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Multi-year chemical composition of the fine-aerosol fraction in Athens, Greece, with emphasis on the contribution of residential heating in wintertime

机译:希腊雅典的精细气溶胶馏分的多年化学组成,重点是冬季住宅供暖的贡献

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In an attempt to take effective action towards mitigating pollution episodes in Athens, precise knowledge of PM sub2.5/sub composition and its sources is a prerequisite. Thus, a 2-year chemical composition dataset from aerosol samples collected in an urban background site in central Athens from December 2013 to March 2016 has been obtained and a positive matrix factorization (PMF) was applied in order to identify and apportion fine aerosols to their sources. A total of 850 aerosol samples were collected on a 12 to 24?h basis and analyzed for major ions, trace elements, and organic and elemental carbon, allowing us to further assess the impact of residential heating as a source of air pollution over Athens. The ionic and carbonaceous components were found to constitute the major fraction of the PM sub2.5/sub aerosol mass. The annual contribution of the ion mass (IM), particulate organic mass (POM), dust, elemental carbon (EC), and sea salt (SS) was calculated at 31?%, 38?%, 18?%, 8?%, and 3?%, respectively, and exhibited considerable seasonal variation. In winter, the share of IM was estimated down to 23?%, with POM + EC being the dominant component accounting for 52?% of the PM sub2.5/sub mass, while in summer, IM (42?%) and carbonaceous aerosols (41?%) contributed almost equally. Results from samples collected on a 12?h basis (day and night) during the three intensive winter campaigns indicated the impact of heating on the levels of a series of compounds. Indeed, PM sub2.5/sub , EC, POM, NO 3 - , C 2 O 4 2 - , non sea salt (nss) Ksup+/sup and selected trace metals including Cd and Pb were increased by up to a factor of 4 in the night compared to the day, highlighting the importance of heating on air quality in Athens. Furthermore, in order to better characterize wintertime aerosol sources and quantify the impact of biomass burning on PM sub2.5/sub levels, source apportionment was performed. The data can be interpreted on the basis of six sources, namely biomass burning (31?%), vehicular emissions (19?%), heavy oil combustion (7?%), regional secondary (21?%), marine aerosols (9?%), and dust particles (8?%). Regarding night-to-day patterns their contributions shifted from 19?%, 19?%, 8?%, 31?%, 12?%, and 10?% of the PM sub2.5?/sub mass during day to 39?%, 19?%, 6?%, 14?%, 7?%, and 7?% during the night, underlining the significance of biomass burning as the main contributor to fine particle levels during nighttime in winter.
机译:为了采取有效措施缓解雅典的污染事件,必须准确了解PM 2.5 的组成及其来源。因此,获得了2013年12月至2016年3月在雅典市中心城市背景站点采集的气溶胶样品的2年化学成分数据集,并应用了正矩阵分解(PMF)来识别和分配精细气溶胶。资料来源。在12至24小时的时间内,总共收集了850个气溶胶样品,并分析了其中的主要离子,微量元素以及有机和元素碳,这使我们能够进一步评估住宅供暖作为雅典空气污染源的影响。发现离子和碳质成分占PM 2.5 气溶胶质量的主要部分。离子质量(IM),有机颗粒物质量(POM),粉尘,元素碳(EC)和海盐(SS)的年贡献量分别为31%,38%,18%,8%分别为3%和3%,并且表现出相当大的季节性变化。冬季,IM的份额估计下降至23%,其中POM + EC是主要成分,占PM 2.5 质量的52%,而夏季,IM(42% )和碳质气溶胶(41%)的贡献几乎相等。在三个密集的冬季运动中,在12小时(白天和晚上)的基础上采集的样品的结果表明,加热对一系列化合物含量的影响。实际上,PM 2.5 ,EC,POM,NO 3-,C 2 O 4 2-,非海盐(nss)K + 以及包括镉和铅在内的某些痕量金属与白天相比,夜间最多增加4倍,突显了雅典取暖对空气质量的重要性。此外,为了更好地表征冬季气溶胶来源并量化生物质燃烧对PM 2.5 水平的影响,我们进行了来源分配。可以根据六种来源来解释数据,即生物质燃烧(31%),车辆排放(19%),重油燃烧(7%),区域性次生(21%),海洋气溶胶(9) ?%)和灰尘颗粒(8%?%)。关于夜间模式,它们在白天的PM 2.5?质量的贡献从19%,19%,8%,31%,12%和10%转变。到晚上分别达到39%,19%,6%,14%,7%和7%,这突显了生物质燃烧作为冬季夜间细颗粒水平的主要贡献者的重要性。

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