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Evaluation of a Conceptual Model for Gas-Particle Partitioning of Polycyclic Aromatic Hydrocarbons Using Polyparameter Linear Free Energy Relationships

机译:利用多参数线性自由能关系评估多环芳烃气体-颗粒分配概念模型

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摘要

A model for gas-particle partitioning of polycyclic aromatic hydrocarbons (PAHs) was evaluated using polyparameter linear free energy relationships (ppLFERs) following a multiphase aerosol scenario. The model differentiates between various organic (i.e., liquid water-soluble (WS)/organic soluble (OS) organic matter (OM), and solid/semisolid organic polymers) and inorganic phases of the particulate matter (PM). Dimethyl sulfoxide and polyurethane were assigned as surrogates to simulate absorption into the above-mentioned organic phases, respectively, whereas soot, ammonium sulfate, and ammonium chloride simulated adsorption processes onto PM. The model was tested for gas and PM samples collected from urban and nonurban sites in Europe and the Mediterranean, and the output was compared with those calculated using single-parameter linear free energy relationship (spLFER) models, namely Junge-Pankow, Finizio, and Dachs-Eisenreich. The ppLFER model on average predicted 96 ± 3% of the observed partitioning constants for semivolatile PAHs, fluoranthene, and pyrene, within 1 order of magnitude accuracy with root-mean-square errors (RMSE) of 0.35-0.59 across the sites. This was a substantial improvement compared to Finizio and Dachs-Eisenreich models (37 ± 17 and 46 ± 18% and RMSE of 1.03-1.40 and 0.94-1.36, respectively). The Junge-Pankow model performed better among spLFERs but at the same time showed an overall tendency for overestimating the partitioning constants. The ppLFER model demonstrated the best overall performance without indicating a substantial intersite variability. The ppLFER analysis with the parametrization applied in this study suggests that the absorption into WSOSOM could dominate the overall partitioning process, while adsorption onto salts could be neglected.
机译:在多相气溶胶情景下,使用多参数线性自由能关系(ppLFERs)评估了多环芳烃(PAHs)的气体-颗粒分配模型。该模型区分了颗粒物(PM)的各种有机相(即液体水溶性(WS)/有机可溶性(OS)有机物(OM)和固体/半固体有机聚合物)和无机相。二甲基亚砜和聚氨酯被指定为替代物,分别模拟吸收到上述有机相中,而烟灰,硫酸铵和氯化铵模拟了在PM上的吸附过程。该模型对从欧洲和地中海的城市和非城市场所收集的天然气和PM样品进行了测试,并将输出与使用单参数线性自由能关系(spLFER)模型(即Junge-Pankow,Finizio和达克斯-艾森赖希。 ppLFER模型平均预测半挥发性多环芳烃,荧蒽和pyr的观察到的分配常数的96±3%,精确度在1个数量级内,整个站点的均方根误差(RMSE)为0.35-0.59。与Finizio和Dachs-Eisenreich模型(分别为37±17%和46±18%以及RMSE分别为1.03-1.40和0.94-1.36)相比,这是一个重大改进。 Junge-Pankow模型在spLFER中表现更好,但同时显示出总体上高估分配常数的趋势。 ppLFER模型显示出最佳的总体性能,而没有表明实际的站点间差异。这项研究中应用的带有参数化的ppLFER分析表明,WSOSOM的吸收可以主导整个分配过程,而盐的吸附则可以忽略不计。

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  • 来源
    《Environmental Science & Technology》 |2016年第22期|12312-12319|共8页
  • 作者单位

    Multiphase Chemistry Department, Max Planck Institute for Chemistry, Hahn-Meitner-Weg-1, 55128 Mainz, Germany;

    Multiphase Chemistry Department, Max Planck Institute for Chemistry, Hahn-Meitner-Weg-1, 55128 Mainz, Germany,Research Centre for Toxic Compounds in the Environment, Masaryk University, 625 00 Brno, Czech Republic;

    INERIS (Institut National de l'Environnement Industriel et des Risques), 60550 Verneuil-en-Halatte, France;

    Chemical Engineering Department, Izmir Institute of Technology, Urla 35430, Turkey;

    Environmental Engineering Department, Dokuz Eyluel University, Izmir 35210, Turkey;

    Chemical Engineering Department, Izmir Institute of Technology, Urla 35430, Turkey,Environmental Engineering Department, Izmir Institute of Technology, Urla 35430, Turkey;

    Institute for Chemical Process Fundamentals of the CAS, v. v. i., 165 02 Prague, Czech Republic;

    Institute for Chemical Process Fundamentals of the CAS, v. v. i., 165 02 Prague, Czech Republic;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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  • 入库时间 2022-08-17 13:59:10

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