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Exploration of the influence of environmental conditions on secondary organic aerosol formation and organic species properties using explicit simulations: development of the VBS-GECKO parameterization

机译:使用显式模拟探索环境条件对次生有机气溶胶形成和有机物种特性的影响:VBS-GECKO参数化的发展

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Atmospheric chambers have been widely used to study secondary organic aerosol (SOA) properties and formation from various precursors under different controlled environmental conditions and to develop parameterization to represent SOA formation in chemical transport models (CTMs). Chamber experiments are however limited in number, performed under conditions that differ from the atmosphere and can be subject to potential artefacts from chamber walls. Here, the Generator for Explicit Chemistry and Kinetics of Organics in the Atmosphere (GECKO-A) modelling tool has been used in a box model under various environmental conditions to (i) explore the sensitivity of SOA formation and properties to changes on physical and chemical conditions and (ii) develop a volatility basis set (VBS)-type parameterization. The set of parent hydrocarbons includes n-alkanes and 1-alkenes with 10, 14, 18, 22 and 26 carbon atoms, α-pinene, β-pinene and limonene, benzene, toluene, o-xylene, m-xylene and p-xylene. Simulated SOA yields and their dependences on the precursor structure, organic aerosol load, temperature and NOsubx/sub levels are consistent with the literature. GECKO-A was used to explore the distribution of molar mass, vaporization enthalpy, OH reaction rate and Henry's law coefficient of the millions of secondary organic compounds formed during the oxidation of the different precursors and under various conditions. From these explicit simulations, a VBS-GECKO parameterization designed to be implemented in 3-D air quality models has been tuned to represent SOA formation from the 18 precursors using GECKO-A as a reference. In evaluating the ability of VBS-GECKO to capture the temporal evolution of SOA mass, the mean relative error is less than 20 % compared to GECKO-A. The optimization procedure has been automated to facilitate the update of the VBS-GECKO on the basis of the future GECKO-A versions, its extension to other precursors and/or its modification to carry additional information.
机译:大气室已被广泛用于研究次级有机气溶胶(SOA)特性和在不同受控环境条件下由各种前体形成的情况,并开发出参数化方法来表示化学运输模型(CTM)中的SOA形成。但是,腔室实验的数量是有限的,只能在与大气不同的条件下进行,并且可能会受到腔室壁的潜在伪像的影响。在此,已在各种环境条件下的箱型模型中使用了“大气中有机物的显式化学和动力学生成器”(GECKO-A)建模工具,以(i)探索SOA形成的敏感性和性质对物理和化学变化的敏感性条件;(ii)开发波动基础集(VBS)类型的参数化。母体烃的集合包括具有10、14、18、22和26个碳原子的正构烷烃和1-烯烃,α-pine烯,β-pine烯和li烯,苯,甲苯,邻二甲苯,间二甲苯和对-二甲苯。模拟的SOA产率及其对前体结构,有机气溶胶负载量,温度和NO x 水平的依赖性与文献一致。 GECKO-A用于研究在不同前体和各种条件下氧化过程中形成的数百万种次级有机化合物的摩尔质量,汽化焓,OH反应速率和亨利定律的分布。从这些显式模拟中,已对旨在在3-D空气质量模型中实施的VBS-GECKO参数化进行了调整,以代表使用GECKO-A作为参考由18种前体形成的SOA。在评估VBS-GECKO捕获SOA质量随时间变化的能力时,与GECKO-A相比,平均相对误差小于20%。优化程序已自动化,以促进在将来的GECKO-A版本,对其他前体的扩展和/或进行修改以携带其他信息的基础上更新VBS-GECKO。

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