Global fire emissions estimates during 1997-2016

被引:1376
作者
van der Werf, Guido R. [1 ]
Randerson, James T. [2 ]
Giglio, Louis [3 ]
van Leeuwen, Thijs T. [4 ,9 ]
Chen, Yang [2 ]
Rogers, Brendan M. [5 ]
Mu, Mingquan [2 ]
van Marle, Margreet J. E. [1 ,10 ]
Morton, Douglas C. [6 ]
Collatz, G. James [6 ]
Yokelson, Robert J. [7 ]
Kasibhatla, Prasad S. [8 ]
机构
[1] Vrije Univ Amsterdam, Fac Earth & Life Sci, NL-1081 HV Amsterdam, Netherlands
[2] Univ Calif Irvine, Dept Earth Syst Sci, Irvine, CA 92697 USA
[3] Univ Maryland, Dept Geog Sci, College Pk, MD 20742 USA
[4] SRON Netherlands Inst Space Res, NL-3584 CA Utrecht, Netherlands
[5] Woods Hole Res Ctr, Falmouth, MA 02540 USA
[6] NASA, Goddard Space Flight Ctr, Biospher Sci Lab, Greenbelt, MD 20771 USA
[7] Univ Montana, Dept Chem, Missoula, MT 59812 USA
[8] Duke Univ, Nicholas Sch Environm, Durham, NC 27708 USA
[9] VanderSat BV, NL-2011 VK Haarlem, Netherlands
[10] Deltares, NL-2629 HV Delft, Netherlands
基金
欧洲研究理事会; 美国国家科学基金会;
关键词
BIOMASS BURNING EMISSIONS; BURNED-AREA; CARBON EMISSIONS; TRACE GASES; ASSIMILATION SYSTEM; RADIATIVE POWER; SOUTHEAST-ASIA; BOREAL FIRES; AIR-QUALITY; EL-NINO;
D O I
10.5194/essd-9-697-2017
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
Climate, land use, and other anthropogenic and natural drivers have the potential to influence fire dynamics in many regions. To develop a mechanistic understanding of the changing role of these drivers and their impact on atmospheric composition, long-term fire records are needed that fuse information from different satellite and in situ data streams. Here we describe the fourth version of the Global Fire Emissions Database (GFED) and quantify global fire emissions patterns during 1997-2016. The modeling system, based on the Carnegie-Ames-Stanford Approach (CASA) biogeochemical model, has several modifications from the previous version and uses higher quality input datasets. Significant upgrades include (1) new burned area estimates with contributions from small fires, (2) a revised fuel consumption parameterization optimized using field observations, (3) modifications that improve the representation of fuel consumption in frequently burning landscapes, and (4) fire severity estimates that better represent continental differences in burning processes across boreal regions of North America and Eurasia. The new version has a higher spatial resolution (0.25 degrees) and uses a different set of emission factors that separately resolves trace gas and aerosol emissions from temperate and boreal forest ecosystems. Global mean carbon emissions using the burned area dataset with small fires (GFED4s) were 2.2 x 10(15) grams of carbon per year (Pg C yr(-1)) during 1997-2016, with a maximum in 1997 (3.0 Pg C yr(-1)) and minimum in 2013 (1.8 Pg C yr(-1)). These estimates were 11% higher than our previous estimates (GFED3) during 1997-2011, when the two datasets overlapped. This net increase was the result of a substantial increase in burned area (37 %), mostly due to the inclusion of small fires, and a modest decrease in mean fuel consumption (19 %) to better match estimates from field studies, primarily in savannas and grasslands. For trace gas and aerosol emissions, differences between GFED4s and GFED3 were often larger due to the use of revised emission factors. If small fire burned area was excluded (GFED4 without the "s" for small fires), average emissions were 1.5 Pg C yr(-1). The addition of small fires had the largest impact on emissions in temperate North America, Central America, Europe, and temperate Asia. This small fire layer carries substantial uncertainties; improving these estimates will require use of new burned area products derived from high-resolution satellite imagery. Our revised dataset provides an internally consistent set of burned area and emissions that may contribute to a better understanding of multi-decadal changes in fire dynamics and their impact on the Earth system. GFED data are available from http://www.globalfiredata.org.
引用
收藏
页码:697 / 720
页数:24
相关论文
共 94 条
  • [11] Nine years of global hydrocarbon emissions based on source inversion of OMI formaldehyde observations
    Bauwens, Maite
    Stavrakou, Trissevgeni
    Muller, Jean-Francois
    De Smedt, Isabelle
    Van Roozendael, Michel
    van der Werf, Guido R.
    Wiedinmyer, Christine
    Kaiser, Johannes W.
    Sindelarova, Katerina
    Guenther, Alex
    [J]. ATMOSPHERIC CHEMISTRY AND PHYSICS, 2016, 16 (15) : 10133 - 10158
  • [12] The human dimension of fire regimes on Earth
    Bowman, David M. J. S.
    Balch, Jennifer
    Artaxo, Paulo
    Bond, William J.
    Cochrane, Mark A.
    D'Antonio, Carla M.
    DeFries, Ruth
    Johnston, Fay H.
    Keeley, Jon E.
    Krawchuk, Meg A.
    Kull, Christian A.
    Mack, Michelle
    Moritz, Max A.
    Pyne, Stephen
    Roos, Christopher I.
    Scott, Andrew C.
    Sodhi, Navjot S.
    Swetnam, Thomas W.
    [J]. JOURNAL OF BIOGEOGRAPHY, 2011, 38 (12) : 2223 - 2236
  • [13] Fire in the Earth System
    Bowman, David M. J. S.
    Balch, Jennifer K.
    Artaxo, Paulo
    Bond, William J.
    Carlson, Jean M.
    Cochrane, Mark A.
    D'Antonio, Carla M.
    DeFries, Ruth S.
    Doyle, John C.
    Harrison, Sandy P.
    Johnston, Fay H.
    Keeley, Jon E.
    Krawchuk, Meg A.
    Kull, Christian A.
    Marston, J. Brad
    Moritz, Max A.
    Prentice, I. Colin
    Roos, Christopher I.
    Scott, Andrew C.
    Swetnam, Thomas W.
    van der Werf, Guido R.
    Pyne, Stephen J.
    [J]. SCIENCE, 2009, 324 (5926) : 481 - 484
  • [14] Satellite observations indicate substantial spatiotemporal variability in biomass burning NOx emission factors for South America
    Castellanos, P.
    Boersma, K. F.
    van der Werf, G. R.
    [J]. ATMOSPHERIC CHEMISTRY AND PHYSICS, 2014, 14 (08) : 3929 - 3943
  • [15] Nitrogen deposition in tropical forests from savanna and deforestation fires
    Chen, Yang
    Randerson, James T.
    van der Werf, Guido R.
    Morton, Douglas C.
    Mu, Mingquan
    Kasibhatla, Prasad S.
    [J]. GLOBAL CHANGE BIOLOGY, 2010, 16 (07) : 2024 - 2038
  • [16] A new method for measuring the rotational accuracy of rolling element bearings
    Chen, Ye
    Zhao, Xiangsong
    Gao, Weiguo
    Hu, Gaofeng
    Zhang, Shizhen
    Zhang, Dawei
    [J]. REVIEW OF SCIENTIFIC INSTRUMENTS, 2016, 87 (12)
  • [17] Ciais P, 2014, CLIMATE CHANGE 2013: THE PHYSICAL SCIENCE BASIS, P465
  • [18] Darmenov A., 2015, NASATM2015104606
  • [19] The ERA-Interim reanalysis: configuration and performance of the data assimilation system
    Dee, D. P.
    Uppala, S. M.
    Simmons, A. J.
    Berrisford, P.
    Poli, P.
    Kobayashi, S.
    Andrae, U.
    Balmaseda, M. A.
    Balsamo, G.
    Bauer, P.
    Bechtold, P.
    Beljaars, A. C. M.
    van de Berg, L.
    Bidlot, J.
    Bormann, N.
    Delsol, C.
    Dragani, R.
    Fuentes, M.
    Geer, A. J.
    Haimberger, L.
    Healy, S. B.
    Hersbach, H.
    Holm, E. V.
    Isaksen, L.
    Kallberg, P.
    Koehler, M.
    Matricardi, M.
    McNally, A. P.
    Monge-Sanz, B. M.
    Morcrette, J. -J.
    Park, B. -K.
    Peubey, C.
    de Rosnay, P.
    Tavolato, C.
    Thepaut, J. -N.
    Vitart, F.
    [J]. QUARTERLY JOURNAL OF THE ROYAL METEOROLOGICAL SOCIETY, 2011, 137 (656) : 553 - 597
  • [20] The Origins of C4 Grasslands: Integrating Evolutionary and Ecosystem Science
    Edwards, Erika J.
    Osborne, Colin P.
    Stroemberg, Caroline A. E.
    Smith, Stephen A.
    Bond, William J.
    Christin, Pascal-Antoine
    Cousins, Asaph B.
    Duvall, Melvin R.
    Fox, David L.
    Freckleton, Robert P.
    Ghannoum, Oula
    Hartwell, James
    Huang, Yongsong
    Janis, Christine M.
    Keeley, Jon E.
    Kellogg, Elizabeth A.
    Knapp, Alan K.
    Leakey, Andrew D. B.
    Nelson, David M.
    Saarela, Jeffery M.
    Sage, Rowan F.
    Sala, Osvaldo E.
    Salamin, Nicolas
    Still, Christopher J.
    Tipple, Brett
    [J]. SCIENCE, 2010, 328 (5978) : 587 - 591