999., -9999., -9999., -9999., -9999., -9999.,  80.,  80., 80., 80. 
836
837# MIN_TURNOVER_TIME ([days]) :  minimum turnover time for grasse        {OK_STOMATE}
838MIN_TURNOVER_TIME =  -9999., -9999., -9999., -9999., -9999., -9999., -9999., -9999., -9999., 10., 10., 10., 10. 
839
840# RECYCLE_LEAF ([-]) :  Fraction of N leaf that is recycled when leaves are senescent   {OK_STOMATE}
841RECYCLE_LEAF =  -9999., 0.5, 0.5, 0.5, 0.5, 0.5, 0.5, 0.5, 0.5, 0.5, 0.5, 0.5, 0.5 
842
843# RECYCLE_ROOT ([-]) :  Fraction of N root that is recycled when roots are senescent    {OK_STOMATE}
844RECYCLE_ROOT =  -9999., 0.2, 0.2, 0.2, 0.2, 0.2, 0.2, 0.2, 0.2, 0.2, 0.2, 0.2, 0.2 
845
846# MIN_LEAF_AGE_FOR_SENESCENCE ([days] ) :  minimum leaf age to allow senescence g       {OK_STOMATE}
847MIN_LEAF_AGE_FOR_SENESCENCE =  -9999., -9999., 90., -9999., -9999., 90., -9999., 60., 60., 30., 30., 30., 30.
848
849# SENESCENCE_TEMP_C ([-]) :  critical temperature for senescence (C), constant c of aT^2+bT+c, tabulated        {OK_STOMATE}
850SENESCENCE_TEMP_C =  -9999., -9999., -9999., -9999., -9999., 12., -9999., 7., 2., -1.375, 5., 5., 10.
851
852# SENESCENCE_TEMP_B ([-]) :  critical temperature for senescence (C), constant b of aT^2+bT+c ,tabulated        {OK_STOMATE }
853SENESCENCE_TEMP_B =  -9999., -9999., -9999., -9999., -9999., 0., -9999., 0., 0., .1, 0., 0., 0.
854
855# SENESCENCE_TEMP_A ([-] ) :  critical temperature for senescence (C), constant a of aT^2+bT+c , tabulated      {OK_STOMATE}
856SENESCENCE_TEMP_A =  -9999., -9999., -9999., -9999., -9999., 0., -9999., 0., 0.,.00375, 0., 0., 0. 
857
858# GDD_SENESCENCE ([days] ) :  minimum gdd to allow senescence of crops          {OK_STOMATE}
859GDD_SENESCENCE =  -9999., -9999., -9999., -9999., -9999., -9999., -9999., -9999., -9999., -9999., -9999., 950., 4000.
860
861# ALWAYS_INIT ([BOOLEAN]) :  Take carbon from atmosphere if carbohydrate reserve too small      {OK_STOMATE}
862ALWAYS_INIT =  y, y, y, y, y, y, y, y, y, y, n, y, y
863
864# CN_LEAF_MIN ([gC/gN] ) :  minimum CN ratio of leaves          {OK_STOMATE}
865CN_LEAF_MIN =  -9999., 16., 16., 28., 16., 16., 28., 16., 16., 16., 16., 16., 16. 
866
867# CN_LEAF_MAX ([gC/gN] ) :  maximum CN ratio of leaves          {OK_STOMATE}
868CN_LEAF_MAX =  -9999., 45., 45., 75., 45., 45., 75., 45., 45., 45., 45., 45., 45. 
869
870# MAX_SOIL_N_BNF ([gN/m**2] ) :  Value of total N (NH4+NO3) above which we stop adding N via BNF (gN/m**2)      {OK_STOMATE}
871MAX_SOIL_N_BNF =  0.0, 1.5, 1.5, 1.5, 1.5, 1.5, 1.5, 1.5, 1.5, 2., 2., 2., 2.
872
873# MANURE_PFTWEIGHT ([gC/gN] ) :  Weight of the distribution of manure over the PFT surface      {OK_STOMATE}
874MANURE_PFTWEIGHT =  0., 0., 0., 0., 0., 0., 0., 0., 0., 1., 1., 1., 1. 
875
876# RESIDENCE_TIME ([years]) :  residence time of trees   {OK_DGVM and NOT(LPJ_GAP_CONST_MORT)}
877RESIDENCE_TIME =  -9999., 30.0, 30.0, 40.0, 40.0, 40.0, 80.0, 80.0, 80.0, 0.0, 0.0, 0.0, 0.0 
878
879# TMIN_CRIT ([C]) :  critical tmin, tabulated   {OK_STOMATE}
880TMIN_CRIT =  -9999.,  0.0, 0.0, -30.0, -14.0, -30.0, -45.0, -45.0, -9999., -9999., -9999., -9999., -9999.
881
882# TCM_CRIT ([C]) :  critical tcm, tabulated     {OK_STOMATE}
883TCM_CRIT =  -9999., -9999., -9999., 5.0, 15.5, 15.5, -8.0, -8.0, -8.0, -9999., -9999., -9999., -9999.
884
885# HERBIVORES ([FLAG]) :  herbivores allowed?    {OK_STOMATE }
886HERBIVORES =  n
887
888# TREAT_EXPANSION ([FLAG]) :  treat expansion of PFTs across a grid cell?       {OK_STOMATE }
889TREAT_EXPANSION =  n
890
891# SLA_DYN ([FLAG]) :  Account for a dynamic SLA         {OK_STOMATE}
892SLA_DYN =  n
893
894# LPJ_GAP_CONST_MORT ([FLAG]) :  Constant mortality     {OK_STOMATE AND NOT OK_DGVM}
895LPJ_GAP_CONST_MORT =  y/n depending on OK_DGVM
896
897# HARVEST_AGRI ([FLAG]) :  Harvest model for agricultural PFTs.         {OK_STOMATE }
898HARVEST_AGRI =  y
899
900# FIRE_DISABLE ([FLAG]) :  no fire allowed      {OK_STOMATE }
901FIRE_DISABLE =  y
902
903# SPINUP_ANALYTIC (BOOLEAN    ) :  Activation of the analytic resolution of the spinup.         {OK_STOMATE}
904SPINUP_ANALYTIC =  n
905
906# AGRICULTURE ([FLAG]) :  agriculture allowed?  {OK_SECHIBA or OK_STOMATE}
907AGRICULTURE =  y
908
909# IMPOSE_VEG ([FLAG]) :  Should the vegetation be prescribed ?  {OK_SECHIBA or OK_STOMATE}
910IMPOSE_VEG =  n
911
912# IMPOSE_SOILT ([FLAG]) :  Should the soil type be prescribed ?         {IMPOSE_VEG}
913IMPOSE_SOILT =  n
914
915# IMPOSE_NINPUT_DEP ([FLAG]) :  Should the N inputs be prescribed ?     {NOT IMPOSE_CN}
916IMPOSE_NINPUT_DEP =  n
917
918# IMPOSE_NINPUT_FERT                                                      ([FLAG]                                                            ) :  Should the N inputs be prescribed ?                                   {-                                                                 }
919IMPOSE_NINPUT_FERT                                                      =  n                                                                 
920
921# IMPOSE_NINPUT_MANURE                                                      ([FLAG]                                                            ) :  Should the N inputs be prescribed ?                                 {-                                                                 }
922IMPOSE_NINPUT_MANURE                                                      =  n                                                                 
923
924# IMPOSE_NINPUT_BNF                                                      ([FLAG]                                                            ) :  Should the N inputs be prescribed ?                                    {-                                                                 }
925IMPOSE_NINPUT_BNF                                                      =  n                                                                 
926
927# LAI_MAP ([FLAG]) :  Read the LAI map  {OK_SECHIBA or OK_STOMATE}
928LAI_MAP =  n
929
930# VEGET_REINIT ([FLAG] ) :  booleen to indicate that a new LAND USE file will be used.  {}
931VEGET_REINIT =  y
932
933# VEGET_YEAR ([FLAG] ) :  Year of the vegetation map to be read         {}
934VEGET_YEAR =  1
935
936# NINPUT_REINIT ([FLAG] ) :  booleen to indicate that a new N INPUT file will be used.  {-}
937NINPUT_REINIT =  y
938
939# NINPUT_YEAR ([FLAG] ) :  Year of the N input map to be read   {-}
940NINPUT_YEAR =  1
941
942# NINPUT_SUFFIX_YEAR ([FLAG] ) :  Do the input dataset have a 'year' suffix     {-}
943NINPUT_SUFFIX_YEAR =  false
944
945# MAXMASS_SNOW ([kg/m^2]  ) :  The maximum mass of a snow       {OK_SECHIBA}
946MAXMASS_SNOW =  3000.
947
948# SNOWCRI ([kg/m^2]  ) :  Sets the amount above which only sublimation occures          {OK_SECHIBA}
949SNOWCRI =  1.5
950
951# MIN_WIND ([m/s]) :  Minimum wind speed        {OK_SECHIBA}
952MIN_WIND =  0.1
953
954# MAX_SNOW_AGE ([days?]) :  Maximum period of snow aging        {OK_SECHIBA}
955MAX_SNOW_AGE =  50.
956
957# SNOW_TRANS ([m]   ) :  Transformation time constant for snow  {OK_SECHIBA}
958SNOW_TRANS =  0.2
959
960# OK_NUDGE_MC ([FLAG]) :  Activate nudging of soil moisture     {}
961OK_NUDGE_MC =  n
962
963# NUDGE_TAU_MC ([-]) :  Relaxation time for nudging of soil moisture expressed in fraction of the day   {OK_NUDGE_MC}
964NUDGE_TAU_MC =  1
965
966# OK_NUDGE_SNOW ([FLAG]) :  Activate nudging of snow variables  {}
967OK_NUDGE_SNOW =  n
968
969# NUDGE_TAU_SNOW ([-]) :  Relaxation time for nudging of snow variables         {OK_NUDGE_SNOW}
970NUDGE_TAU_SNOW =  1
971
972# NUDGE_INTERPOL_WITH_XIOS ([FLAG]) :  Activate reading and interpolation with XIOS for nudging fields  {OK_NUDGE_MC or OK_NUDGE_SNOW}
973NUDGE_INTERPOL_WITH_XIOS =  n
974
975# HEIGHT_DISPLACEMENT ([m]  ) :  Magic number which relates the height to the displacement height.      {OK_SECHIBA }
976HEIGHT_DISPLACEMENT =  0.75
977
978# Z0_BARE ([m]   ) :  bare soil roughness length        {OK_SECHIBA }
979Z0_BARE =  0.01 
980
981# Z0_ICE ([m]   ) :  ice roughness length       {OK_SECHIBA }
982Z0_ICE =  0.001
983
984# TCST_SNOWA ([days]) :  Time constant of the albedo decay of snow      {OK_SECHIBA }
985TCST_SNOWA =  10.0 
986
987# SNOWCRI_ALB ([cm]  ) :  Critical value for computation of snow albedo         {OK_SECHIBA}
988SNOWCRI_ALB =  10. 
989
990# VIS_DRY ([-]  ) :  The correspondance table for the soil color numbers and their albedo       {OK_SECHIBA }
991VIS_DRY =  0.24, 0.22, 0.20, 0.18, 0.16, 0.14, 0.12, 0.10, 0.27
992
993# NIR_DRY ([-]   ) :  The correspondance table for the soil color numbers and their albedo      {OK_SECHIBA }
994NIR_DRY =  0.48, 0.44, 0.40, 0.36, 0.32, 0.28, 0.24, 0.20, 0.55
995
996# VIS_WET  ([-]   ) :  The correspondance table for the soil color numbers and their albedo     {OK_SECHIBA  }
997VIS_WET  =  0.12, 0.11, 0.10, 0.09, 0.08, 0.07, 0.06, 0.05, 0.15
998
999# NIR_WET ([-]    ) :  The correspondance table for the soil color numbers and their albedo     {OK_SECHIBA }
1000NIR_WET =  0.24, 0.22, 0.20, 0.18, 0.16, 0.14, 0.12, 0.10, 0.31
1001
1002# ALBSOIL_VIS ([-]  ) :         {OK_SECHIBA }
1003ALBSOIL_VIS =  0.18, 0.16, 0.16, 0.15, 0.12, 0.105, 0.09, 0.075, 0.25
1004
1005# ALBSOIL_NIR  ([-]  ) :        {OK_SECHIBA }
1006ALBSOIL_NIR  =  0.36, 0.34, 0.34, 0.33, 0.30, 0.25, 0.20, 0.15, 0.45
1007
1008# ALB_DEADLEAF  ([-]     ) :  albedo of dead leaves, VIS+NIR    {OK_SECHIBA }
1009ALB_DEADLEAF  =  0.12, 0.35
1010
1011# ALB_ICE ([-]  ) :  albedo of ice, VIS+NIR     {OK_SECHIBA}
1012ALB_ICE =  0.60, 0.20
1013
1014# CONDVEG_SNOWA ([-]) :  The snow albedo used by SECHIBA        {OK_SECHIBA}
1015CONDVEG_SNOWA =  1.E+20
1016
1017# ALB_BARE_MODEL ([FLAG]) :  Switch bare soil albedo dependent (if TRUE) on soil wetness        {OK_SECHIBA}
1018ALB_BARE_MODEL =  n
1019
1020# ALB_BG_MODIS ([FLAG]) :  Read bare soil albedo from file with background MODIS data   {OK_SECHIBA}
1021ALB_BG_MODIS =  y
1022
1023# IMPOSE_AZE ([FLAG]) :  Should the surface parameters be prescribed    {OK_SECHIBA}
1024IMPOSE_AZE =  n
1025
1026# CONDVEG_Z0 ([m]) :  Surface roughness         {IMPOSE_AZE}
1027CONDVEG_Z0 =  0.15
1028
1029# ROUGHHEIGHT ([m] ) :  Height to be added to the height of the first level     {IMPOSE_AZE}
1030ROUGHHEIGHT =  0.0
1031
1032# CONDVEG_ALBVIS ([-]) :  SW visible albedo for the surface     {IMPOSE_AZE}
1033CONDVEG_ALBVIS =  0.25
1034
1035# CONDVEG_ALBNIR ([-]  ) :  SW near infrared albedo for the surface     {IMPOSE_AZE}
1036CONDVEG_ALBNIR =  0.25
1037
1038# CONDVEG_EMIS ([-] ) :  Emissivity of the surface for LW radiation     {IMPOSE_AZE}
1039CONDVEG_EMIS =  1.0
1040
1041# ROUGH_DYN ([FLAG]) :  Account for a dynamic roughness height  {OK_SECHIBA}
1042ROUGH_DYN =  y
1043
1044# C1 ([-] ) :  Constant used in the formulation of the ratio of         {ROUGH_DYN}
1045C1 =  0.32
1046
1047# C2 ([-] ) :  Constant used in the formulation of the ratio of         {ROUGH_DYN}
1048C2 =  0.264
1049
1050# C3 ([-] ) :  Constant used in the formulation of the ratio of         {ROUGH_DYN}
1051C3 =  15.1
1052
1053# Cdrag_foliage ([-] ) :  Drag coefficient of the foliage       {ROUGH_DYN}
1054Cdrag_foliage =  0.2
1055
1056# Ct ([-] ) :  Heat transfer coefficient of the leaf    {ROUGH_DYN}
1057Ct =  0.01
1058
1059# Prandtl ([-] ) :  Prandtl number used in the calculation of Ct*       {ROUGH_DYN}
1060Prandtl =  0.71
1061
1062# xansmax  ([-] ) :  maximum snow albedo        {OK_SECHIBA}
1063xansmax  =  0.85
1064
1065# xansmin  ([-] ) :  minimum snow albedo        {OK_SECHIBA}
1066xansmin  =  0.50
1067
1068# xans_todry  ([S-1] ) :  albedo decay rate for the dry snow    {OK_SECHIBA}
1069xans_todry  =  0.008
1070
1071# xans_t  ([S-1] ) :  albedo decay rate for the wet snow        {OK_SECHIBA}
1072xans_t  =  0.24
1073
1074# xrhosmax  ([-] ) :  maximum snow density      {OK_SECHIBA}
1075xrhosmax  =  750
1076
1077# xwsnowholdmax1 ([-] ) :  snow holding capacity 1      {OK_SECHIBA}
1078xwsnowholdmax1 =  0.03
1079
1080# xwsnowholdmax2 ([-] ) :  snow holding capacity 2      {OK_SECHIBA}
1081xwsnowholdmax2 =  0.10
1082
1083# xsnowrhohold  ([kg/m3] ) :  snow density      {OK_SECHIBA}
1084xsnowrhohold  =  200.0
1085
1086# ZSNOWTHRMCOND1 ([W/m/K] ) :  Thermal conductivity Coef 1      {OK_SECHIBA}
1087ZSNOWTHRMCOND1 =  0.02 
1088
1089# ZSNOWTHRMCOND2 ([W m5/(kg2 K)] ) :  Thermal conductivity Coef 2       {OK_SECHIBA}
1090ZSNOWTHRMCOND2 =  2.5E-6
1091
1092# ZSNOWTHRMCOND_AVAP ([W/m/K] ) :  Thermal conductivity Coef 1 water vapor      {OK_SECHIBA}
1093ZSNOWTHRMCOND_AVAP =  -0.06023
1094
1095# ZSNOWTHRMCOND_BVAP ([W/m] ) :  Thermal conductivity Coef 2 water vapor        {OK_SECHIBA}
1096ZSNOWTHRMCOND_BVAP =  -2.5425
1097
1098# ZSNOWTHRMCOND_CVAP ([K] ) :  Thermal conductivity Coef 3 water vapor  {OK_SECHIBA}
1099ZSNOWTHRMCOND_CVAP =  -289.99
1100
1101# ZSNOWCMPCT_RHOD ([kg/m3]) :  Snow compaction coefficent       {OK_SECHIBA}
1102ZSNOWCMPCT_RHOD =  150.0
1103
1104# ZSNOWCMPCT_ACM ([1/s]) :  Coefficent for the thermal conductivity     {OK_SECHIBA}
1105ZSNOWCMPCT_ACM =  2.8e-6
1106
1107# ZSNOWCMPCT_BCM ([1/K]) :  Coefficent for the thermal conductivity     {OK_SECHIBA}
1108ZSNOWCMPCT_BCM =  0.04
1109
1110# ZSNOWCMPCT_CCM ([m3/kg] ) :  Coefficent for the thermal conductivity  {OK_SECHIBA}
1111ZSNOWCMPCT_CCM =  460.
1112
1113# ZSNOWCMPCT_V0 ([Pa/s]) :  Vapor coefficent for the thermal conductivity       {OK_SECHIBA}
1114ZSNOWCMPCT_V0 =  3.7e7
1115
1116# ZSNOWCMPCT_VT ([1/K]) :  Vapor coefficent for the thermal conductivity        {OK_SECHIBA}
1117ZSNOWCMPCT_VT =  0.081
1118
1119# ZSNOWCMPCT_VR ([m3/kg]) :  Vapor coefficent for the thermal conductivity      {OK_SECHIBA}
1120ZSNOWCMPCT_VR =  0.018
1121
1122# CB ([-] ) :  Constant of the Louis scheme     {OK_SECHIBA}
1123CB =  5.0
1124
1125# CC ([-] ) :  Constant of the Louis scheme     {OK_SECHIBA}
1126CC =  5.0
1127
1128# CD ([-] ) :  Constant of the Louis scheme     {OK_SECHIBA}
1129CD =  5.0
1130
1131# RAYT_CSTE ([W.m^{-2}] ) :  Constant in the computation of surface resistance          {OK_SECHIBA}
1132RAYT_CSTE =  125
1133
1134# DEFC_PLUS ([K.W^{-1}] ) :  Constant in the computation of surface resistance          {OK_SECHIBA}
1135DEFC_PLUS =  23.E-3
1136
1137# DEFC_MULT ([K.W^{-1}] ) :  Constant in the computation of surface resistance          {OK_SECHIBA}
1138DEFC_MULT =  1.5
1139
1140# NLAI ([-]  ) :  Number of LAI levels  {OK_SECHIBA}
1141NLAI =  20
1142
1143# LAIMAX ([m^2/m^2]   ) :  Maximum LAI  {OK_SECHIBA}
1144LAIMAX =   
1145
1146# DEW_VEG_POLY_COEFF ([-]   ) :  coefficients of the polynome of degree 5 for the dew   {OK_SECHIBA}
1147DEW_VEG_POLY_COEFF =  0.887773, 0.205673, 0.110112, 0.014843, 0.000824, 0.000017 
1148
1149# DOWNREGULATION_CO2 ([FLAG]   ) :  Activation of CO2 downregulation    {OK_SECHIBA}
1150DOWNREGULATION_CO2 =  y
1151
1152# DOWNREGULATION_CO2_BASELEVEL ([ppm]   ) :  CO2 base level     {OK_SECHIBA }
1153DOWNREGULATION_CO2_BASELEVEL =  380.
1154
1155# GB_REF ([s m-1]   ) :  Leaf bulk boundary layer resistance    {}
1156GB_REF =  1./25.
1157
1158# CLAYFRACTION_DEFAULT ([-]   ) :  default fraction of clay     {OK_SECHIBA }
1159CLAYFRACTION_DEFAULT =  0.2 
1160
1161# SILTFRACTION_DEFAULT ([-]   ) :  default fraction of silt     {OK_SECHIBA }
1162SILTFRACTION_DEFAULT =  0.5 
1163
1164# BULK_DEFAULT ([kg/m3]   ) :  default bulk density     {OK_SECHIBA }
1165BULK_DEFAULT =  1000
1166
1167# PH_DEFAULT ([-]   ) :  default soil pH        {OK_SECHIBA }
1168PH_DEFAULT =  5.5
1169
1170# SANDFRACTION_DEFAULT ([-]   ) :  default fraction of sand     {OK_SECHIBA }
1171SANDFRACTION_DEFAULT =  0.4 
1172
1173# SILTFRACTION_DEFAULT ([-]   ) :  default fraction of silt     {OK_SECHIBA }
1174SILTFRACTION_DEFAULT =  0.4 
1175
1176# MIN_VEGFRAC  ([-]  ) :  Minimal fraction of mesh a vegetation type can occupy         {OK_SECHIBA }
1177MIN_VEGFRAC  =  0.001 
1178
1179# STEMPDIAG_BID  ([K]) :  only needed for an initial LAI if there is no restart file    {OK_SECHIBA }
1180STEMPDIAG_BID  =  280.
1181
1182# LAI_LEVEL_DEPTH ([-]  ) :     {}
1183LAI_LEVEL_DEPTH =  0.15
1184
1185# Oi ([ubar]  ) :  Intercellular oxygen partial pressure        {}
1186Oi =  210000.
1187
1188# TOO_LONG  ([days]   ) :  longest sustainable time without regeneration (vernalization)        {OK_STOMATE}
1189TOO_LONG  =  5.
1190
1191# TAU_FIRE  ([days]    ) :  Time scale for memory of the fire index (days). Validated for one year in the DGVM.         {OK_STOMATE }
1192TAU_FIRE  =  30.
1193
1194# LITTER_CRIT ([gC/m^2]  ) :  Critical litter quantity for fire         {OK_STOMATE }
1195LITTER_CRIT =  200.
1196
1197# FIRE_RESIST_LIGNIN ([-]  ) :          {OK_STOMATE }
1198FIRE_RESIST_LIGNIN =  0.5
1199
1200# CO2FRAC ([-]  ) :  What fraction of a burned plant compartment goes into the atmosphere       {OK_STOMATE }
1201CO2FRAC =  0.95, 0.95, 0., 0.3, 0., 0., 0.95, 0.95
1202
1203# BCFRAC_COEFF ([-]  ) :        {OK_STOMATE }
1204BCFRAC_COEFF =  0.3, 1.3, 88.2 
1205
1206# FIREFRAC_COEFF  ([-]   ) :    {OK_STOMATE }
1207FIREFRAC_COEFF  =  0.45, 0.8, 0.6, 0.13
1208
1209# REF_GREFF ([1/year]  ) :  Asymptotic maximum mortality rate   {OK_STOMATE }
1210REF_GREFF =  0.035
1211
1212# RESERVE_TIME_TREE  ([days]    ) :  maximum time during which reserve is used (trees)          {OK_STOMATE }
1213RESERVE_TIME_TREE  =  30.
1214
1215# RESERVE_TIME_GRASS  ([days]   ) :  maximum time during which reserve is used (grasses)        {OK_STOMATE }
1216RESERVE_TIME_GRASS  =  20. 
1217
1218# PRECIP_CRIT  ([mm/year]  ) :  minimum precip  {OK_STOMATE }
1219PRECIP_CRIT  =  100.
1220
1221# GDD_CRIT_ESTAB ([-]  ) :  minimum gdd for establishment of saplings   {OK_STOMATE }
1222GDD_CRIT_ESTAB =  150. 
1223
1224# FPC_CRIT ([-]  ) :  critical fpc, needed for light competition and establishment      {OK_STOMATE }
1225FPC_CRIT =  0.95
1226
1227# ALPHA_GRASS ([-]   ) :  sapling characteristics : alpha's     {OK_STOMATE }
1228ALPHA_GRASS =  0.5
1229
1230# ALPHA_TREE ([-]   ) :  sapling characteristics : alpha's      {OK_STOMATE }
1231ALPHA_TREE =  1.
1232
1233# STRUCT_TO_LEAVES ([-]   ) :  Fraction of structural carbon in grass and crops as a share of the leaf  {OK_STOMATE }
1234STRUCT_TO_LEAVES =  0.5
1235
1236# LABILE_TO_TOTAL ([-]   ) :  Fraction of the labile pool in trees, grasses and crops as a share of the         {OK_STOMATE }
1237LABILE_TO_TOTAL =  0.01
1238
1239# TAU_HUM_MONTH ([days]  ) :  time scales for phenology and other processes     {OK_STOMATE }
1240TAU_HUM_MONTH =  20. 
1241
1242# TAU_HUM_WEEK ([days]   ) :  time scales for phenology and other processes     {OK_STOMATE }
1243TAU_HUM_WEEK =  7.
1244
1245# TAU_T2M_MONTH ([days]     ) :  time scales for phenology and other processes  {OK_STOMATE }
1246TAU_T2M_MONTH =  20.
1247
1248# TAU_T2M_WEEK ([days]   ) :  time scales for phenology and other processes     {OK_STOMATE }
1249TAU_T2M_WEEK =  7.
1250
1251# TAU_TSOIL_MONTH  ([days]     ) :  time scales for phenology and other processes       {OK_STOMATE }
1252TAU_TSOIL_MONTH  =  20. 
1253
1254# TAU_SOILHUM_MONTH ([days]   ) :  time scales for phenology and other processes        {OK_STOMATE }
1255TAU_SOILHUM_MONTH =  20. 
1256
1257# TAU_GPP_WEEK  ([days]   ) :  time scales for phenology and other processes    {OK_STOMATE }
1258TAU_GPP_WEEK  =  7. 
1259
1260# TAU_GDD ([days]   ) :  time scales for phenology and other processes  {OK_STOMATE }
1261TAU_GDD =  40. 
1262
1263# TAU_NGD ([days]   ) :  time scales for phenology and other processes  {OK_STOMATE }
1264TAU_NGD =  50.
1265
1266# COEFF_TAU_LONGTERM ([days]   ) :  time scales for phenology and other processes       {OK_STOMATE }
1267COEFF_TAU_LONGTERM =  3. 
1268
1269# BM_SAPL_CARBRES  ([-]   ) :           {OK_STOMATE }
1270BM_SAPL_CARBRES  =  5. 
1271
1272# BM_SAPL_SAPABOVE ([-]    ) :          {OK_STOMATE}
1273BM_SAPL_SAPABOVE =  0.5 
1274
1275# BM_SAPL_HEARTABOVE  ([-]    ) :       {OK_STOMATE }
1276BM_SAPL_HEARTABOVE  =  2.
1277
1278# BM_SAPL_HEARTBELOW  ([-]    ) :       {OK_STOMATE }
1279BM_SAPL_HEARTBELOW  =  2. 
1280
1281# BM_SAPL_LABILE  ([-]   ) :    {OK_STOMATE }
1282BM_SAPL_LABILE  =  5. 
1283
1284# INIT_SAPL_MASS_LABILE ([-]    ) :     {OK_STOMATE }
1285INIT_SAPL_MASS_LABILE =  5. 
1286
1287# INIT_SAPL_MASS_LEAF_NAT ([-]    ) :           {OK_STOMATE }
1288INIT_SAPL_MASS_LEAF_NAT =  0.1 
1289
1290# INIT_SAPL_MASS_LEAF_AGRI ([-]    ) :          {OK_STOMATE }
1291INIT_SAPL_MASS_LEAF_AGRI =  1. 
1292
1293# INIT_SAPL_MASS_CARBRES ([-]    ) :    {OK_STOMATE }
1294INIT_SAPL_MASS_CARBRES =  5. 
1295
1296# INIT_SAPL_MASS_ROOT ([-]   ) :        {OK_STOMATE }
1297INIT_SAPL_MASS_ROOT =  0.1 
1298
1299# INIT_SAPL_MASS_FRUIT ([-]    ) :      {OK_STOMATE }
1300INIT_SAPL_MASS_FRUIT =  0.3 
1301
1302# CN_SAPL_INIT  ([-]   ) :      {OK_STOMATE }
1303CN_SAPL_INIT  =  0.5 
1304
1305# MIGRATE_TREE  ([m/year]   ) :         {OK_STOMATE }
1306MIGRATE_TREE  =  10000.
1307
1308# MIGRATE_GRASS ([m/year]   ) :         {OK_STOMATE }
1309MIGRATE_GRASS =  10000.
1310
1311# LAI_INITMIN_TREE ([m^2/m^2]  ) :      {OK_STOMATE }
1312LAI_INITMIN_TREE =  0.3
1313
1314# LAI_INITMIN_GRASS  ([m^2/m^2]    ) :          {OK_STOMATE }
1315LAI_INITMIN_GRASS  =  0.1
1316
1317# DIA_COEFF ([-]   ) :          {OK_STOMATE }
1318DIA_COEFF =  4., 0.5
1319
1320# MAXDIA_COEFF ([-]   ) :       {OK_STOMATE }
1321MAXDIA_COEFF =  100., 0.01 
1322
1323# BM_SAPL_LEAF ([-]  ) :        {OK_STOMATE }
1324BM_SAPL_LEAF =  4., 4., 0.8, 5. 
1325
1326# CN ([-]  ) :  C/N ratio       {OK_STOMATE }
1327CN =  40., 40., 40., 40., 40., 40., 40., 40.
1328
1329# FRAC_SOIL_STRUCT_SUA ([-]) :  frac_soil(istructural,isurface,iabove)  {OK_STOMATE }
1330FRAC_SOIL_STRUCT_SUA =  0.55
1331
1332# FRAC_SOIL_METAB_SUA  ([-]   ) :  frac_soil(imetabolic,isurface,iabove)        {OK_STOMATE }
1333FRAC_SOIL_METAB_SUA  =  0.4 
1334
1335# TURN_METABOLIC ([days] ) :    {OK_STOMATE }
1336TURN_METABOLIC =  0.066
1337
1338# TURN_STRUCT  ([days]) :       {OK_STOMATE }
1339TURN_STRUCT  =  0.245 
1340
1341# TURN_WOODY ([days]) :         {OK_STOMATE }
1342TURN_WOODY =  0.75
1343
1344# METABOLIC_REF_FRAC ([-]) :    {OK_STOMATE }
1345METABOLIC_REF_FRAC =  0.85   
1346
1347# Z_DECOMP ([m]   ) :  scaling depth for soil activity  {OK_STOMATE }
1348Z_DECOMP =  0.2
1349
1350# FRAC_SOIL_STRUCT_A  ([-]) :  frac_soil(istructural,iactive,ibelow)    {OK_STOMATE }
1351FRAC_SOIL_STRUCT_A  =  0.45
1352
1353# FRAC_SOIL_STRUCT_SA ([-]   ) :  frac_soil(istructural,islow,iabove)   {OK_STOMATE}
1354FRAC_SOIL_STRUCT_SA =  0.7   
1355
1356# FRAC_SOIL_STRUCT_SB ([-]   ) :  frac_soil(istructural,islow,ibelow)   {OK_STOMATE }
1357FRAC_SOIL_STRUCT_SB =  0.7   
1358
1359# FRAC_SOIL_METAB_AB  ([-]   ) :  frac_soil(imetabolic,iactive,ibelow)  {OK_STOMATE }
1360FRAC_SOIL_METAB_AB  =  0.45   
1361
1362# METABOLIC_LN_RATIO ([-]   ) :         {OK_STOMATE }
1363METABOLIC_LN_RATIO =  0.018   
1364
1365# SOIL_Q10 ([-]) :      {OK_STOMATE }
1366SOIL_Q10 =  0.69 (
1367
1368# SOIL_Q10_UPTAKE ([-]) :       {OK_STOMATE }
1369SOIL_Q10_UPTAKE =  0.69 (
1370
1371# TSOIL_REF ([C]   ) :          {OK_STOMATE }
1372TSOIL_REF =  30. 
1373
1374# LITTER_STRUCT_COEF  ([-]   ) :        {OK_STOMATE }
1375LITTER_STRUCT_COEF  =  3. 
1376
1377# MOIST_COEFF ([-]   ) :        {OK_STOMATE }
1378MOIST_COEFF =  1.1, 2.4, 0.29
1379
1380# MOISTCONT_MIN ([-]) :  minimum soil wetness to limit the heterotrophic respiration    {OK_STOMATE }
1381MOISTCONT_MIN =  0.25
1382
1383# FRAC_TURNOVER_DAILY  ([-]) :          {OK_STOMATE }
1384FRAC_TURNOVER_DAILY  =  0.55
1385
1386# TAX_MAX ([-]   ) :  maximum fraction of allocatable biomass used for maintenance respiration  {OK_STOMATE }
1387TAX_MAX =  0.8
1388
1389# MIN_GROWTHINIT_TIME  ([days]  ) :  minimum time since last beginning of a growing season      {OK_STOMATE }
1390MIN_GROWTHINIT_TIME  =  300. 
1391
1392# MOIAVAIL_ALWAYS_TREE ([-]   ) :  moisture availability above which moisture tendency doesn't matter   {OK_STOMATE }
1393MOIAVAIL_ALWAYS_TREE =  1.0 
1394
1395# MOIAVAIL_ALWAYS_GRASS  ([-]   ) :  moisture availability above which moisture tendency doesn't matter         {OK_STOMATE }
1396MOIAVAIL_ALWAYS_GRASS  =  0.6 
1397
1398# T_ALWAYS_ADD ([C]    ) :  monthly temp. above which temp. tendency doesn't matter     {OK_STOMATE }
1399T_ALWAYS_ADD =  10.
1400
1401# GDDNCD_REF  ([-]   ) :        {OK_STOMATE }
1402GDDNCD_REF  =  603. 
1403
1404# GDDNCD_CURVE ([-]  ) :        {OK_STOMATE }
1405GDDNCD_CURVE =  0.0091 
1406
1407# GDDNCD_OFFSET ([-]  ) :       {OK_STOMATE }
1408GDDNCD_OFFSET =  64. 
1409
1410# BM_SAPL_RESCALE  ([-]  ) :    {OK_STOMATE }
1411BM_SAPL_RESCALE  =  40. 
1412
1413# MAINT_RESP_MIN_VMAX ([-]  ) :         {OK_STOMATE }
1414MAINT_RESP_MIN_VMAX =  0.3
1415
1416# MAINT_RESP_COEFF  ([-] ) :    {OK_STOMATE }
1417MAINT_RESP_COEFF  =  1.4 
1418
1419# ACTIVE_TO_PASS_CLAY_FRAC ([-] ) :     {OK_STOMATE }
1420ACTIVE_TO_PASS_CLAY_FRAC =  0.68   
1421
1422# ACTIVE_TO_PASS_REF_FRAC ([-]) :  Fixed fraction from Active to Passive pool   {OK_STOMATE }
1423ACTIVE_TO_PASS_REF_FRAC =  0.003
1424
1425# SURF_TO_SLOW_REF_FRAC ([-]) :  Fixed fraction from Surface to Slow pool       {OK_STOMATE }
1426SURF_TO_SLOW_REF_FRAC =  0.4
1427
1428# ACTIVE_TO_CO2_REF_FRAC ([-]) :  Fixed fraction from Active pool to CO2 emission       {OK_STOMATE }
1429ACTIVE_TO_CO2_REF_FRAC =  0.85
1430
1431# SLOW_TO_PASS_REF_FRAC ([-]) :  Fixed fraction from Slow to Passive pool       {OK_STOMATE }
1432SLOW_TO_PASS_REF_FRAC =  0.003
1433
1434# SLOW_TO_CO2_REF_FRAC ([-]) :  Fixed fraction from Slow pool to CO2 emission   {OK_STOMATE }
1435SLOW_TO_CO2_REF_FRAC =  0.55
1436
1437# PASS_TO_ACTIVE_REF_FRAC ([-]) :  Fixed fraction from Passive to Active pool   {OK_STOMATE }
1438PASS_TO_ACTIVE_REF_FRAC =  0.45
1439
1440# PASS_TO_SLOW_REF_FRAC ([-]) :  Fixed fraction from Passive to Slow pool       {OK_STOMATE }
1441PASS_TO_SLOW_REF_FRAC =  0.
1442
1443# ACTIVE_TO_CO2_CLAY_SILT_FRAC ([-]) :  Clay-Silt-dependant fraction from Active pool to CO2 emission   {OK_STOMATE }
1444ACTIVE_TO_CO2_CLAY_SILT_FRAC =  0.68
1445
1446# SLOW_TO_PASS_CLAY_FRAC ([-]) :  Clay-dependant fraction from Slow to Passive pool     {OK_STOMATE }
1447SLOW_TO_PASS_CLAY_FRAC =  -0.009
1448
1449# SOM_TURN_IACTIVE ( [year-1] ) :  turnover in active pool      {OK_STOMATE }
1450SOM_TURN_IACTIVE =  7.3
1451
1452# SOM_TURN_ISLOW ([year-1]) :  turnover in slow pool    {OK_STOMATE }
1453SOM_TURN_ISLOW =  0.2
1454
1455# SOM_TURN_IPASSIVE ([year-1] ) :  turnover in passive pool     {OK_STOMATE }
1456SOM_TURN_IPASSIVE =  0.0045
1457
1458# SOM_TURN_IACTIVE_CLAY_FRAC ([-] ) :  clay-dependant parameter impacting on turnover rate of active pool - Tm parameter of Parton et al. 1993 (-)      {OK_STOMATE }
1459SOM_TURN_IACTIVE_CLAY_FRAC =  0.75
1460
1461# CN_TARGET_IACTIVE_REF ([-] ) :  CN target ratio of active pool for soil min N         {OK_STOMATE }
1462CN_TARGET_IACTIVE_REF =  15.
1463
1464# CN_TARGET_ISLOW_REF ([-] ) :  CN target ratio of slow pool for soil min N     {OK_STOMATE }
1465CN_TARGET_ISLOW_REF =  20.
1466
1467# CN_TARGET_IPASSIVE_REF ([-] ) :  CN target ratio of passive pool for soil min N       {OK_STOMATE }
1468CN_TARGET_IPASSIVE_REF =  10.
1469
1470# CN_TARGET_IACTIVE_NMIN ([(g m-2)-1] ) :  CN target ratio change per mineral N unit (g m-2) for active pool    {OK_STOMATE }
1471CN_TARGET_IACTIVE_NMIN =  -6.
1472
1473# CN_TARGET_ISLOW_NMIN ([(g m-2)-1] ) :  CN target ratio change per mineral N unit (g m-2) for slow pool        {OK_STOMATE }
1474CN_TARGET_ISLOW_NMIN =  -4.
1475
1476# CN_TARGET_IPASSIVE_NMIN ([(g m-2)-1] ) :  CN target ratio change per mineral N unit (g m-2) for passive pool          {OK_STOMATE }
1477CN_TARGET_IPASSIVE_NMIN =  -1.5
1478
1479# H_SAXTON ([-]  ) :  Coefficient h for defining maximum porosity       {OK_STOMATE }
1480H_SAXTON =  0.332
1481
1482# J_SAXTON ([-]  ) :  Coefficient j for defining maximum porosity       {OK_STOMATE }
1483J_SAXTON =  -7.251*1e-4 
1484
1485# K_SAXTON ([-]  ) :  Coefficient k for defining maximum porosity       {OK_STOMATE }
1486K_SAXTON =  O.1276
1487
1488# DIFFUSIONO2_POWER_1 ([-]  ) :  Power used in the equation defining the diffusion of oxygen in soil    {OK_STOMATE }
1489DIFFUSIONO2_POWER_1 =  3.33
1490
1491# DIFFUSIONO2_POWER_2 ([-]  ) :  Power used in the equation defining the diffusion of oxygen in soil    {OK_STOMATE }
1492DIFFUSIONO2_POWER_2 =  2.0
1493
1494# F_NOFROST ([-]  ) :  Temperature-related Factor impacting on Oxygen diffusion rate    {OK_STOMATE }
1495F_NOFROST =  1.2
1496
1497# F_FROST ([-]  ) :  Temperature-related Factor impacting on Oxygen diffusion rate      {OK_STOMATE }
1498F_FROST =  0.8
1499
1500# A_ANVF ([-]  ) :  Coefficient used in the calculation of Volumetric fraction of anaerobic microsites  {OK_STOMATE }
1501A_ANVF =  0.85
1502
1503# B_ANVF ([-]  ) :  Coefficient used in the calculation of Volumetric fraction of anaerobic microsites  {OK_STOMATE }
1504B_ANVF =  1.
1505
1506# A_FIXNH4 ([-]  ) :  Coefficient used in the calculation of the Fraction of adsorbed NH4+      {OK_STOMATE }
1507A_FIXNH4 =  0.41
1508
1509# B_FIXNH4 ([-]  ) :  Coefficient used in the calculation of the Fraction of adsorbed NH4+      {OK_STOMATE }
1510B_FIXNH4 =  -0.47
1511
1512# CLAY_MAX ([-]  ) :  Coefficient used in the calculation of the Fraction of adsorbed NH4+      {OK_STOMATE }
1513CLAY_MAX =  0.63
1514
1515# FWNIT_0 ([-]  ) :  Coefficient used in the calculation of the Response of Nitrification to soil moisture      {OK_STOMATE }
1516FWNIT_0 =  -0.0243
1517
1518# FWNIT_1 ([-]  ) :  Coefficient used in the calculation of the Response of Nitrification to soil moisture      {OK_STOMATE }
1519FWNIT_1 =  0.9975
1520
1521# FWNIT_2 ([-]  ) :  Coefficient used in the calculation of the Response of Nitrification to soil moisture      {OK_STOMATE }
1522FWNIT_2 =  -5.5368
1523
1524# FWNIT_3 ([-]  ) :  Coefficient used in the calculation of the Response of Nitrification to soil moisture      {OK_STOMATE }
1525FWNIT_3 =  17.651
1526
1527# FWNIT_4 ([-]  ) :  Coefficient used in the calculation of the Response of Nitrification to soil moisture      {OK_STOMATE }
1528FWNIT_4 =  -12.904
1529
1530# FT_NIT_0 ([-]  ) :  Coefficient used in the calculation of the Response of Nitrification to Temperature       {OK_STOMATE }
1531FT_NIT_0 =  -0.0233
1532
1533# FT_NIT_1 ([-]  ) :  Coefficient used in the calculation of the Response of Nitrification to Temperature       {OK_STOMATE }
1534FT_NIT_1 =  0.3094
1535
1536# FT_NIT_2 ([-]  ) :  Coefficient used in the calculation of the Response of Nitrification to Temperature       {OK_STOMATE }
1537FT_NIT_2 =  -0.2234
1538
1539# FT_NIT_3 ([-]  ) :  Coefficient used in the calculation of the Response of Nitrification to Temperature       {OK_STOMATE }
1540FT_NIT_3 =  0.1566
1541
1542# FT_NIT_4 ([-]  ) :  Coefficient used in the calculation of the Response of Nitrification to Temperature       {OK_STOMATE }
1543FT_NIT_4 =  -0.0272
1544
1545# FPH_0 ([-]  ) :  Coefficient used in the calculation of the Response of Nitrification to pH   {OK_STOMATE }
1546FPH_0 =  -1.2314
1547
1548# FPH_1 ([-]  ) :  Coefficient used in the calculation of the Response of Nitrification to pH   {OK_STOMATE }
1549FPH_1 =  0.7347
1550
1551# FPH_2 ([-]  ) :  Coefficient used in the calculation of the Response of Nitrification to pH   {OK_STOMATE }
1552FPH_2 =  -0.0604
1553
1554# FTV_0 ([-]  ) :  Coefficient used in the calculation of the response of NO2 or NO production during nitrificationof to Temperature    {OK_STOMATE }
1555FTV_0 =  2.72
1556
1557# FTV_1 ([-]  ) :  Coefficient used in the calculation of the response of NO2 or NO production during nitrificationof to Temperature    {OK_STOMATE }
1558FTV_1 =  34.6
1559
1560# FTV_2 ([-]  ) :  Coefficient used in the calculation of the response of NO2 or NO production during nitrificationof to Temperature    {OK_STOMATE }
1561FTV_2 =  9615.
1562
1563# K_NITRIF ([day**-1]  ) :  Nitrification rate at 20 ◩C and field capacity    {OK_STOMATE }
1564K_NITRIF =  0.2
1565
1566# N2O_NITRIF_P ([gN-N2O (gN-NO3)-1]  ) :  Reference n2o production per N-NO3 produced g N-N2O   {OK_STOMATE }
1567N2O_NITRIF_P =  0.0006
1568
1569# NO_NITRIF_P ([gN-NO (gN-NO3)-1]  ) :  Reference NO production per N-NO3 produced g N-N2O      {OK_STOMATE }
1570NO_NITRIF_P =  0.0025
1571
1572# CHEMO_T0 ([-]  ) :  Coefficient used in the calculation of the Response of NO production from chemodenitrification to Temperature     {OK_STOMATE }
1573CHEMO_T0 =  -31494
1574
1575# CHEMO_PH0 ([-]  ) :  Coefficient used in the calculation of the Response of NO production from chemodenitrification to pH     {OK_STOMATE }
1576CHEMO_PH0 =  -1.62
1577
1578# CHEMO_0 ([-]  ) :  Coefficient used in the calculation of NO production from chemodenitrification     {OK_STOMATE }
1579CHEMO_0 =  30.
1580
1581# CHEMO_1 ([-]  ) :  Coefficient used in the calculation of NO production from chemodenitrification     {OK_STOMATE }
1582CHEMO_1 =  16565
1583
1584# FT_DENIT_0 ([-]  ) :  Coefficient used in the response of relative growth rate of total denitrifiers to Temperature   {OK_STOMATE }
1585FT_DENIT_0 =  2.
1586
1587# FT_DENIT_1 ([-]  ) :  Coefficient used in the response of relative growth rate of total denitrifiers to Temperature   {OK_STOMATE }
1588FT_DENIT_1 =  22.5
1589
1590# FT_DENIT_2 ([-]  ) :  Coefficient used in the response of relative growth rate of total denitrifiers to Temperature   {OK_STOMATE }
1591FT_DENIT_2 =  10
1592
1593# FPH_NO3_0 ([-]  ) :  Coefficient used in the response of relative growth rate of NO3 denitrifiers to pH       {OK_STOMATE }
1594FPH_NO3_0 =  4.25
1595
1596# FPH_NO3_1 ([-]  ) :  Coefficient used in the response of relative growth rate of NO3 denitrifiers to pH       {OK_STOMATE }
1597FPH_NO3_1 =  0.5
1598
1599# FPH_NO_0 ([-]  ) :  Coefficient used in the response of relative growth rate of NO denitrifiers to pH         {OK_STOMATE }
1600FPH_NO_0 =  5.25
1601
1602# FPH_NO_1 ([-]  ) :  Coefficient used in the response of relative growth rate of NO denitrifiers to pH         {OK_STOMATE }
1603FPH_NO_1 =  1.
1604
1605# FPH_N2O_0 ([-]  ) :  Coefficient used in the response of relative growth rate of N2O denitrifiers to pH       {OK_STOMATE }
1606FPH_N2O_0 =  6.25
1607
1608# FPH_N2O_1 ([-]  ) :  Coefficient used in the response of relative growth rate of N2O denitrifiers to pH       {OK_STOMATE }
1609FPH_N2O_1 =  1.5
1610
1611# KN ([kgN/m**3]  ) :  Half Saturation of N oxydes      {OK_STOMATE }
1612KN =  0.083
1613
1614# MU_NO3_MAX ([hour**-1]  ) :  Maximum Relative growth rate of NO3 denitrifiers         {OK_STOMATE }
1615MU_NO3_MAX =  0.67
1616
1617# MU_NO_MAX ([hour**-1]  ) :  Maximum Relative growth rate of NO denitrifiers   {OK_STOMATE }
1618MU_NO_MAX =  0.34
1619
1620# MU_N2O_MAX ([hour**-1]  ) :  Maximum Relative growth rate of N2O denitrifiers         {OK_STOMATE }
1621MU_N2O_MAX =  0.34
1622
1623# Y_NO3 ([kgC / kgN]  ) :  Maximum growth yield of NO3 denitrifiers on N oxydes         {OK_STOMATE }
1624Y_NO3 =  0.401
1625
1626# Y_NO ([kgC / kgN]  ) :  Maximum growth yield of NO denitrifiers on N oxydes   {OK_STOMATE }
1627Y_NO =  0.428
1628
1629# Y_N2O ([kgC / kgN]  ) :  Maximum growth yield of N2O denitrifiers on N oxydes         {OK_STOMATE }
1630Y_N2O =  0.151
1631
1632# M_NO3 ([kgN / kgC / hour]  ) :  Maintenance coefficient on NO3        {OK_STOMATE }
1633M_NO3 =  0.09
1634
1635# M_NO ([kgN / kgC / hour]  ) :  Maintenance coefficient on NO  {OK_STOMATE }
1636M_NO =  0.035
1637
1638# M_N2O ([kgN / kgC / hour]  ) :  Maintenance coefficient on N2O        {OK_STOMATE }
1639M_N2O =  0.079
1640
1641# MAINT_C ([kgC / kgC / hour]  ) :  Maintenance coefficient of carbon   {OK_STOMATE }
1642MAINT_C =  0.0076
1643
1644# YC ([kgC / kgC ]  ) :  Maximum growth yield on soluble carbon         {OK_STOMATE }
1645YC =  0.503
1646
1647# F_CLAY_0 ([-]  ) :  Coefficient used in the eq. defining the response of N-emission to clay fraction  {OK_STOMATE }
1648F_CLAY_0 =  0.13
1649
1650# F_CLAY_1 ([-]  ) :  Coefficient used in the eq. defining the response of N-emission to clay fraction  {OK_STOMATE }
1651F_CLAY_1 =  -0.079
1652
1653# RATIO_NH4_FERT ([-]  ) :  Proportion of ammonium in the fertilizers (ammo-nitrate)    {OK_STOMATE }
1654RATIO_NH4_FERT =  0.875
1655
1656# VMAX_UPTAKE ([umol (g DryWeight_root)-1 h-1)]  ) :  Vmax of nitrogen uptake by plants for Ammonium (ind.1) and Nitrate (ind.2)        {OK_STOMATE }
1657VMAX_UPTAKE =  3. 3.
1658
1659# K_N_MIN ([umol per litter]  ) :  [NH4+] and [NO3-] for which the Nuptake equals vmax/2.       {OK_STOMATE }
1660K_N_MIN =  30. 30.
1661
1662# LOW_K_N_MIN ([umol**-1]  ) :  Rate of N uptake not associated with Michaelis- Menten Kinetics for Ammonium    {OK_STOMATE }
1663LOW_K_N_MIN =  0.0002 0.0002
1664
1665# EMM_FAC ([-]  ) :  Factor for reducing NH3 emission           {OK_NCYCLE}
1666EMM_FAC =  0.2
1667
1668# FACT_KN_NO ([-]  ) :  Factor for adusting kn constant for NOx production      {OK_NCYCLE}
1669FACT_KN_NO =  0.012
1670
1671# FACT_KN_N2O ([-]  ) :  Factor for adusting kn constant for N2O production     {OK_NCYCLE}
1672FACT_KN_N2O =  0.04
1673
1674# FACT_FWDENIT ([-]  ) :  Factor for adjusting sensitivity of denitrification to water content  {OK_NCYCLE}
1675FACT_FWDENIT =  7.
1676
1677# FRACN_DRAINAGE ([-]  ) :  Fraction of NH3/NO3 loss by drainage        {OK_NCYCLE}
1678FRACN_DRAINAGE =  1.0
1679
1680# FRACN_RUNOFF ([-]  ) :  Fraction of NH3/NO3 loss by runoff    {OK_NCYCLE}
1681FRACN_RUNOFF =  0.3
1682
1683# LEAF_N_DMAX (???) :  ?????????????    {OK_STOMATE }
1684LEAF_N_DMAX =  0.25
1685
1686# NCIRC ([-]) :  Number of basal area classes in allocation scheme      {OK_STOMATE, functional allocation }
1687NCIRC =  2 
1688
1689# SYNC_THRESHOLD ([-]  ) :  The threshold value for a warning when we sync biomass      {OK_STOMATE, functional allocation }
1690SYNC_THRESHOLD =  0.1 
1691
1692# TEST_GRID ([-]) :  grid cell for which extra output is written to the out_execution file      {OK_STOMATE}
1693TEST_GRID =  1
1694
1695# TEST_PFT ([-]   ) :  pft for which extra output is written to the out_execution file  {OK_STOMATE}
1696TEST_PFT =  6
1697
1698# LD_ALLOC ([-]   ) :  A flag to turn of debug statement        {}
1699LD_ALLOC =  6
1700
1701# MAX_DELTA_KF ([m]  ) :  Maximum change in KF from one time step to another    {OK_STOMATE, functional allocation }
1702MAX_DELTA_KF =  0.1 
1703
1704# MAINT_FROM_GPP ([-]  ) :  Some carbon needs to remain to support the growth, hence,   {OK_STOMATE, functional allocation }
1705MAINT_FROM_GPP =  0.8
1706
1707# NEW_TURNOVER_TIME_REF ([days]  ) :    {OK_STOMATE }
1708NEW_TURNOVER_TIME_REF =  20. 
1709
1710# LEAF_AGE_CRIT_TREF ([days]  ) :       {OK_STOMATE }
1711LEAF_AGE_CRIT_TREF =  20. 
1712
1713# LEAF_AGE_CRIT_COEFF  ([-] ) :         {OK_STOMATE }
1714LEAF_AGE_CRIT_COEFF  =  1.5, 0.75, 10. 
1715
1716# VMAX_OFFSET  ([-]  ) :  offset (minimum relative vcmax)       {OK_STOMATE }
1717VMAX_OFFSET  =  0.3
1718
1719# LEAFAGE_FIRSTMAX ([-] ) :  leaf age at which vmax attains vcmax_opt (in fraction of critical leaf age)        {OK_STOMATE }
1720LEAFAGE_FIRSTMAX =  0.03 
1721
1722# LEAFAGE_LASTMAX  ([-]  ) :  leaf age at which vmax falls below vcmax_opt (in fraction of critical leaf age)   {OK_STOMATE }
1723LEAFAGE_LASTMAX  =  0.5 
1724
1725# LEAFAGE_OLD  ([-]  ) :  leaf age at which vmax attains its minimum (in fraction of critical leaf age)         {OK_STOMATE }
1726LEAFAGE_OLD  =  1.
1727
1728# GPPFRAC_DORMANCE  ([-]) :  rapport maximal GPP/GGP_max pour dormance  {OK_STOMATE }
1729GPPFRAC_DORMANCE  =  0.2 
1730
1731# TAU_CLIMATOLOGY ([days]) :  tau for "climatologic variables   {OK_STOMATE }
1732TAU_CLIMATOLOGY =  20
1733
1734# HVC1  ([-]  ) :  parameters for herbivore activity    {OK_STOMATE }
1735HVC1  =  0.019
1736
1737# HVC2  ([-]  ) :  parameters for herbivore activity    {OK_STOMATE }
1738HVC2  =  1.38
1739
1740# LEAF_FRAC_HVC ([-] ) :  parameters for herbivore activity     {OK_STOMATE }
1741LEAF_FRAC_HVC =  0.33
1742
1743# TLONG_REF_MAX ([K]  ) :  maximum reference long term temperature      {OK_STOMATE }
1744TLONG_REF_MAX =  303.1
1745
1746# TLONG_REF_MIN  ([K]  ) :  minimum reference long term temperature     {OK_STOMATE }
1747TLONG_REF_MIN  =  253.1
1748
1749# NCD_MAX_YEAR ([days]) :       {OK_STOMATE }
1750NCD_MAX_YEAR =  3. 
1751
1752# GDD_THRESHOLD  ([days] ) :    {OK_STOMATE }
1753GDD_THRESHOLD  =  5. 
1754
1755# GREEN_AGE_EVER  ([-]  ) :     {OK_STOMATE }
1756GREEN_AGE_EVER  =  2. 
1757
1758# GREEN_AGE_DEC ([-] ) :        {OK_STOMATE }
1759GREEN_AGE_DEC =  0.5 
1760
1761# ESTAB_MAX_TREE ([-]   ) :  Maximum tree establishment rate    {OK_DGVM}
1762ESTAB_MAX_TREE =  0.12 
1763
1764# ESTAB_MAX_GRASS ([-]  ) :  Maximum grass establishment rate   {OK_DGVM}
1765ESTAB_MAX_GRASS =  0.12 
1766
1767# ESTABLISH_SCAL_FACT ([-] ) :          {OK_DGVM }
1768ESTABLISH_SCAL_FACT =  5.
1769
1770# MAX_TREE_COVERAGE  ([-] ) :           {OK_DGVM }
1771MAX_TREE_COVERAGE  =  0.98
1772
1773# IND_0_ESTAB ([-]  ) :         {OK_DGVM }
1774IND_0_ESTAB =  0.2
1775
1776# ANNUAL_INCREASE ([FLAG]) :  for diagnosis of fpc increase, compare today's fpc to last year's maximum (T) or to fpc of last time step (F)?    {OK_DGVM}
1777ANNUAL_INCREASE =  y
1778
1779# MIN_COVER  ([-]  ) :  For trees, minimum fraction of crown area occupied      {OK_DGVM}
1780MIN_COVER  =  0.05 
1781
1782# IND_0  ([-]  ) :  initial density of individuals      {OK_DGVM}
1783IND_0  =  0.02 
1784
1785# MIN_AVAIL ([-]  ) :  minimum availability     {OK_DGVM}
1786MIN_AVAIL =  0.01
1787
1788# RIP_TIME_MIN ([year]  ) :     {OK_DGVM}
1789RIP_TIME_MIN =  1.25 
1790
1791# NPP_LONGTERM_INIT ([gC/m^2/year]) :           {OK_DGVM}
1792NPP_LONGTERM_INIT =  10.
1793
1794# EVERYWHERE_INIT ([-] ) :      {OK_DGVM}
1795EVERYWHERE_INIT =  0.05 
1796
1797# PRINTLEV ([0, 1, 2, 3, 4]) :  Print level for text output     {}
1798PRINTLEV =  2
1799
1800# PRINTLEV_modname ([0, 1, 2, 3, 4]) :  Specific print level of text output for the module "modname". Default as PRINTLEV.      {}
1801PRINTLEV_modname =  PRINTLEV
1802
1803# DRY_SOIL_HEAT_CAPACITY ([J.m^{-3}.K^{-1}] ) :  Dry soil Heat capacity of soils        {OK_SECHIBA }
1804DRY_SOIL_HEAT_CAPACITY =  1.80e+6
1805
1806# DRY_SOIL_HEAT_COND ([W.m^{-2}.K^{-1}] ) :  Dry soil Thermal Conductivity of soils     {OK_SECHIBA}
1807DRY_SOIL_HEAT_COND =  0.40 
1808
1809# WET_SOIL_HEAT_CAPACITY ([J.m^{-3}.K^{-1}]) :  Wet soil Heat capacity of soils         {OK_SECHIBA}
1810WET_SOIL_HEAT_CAPACITY =  3.03e+6
1811
1812# WET_SOIL_HEAT_COND ([W.m^{-2}.K^{-1}]) :  Wet soil Thermal Conductivity of soils      {OK_SECHIBA }
1813WET_SOIL_HEAT_COND =  1.89 
1814
1815# SNOW_HEAT_COND ([W.m^{-2}.K^{-1}]) :  Thermal Conductivity of snow    {OK_SECHIBA  }
1816SNOW_HEAT_COND =  0.3
1817
1818# SNOW_DENSITY ([-] ) :  Snow density for the soil thermodynamics       {OK_SECHIBA }
1819SNOW_DENSITY =  330.0
1820
1821# NOBIO_WATER_CAPAC_VOLUMETRI ([s/m^2]) :       {}
1822NOBIO_WATER_CAPAC_VOLUMETRI =  150.
1823
1824# SECHIBA_QSINT  ([m]) :  Interception reservoir coefficient    {OK_SECHIBA }
1825SECHIBA_QSINT  =  0.02
1826
1827# OK_FREEZE ([FLAG]) :  Activate the complet soil freezing scheme       {OK_SECHIBA }
1828OK_FREEZE =  TRUE
1829
1830# READ_REFTEMP ([FLAG]) :  Initialize soil temperature using climatological temperature         {}
1831READ_REFTEMP =  True/False depening on OK_FREEZE
1832
1833# OK_FREEZE_THERMIX ([FLAG]) :  Activate thermal part of the soil freezing scheme       {}
1834OK_FREEZE_THERMIX =  True if OK_FREEZE else false
1835
1836# OK_ECORR ([FLAG]) :  Energy correction for freezing   {OK_FREEZE_THERMIX}
1837OK_ECORR =  True if OK_FREEZE else false
1838
1839# OK_FREEZE_THAW_LATENT_HEAT ([FLAG]) :  Activate latent heat part of the soil freezing scheme  {}
1840OK_FREEZE_THAW_LATENT_HEAT =  FALSE 
1841
1842# POROS ([-] ) :  Soil porosity         {OK_SECHIBA}
1843POROS =  0.41
1844
1845# fr_dT ([K] ) :  Freezing window       {OK_SECHIBA}
1846fr_dT =  2.0
1847
1848# OK_FREEZE_CWRR ([FLAG]) :  CWRR freezing scheme by I. Gouttevin       {}
1849OK_FREEZE_CWRR =  True if OK_FREEZE else false
1850
1851# OK_THERMODYNAMICAL_FREEZING ([FLAG]) :  Calculate frozen fraction thermodynamically   {OK_FREEZE_CWRR}
1852OK_THERMODYNAMICAL_FREEZING =  True
1853
1854# CHECK_CWRR ([FLAG]) :  Calculate diagnostics to check CWRR water balance      {}
1855CHECK_CWRR =  n
1856
1857# VEGET_UPDATE ([years]) :  Update vegetation frequency         {}
1858VEGET_UPDATE =  0Y
1859
1860# SECHIBA_ZCANOP ([m]) :  Soil level used for canopy development (if STOMATE disactivated)      {OK_SECHIBA and .NOT. OK_STOMATE  }
1861SECHIBA_ZCANOP =  0.5
1862
1863# SECHIBA_QSINT  ([m]) :  Interception reservoir coefficient    {OK_SECHIBA }
1864SECHIBA_QSINT  =  0.1
1865
1866# SECHIBA_VEGMAX ([-]) :  Maximum vegetation distribution within the mesh (0-dim mode)  {IMPOSE_VEG}
1867SECHIBA_VEGMAX =  0.2, 0.0, 0.0, 0.0, 0.0, 0.0, 0.0, 0.0, 0.0, 0.8, 0.0, 0.0, 0.0
1868
1869# SECHIBA_FRAC_NOBIO ([-]) :  Fraction of other surface types within the mesh (0-dim mode)      {IMPOSE_VEG}
1870SECHIBA_FRAC_NOBIO =  0.0
1871
1872# SECHIBA_LAI ([-]) :  LAI for all vegetation types (0-dim mode)        {IMPOSE_VEG}
1873SECHIBA_LAI =  0., 8., 8., 4., 4.5, 4.5, 4., 4.5, 4., 2., 2., 2., 2.
1874
1875# SOIL_FRACTIONS ([-]) :  Fraction of the 3 soil types (0-dim mode)     {IMPOSE_VEG and IMPOSE_SOILT}
1876SOIL_FRACTIONS =  -9999._sechiba
1877
1878# CLAY_FRACTION ([-] ) :  Fraction of the clay fraction (0-dim mode)    {IMPOSE_VEG and IMPOSE_SOIL}
1879CLAY_FRACTION =  0.2
1880
1881# SAND_FRACTION ([-] ) :  Fraction of the clay fraction (0-dim mode)    {IMPOSE_VEG and IMPOSE_SOIL}
1882SAND_FRACTION =  0.4
1883
1884# BULK  ([-] ) :  Bulk density (0-dim mode)     {IMPOSE_VEG and IMPOSE_SOIL}
1885BULK  =  XXX
1886
1887# SOIL_PH ([-] ) :  Soil pH (0-dim mode)        {IMPOSE_VEG and IMPOSE_SOIL}
1888SOIL_PH =  XXX
1889
1890# REINF_SLOPE ([-]) :  Slope coef for reinfiltration    {IMPOSE_VEG}
1891REINF_SLOPE =  0.1
1892
1893# SLOWPROC_HEIGHT ([m]) :  Height for all vegetation types      {OK_SECHIBA}
1894SLOWPROC_HEIGHT =  0., 30., 30., 20., 20., 20., 15., 15., 15., .5, .6, 1.0, 1.0
1895
1896# GET_SLOPE ([FLAG]) :  Read slopes from file and do the interpolation  {}
1897GET_SLOPE =  n
1898
1899# NINPUT_UPDATE ([years]) :  Update N input frequency   {ok_ncycle .AND. (.NOT. impose_cn) .AND. .NOT. impsoilt}
1900NINPUT_UPDATE =  0Y
1901
1902# NAMMONIUM ([gN m-2 d-1] ) :  Amount of N ammonium deposition          {ok_ncycle .AND. (.NOT. impose_cn)}
1903NAMMONIUM =  0
1904
1905# NNITRATE ([gN m-2 d-1] ) :  Amount of N nitrate deposition    {ok_ncycle .AND. (.NOT. impose_cn)}
1906NNITRATE =  0
1907
1908# NFERT ([gN m-2 d-1] ) :  Amount of N fertiliser       {ok_ncycle .AND. (.NOT. impose_cn)}
1909NFERT =  0
1910
1911# NMANURE ([gN m-2 d-1] ) :  Amount of N manure         {ok_ncycle .AND. (.NOT. impose_cn)}
1912NMANURE =  0
1913
1914# NBNF ([gN m-2 d-1] ) :  Amount of N biological fixation       {ok_ncycle .AND. (.NOT. impose_cn)}
1915NBNF =  0
1916
1917# LAI_FILE ([FILE]) :  Name of file from which the vegetation map is to be read         {LAI_MAP}
1918LAI_FILE =  lai2D.nc
1919
1920# RENORM_LAI ([FLAG]) :  flag to force LAI renormelization      {LAI_MAP}
1921RENORM_LAI =  n
1922
1923# VEGETATION_FILE ([FILE]) :  Name of file from which the vegetation map is to be read  {}
1924VEGETATION_FILE =  PFTmap.nc
1925
1926# CNLEAF_FILE ([FILE]) :  Name of file from which the cn leaf ratio is to be read       {}
1927CNLEAF_FILE =  cnleaf_map.nc
1928
1929# CNLEAF_VAR ([VAR]) :  Name of the variable in the file from which the cn leaf ratio is to be read     {}
1930CNLEAF_VAR =  leaf_cn.nc
1931
1932# SOILCLASS_FILE ([FILE]) :  Name of file from which soil types are read        {NOT(IMPOSE_VEG)}
1933SOILCLASS_FILE =  soils_param.nc
1934
1935# SLOPE_NOREINF ([-]) :  See slope_noreinf above        {}
1936SLOPE_NOREINF =  0.5
1937
1938# TOPOGRAPHY_FILE ([FILE]) :  Name of file from which the topography map is to be read  {}
1939TOPOGRAPHY_FILE =  cartepente2d_15min.nc
1940
1941# NINPUT File ([FILE]) :  Name of file from which the N-input map is to be read         {}
1942NINPUT File =  'Ninput_fied'.nc
1943
1944# NINPUT var ([FILE]) :  Name of the variable in the file from which the N-input map is to be read      {}
1945NINPUT var =  'Ninput_fied'
1946
1947# WOODHARVEST_FILE ([FILE]) :  Name of file from which the wood harvest will be read    {DO_WOOD_HARVEST}
1948WOODHARVEST_FILE =  woodharvest.nc
1949
1950# SOILALB_FILE ([FILE]) :  Name of file from which the bare soil albedo         {NOT(IMPOSE_AZE)}
1951SOILALB_FILE =  soils_param.nc
1952
1953# ALB_BG_FILE ([FILE]) :  Name of file from which the background albedo is read         {ALB_BG_MODIS}
1954ALB_BG_FILE =  alb_bg.nc
1955
1956# CDRAG_FROM_GCM ([FLAG]) :  Keep cdrag coefficient from gcm.   {OK_SECHIBA}
1957CDRAG_FROM_GCM =  y
1958
1959# N_FERTIL_FILE (- ) :  File name       {CHEMISTRY_BVOC and NOx_FERTILIZERS_USE}
1960N_FERTIL_FILE =  orchidee_fertilizer_1995.nc
1961
1962# N_FERTIL_FILE (-) :  File name        {CHEMISTRY_BVOC and NOx_FERTILIZERS_USE}
1963N_FERTIL_FILE =  orchidee_fertilizer_1995.nc
1964
1965# ENERBIL_TSURF (Kelvin [K]) :  Initial temperature if not found in restart     {OK_SECHIBA}
1966ENERBIL_TSURF =  280.
1967
1968# ENERBIL_EVAPOT () :  Initial Soil Potential Evaporation       {OK_SECHIBA       }
1969ENERBIL_EVAPOT =  0.0
1970
1971# BEDROCK_FLAG ([FLAG]) :  Flag to consider bedrock at deeper layers.   {}
1972BEDROCK_FLAG =  0
1973
1974# THERMOSOIL_TPRO (Kelvin [K]) :  Initial soil temperature profile if not found in restart      {OK_SECHIBA}
1975THERMOSOIL_TPRO =  280.
1976
1977# SOIL_REFTEMP_FILE ([FILE]) :  File with climatological soil temperature       {READ_REFTEMP}
1978SOIL_REFTEMP_FILE =  reftemp.nc
1979
1980# DO_PONDS ([FLAG]) :  Should we include ponds          {}
1981DO_PONDS =  n
1982
1983# FROZ_FRAC_CORR  ([-]) :  Coefficient for the frozen fraction correction       {OK_FREEZE}
1984FROZ_FRAC_CORR  =  1.0
1985
1986# MAX_FROZ_HYDRO ([-]) :  Coefficient for the frozen fraction correction        {OK_FREEZE}
1987MAX_FROZ_HYDRO =  1.0
1988
1989# SMTOT_CORR ([-]) :  Coefficient for the frozen fraction correction    {OK_FREEZE}
1990SMTOT_CORR =  2.0
1991
1992# DO_RSOIL ([FLAG]) :  Should we reduce soil evaporation with a soil resistance         {}
1993DO_RSOIL =  n
1994
1995# OK_DYNROOT ([FLAG]) :  Calculate dynamic root profile to optimize soil moisture usage         {}
1996OK_DYNROOT =  n
1997
1998# CWRR_N_VANGENUCHTEN ([-]) :  Van genuchten coefficient n      {}
1999CWRR_N_VANGENUCHTEN =  1.89, 1.56, 1.31
2000
2001# CWRR_A_VANGENUCHTEN ([1/mm]  ) :  Van genuchten coefficient a         {}
2002CWRR_A_VANGENUCHTEN =  0.0075, 0.0036, 0.0019
2003
2004# VWC_RESIDUAL ([m3/m3]  ) :  Residual soil water content       {}
2005VWC_RESIDUAL =  0.065, 0.078, 0.095
2006
2007# VWC_SAT ([m3/m3]  ) :  Saturated soil water content   {}
2008VWC_SAT =  0.41, 0.43, 0.41
2009
2010# CWRR_KS  ([mm/d]   ) :  Hydraulic conductivity Saturation     {}
2011CWRR_KS  =  1060.8, 249.6, 62.4
2012
2013# WETNESS_TRANSPIR_MAX ([-]    ) :  Soil moisture above which transpir is max   {}
2014WETNESS_TRANSPIR_MAX =  0.5, 0.5, 0.5
2015
2016# VWC_FC  ([m3/m3]   ) :  Volumetric water content field capacity       {}
2017VWC_FC  =  0.32, 0.32, 0.32
2018
2019# VWC_WP ([m3/m3]   ) :  Volumetric water content Wilting pt    {}
2020VWC_WP =  0.10, 0.10, 0.10 
2021
2022# VWC_MIN_FOR_WET_ALB ([m3/m3]  ) :  Vol. wat. cont. above which albedo is cst  {}
2023VWC_MIN_FOR_WET_ALB =  0.25, 0.25, 0.25
2024
2025# VWC_MAX_FOR_DRY_ALB ([m3/m3]   ) :  Vol. wat. cont. below which albedo is cst         {}
2026VWC_MAX_FOR_DRY_ALB =  0.1, 0.1, 0.1
2027
2028# HYDROL_MOISTURE_CONTENT ([m3/m3]) :  Soil moisture on each soil tile and levels       {}
2029HYDROL_MOISTURE_CONTENT =  0.3
2030
2031# US_INIT ([-]) :  US_NVM_NSTM_NSLM     {}
2032US_INIT =  0.0
2033
2034# ZWT_FORCE ([m]) :  Prescribed water depth, dimension nstm     {}
2035ZWT_FORCE =  -9999. -9999. -9999.
2036
2037# FREE_DRAIN_COEF ([-]) :  Coefficient for free drainage at bottom, dimension nstm      {}
2038FREE_DRAIN_COEF =  1.0 1.0 1.0
2039
2040# WATER_TO_INFILT ([mm]) :  Water to be infiltrated on top of the soil  {}
2041WATER_TO_INFILT =  0.0
2042
2043# EVAPNU_SOIL ([mm]) :  Bare soil evap on each soil if not found in restart     {}
2044EVAPNU_SOIL =  0.0
2045
2046# HYDROL_SNOW () :  Initial snow mass if not found in restart   {OK_SECHIBA}
2047HYDROL_SNOW =  0.0
2048
2049# HYDROL_SNOWAGE (***) :  Initial snow age if not found in restart      {OK_SECHIBA}
2050HYDROL_SNOWAGE =  0.0
2051
2052# HYDROL_SNOW_NOBIO ([mm]) :  Initial snow amount on ice, lakes, etc. if not found in restart   {OK_SECHIBA}
2053HYDROL_SNOW_NOBIO =  0.0
2054
2055# HYDROL_SNOW_NOBIO_AGE (***) :  Initial snow age on ice, lakes, etc. if not found in restart   {OK_SECHIBA}
2056HYDROL_SNOW_NOBIO_AGE =  0.0
2057
2058# HYDROL_QSV ([mm]) :  Initial water on canopy if not found in restart  {OK_SECHIBA}
2059HYDROL_QSV =  0.0
2060
2061# CWRR_NKS_N0  ([-]) :  fitted value for relation log((n-n0)/(n_ref-n0))        {}
2062CWRR_NKS_N0  =  0.0
2063
2064# CWRR_NKS_POWER ([-]) :  fitted value for relation log((n-n0)/(n_ref-n0))      {}
2065CWRR_NKS_POWER =  0.0
2066
2067# CWRR_AKS_A0  ([1/mm]) :  fitted value for relation log((a-a0)/(a_ref-a0))     {}
2068CWRR_AKS_A0  =  0.0
2069
2070# CWRR_AKS_POWER ([-]) :  fitted value for relation log((a-a0)/(a_ref-a0))      {}
2071CWRR_AKS_POWER =  0.0
2072
2073# KFACT_DECAY_RATE ([1/m]) :  Factor for Ks decay with depth    {}
2074KFACT_DECAY_RATE =  2.0
2075
2076# KFACT_STARTING_DEPTH ([m]) :  Depth for compacted value of Ks         {}
2077KFACT_STARTING_DEPTH =  0.3
2078
2079# KFACT_MAX ([-]) :  Maximum Factor for Ks increase due to vegetation   {}
2080KFACT_MAX =  10.0
2081
2082# DT_ROUTING  ([seconds]) :  Time step of the routing scheme    {RIVER_ROUTING}
2083DT_ROUTING  =  86400.
2084
2085# ROUTING_RIVERS ([-]) :  Number of rivers      {RIVER_ROUTING}
2086ROUTING_RIVERS =  50
2087
2088# DO_FLOODINFILT ([FLAG]) :  Should floodplains reinfiltrate into the soil      {RIVER_ROUTING}
2089DO_FLOODINFILT =  n
2090
2091# DO_SWAMPS ([FLAG]) :  Should we include swamp parameterization        {RIVER_ROUTING}
2092DO_SWAMPS =  n
2093
2094# DO_PONDS ([FLAG]) :  Should we include ponds          {RIVER_ROUTING}
2095DO_PONDS =  n
2096
2097# SLOW_TCST ([days]) :  Time constant for the slow reservoir    {RIVER_ROUTING }
2098SLOW_TCST =  25.0 
2099
2100# FAST_TCST ([days]) :  Time constant for the fast reservoir    {RIVER_ROUTING }
2101FAST_TCST =  3.0 
2102
2103# STREAM_TCST ([days]) :  Time constant for the stream reservoir        {RIVER_ROUTING}
2104STREAM_TCST =  0.24
2105
2106# FLOOD_TCST ([days]) :  Time constant for the flood reservoir          {RIVER_ROUTING}
2107FLOOD_TCST =  4.0
2108
2109# SWAMP_CST ([-]) :  Fraction of the river that flows back to swamps    {RIVER_ROUTING}
2110SWAMP_CST =  0.2
2111
2112# FLOOD_BETA ([-] ) :  Parameter to fix the shape of the floodplain     {RIVER_ROUTING}
2113FLOOD_BETA =  2.0
2114
2115# POND_BETAP ([-] ) :  Ratio of the basin surface intercepted by ponds and the maximum surface of ponds         {RIVER_ROUTING}
2116POND_BETAP =  0.5
2117
2118# FLOOD_CRI ([mm] ) :  Potential height for which all the basin is flooded      {DO_FLOODPLAINS or DO_PONDS}
2119FLOOD_CRI =  2000.
2120
2121# POND_CRI ([mm] ) :  Potential height for which all the basin is a pond        {DO_FLOODPLAINS or DO_PONDS}
2122POND_CRI =  2000.
2123
2124# MAX_LAKE_RESERVOIR ([kg/m2(routing area)] ) :  Maximum limit of water in lake_reservoir       {RIVER_ROUTING}
2125MAX_LAKE_RESERVOIR =  7000
2126
2127# RIVER_DESC ([FLAG]) :  Writes out a description of the rivers         {RIVER_ROUTING}
2128RIVER_DESC =  n
2129
2130# RIVER_DESC_FILE ([FILE]) :  Filename in which we write the description of the rivers. If suffix is ".nc" a netCDF file is created     {RIVER_DESC}
2131RIVER_DESC_FILE =  river_desc.nc
2132
2133# ROUTING_FILE ([FILE]) :  Name of file which contains the routing information  {RIVER_ROUTING}
2134ROUTING_FILE =  routing.nc
2135
2136# IRRIGATION_FILE ([FILE]) :  Name of file which contains the map of irrigated areas    {DO_IRRIGATION OR DO_FLOODPLAINS}
2137IRRIGATION_FILE =  floodplains.nc
2138
2139# EPS_CARBON ([%]   ) :  Allowed error on carbon stock  {SPINUP_ANALYTIC}
2140EPS_CARBON =  0.01
2141
2142# SPINUP_PERIOD ([years]   ) :  Period to calulcate equilibrium during spinup analytic  {SPINUP_ANALYTIC}
2143SPINUP_PERIOD =  -1
2144
2145# STOMATE_FORCING_NAME ([FILE]) :  Name of STOMATE's forcing file       {OK_STOMATE}
2146STOMATE_FORCING_NAME =  NONE
2147
2148# STOMATE_FORCING_MEMSIZE ([MegaBytes]) :  Size of STOMATE forcing data in memory       {OK_STOMATE}
2149STOMATE_FORCING_MEMSIZE =  50
2150
2151# STOMATE_CFORCING_NAME ([FILE]) :  Name of STOMATE's carbon forcing file       {OK_STOMATE}
2152STOMATE_CFORCING_NAME =  NONE
2153
2154# FORCESOIL_STEP_PER_YEAR ([days, months, year]) :  Number of time steps per year for carbon spinup.    {OK_STOMATE}
2155FORCESOIL_STEP_PER_YEAR =  365
2156
2157# FORCESOIL_NB_YEAR ([years]) :  Number of years saved for carbon spinup.       {OK_STOMATE}
2158FORCESOIL_NB_YEAR =  1
2159
2160# STOMATE_DIAGPT ([-]) :  Index of grid point for online diagnostics    {OK_STOMATE}
2161STOMATE_DIAGPT =  1
2162
2163# XIOS_ORCHIDEE_OK ([FLAG]) :  Use XIOS for writing diagnostics file    {}
2164XIOS_ORCHIDEE_OK =  y 
2165
2166# XIOS_INTERPOLATION ([FLAG]) :  Actiave reading and intrepolation using XIOS   {XIOS_ORCHIDEE_OK}
2167XIOS_INTERPOLATION =  n
2168
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