Source-Specific Health Risk Analysis on Particulate Trace Elements: Coal Combustion and Traffic Emission As Major Contributors in Wintertime Beijing

北京 微粒 环境科学 燃烧 煤燃烧产物 跟踪(心理语言学) 环境化学 环境工程 废物管理 气象学 化学 工程类 地理 中国 哲学 考古 有机化学 语言学
作者
Ru‐Jin Huang,Rui Cheng,Jing Miao,Lu Yang,Yongjie Li,Qi Chen,Yang Chen,Jinpei Yan,Chunshui Lin,Yunfei Wu,Renjian Zhang,Imad El Haddad,Andrê S. H. Prévôt,Colin O’Dowd,Junji Cao
出处
期刊:Environmental Science & Technology [American Chemical Society]
卷期号:52 (19): 10967-10974 被引量:164
标识
DOI:10.1021/acs.est.8b02091
摘要

Source apportionment studies of particulate matter (PM) link chemical composition to emission sources, while health risk analyses link health outcomes and chemical composition. There are limited studies to link emission sources and health risks from ambient measurements. We show such an attempt for particulate trace elements. Elements in PM2.5 were measured in wintertime Beijing, and the total concentrations of 14 trace elements were 1.3-7.3 times higher during severe pollution days than during low pollution days. Fe, Zn, and Pb were the most abundant elements independent of the PM pollution levels. Chemical fractionation shows that Pb, Mn, Cd, As, Sr, Co, V, Cu, and Ni were present mainly in the bioavailable fraction. Positive matrix factorization was used to resolve the sources of particulate trace elements into dust, oil combustion, coal combustion, and traffic-related emissions. Traffic-related emission contributed 65% of total mass of the measured elements during low pollution days. However, coal combustion dominated (58%) during severe pollution days. By combining element-specific health risk analyses and source apportionment results, we conclude that traffic-related emission dominates the health risks by particulate trace elements during low pollution days, while coal combustion becomes equally or even more important during moderate and severe pollution days.
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