中国南京和美国丹佛半挥发性正烷烃和多环芳烃的气体-颗粒物分馏模拟:蒸汽压力和表面吸附估算的影响

IF 3.8 2区 地球科学 Q2 METEOROLOGY & ATMOSPHERIC SCIENCES
Zhiyan Zhou, Zishu Wang, Wei Feng, Chao Qin, Hong Liao, Yuhang Wang, Mingjie Xie
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引用次数: 0

摘要

从南京和丹佛获得了气相和 PM2.5 中半挥发性正构烷烃和多环芳烃的浓度数据。首先,计算了目标化合物的气粒分配系数,并与基于平衡吸收分配理论的预测值进行了比较。虽然选择了蒸气压(poL)估算方法来提高测量值与预测值之间的分配系数的一致性,但丹佛的正烷烃和两个城市的多环芳烃对PM2.5的吸附都比预测值强。通过加入吸附机制,南京和丹佛的分配系数的平均对数和时间变化都得到了很好的模拟。南京正构烷烃的分区主要由吸收机制解释,而丹佛正构烷烃和多环芳烃的分区主要由吸附机制解释。为获得最佳模拟结果,分别采用 SPARC 和 SIMPOL 两组贡献法估算了正构烷烃和多环芳烃的 poL,并将丹佛正构烷烃和两市多环芳烃的解吸焓与汽化焓之差设定为 2 至 3 kcal mol-1。因此,在未来的实地研究和模型研究中,对非极性有机化合物的气体-颗粒分配进行参数化时,应仔细考虑 poL 和表面吸附的估算。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Simulation of Gas-Particle Partitioning of Semi-Volatile n-Alkanes and PAHs in Nanjing, China, and Denver, United States: Effects of Vapor Pressure and Surface Adsorption Estimation

The concentration data of semi-volatile n-alkanes and PAHs in the gas phase and in PM2.5 were obtained from Nanjing and Denver. First, the gas-particle partitioning coefficients of the target compounds were calculated and compared with the predictions based on the equilibrium absorptive partitioning theory. Although the vapor pressure (poL) estimation method was selected to improve the agreement between measured and predicted partitioning coefficients, n-alkanes in Denver and PAHs in both cities exhibited stronger sorption to PM2.5 than predicted. By including the adsorption mechanism, the average logarithms and temporal variations of the partitioning coefficients were well simulated in both Nanjing and Denver. The partitioning of n-alkanes in Nanjing can be primarily explained by the absorption mechanism, while the adsorption mechanism dominates that for n-alkanes in Denver and PAHs in both cities. To obtain an optimal simulation, the poL of n-alkanes and PAHs was estimated using the SPARC and SIMPOL—two group contribution methods, respectively, and the difference between desorption and vaporization enthalpies was set between 2 and 3 kcal mol−1 for n-alkanes in Denver and PAHs in both cities. Therefore, the estimation of poL and surface adsorption should be carefully considered when parameterizing the gas-particle partitioning of non-polar organic compounds in future field and modeling studies.

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来源期刊
Journal of Geophysical Research: Atmospheres
Journal of Geophysical Research: Atmospheres Earth and Planetary Sciences-Geophysics
CiteScore
7.30
自引率
11.40%
发文量
684
期刊介绍: JGR: Atmospheres publishes articles that advance and improve understanding of atmospheric properties and processes, including the interaction of the atmosphere with other components of the Earth system.
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