N: 90 S: -90 E: 180 W: -180
Description
This model product contains the source codes for version 1 of the individual-based forest ecosystem biogeochemistry model LINKAGES and two subsequent versions as well as example input and output data. LINKAGES predicts long-term structure and dynamics of forest ecosystems as constrained by nitrogen availability, climate, and soil moisture. Model simulations compare favorably to field data from different geographic areas worldwide.
LINKAGES, written in FORTRAN and provided in ASCII format, simulates birth, growth, and death of all trees greater than 1.43-cm dbh. Litter fall and decomposition are also simulated. Sunlight is the driving variable. Growing season degree days, soil water availability, and AET are calculated from precipitation, temperature, soil field moisture capacity, and wilting point. Decomposition and soil N availability are calculated from organic matter quantity and carbon chemistry, evapotranspiration, and degree of canopy closure. Light availability to each tree is a function of leaf biomass of taller trees. Degree days and availabilities of light and water constrain species reproduction. These variables plus soil N constrain tree growth and carbon accumulation in biomass. Tree death probability increases with age and slow growth. Leaf, root, and woody litter are returned to the soil at the end of each year to decay the following year.
Climatic and forest data for eastern North America and New South Wales are provided as example model inputs. Modelers may use their own site data within any version of LINKAGES. Example model output is also provided.
Product Summary
Citation
Citation is critically important for dataset documentation and discovery. This dataset is openly shared, without restriction, in accordance with the EOSDIS Data Use and Citation Guidance.
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Documents
USER'S GUIDE
GENERAL DOCUMENTATION
| Title | Year Sort ascending | Author | Topic |
|---|---|---|---|
| Advancing forest carbon projections requires improved convergence between ecological and economic models | Fuller, Madisen R., Ganjam, Manaswini, Baker, Justin S., Abt, Robert C. | Solar Radiation, Cooling Degree Days, Air Temperature, Evapotranspiration, Precipitation Amount, Ecosystem Functions, Decomposition, Forests, Biomass, Canopy Characteristics, Forest Composition/Vegetation Structure, Litter Characteristics, Nitrogen, Soil Moisture/Water Content, Soil Water Holding Capacity | |
| Overcoming conceptual hurdles to accurately represent trees as cohorts in forest landscape models | Gustafson, Eric J., Sturtevant, Brian R., Miranda, Brian R., Duveneck, Matthew J. | Solar Radiation, Cooling Degree Days, Air Temperature, Evapotranspiration, Precipitation Amount, Ecosystem Functions, Decomposition, Forests, Biomass, Canopy Characteristics, Forest Composition/Vegetation Structure, Litter Characteristics, Nitrogen, Soil Moisture/Water Content, Soil Water Holding Capacity | |
| A coupled modeling framework for predicting ecosystem carbon dynamics in boreal forests | Huang, Chao, He, Hong S., Hawbaker, Todd J., Liang, Yu, Gong, Peng, Wu, Zhiwei, Zhu, Zhiliang | Solar Radiation, Cooling Degree Days, Air Temperature, Evapotranspiration, Precipitation Amount, Ecosystem Functions, Decomposition, Forests, Biomass, Canopy Characteristics, Forest Composition/Vegetation Structure, Litter Characteristics, Nitrogen, Soil Moisture/Water Content, Soil Water Holding Capacity | |
| Changes in forest biomass and tree species distribution under climate change in the northeastern United States | Wang, Wen J., He, Hong S., Thompson, Frank R., Fraser, Jacob S., Dijak, William D. | Solar Radiation, Cooling Degree Days, Air Temperature, Evapotranspiration, Precipitation Amount, Ecosystem Functions, Decomposition, Forests, Biomass, Canopy Characteristics, Forest Composition/Vegetation Structure, Litter Characteristics, Nitrogen, Soil Moisture/Water Content, Soil Water Holding Capacity | |
| Revision and application of the LINKAGES model to simulate forest growth in central hardwood landscapes in response to climate change | Dijak, William D., Hanberry, Brice B., Fraser, Jacob S., He, Hong S., Wang, Wen J., Thompson, Frank R. | Solar Radiation, Cooling Degree Days, Air Temperature, Evapotranspiration, Precipitation Amount, Ecosystem Functions, Decomposition, Forests, Biomass, Canopy Characteristics, Forest Composition/Vegetation Structure, Litter Characteristics, Nitrogen, Soil Moisture/Water Content, Soil Water Holding Capacity | |
| Are more complex physiological models of forest ecosystems better choices for plot and regional predictions? | Jin, Wenchi, He, Hong S., Thompson, Frank R. | Solar Radiation, Cooling Degree Days, Air Temperature, Evapotranspiration, Precipitation Amount, Ecosystem Functions, Decomposition, Forests, Biomass, Canopy Characteristics, Forest Composition/Vegetation Structure, Litter Characteristics, Nitrogen, Soil Moisture/Water Content, Soil Water Holding Capacity | |
| Landscape- and regional-scale shifts in forest composition under climate change in the Central Hardwood Region of the United States | Wang, Wen J., He, Hong S., Thompson, Frank R., Fraser, Jacob S., Dijak, William D. | Solar Radiation, Cooling Degree Days, Air Temperature, Evapotranspiration, Precipitation Amount, Ecosystem Functions, Decomposition, Forests, Biomass, Canopy Characteristics, Forest Composition/Vegetation Structure, Litter Characteristics, Nitrogen, Soil Moisture/Water Content, Soil Water Holding Capacity | |
| Comparing the Performance of Forest gap Models in North America | Bugmann, Harald K. M., Wullschleger, Stan D., Price, David T., Ogle, Kiona, Clark, Donald F., Solomon, Allen M. | Solar Radiation, Cooling Degree Days, Air Temperature, Evapotranspiration, Precipitation Amount, Ecosystem Functions, Decomposition, Forests, Biomass, Canopy Characteristics, Forest Composition/Vegetation Structure, Litter Characteristics, Nitrogen, Soil Moisture/Water Content, Soil Water Holding Capacity |