Compilation of a source profile database for hydrocarbon and OVOC emissions in China

被引:147
作者
Mo, Ziwei [1 ]
Shao, Min [1 ]
Lu, Sihua [1 ]
机构
[1] Peking Univ, Coll Environm Sci & Engn, State Joint Key Lab Environm Simulat & Pollut Con, Beijing 100871, Peoples R China
关键词
VOC; OVOC; Source profile; Speciated emission inventory; China; VOLATILE ORGANIC-COMPOUNDS; PEARL RIVER DELTA; AIR-POLLUTION SOURCES; SOURCE APPORTIONMENT; CARBONYL-COMPOUNDS; RECEPTOR MODEL; VOC; REACTIVITY; INVENTORIES; EXHAUST;
D O I
10.1016/j.atmosenv.2016.08.025
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Source profiles are essential for quantifying the role of volatile organic compound (VOC) emissions in air pollution. This study compiled a database of VOC source profiles in China, with 75 species drawn from five major categories: transportation, solvent use, biomass burning, fossil fuel burning, and industrial processes. Source profiles were updated for diesel vehicles, biomass burning, and residential coal burning by measuring both hydrocarbons and oxygenated VOCs (OVOCs), while other source profiles were derived from the available literature. The OVOCs contributed 53.8% of total VOCs in the profiles of heavy duty diesel vehicle exhaust and 12.4%-46.3% in biomass and residential coal burning, which indicated the importance of primary OVOCs emissions from combustion-related sources. Taking the national emission inventory from 2008 as an example, we established an approach for assigning source profiles to develop a speciation-specific VOC and OVOC emission inventory. The results showed that aromatics contributed 30% of the total 26 Tg VOCs, followed by alkanes (24%), alkenes (19%) and OVOCs (12%). Aromatics (7.9 Tg) were much higher than in previous results (1.1 Tg and 3.4 Tg), while OVOCs (3.1 Tg) were comparable with the 33 Tg and 43 Tg reported in studies using, profiles from the US. The current emission inventories were built based on emission factors from non-methane hydrocarbon measurements, and therefore the proportions from OVOC emissions was neglected, leading to up to 30% underestimation of total VOC emissions. As a result, there is a need to deploy appropriate emission factors and source profiles that include OVOC measurements to reduce the uncertainty of estimated emissions and chemical reactivity potential. (C) 2016 Published by Elsevier Ltd.
引用
收藏
页码:209 / 217
页数:9
相关论文
共 52 条
[1]   Emission of trace gases and aerosols from biomass burning [J].
Andreae, MO ;
Merlet, P .
GLOBAL BIOGEOCHEMICAL CYCLES, 2001, 15 (04) :955-966
[2]   Atmospheric chemistry of VOCs and NOx [J].
Atkinson, R .
ATMOSPHERIC ENVIRONMENT, 2000, 34 (12-14) :2063-2101
[3]   Spatial and temporal variation of historical anthropogenic NMVOCs emission inventories in China [J].
Bo, Y. ;
Cai, H. ;
Xie, S. D. .
ATMOSPHERIC CHEMISTRY AND PHYSICS, 2008, 8 (23) :7297-7316
[4]  
Bo Y. H., 2012, THESIS
[5]  
Carter W. P. L, 2008, 03318 U CAL AIR POLL
[6]   Understanding primary and secondary sources of ambient carbonyl compounds in Beijing using the PMF model [J].
Chen, W. T. ;
Shao, M. ;
Lu, S. H. ;
Wang, M. ;
Zeng, L. M. ;
Yuan, B. ;
Liu, Y. .
ATMOSPHERIC CHEMISTRY AND PHYSICS, 2014, 14 (06) :3047-3062
[7]   Investigation on characteristics of exhaust and evaporative emissions from passenger cars fueled with gasoline/methanol blends [J].
Dai, Peipei ;
Ge, Yunshan ;
Lin, Yongming ;
Su, Sheng ;
Liang, Bin .
FUEL, 2013, 113 :10-16
[8]   Secondary organic aerosol formation from a large number of reactive man-made organic compounds [J].
Derwent, Richard G. ;
Jenkin, Michael E. ;
Utembe, Steven R. ;
Shallcross, Dudley E. ;
Murrells, Tim P. ;
Passant, Neil R. .
SCIENCE OF THE TOTAL ENVIRONMENT, 2010, 408 (16) :3374-3381
[9]  
Doskey PV, 1999, J AIR WASTE MANAGE, V49, P814, DOI 10.1080/10473289.1999.10463850
[10]   VALIDATION OF THE CHEMICAL MASS-BALANCE RECEPTOR MODEL APPLIED TO HYDROCARBON SOURCE APPORTIONMENT IN THE SOUTHERN CALIFORNIA AIR-QUALITY STUDY [J].
FUJITA, EM ;
WATSON, JG ;
CHOW, JC ;
LU, ZQ .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 1994, 28 (09) :1633-1649