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高分辨解析柴油蒸发过程中模型臭氧与二次气溶胶形成:从蒸发态中强度挥发性有机化合物源探究污染物形成。

Highly Resolved Composition during Diesel Evaporation with Modeled Ozone and Secondary Aerosol Formation: Insights into Pollutant Formation from Evaporative Intermediate Volatility Organic Compound Sources.

机构信息

Department of Chemistry, Colby College, Waterville, 04901 Maine, United States.

Department of Environmental Science, Policy, and Management, University of California, Berkeley 94720-3114, California, United States.

出版信息

Environ Sci Technol. 2021 May 4;55(9):5742-5751. doi: 10.1021/acs.est.0c08832. Epub 2021 Apr 16.

DOI:10.1021/acs.est.0c08832
PMID:33861084
Abstract

As stricter regulations continue to reduce vehicular emissions, other emission sources such as evaporative emissions from road building and volatile consumer products have become more important in overall pollutant forming emissions in many urban areas. Emission regulations have historically targeted volatile organic compounds (VOCs) to reduce ozone, but intermediate volatility organic compounds (IVOCs) also contribute to ozone formation and the formation of secondary organic aerosol (SOA) that often dominates fine particulate matter. Emission rates and pollutant formation from IVOCs are not well constrained in current inventories and models. This study uses diesel fuel as a representative IVOC mixture in evaporation tests performed in a wind tunnel under varying wind speeds and liquid diesel temperatures. Comprehensive composition measurements guided the development of a model to determine rates of evaporation and estimate pollutant production. Results show that reducing IVOC emissions can result in significant reductions in ozone formation, in addition to the expected reductions in SOA formation, and that IVOC emissions can continue over the course of a month. Ozone formation from IVOC emissions is equal to that from VOCs after 3 days of evaporation at 0.65 g-ozone/g-diesel released. SOA formation is dominated by IVOCs, reaching 0.2 g-SOA/g-diesel released after 30 days.

摘要

随着更严格的法规继续减少车辆排放,其他排放源,如道路建设和挥发性消费品的蒸发排放,在许多城市地区的整体污染物形成排放中变得更加重要。排放法规历来针对挥发性有机化合物 (VOC) 以减少臭氧,但中间挥发性有机化合物 (IVOC) 也有助于臭氧形成和二次有机气溶胶 (SOA) 的形成,SOA 通常占细颗粒物的主导地位。当前的清单和模型并不能很好地约束 IVOC 的排放率和污染物形成。本研究使用柴油燃料作为代表性的 IVOC 混合物,在风洞中进行蒸发测试,风速和液体柴油温度各不相同。综合成分测量指导了模型的开发,以确定蒸发速率并估算污染物的产生。结果表明,除了预期的 SOA 形成减少外,减少 IVOC 排放还可以显著减少臭氧的形成,而且 IVOC 排放可以持续一个月。在以 0.65 g-ozone/g-柴油的速度释放 3 天后,IVOC 排放的臭氧形成量与 VOC 排放的臭氧形成量相等。SOA 的形成主要由 IVOC 主导,在 30 天后释放 0.2 g-SOA/g-柴油。

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