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Formation of secondary aerosols from gasoline vehicle exhaust when mixingwith SOsub2/sub

机译:与SO 2 混合时汽油车尾气中二次气溶胶的形成

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Sulfur dioxide (SO2) can enhance the formation of secondary aerosolsfrom biogenic volatile organic compounds (VOCs), but its influence onsecondary aerosol formation from anthropogenic VOCs, particularly complexmixtures like vehicle exhaust, remains uncertain. Gasoline vehicle exhaust(GVE) and SO2, a typical pollutant from coal burning, are directlyco-introduced into a smog chamber, in this study, to investigate theformation of secondary organic aerosols (SOA) and sulfate aerosols throughphotooxidation. New particle formation was enhanced, while substantialsulfate was formed through the oxidation of SO2 in the presence of high concentration of SO2. Homogenous oxidation by OH radicals contributed a negligible fraction to the conversion of SO2 to sulfate, and instead the oxidation by stabilized Criegee intermediates (sCIs), formed from alkenes in the exhaust reacting with ozone, dominated the conversion of SO2. After 5?h of photochemical aging, GVE's SOA production factor revealed an increase by 60–200?% in the presence of high concentration of SO2. The increase could principally be attributed to acid-catalyzed SOA formation as evidenced by the strong positive linear correlation (R2?=?0.97) between the SOA production factor and in situ particle acidity calculated by the AIM-II model. A high-resolution time-of-flight aerosol mass spectrometer (HR-TOF-AMS) resolved OA's relatively lower oxygen-to-carbon (O?:?C) (0.44?±?0.02) and higher hydrogen-to-carbon (H?:?C) (1.40?±?0.03) molar ratios for the GVE?/?SO2 mixture, with a significantly lower estimated average carbon oxidation state (OSc) of ?0.51?±?0.06 than ?0.19?±?0.08 for GVE alone. The relative higher mass loading of OA in the experiments with SO2 might be a significant explanation for the lower SOA oxidation degree.
机译:二氧化硫(SO 2 )可以促进由生物挥发性有机化合物(VOC)形成二次气溶胶,但其对人为VOC尤其是诸如汽车尾气等复杂混合物对二次气溶胶形成的影响仍不确定。汽油车尾气(GVE)和典型的燃煤污染物SO 2 被直接引入雾霾室,以研究次生有机气溶胶(SOA)和硫酸盐气溶胶的形成通过光氧化。在高浓度SO 2 存在下,SO 2 的氧化形成大量的硫酸盐,同时形成大量的硫酸盐。 OH自由基的均相氧化对SO 2 转化为硫酸的贡献微不足道,相反,由废气中烯烃与臭氧反应形成的稳定的Criegee中间体(sCIs)的氧化作用占主导地位。 SO 2 的数量。在光化学老化5?h之后,在高浓度的SO 2 存在下,GVE的SOA生产因子显示增加了60-200?%。 SOA生产因子与原位之间强的线性正相关( R 2 ?== 0.97)证明了酸的增加是SOA形成的原因。通过AIM-II模型计算出的颗粒酸度。高分辨率飞行时间气溶胶质谱仪(HR-TOF-AMS)解决了OA相对较低的氧碳(O3:?C)(0.44?±?0.02)和较高的氢碳( HVE:?C)(GVE?/?SO 2 混合物的摩尔比(1.40?±?0.03),估计的平均碳氧化态(OS c )的GVE值比单独的GVE的<0.19±±0.08的±0.51±±0.06。 SO 2 实验中相对较高的OA负载量可能是SOA氧化度较低的重要解释。

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