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以2013—2014年期间太原城区大气细颗粒物(PM_(2.5))为研究对象,定量分析了其中多环芳烃和硝基多环芳烃的浓度.结果显示,太原城区PM_(2.5)中16种多环芳烃和12种硝基多环芳烃的浓度分别为13.8~547和0.70~4.33 ng·m~(-3),硝基多环芳烃浓度低于多环芳烃浓度1~2个数量级.太原城区PM_(2.5)中多环芳烃最高值出现在冬季,最低值出现在夏季,冬季污染物浓度平均值高于夏季20倍,主要是由于北方采暖期间取暖用煤量的增加使得多环芳烃排放量大幅提高;与之不同的是,硝基多环芳烃浓度季节变化并不显著,冬季浓度均值与夏季差异小于5倍(除9-硝基蒽),反映出硝基多环芳烃生成主要与机动车尾气排放有关,其排放不受季节控制,这与实际情况是吻合的.此外,基于因子分析和化合物比值结果发现,太原城区大气PM_(2.5)中9-硝基蒽有来自周边地区木材燃烧的贡献.健康风险评价结果表明,必须对多环芳烃排放进行有效控制来降低人群在冬季大气中的暴露风险;对于硝基多环芳烃,其健康风险更要引起足够的重视.  相似文献   
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Thirteen PAHs, five nitro-PAHs and two hydroxy-PAHs were determined in 55 vapor-phase samples collected in a suburban area of a large city (Madrid, Spain), from January 2008 to February 2009. The data obtained revealed correlations between the concentrations of these compounds and a series of meteorological factors (e.g., temperature, atmospheric pressure) and physical–chemical factors (e.g., nitrogen and sulfur oxides). As a consequence, seasonal trends were observed in the atmospheric pollutants. A “mean sample” for the 14-month period would contain a total PAH concentration of 13 835 ± 1625 pg m−3 and 122 ± 17 pg m−3 of nitro-PAHs. When the data were stratified by season, it emerged that a representative sample of the coldest months would contain 18 900 ± 2140 pg m−3 of PAHs and 150 ± 97 pg m−3 of nitro-PAHs, while in an average sample collected in the warmest months, these values drop to 9293 ± 1178 pg m−3 for the PAHs and to 97 ± 13 pg m−3 for the nitro-PAHs. Total vapor phase concentrations of PAHs were one order of magnitude higher than concentrations detected in atmospheric aerosol samples collected on the same dates. Total nitro-PAH concentrations were comparable to their aerosol concentrations whereas vapor phase OH-PAHs were below their limits of the detection, indicating these were trapped in airborne particles.  相似文献   
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