N: 67.2297 S: 53.1911 E: -88.612 W: -150.902
Description
This dataset is a synthesis of field plot characterization data, derived above-ground and below-ground combusted carbon, and acquired Fire Weather Index (FWI) System components for burned boreal forest sites across Alaska, USA, the Northwest Territories, and Saskatchewan, Canada from 1983-2016. Unburned plot data are also included. Compiled plot-level characterization data include stand age, disturbance history, tree density, and tree biophysical measurements for calculation of the above-ground (ag) and below-ground (bg) biomass/carbon pools, pre-fire and residual post-fire soil organic layer (SOL) depths and estimates of combustion of tree structural classes. The measured slope and aspect for each site and an assigned moisture class based on topography are also provided. Data from 1019 burned and 152 unburned sites are included. From the estimates of combusted ag and bg carbon pools and SOL losses, the total carbon combusted, the proportion of pre-fire carbon combusted, and the proportion of total carbon combusted were calculated for each plot. FWI System components including moisture and drought codes and indices of fire danger were obtained for each plot from existing data sources based on the plot location, year of burn, and a dynamic start-up date (day of burn, DOB) from the global fire weather database. Data for soil characteristics are included in a separate file.
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
| Title | Year Sort ascending | Author | Topic |
|---|---|---|---|
| Climate impacts from North American boreal forest fires | van Gerrevink, Max J., Veraverbeke, Sander, Cooperdock, Sol, Potter, Stefano, Zhong, Qirui, Moubarak, Michael, Virkkala, Anna-Maria, Goetz, Scott J., Mack, Michelle C., Randerson, James T., Schutgens, Nick, Turetsky, Merritt R., van der Werf, Guido R., Rogers, Brendan M. | Radiative Forcing, Forests, Alpine/Tundra, Albedo, Vegetation Cover, Biomass Burning, Surface Temperature, Precipitation Amount, Fire Dynamics, Fire Occurrence, Carbon, Burned Area, Biomass, Soil Moisture/Water Content, Topographic Effects, Emissions, Carbon, Land Use/Land Cover Classification, Reflectance, Dominant Species, Respiration Rate, Carbon Flux, Atmospheric Carbon Dioxide, Gross Primary Production (gpp), Soil Respiration, NET ECOSYSTEM CO2 EXCHANGE (NEE), Anisotropy | |
| Fire severity and carbon combustion from tussock tundra fires in Southwest Alaska | Diaz, Lucas R, Saperstein, Lisa B, van Gerrevink, Max J, Wangchuk, Sonam, Hessilt, Thomas D, Janssen, Thomas A J, Scholten, Rebecca C, Delcourt, Clement J F, Veraverbeke, Sander | Vegetation Cover, Forests, Biomass Burning, Surface Temperature, Precipitation Amount, Fire Dynamics, Fire Occurrence, Carbon, Burned Area, Biomass, Soil Moisture/Water Content, Topographic Effects | |
| Carbon emissions from fires in Eastern Siberian larch forests | Delcourt, Clement J. F., Rogers, Brendan M., Akhmetzyanov, Linar, Izbicki, Brian, Scholten, Rebecca C., Shestakova, Tatiana A., van Wees, Dave, Mack, Michelle C., SassKlaassen, Ute, Veraverbeke, Sander | Fire Ecology, Biomass Burning, Wildfires, Fire Occurrence, Burned Area, Forest Management, Land Surface Temperature, THERMAL ANOMALIES, Vegetation Cover, Forests, Surface Temperature, Precipitation Amount, Fire Dynamics, Carbon, Biomass, Soil Moisture/Water Content, Topographic Effects | |
| Accelerated rise in wildfire carbon emissions from Arctic continuous permafrost | Zhu, Xingru, Jia, Gensuo, Xu, Xiyan | Burned Area, Vegetation Species, Forests, Fire Occurrence, Soil Classification, Tree Rings, Soil Depth, Carbon, Vegetation Cover, Forest Fire Science, Soil Moisture/Water Content, Biomass, Emissions, Dominant Species, Biomass Burning, Surface Temperature, Precipitation Amount, Fire Dynamics, Topographic Effects | |
| Environmental drivers and remote sensing proxies of post-fire thaw depth | Diaz, Lucas R., Delcourt, Clement J. F., Langer, Moritz, Loranty, Michael M., Rogers, Brendan M., Scholten, Rebecca C., Shestakova, Tatiana A., Talucci, Anna C., Vonk, Jorien E., Wangchuk, Sonam, Veraverbeke, Sander | Vegetation Cover, Forests, Biomass Burning, Surface Temperature, Precipitation Amount, Fire Dynamics, Fire Occurrence, Carbon, Burned Area, Biomass, Soil Moisture/Water Content, Topographic Effects | |
| INFERNO-peat v1. 0.0: a representation of northern high-latitude peat fires in the JULES-INFERNO global fire model | Blackford, Katie R., Kasoar, Matthew, Burton, Chantelle, Burke, Eleanor, Prentice, Iain Colin, Voulgarakis, Apostolos | Vegetation Cover, Forests, Biomass Burning, Surface Temperature, Precipitation Amount, Fire Dynamics, Fire Occurrence, Carbon, Burned Area, Biomass, Soil Moisture/Water Content, Topographic Effects | |
| Substantial Mercury Releases and Local Deposition from Permafrost Peatland Wildfires in Southwestern Alaska | Zolkos, Scott, Geyman, Benjamin M., Potter, Stefano, Moubarak, Michael, Rogers, Brendan M., Baillargeon, Natalie, Dey, Sharmila, Ludwig, Sarah M., Melton, Sierra, Navarro-Perez, Edauri, McElvein, Ann, Balcom, Prentiss H., Natali, Susan M., Sistla, Seeta, Sunderland, Elsie M. | Vegetation Cover, Forests, Biomass Burning, Surface Temperature, Precipitation Amount, Fire Dynamics, Fire Occurrence, Carbon, Burned Area, Biomass, Soil Moisture/Water Content, Topographic Effects | |
| Carbon emissions and radiative forcings from tundra wildfires in the YukonKuskokwim River Delta, Alaska | Moubarak, Michael, Sistla, Seeta, Potter, Stefano, Natali, Susan M., Rogers, Brendan M. | Vegetation Cover, Forests, Biomass Burning, Surface Temperature, Precipitation Amount, Fire Dynamics, Fire Occurrence, Carbon, Burned Area, Biomass, Soil Moisture/Water Content, Topographic Effects, Emissions, Carbon, Biogeochemical Cycles, Wildfires, Fire Models, Organic Matter, Fire Disturbance, Soil Organic Carbon (SOC) | |
| Burned area and carbon emissions across northwestern boreal North America from 20012019 | Potter, Stefano, Cooperdock, Sol, Veraverbeke, Sander, Walker, Xanthe, Mack, Michelle C., Goetz, Scott J., Baltzer, Jennifer, Bourgeau-Chavez, Laura, Burrell, Arden, Dieleman, Catherine, French, Nancy, Hantson, Stijn, Hoy, Elizabeth E., Jenkins, Liza, Johnstone, Jill F., Kane, Evan S., Natali, Susan M., Randerson, James T., Turetsky, Merritt R., Whitman, Ellen, Wiggins, Elizabeth, Rogers, Brendan M. | Reflectance, Land Use/Land Cover Classification, Fire Occurrence, Forest Fire Science, Burned Area, Aquatic Ecosystems, Terrestrial Ecosystems, Vegetation, Soils, Vegetation Cover, Forests, Biomass Burning, Surface Temperature, Precipitation Amount, Fire Dynamics, Carbon, Biomass, Soil Moisture/Water Content, Topographic Effects, Emissions, Carbon | |
| Makine Ogrenmesi Yontemleriyle Orman Yangn Tahmini | YILDIRIM, Orhan, GUNAY, Faruk Baturalp, YAGANOGLU, Mete | Vegetation Cover, Forests, Biomass Burning, Surface Temperature, Precipitation Amount, Fire Dynamics, Fire Occurrence, Carbon, Burned Area, Biomass, Soil Moisture/Water Content, Topographic Effects | |
| Recent massive expansion of wildfire and its impact on active layer over pan-Arctic permafrost | Zhu, Xingru, Xu, Xiyan, Jia, Gensuo | Burned Area, Vegetation Species, Forests, Fire Occurrence, Soil Classification, Tree Rings, Soil Depth, Carbon, Vegetation Cover, Forest Fire Science, Soil Moisture/Water Content, Biomass, Emissions, Dominant Species, Biomass Burning, Surface Temperature, Precipitation Amount, Fire Dynamics, Topographic Effects | |
| Bottom-up drivers of future fire regimes in western boreal North America | Foster, Adrianna C, Shuman, Jacquelyn K, Rogers, Brendan M, Walker, Xanthe J, Mack, Michelle C, Bourgeau-Chavez, Laura L, Veraverbeke, Sander, Goetz, Scott J | Vegetation Cover, Forests, Biomass Burning, Surface Temperature, Precipitation Amount, Fire Dynamics, Fire Occurrence, Carbon, Burned Area, Biomass, Soil Moisture/Water Content, Topographic Effects | |
| Escalating carbon emissions from North American boreal forest wildfires and the climate mitigation potential of fire management | Phillips, Carly A., Rogers, Brendan M., Elder, Molly, Cooperdock, Sol, Moubarak, Michael, Randerson, James T., Frumhoff, Peter C. | Vegetation Cover, Forests, Biomass Burning, Surface Temperature, Precipitation Amount, Fire Dynamics, Fire Occurrence, Carbon, Burned Area, Biomass, Soil Moisture/Water Content, Topographic Effects | |
| Disturbances in North American boreal forest and Arctic tundra: impacts | Foster, Adrianna C, Wang, Jonathan A, Frost, Gerald V, Davidson, Scott J, Hoy, Elizabeth, Turner, Kevin W, Sonnentag, Oliver, Epstein, Howard, Berner, Logan T, Armstrong, Amanda H, Kang, Mary, Rogers, Brendan M, Campbell, Elizabeth, Miner, Kimberley R, Orndahl, Kathleen M, Bourgeau-Chavez, Laura L, Lutz, David A, French, Nancy, Chen, Dong, Du, Jinyang, Shestakova, Tatiana A, Shuman, Jacquelyn K, Tape, Ken, Virkkala, Anna-Maria, Potter, Christopher, Goetz, Scott | Vegetation Cover, Forests, Biomass Burning, Surface Temperature, Precipitation Amount, Fire Dynamics, Fire Occurrence, Carbon, Burned Area, Biomass, Soil Moisture/Water Content, Topographic Effects | |
| The costs and benefits of fire management for carbon mitigation in | Elder, Molly, Phillips, Carly A, Potter, Stefano, Frumhoff, Peter C, Rogers, Brendan M | Vegetation Cover, Forests, Biomass Burning, Surface Temperature, Precipitation Amount, Fire Dynamics, Fire Occurrence, Carbon, Burned Area, Biomass, Soil Moisture/Water Content, Topographic Effects | |
| Fuel availability not fire weather controls boreal wildfire severity and carbon emissions | Walker, X. J., Rogers, B. M., Veraverbeke, S., Johnstone, J. F., Baltzer, J. L., Barrett, K., Bourgeau-Chavez, L., Day, N. J., de Groot, W. J., Dieleman, C. M., Goetz, S., Hoy, E., Jenkins, L. K., Kane, E. S., Parisien, M.-A., Potter, S., Schuur, E. A. G., Turetsky, M., Whitman, E., Mack, M. C. | Vegetation Cover, Forests, Biomass Burning, Surface Temperature, Precipitation Amount, Fire Dynamics, Fire Occurrence, Carbon, Burned Area, Biomass, Soil Moisture/Water Content, Topographic Effects | |
| Patterns of ecosystem structure and wildfire carbon combustion across six ecoregions of the North American boreal forest | Walker, Xanthe J., Baltzer, Jennifer L., Bourgeau-Chavez, Laura, Day, Nicola J., Dieleman, Catherine M., Johnstone, Jill F., Kane, Evan S., Rogers, Brendan M., Turetsky, Merritt R., Veraverbeke, Sander, Mack, Michelle C. | Vegetation Cover, Forests, Biomass Burning, Surface Temperature, Precipitation Amount, Fire Dynamics, Fire Occurrence, Carbon, Burned Area, Biomass, Soil Moisture/Water Content, Topographic Effects | |
| Wildfire combustion and carbon stocks in the southern Canadian boreal forest: Implications for a warming world | Dieleman, Catherine M., Rogers, Brendan M., Potter, Stefano, Veraverbeke, Sander, Johnstone, Jill F., Laflamme, Jocelyne, Solvik, Kylen, Walker, Xanthe J., Mack, Michelle C., Turetsky, Merritt R. | Biomass, Forests, Carbon, Burned Area, Terrain Elevation, Plant Characteristics, Soil Moisture/Water Content, Vegetation Species, Soil Depth, Vegetation Cover, Biomass Burning, Surface Temperature, Precipitation Amount, Fire Dynamics, Fire Occurrence, Topographic Effects, Carbon |