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Speciation of organic fractions does matter for aerosol source apportionment. Part 3: Combining off-line and on-line measurements

机译:有机部分的形态对于气溶胶源分配确实很重要。第3部分:结合离线和在线测量

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摘要

The present study proposes an advanced methodology to reline the source apportionment of organic aerosol (OA). This methodology is based on the combination of online and online datasets in a single Positive Matrix Factorization (PMF) analysis using the multilinear engine (ME-2) algorithm and a customized time synchronization procedure. It has been applied to data from measurements conducted in the Paris region (France) during a PM pollution event in March 2015. Measurements included OA ACSM (Aerosol Chemical Speciation Monitor) mass spectra and specific primary and secondary organic molecular markers from PM10 filters on their original time resolution (30 min for ACSM and 4 h for PM10 filters). Comparison with the conventional PMF analysis of the ACSM OA dataset (PMF-ACSM) showed very good agreement for the discrimination between primary and secondary OA fractions with about 75% of the OA mass of secondary origin. Furthermore, the use of the combined datasets allowed the deconvolution of 3 primary OA (POA) factors and 7 secondary OA (SOA) factors. A clear identification of the source/origin of 54% of the total SOA mass could be achieved thanks to specific molecular markers. Specifically, 28% of that fraction was linked to combustion sources (biomass burning and traffic emissions). A clear identification of primary traffic OA was also obtained using the PMF-combined analysis while PMF-ACSM only gave a proxy for this OA source in the form of total hydrocarbon-like OA ( HOA) mass concentrations. In addition, the primary biomass burning-related OA source was explained by two OA factors, BBOA and OPOA-like BBOA. This new approach has showed undeniable advantages over the conventional approaches by providing valuable insights into the processes involved in SOA formation and their sources. However, the origins of highly oxidized SOA could not be fully identified due to the lack of specific molecular markers for such aged SOA. (C) 2019 Elsevier B.V. All rights reserved.
机译:本研究提出了一种先进的方法来勾勒有机气溶胶(OA)的来源分配。该方法基于在线和在线数据集的组合,使用多线性引擎(ME-2)算法和自定义的时间同步过程在单个正矩阵分解(PMF)分析中。它已应用于2015年3月PM污染事件期间在巴黎地区(法国)进行的测量数据。测量包括OA ACSM(气溶胶化学形态监测器)质谱图和PM10过滤器上特定的一级和二级有机分子标记原始时间分辨率(ACSM为30分钟,PM10过滤器为4小时)。与ACSM OA数据集的传统PMF分析(PMF-ACSM)的比较表明,对于主要和次要OA馏分之间的区分具有非常好的一致性,约占次要来源OA质量的75%。此外,使用组合数据集可以对3个主要OA(POA)因子和7个次要OA(SOA)因子进行反卷积。得益于特定的分子标记,可以清楚地识别出总SOA质量的54%的来源/来源。具体而言,该部分的28%与燃烧源(生物质燃烧和交通排放)有关。使用PMF组合分析还可以清楚地识别主要流量OA,而PMF-ACSM仅以总烃样OA(HOA)质量浓度的形式提供了这种OA来源的替代物。此外,主要的生物质燃烧相关的OA来源是由两个OA因子,即BBOA和类似OPOA的BBOA解释的。通过提供有关SOA形成过程及其来源的宝贵见解,这种新方法已显示出优于常规方法的优势。但是,由于缺乏针对这种老化的SOA的特定分子标记,因此无法完全确定高氧化SOA的起源。 (C)2019 Elsevier B.V.保留所有权利。

著录项

  • 来源
    《The Science of the Total Environment》 |2019年第10期|944-955|共12页
  • 作者单位

    INERIS, Parc Technol Alata,BP 2, F-60550 Verneuil En Halatte, France|CNRS, EPOC, UMR CNRS 5805, F-33405 Talence, France|Univ Bordeaux, EPOC, UMR CNRS 5805, F-33405 Talence, France;

    INERIS, Parc Technol Alata,BP 2, F-60550 Verneuil En Halatte, France;

    CNRS CEA UVSQ, LSCE UMR8212, Gif Sur Yvette, France;

    INERIS, Parc Technol Alata,BP 2, F-60550 Verneuil En Halatte, France|CNRS CEA UVSQ, LSCE UMR8212, Gif Sur Yvette, France;

    Ontario Minist Environm Conservat & Pk, Environm Monitoring & Reporting Branch, Toronto, ON M9P 3V6, Canada;

    Clarkson Univ, Ctr Air Resources Engn & Sci, Potsdam, NY USA|Univ Rochester, Sch Med & Dent, Dept Publ Hlth Sci, Rochester, NY USA;

    CNRS CEA UVSQ, LSCE UMR8212, Gif Sur Yvette, France;

    CNRS, EPOC, UMR CNRS 5805, F-33405 Talence, France|Univ Bordeaux, EPOC, UMR CNRS 5805, F-33405 Talence, France;

    CNRS CEA UVSQ, LSCE UMR8212, Gif Sur Yvette, France;

    CNRS, EPOC, UMR CNRS 5805, F-33405 Talence, France|Univ Bordeaux, EPOC, UMR CNRS 5805, F-33405 Talence, France;

    INERIS, Parc Technol Alata,BP 2, F-60550 Verneuil En Halatte, France;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Particulate matter (PM); Secondary organic aerosol (SOA); Aerosol chemical speciation monitor (ACSM); Molecular markers; Source apportionment; Time synchronization;

    机译:颗粒物质(PM);二次有机气溶胶(SOA);气溶胶化学品质监测仪(ACSM);分子标记;源分配;时间同步;

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