Century‐scale patterns and trends of global pyrogenic carbon emissions and fire influences on terrestrial carbon balance
暂无分享,去创建一个
Yuhang Wang | Hanqin Tian | Shufen Pan | Wei Ren | Bo Tao | Jia Yang | Chaoqun Lu | H. Tian | Jia Yang | S. Pan | Yuhang Wang | Yongqiang Liu | B. Tao | W. Ren | Yongqiang Liu | Chaoqun Lu
[1] E. Kasischke,et al. Recent acceleration of biomass burning and carbon losses in Alaskan forests and peatlands , 2011 .
[2] C. Potter,et al. Large-scale impoverishment of Amazonian forests by logging and fire , 1999, Nature.
[3] H. Tian,et al. Century-Scale Responses of Ecosystem Carbon Storage and Flux to Multiple Environmental Changes in the Southern United States , 2012, Ecosystems.
[4] Zhiyun Ouyang,et al. Complex Spatiotemporal Responses of Global Terrestrial Primary Production to Climate Change and Increasing Atmospheric CO2 in the 21st Century , 2014, PloS one.
[5] H. Tian,et al. North American terrestrial CO2 uptake largely offset by CH4 and N2O emissions: toward a full accounting of the greenhouse gas budget , 2014, Climatic Change.
[6] S. Levis,et al. Quantifying the role of fire in the Earth system – Part 2: Impact on the net carbon balance of global terrestrial ecosystems for the 20th century , 2013 .
[7] S. K. Akagi,et al. The Fire INventory from NCAR (FINN): a high resolution global model to estimate the emissions from open burning , 2010 .
[8] Chengquan Huang,et al. Integrating a process‐based ecosystem model with Landsat imagery to assess impacts of forest disturbance on terrestrial carbon dynamics: Case studies in Alabama and Mississippi , 2013 .
[9] M. Moritz,et al. Large wildfire trends in the western United States, 1984–2011 , 2014 .
[10] A. Moreira. Effects of fire protection on savanna structure in Central Brazil , 2000 .
[11] S. Page,et al. The amount of carbon released from peat and forest fires in Indonesia during 1997 , 2002, Nature.
[12] F. Joos,et al. Climate and human influences on global biomass burning over the past two millennia , 2008 .
[13] D. Roy,et al. The collection 5 MODIS burned area product — Global evaluation by comparison with the MODIS active fire product , 2008 .
[14] Maosheng Zhao,et al. Drought-Induced Reduction in Global Terrestrial Net Primary Production from 2000 Through 2009 , 2010, Science.
[15] Holly K. Gibbs,et al. New IPCC Tier-1 Global Biomass Carbon Map for the Year 2000 , 2008 .
[16] J. B. Miller,et al. Contribution of anthropogenic and natural sources to atmospheric methane variability , 2006, Nature.
[17] C. Nobre,et al. Tropical Deforestation and the Kyoto Protocol , 2005 .
[18] S. Levis,et al. A process-based fire parameterization of intermediate complexity in a Dynamic Global Vegetation Model , 2012 .
[19] J. Randerson,et al. Analysis of daily, monthly, and annual burned area using the fourth‐generation global fire emissions database (GFED4) , 2013 .
[20] T. Swetnam,et al. Warming and Earlier Spring Increase Western U.S. Forest Wildfire Activity , 2006, Science.
[21] H. Tian,et al. Net greenhouse gas balance in response to nitrogen enrichment: perspectives from a coupled biogeochemical model , 2013, Global change biology.
[22] P. Ciais,et al. Modelling the role of fires in the terrestrial carbon balance by incorporating SPITFIRE into the global vegetation model ORCHIDEE – Part 1: simulating historical global burned area and fire regimes , 2014 .
[23] Zhiyun Ouyang,et al. Impacts of climate variability and extremes on global net primary production in the first decade of the 21st century , 2015, Journal of Geographical Sciences.
[24] David W. Peterson,et al. FIRE SUPPRESSION AND ECOSYSTEM CARBON STORAGE , 2000 .
[25] Dan Yakir,et al. Contribution of Semi-Arid Forests to the Climate System , 2010, Science.
[26] J. Randerson,et al. Continental-Scale Partitioning of Fire Emissions During the 1997 to 2001 El Niño/La Niña Period , 2003, Science.
[27] J. Grégoire,et al. A new, global, multi‐annual (2000–2007) burnt area product at 1 km resolution , 2008 .
[28] M. Flannigan,et al. Global wildland fire season severity in the 21st century , 2013 .
[29] H. Tian,et al. Spatiotemporal patterns of evapotranspiration along the North American east coast as influenced by multiple environmental changes , 2015 .
[30] H. Tian,et al. China's terrestrial carbon balance: Contributions from multiple global change factors , 2011 .
[31] D. Shindell,et al. Driving forces of global wildfires over the past millennium and the forthcoming century , 2010, Proceedings of the National Academy of Sciences.
[32] Christopher I. Roos,et al. Fire in the Earth System , 2009, Science.
[33] Steven E. Lohrenz,et al. Long‐term trends in evapotranspiration and runoff over the drainage basins of the Gulf of Mexico during 1901–2008 , 2013 .
[34] J. Terborgh,et al. Drought Sensitivity of the Amazon Rainforest , 2009, Science.
[35] Atul K. Jain,et al. The global carbon budget 1959-2011 , 2012 .
[36] T. Keenan,et al. Predicting the future of forests in the Mediterranean under climate change, with niche‐ and process‐based models: CO2 matters! , 2011 .
[37] Scott D. Peckham,et al. Fire as the dominant driver of central Canadian boreal forest carbon balance , 2007, Nature.
[38] B. Quayle,et al. A Project for Monitoring Trends in Burn Severity , 2007 .
[39] H. Tian,et al. Impacts of tropospheric ozone and climate change on net primary productivity and net carbon exchange of China's forest ecosystems , 2011 .
[40] P. Döll,et al. Development and validation of a global database of lakes, reservoirs and wetlands , 2004 .
[41] Yi Y. Liu,et al. Contribution of semi-arid ecosystems to interannual variability of the global carbon cycle , 2014, Nature.
[42] H. Tian,et al. Effect of nitrogen deposition on China's terrestrial carbon uptake in the context of multifactor environmental changes. , 2012, Ecological applications : a publication of the Ecological Society of America.
[43] J. Randerson,et al. Climate regulation of fire emissions and deforestation in equatorial Asia , 2008, Proceedings of the National Academy of Sciences.
[44] Maosheng Zhao,et al. Improvements of the MODIS terrestrial gross and net primary production global data set , 2005 .
[45] Josep G. Canadell,et al. Current and future CO 2 emissions from drained peatlands in Southeast Asia , 2009 .
[46] P. Friedlingstein,et al. Modeling fire and the terrestrial carbon balance , 2011 .
[47] J. Randerson,et al. Influence of tree species on continental differences in boreal fires and climate feedbacks , 2015 .
[48] D. Bowman,et al. Munmarlary revisited: Response of a north Australian Eucalyptus tetrodonta savanna protected from fire for 20 years , 1995 .
[49] Béatrice Josse,et al. Multi-model mean nitrogen and sulfur deposition from the Atmospheric Chemistry and Climate Model Intercomparison Project (ACCMIP): evaluation of historical and projected future changes , 2013 .
[50] J. Pereira,et al. Global wildland fire emissions from 1960 to 2000 , 2008 .
[51] James T. Randerson,et al. The impacts of climate, land use, and demography on fires during the 21st century simulated by CLM-CN , 2011 .
[52] E. Kasischke,et al. Recent changes in the fire regime across the North American boreal region—Spatial and temporal patterns of burning across Canada and Alaska , 2006 .
[53] J. Randerson,et al. Daily burned area and carbon emissions from boreal fires in Alaska , 2014 .
[54] T. Loboda,et al. Regionally adaptable dNBR-based algorithm for burned area mapping from MODIS data , 2007 .
[55] I. Prentice,et al. Climate versus carbon dioxide controls on biomass burning: a model analysis of the glacial–interglacial contrast , 2013 .
[56] Drew T. Shindell,et al. Fire parameterization on a global scale , 2009 .
[57] J. Randerson,et al. High-latitude cooling associated with landscape changes from North American boreal forest fires , 2012 .
[58] J. Randerson,et al. The changing radiative forcing of fires: global model estimates for past, present and future , 2012 .
[59] A. Shvidenko,et al. The role of historical fire disturbance in the carbon dynamics of the pan-boreal region: A process-based analysis , 2006 .
[60] A. Arneth,et al. Global patterns of land-atmosphere fluxes of carbon dioxide, latent heat, and sensible heat derived from eddy covariance, satellite, and meteorological observations , 2011 .
[61] J. Randerson,et al. The Impact of Boreal Forest Fire on Climate Warming , 2006, Science.
[62] J. Randerson,et al. Global fire emissions and the contribution of deforestation, savanna, forest, agricultural, and peat fires (1997-2009) , 2010 .
[63] J. Randerson,et al. Climate controls on the variability of fires in the tropics and subtropics , 2008 .
[64] T. Kolb,et al. Recovery of ponderosa pine ecosystem carbon and water fluxes from thinning and stand‐replacing fire , 2012, Global change biology.
[65] P. Fulé,et al. Comparison of burn severity assessments using Differenced Normalized Burn Ratio and ground data , 2005 .
[66] R. Rees,et al. Savanna burning and the assessment of long-term fire experiments with particular reference to Zimbabwe , 2008 .
[67] J. Loisel,et al. Global peatland dynamics since the Last Glacial Maximum , 2010 .
[68] Hanqin Tian,et al. Global methane and nitrous oxide emissions from terrestrial ecosystems due to multiple environmental changes , 2015 .
[69] Merritt R. Turetsky,et al. Current disturbance and the diminishing peatland carbon sink , 2002 .
[70] Charles D. Canham,et al. Increased tree carbon storage in response to nitrogen deposition in the US , 2010 .
[71] John M. Reilly,et al. Food benefit and climate warming potential of nitrogen fertilizer uses in China , 2012 .
[72] B. Duncan,et al. Vegetation fire emissions and their impact on air pollution and climate , 2009 .
[73] F. Woodward,et al. The global distribution of ecosystems in a world without fire. , 2004, The New phytologist.
[74] Yongqiang Liu. Atmospheric response and feedback to radiative forcing from biomass burning in tropical South America , 2005 .
[75] D. Roy,et al. Interannual variation in biomass burning and fire seasonality derived from geostationary satellite data across the contiguous United States from 1995 to 2011 , 2014 .
[76] F. Joos,et al. Erratum: Climate and human influences on global biomass burning over the past two millennia , 2009 .
[77] Yongqiang Liu. Enhancement of the 1988 northern U.S. drought due to wildfires , 2005 .
[78] R. DeFries,et al. The Amazon basin in transition , 2012, Nature.
[79] Mike D. Flannigan,et al. Vulnerability of carbon storage in North American boreal forests to wildfires during the 21st century , 2009 .
[80] H. Tian,et al. Spatial and temporal patterns of global burned area in response to anthropogenic and environmental factors: Reconstructing global fire history for the 20th and early 21st centuries , 2014 .
[81] M. Razinger,et al. Biomass burning emissions estimated with a global fire assimilation system based on observed fire radiative power , 2011 .
[82] P. Ciais,et al. Sensitivity of global terrestrial carbon cycle dynamics to variability in satellite‐observed burned area , 2015 .
[83] M. Beekmann,et al. Atmospheric impacts of the 2010 Russian wildfires: integrating modelling and measurements of an extreme air pollution episode in the Moscow region , 2011 .
[84] Christopher B. Field,et al. Postfire response of North American boreal forest net primary productivity analyzed with satellite observations , 2003 .
[85] C. Field,et al. Fire history and the global carbon budget: a 1°× 1° fire history reconstruction for the 20th century , 2005 .
[86] S. Page,et al. Global vulnerability of peatlands to fire and carbon loss , 2015 .
[87] A. Thomson,et al. The representative concentration pathways: an overview , 2011 .
[88] C. Tucker,et al. Climate-Driven Increases in Global Terrestrial Net Primary Production from 1982 to 1999 , 2003, Science.
[89] Luana S. Basso,et al. Drought sensitivity of Amazonian carbon balance revealed by atmospheric measurements , 2014, Nature.
[90] Hanqin Tian,et al. Spatial and temporal patterns of carbon emissions from forest fires in China from 1950 to 2000 , 2006 .
[91] P. Ciais,et al. Modelling the role of fires in the terrestrial carbon balance by incorporating SPITFIRE into the global vegetation model ORCHIDEE – Part 2: Carbon emissions and the role of fires in the global carbon balance , 2014 .
[92] Scott L. Goodrick,et al. Trends in global wildfire potential in a changing climate , 2010 .
[93] F. Siegert,et al. Biomass burning fuel consumption rates: a field measurement database , 2014 .
[94] H. Tian,et al. Drought in the Southern United States over the 20th century: variability and its impacts on terrestrial ecosystem productivity and carbon storage , 2012, Climatic Change.
[95] G. V. D. Werf,et al. Recent trends in African fires driven by cropland expansion and El Nino to La Nina transition , 2014 .
[96] J. Randerson,et al. The influence of burn severity on postfire vegetation recovery and albedo change during early succession in North American boreal forests , 2011 .
[97] R. Houghton,et al. Changes in terrestrial carbon storage in the United States. 2: The role of fire and fire management , 2000 .
[98] A. McGuire,et al. Is the northern high‐latitude land‐based CO2 sink weakening? , 2011 .
[99] Ruoying He,et al. Increasing Mississippi river discharge throughout the 21st century influenced by changes in climate, land use, and atmospheric CO2 , 2014 .
[100] J. Randerson,et al. Assessing variability and long-term trends in burned area by merging multiple satellite fire products , 2009 .
[101] D. Morton,et al. Modeling fire-driven deforestation potential in Amazonia under current and projected climate conditions , 2010 .
[102] David L. Verbyla,et al. Carbon loss from an unprecedented Arctic tundra wildfire , 2011, Nature.
[103] Marc Macias-Fauria,et al. Sensitivity of global terrestrial ecosystems to climate variability , 2016, Nature.
[104] P. Crutzen,et al. Estimates of gross and net fluxes of carbon between the biosphere and the atmosphere from biomass burning , 1980 .
[105] Sandy P. Harrison,et al. The influence of vegetation, fire spread and fire behaviour on biomass burning and trace gas emissions: results from a process-based model , 2010 .
[106] Christopher B. Field,et al. Global carbon emissions from biomass burning in the 20th century , 2006 .
[107] M. Krawchuk,et al. Implications of changing climate for global wildland fire , 2009 .
[108] Jay D. Miller,et al. Quantifying burn severity in a heterogeneous landscape with a relative version of the delta Normalized Burn Ratio (dNBR) , 2007 .
[109] J. Randerson,et al. Changes in surface albedo after fire in boreal forest ecosystems of interior Alaska assessed using MODIS satellite observations , 2008 .
[110] P. Richard,et al. Future fire in Canada's boreal forest: paleoecology results and general circulation model--regional climate model simulations , 2001 .