TY - JOUR
T1 - Global Mercury Emissions from Open Biomass Burning Estimated Using a Mass-Balance Approach
AU - Shen, Yuzhe
AU - Chen, Long
AU - Wang, Danyu
AU - Chen, Qinzheng
AU - Zhou, Qi
AU - Huang, Ye
AU - Du, Wei
AU - Chen, Yuanchen
AU - Yang, Yi
N1 - Publisher Copyright:
© 2026 American Chemical Society
PY - 2026/3/3
Y1 - 2026/3/3
N2 - Mercury (Hg) emissions from open biomass burning (OBB) represent a significant component of global atmospheric Hg cycling. Previous estimates have relied on the emission factor (EF) approach, which carries substantial uncertainties due to its inherent limitations. Here, we developed a mass-balance model to re-estimate global Hg emissions from OBB during 2010–2019, enabling quantification of emissions from individual vegetation tissues. Our results indicate that global annual Hg emissions average 280 Mg yr–1 (ranging 93–803 Mg yr–1), including 129 Mg yr–1 from vegetation-derived combustion, 81 Mg yr–1 from litterfall combustion, and 70 Mg yr–1 from peatland fires. Emissions exhibit strong latitudinal and longitudinal variability, with hotspots in central Africa, the Indo-China Peninsula, and boreal Asia. By category, the largest contributors are Africa (49%) among continents, savannas (29%) among biomes, and leaves (58%) among vegetation-derived emissions. Seasonal peaks occur in January, March, and August, while total annual emissions remain relatively stable over the decade, despite extreme anomalies such as the 2015 Indonesian fires. This approach reveals distinct emission sources and high spatial heterogeneity, providing a more accurate and nuanced assessment of Hg emissions from global OBB.
AB - Mercury (Hg) emissions from open biomass burning (OBB) represent a significant component of global atmospheric Hg cycling. Previous estimates have relied on the emission factor (EF) approach, which carries substantial uncertainties due to its inherent limitations. Here, we developed a mass-balance model to re-estimate global Hg emissions from OBB during 2010–2019, enabling quantification of emissions from individual vegetation tissues. Our results indicate that global annual Hg emissions average 280 Mg yr–1 (ranging 93–803 Mg yr–1), including 129 Mg yr–1 from vegetation-derived combustion, 81 Mg yr–1 from litterfall combustion, and 70 Mg yr–1 from peatland fires. Emissions exhibit strong latitudinal and longitudinal variability, with hotspots in central Africa, the Indo-China Peninsula, and boreal Asia. By category, the largest contributors are Africa (49%) among continents, savannas (29%) among biomes, and leaves (58%) among vegetation-derived emissions. Seasonal peaks occur in January, March, and August, while total annual emissions remain relatively stable over the decade, despite extreme anomalies such as the 2015 Indonesian fires. This approach reveals distinct emission sources and high spatial heterogeneity, providing a more accurate and nuanced assessment of Hg emissions from global OBB.
KW - mass-balance approach
KW - mercury emissions
KW - open biomass burning
KW - vegetation biomes
KW - vegetation tissues
UR - https://www.scopus.com/pages/publications/105031572973
U2 - 10.1021/acs.est.5c13535
DO - 10.1021/acs.est.5c13535
M3 - 文章
C2 - 41632095
AN - SCOPUS:105031572973
SN - 0013-936X
VL - 60
SP - 6415
EP - 6426
JO - Environmental Science and Technology
JF - Environmental Science and Technology
IS - 8
ER -