Scinovex
article Open AccessTop 1% cited

Emission factors for open and domestic biomass burning for use in atmospheric models

Atmospheric chemistry and physics · 2011 · Vol. 11(9) · pp. 4039–4072
S. K. AkagiR. J. YokelsonChristine WiedinmyerM. J. AlvaradoJeffrey S. ReidThomas KarlJohn D. CrounseP. O. Wennberg

Abstract

Abstract. Biomass burning (BB) is the second largest source of trace gases and the largest source of primary fine carbonaceous particles in the global troposphere. Many recent BB studies have provided new emission factor (EF) measurements. This is especially true for non-methane organic compounds (NMOC), which influence secondary organic aerosol (SOA) and ozone formation. New EF should improve regional to global BB emissions estimates and therefore, the input for atmospheric models. In this work we present an up-to-date, comprehensive tabulation of EF for known pyrogenic species based on measurements made in smoke that has cooled to ambient temperature, but not yet undergone significant photochemical processing. All EFs are converted to one standard form (g compound emitted per kg dry biomass burned) using the carbon mass balance method and they are categorized into 14 fuel or vegetation types. Biomass burning terminology is defined to promote consistency. We compile a large number of measurements of biomass consumption per unit area for important fire types and summarize several recent estimates of global biomass consumption by the major types of biomass burning. Post emission processes are discussed to provide a context for the emission factor concept within overall atmospheric chemistry and also highlight the potential for rapid changes relative to the scale of some models or remote sensing products. Recent work shows that individual biomass fires emit significantly more gas-phase NMOC than previously thought and that including additional NMOC can improve photochemical model performance. A detailed global estimate suggests that BB emits at least 400 Tg yr−1 of gas-phase NMOC, which is almost 3 times larger than most previous estimates. Selected recent results (e.g. measurements of HONO and the BB tracers HCN and CH3CN) are highlighted and key areas requiring future research are briefly discussed.

Atmospheric chemistry and aerosolsAtmospheric and Environmental Gas DynamicsAtmospheric Ozone and ClimateBiomass burningContext (archaeology)Biomass (ecology)Atmospheric sciencesTrace gasAerosolAtmospheric chemistryEnvironmental scienceChemistryTroposphere

Funding

  • National Science Foundation
Citations
2,123
FWCI
60.41
field-weighted impact
References
215
Percentile
100%
vs. same field & year
Citations per year
Cited by
Global anthropogenic emissions of particulate matter including black carbon
Atmospheric chemistry and physics · 2017 · 874 citations
Ozone production from wildfires: A critical review
Atmospheric Environment · 2011 · 618 citations
Emission of trace gases and aerosols from biomass burning – an updated assessment
Atmospheric chemistry and physics · 2019 · 1,038 citations
References
Global peatland dynamics since the Last Glacial Maximum
Geophysical Research Letters · 2010 · 1,411 citations
Global and regional climate changes due to black carbon
Nature Geoscience · 2008 · 3,838 citations
Global estimation of burned area using MODIS active fire observations
Atmospheric chemistry and physics · 2006 · 654 citations
Global land cover mapping from MODIS: algorithms and early results
Remote Sensing of Environment · 2002 · 2,742 citations
Citation Network

How this paper connects to the literature. Drag to explore, click any node to open that paper.

Emission factors for open and domestic biomass burning for use in atmospheric models · Scinovex