11.02.2013 Aufrufe

Modellierung der Wirtschaftlichkeit von Teak Plantagen in Costa Rica

Modellierung der Wirtschaftlichkeit von Teak Plantagen in Costa Rica

Modellierung der Wirtschaftlichkeit von Teak Plantagen in Costa Rica

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2550 0.02 0 66.2 0.02 # Emission Factor: CO2,CH4,N2O,CO,TNMOC<br />

# Parameters for alternative technology us<strong>in</strong>g slashwood fuelwood<br />

"Improved Cookstove" # Name of alternative technology us<strong>in</strong>g slashwood fuelwood<br />

25 15 # Technology efficiency and heat<strong>in</strong>g value<br />

1550 7.92 0 69.5 6.84 # Emission Factor: CO2,CH4,N2O,CO,TNMOC<br />

# Parameters for current technology us<strong>in</strong>g <strong>in</strong>dustrial residues fuelwood<br />

"Coal" "Cookstove" # Name of current fuel and technology us<strong>in</strong>g <strong>in</strong>dustrial fuelwood<br />

24 15 # Technology efficiency and heat<strong>in</strong>g value<br />

2550 0.02 0 66.2 0.02 # Emission Factor: CO2,CH4,N2O,CO,TNMOC<br />

# Parameters for alternative technology us<strong>in</strong>g <strong>in</strong>dustrial residues fuelwood<br />

"Improved Cookstove" # Name of alternative technology us<strong>in</strong>g <strong>in</strong>dustrial fuelwood<br />

25 15 # Technology efficiency and heat<strong>in</strong>g value<br />

1550 7.92 0 69.5 6.84 # Emission Factor: CO2,CH4,N2O,CO,TNMOC<br />

# user def<strong>in</strong>ed cost table<br />

{<br />

#yr fixed costs recurr<strong>in</strong>g costs fixed returns recurr<strong>in</strong>g returns <strong>in</strong>terest rate<br />

0 597 0.00 0 0.00 0.0000<br />

1 428 0.00 0 0.00 0.0000<br />

2 323 0.00 0 0.00 0.0000<br />

3 278 0.00 0 0.00 0.0000<br />

4 256 0.00 0 0.00 0.0000<br />

5 251 0.00 0 0.00 0.0000<br />

6 207 0.00 0 0.00 0.0000<br />

7 202 0.00 0 0.00 0.0000<br />

8 197 0.00 0 0.00 0.0000<br />

9 0 194.00 0 0.00 0.0000<br />

30 0 194.00 0 0.00 0.0000<br />

}<br />

scenario "20vol"<br />

{<br />

description<br />

{<br />

<strong>Teak</strong> plantation<br />

}<br />

stand<br />

{<br />

1 # number of cohorts<br />

# global biomass parameters<br />

400.0 # max_biomass <strong>in</strong> the stand [Mg/ha]<br />

"a" # growth method: "d"=growth driven by biomass density<br />

# "a"=growth driven by age<br />

"t" # competition method: "t"=competition relative to the Total biomass <strong>in</strong> the stand<br />

# "m"=competition aga<strong>in</strong>st multiple cohorts<br />

"t" # management mortality method: "t"=management mortality depends only <strong>in</strong> the total volume harvested<br />

# "m"=management mortality depends on which cohort is harvested<br />

# global soil parameters<br />

8000 # annual mean temperature<br />

1500 # precipitation dry season<br />

1000 # potential evapotranspiration dry season<br />

cohort "<strong>Teak</strong>"<br />

{<br />

0 # start<strong>in</strong>g age for this cohort<br />

biomass<br />

{<br />

20000.0 # max_biomass <strong>in</strong> this cohort [Mg/ha]<br />

# stems<br />

0.48 # carbon content<br />

0.50 # wood density<br />

0.0 # <strong>in</strong>itial carbon<br />

# growth table<br />

{<br />

#biom/biom_max CAI<br />

0 0.00<br />

3 25.00<br />

6 35.00<br />

8 40.00<br />

12 40.0<br />

59

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