Source apportionment of PM2.5 in Montréal, Canada, and health risk assessment for potentially toxic elements

IF 5.7 1区 地球科学 Q1 ENVIRONMENTAL SCIENCES Atmospheric Chemistry and Physics Pub Date : 2024-01-29 DOI:10.5194/acp-24-1193-2024
Nansi Fakhri, Robin Stevens, Arnold Downey, Konstantina Oikonomou, Jean Sciare, Charbel Afif, Patrick L. Hayes
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Abstract

Abstract. Source apportionment of PM2.5 was performed using positive matrix factorization (PMF) based on detailed chemical composition data from 24 h filter samples collected over a 3-month period (August–November 2020) at an urban site in Montréal, a Canadian city with a population of approximately 4×106 people. This source apportionment study, which examined the main contributing sources to PM2.5 using a larger suite of organic molecular markers than other Canadian studies, is the first of its sort in Canada. A focus of this study was on quantifying previously unresolved sources of PM2.5 through the inclusion in the PMF analysis of additional organic molecular markers beyond those measured typically by the Canadian government's National Air Pollution Surveillance Program (NAPS). The organic species included in the PMF model were comprised of six n-alkanes, two fatty acids, one dicarboxylic acid, two biogenic secondary organic aerosol (SOA) tracers, and hopane. Secondary inorganic aerosols (SIAs) and SOAs were the dominant components and constituted 39 % of the measured PM2.5 mass, while the local primary anthropogenic sources, namely traffic exhaust, road dust, industrial, and cooking emissions, contributed 23 %. The chemical transport model GEOS-Chem revealed that ammonium sulfate concentrations in Montréal are strongly influenced by both local sources in Quebec and transboundary input from the United States, with the transboundary input exceeding the local emissions for SOA. Co and Cr(VI) presented an elevated cancer risk, highlighting that more attention should be given to these trace metals, which were associated with industrial emissions by the PMF analysis. Furthermore, the results showed that industrial emissions were minor contributors to the total PM2.5 mass concentration but were the largest contributors to Co and Cr(VI) concentrations. Thus, the health hazards associated with this source cannot be entirely established by the PM2.5 mass concentration alone. This study highlights that, when evaluating air quality in Montréal and other urban regions, the prioritization of sources for mitigation strategies will diverge if one considers total PM2.5 mass concentration or the concentration of individual particulate-bound contaminants. Furthermore, the large transboundary contribution from the United States to total PM2.5 levels suggests that future municipal, provincial, and federal monitoring and regulations would be more effective if they focus on specific high-risk contaminants (e.g., Co and Cr(VI) rather than total PM2.5).
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加拿大蒙特利尔 PM2.5 的来源分配和潜在有毒元素的健康风险评估
摘要根据在蒙特利尔(一个人口约为 4×106 人的加拿大城市)的一个城市站点收集的为期 3 个月(2020 年 8 月至 11 月)的 24 小时过滤样本的详细化学成分数据,采用正矩阵因式分解法(PMF)对 PM2.5 进行了来源分配。与加拿大的其他研究相比,这项源分配研究使用了更多的有机分子标记,对PM2.5的主要贡献源进行了研究,这在加拿大尚属首次。这项研究的一个重点是通过在 PMF 分析中纳入更多的有机分子标记来量化以前未解决的 PM2.5 来源,而不是加拿大政府的国家空气污染监测计划(NAPS)通常测量的那些来源。PMF 模型中包含的有机物种类包括六种正构烷烃、两种脂肪酸、一种二羧酸、两种生物源二次有机气溶胶(SOA)示踪剂和啤酒花烷。二次无机气溶胶(SIAs)和SOAs是主要成分,占测量到的PM2.5质量的39%,而当地的主要人为来源(即交通废气、道路扬尘、工业和烹饪排放)占23%。化学传输模型 GEOS-Chem 显示,蒙特利尔的硫酸铵浓度受到魁北克本地来源和来自美国的跨境输入的强烈影响,跨境输入超过了 SOA 的本地排放。钴和六(六)铬的致癌风险升高,这表明应更多地关注这些痕量金属,因为 PMF 分析认为它们与工业排放有关。此外,研究结果表明,工业排放对 PM2.5 总质量浓度的影响较小,但对钴和六价铬浓度的影响最大。因此,不能仅通过 PM2.5 质量浓度来确定该污染源对健康的危害。这项研究强调,在评估蒙特利尔和其他城市地区的空气质量时,如果考虑 PM2.5 的总质量浓度或单个颗粒污染物的浓度,则减缓策略的优先来源将有所不同。此外,美国对 PM2.5 总量的巨大跨境贡献表明,如果未来的市、省和联邦监测和法规侧重于特定的高风险污染物(如钴和六价铬,而不是 PM2.5总量),将会更加有效。
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来源期刊
Atmospheric Chemistry and Physics
Atmospheric Chemistry and Physics 地学-气象与大气科学
CiteScore
10.70
自引率
20.60%
发文量
702
审稿时长
6 months
期刊介绍: Atmospheric Chemistry and Physics (ACP) is a not-for-profit international scientific journal dedicated to the publication and public discussion of high-quality studies investigating the Earth''s atmosphere and the underlying chemical and physical processes. It covers the altitude range from the land and ocean surface up to the turbopause, including the troposphere, stratosphere, and mesosphere. The main subject areas comprise atmospheric modelling, field measurements, remote sensing, and laboratory studies of gases, aerosols, clouds and precipitation, isotopes, radiation, dynamics, biosphere interactions, and hydrosphere interactions. The journal scope is focused on studies with general implications for atmospheric science rather than investigations that are primarily of local or technical interest.
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