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汽油车尾气中二次有机气溶胶的生成:发动机技术、冷启动和排放标准的影响。

Secondary Organic Aerosol Production from Gasoline Vehicle Exhaust: Effects of Engine Technology, Cold Start, and Emission Certification Standard.

机构信息

Department of Mechanical Engineering and Center for Atmospheric Particle Studies, Carnegie Mellon University , Pittsburgh, Pennsylvania 15213, United States.

Aerodyne Research Inc., Billerica, Massachusetts 01821, United States.

出版信息

Environ Sci Technol. 2018 Feb 6;52(3):1253-1261. doi: 10.1021/acs.est.7b05045. Epub 2018 Jan 24.

DOI:10.1021/acs.est.7b05045
PMID:29303572
Abstract

Secondary organic aerosol (SOA) formation from dilute exhaust from 16 gasoline vehicles was investigated using a potential aerosol mass (PAM) oxidation flow reactor during chassis dynamometer testing using the cold-start unified cycle (UC). Ten vehicles were equipped with gasoline direct injection engines (GDI vehicles) and six with port fuel injection engines (PFI vehicles) certified to a wide range of emissions standards. We measured similar SOA production from GDI and PFI vehicles certified to the same emissions standard; less SOA production from vehicles certified to stricter emissions standards; and, after accounting for differences in gas-particle partitioning, similar effective SOA yields across different engine technologies and certification standards. Therefore the ongoing, dramatic shift from PFI to GDI vehicles in the United States should not alter the contribution of gasoline vehicles to ambient SOA and the natural replacement of older vehicles with newer ones certified to stricter emissions standards should reduce atmospheric SOA levels. Compared to hot operations, cold-start exhaust had lower effective SOA yields, but still contributed more SOA overall because of substantially higher organic gas emissions. We demonstrate that the PAM reactor can be used as a screening tool for vehicle SOA production by carefully accounting for the effects of the large variations in emission rates.

摘要

二次有机气溶胶(SOA)是由 16 辆汽油车稀释废气在底盘测功机测试中使用潜在气溶胶质量(PAM)氧化流动反应器形成的,使用冷启动统一循环(UC)。十辆汽车配备了汽油直喷发动机(GDI 车辆),六辆配备了燃油喷射发动机(PFI 车辆),符合各种排放标准。我们测量了符合相同排放标准的 GDI 和 PFI 车辆产生的类似 SOA;符合更严格排放标准的车辆产生的 SOA 较少;并且,在考虑了气体-颗粒分配的差异后,不同发动机技术和认证标准的有效 SOA 产率相似。因此,美国正在从 PFI 向 GDI 车辆进行的剧烈转变不应改变汽油车对环境 SOA 的贡献,并且随着符合更严格排放标准的较新车取代较旧车辆,大气 SOA 水平应会降低。与热操作相比,冷启动废气的有效 SOA 产率较低,但由于有机气体排放量大大增加,因此总体上仍会产生更多的 SOA。我们证明,通过仔细考虑排放率的巨大变化的影响,PAM 反应器可以用作车辆 SOA 产生的筛选工具。

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