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家用燃煤及烟气中多环芳烃的GC-MS定量研究 被引量:12
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作者 陈颖军 盛国英 +3 位作者 李正悦 毕新慧 麦碧娴 傅家谟 《分析测试学报》 CAS CSCD 北大核心 2004年第5期85-88,共4页
以一种烟煤和一种无烟煤制成的蜂窝煤为研究对象 ,采用一套稀释采样系统同时采集蜂窝煤燃烧烟气中颗粒相和气相中的有机物 ,利用GC -MS对其中的多环芳烃(PAHs)进行定量研究并对比原煤的二氯甲烷抽提物 ,发现烟煤不仅在原煤中就含有比无... 以一种烟煤和一种无烟煤制成的蜂窝煤为研究对象 ,采用一套稀释采样系统同时采集蜂窝煤燃烧烟气中颗粒相和气相中的有机物 ,利用GC -MS对其中的多环芳烃(PAHs)进行定量研究并对比原煤的二氯甲烷抽提物 ,发现烟煤不仅在原煤中就含有比无烟煤高出很多倍的PAHs和苯并(a)芘致癌性当量 ,而且在家用煤炉中燃烧后会产生更多的PAHs和致癌性 ;而无烟煤在燃烧后PAHs和毒性当量均会大大减少。燃煤烟气中以气相形态存在的PAHs在总量上占相当比例 ,但在致癌性当量上以颗粒相占主要部分。因此 ,在选择家用燃煤时除了要尽量使用无烟煤外 。 展开更多
关键词 家用燃煤 多环芳烃 苯并(a)芘致癌性当量 气相 颗粒相 GC-MS
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炼焦炉周边环境PM_(10)中多环芳烃的分布特征 被引量:2
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作者 刘效峰 彭林 +1 位作者 白慧玲 牟玲 《华中科技大学学报(自然科学版)》 EI CAS CSCD 北大核心 2013年第9期85-90,共6页
采集炼焦炉周边环境空气PM10样品,通过气相色谱一质谱联用仪(GC—MS)分析12种多环芳烃(∑12PAHs)含量,并探讨PAHs的空间分布特征及其苯并(a)芘(BaP)当量浓度.结果表明:炼焦炉周边各采样点PM,。中PAHs主要来源于炼焦过程,... 采集炼焦炉周边环境空气PM10样品,通过气相色谱一质谱联用仪(GC—MS)分析12种多环芳烃(∑12PAHs)含量,并探讨PAHs的空间分布特征及其苯并(a)芘(BaP)当量浓度.结果表明:炼焦炉周边各采样点PM,。中PAHs主要来源于炼焦过程,焦炉顶PM10中∑12PAHs的质量浓度最高,其次为焦炉焦侧、机侧、焦炉下风向采样点;炼焦炉周边环境PM10中单体PAHs的分布特征基本一致,屈(Chr)、苯并(a)蒽、苯并(b)荧蒽、苯并(k)荧蒽、BaP贡献较大,占PM10中∑12PAHs的61.68%~77.58%,其中Chr的贡献最大,占∑12PAHs的21.54%~26.59%,BaP对∑12PAHs的贡献为7.56%~11.36%;二苯并(a,h)蒽(DbA)对PM10中∑12PAHs的毒性贡献最大,其次为BaP;炼焦炉周边环境PM10中PAHs的污染严重,可将Chr,BaP,DbA作为焦炉顶和厂界的首要污染物进行监测. 展开更多
关键词 环境空气 多环芳烃 苯并(a)芘(BaP) BaP当量浓度(bapeq) 焦炉 可吸入颗粒物
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Pollution characteristics, sources and lung cancer risk of atmospheric polycyclic aromatic hydrocarbons in a new urban district of Nanjing, China 被引量:8
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作者 Tao Wang Zhonghuan Xia +5 位作者 Minmin Wu Qianqian Zhang Shiqi Sun Jing Yin Yanchi Zhou Hao Yang 《Journal of Environmental Sciences》 SCIE EI CAS CSCD 2017年第5期118-128,共11页
This paper focused on the pollution characteristics, sources and lung cancer risk of atmospheric polycyclic aromatic hydrocarbons (PAHs) in a new urban district of Nanjing, China. Gaseous and aerosol PM2.5 (particu... This paper focused on the pollution characteristics, sources and lung cancer risk of atmospheric polycyclic aromatic hydrocarbons (PAHs) in a new urban district of Nanjing, China. Gaseous and aerosol PM2.5 (particulate matter with aerodynamic diameter smaller than 2.S μm) samples were collected in spring of 2015. Sixteen PAHs were extracted and analyzed after sampling. Firstly, arithmetic mean concentrations of PAHs and BaPeq (benzo[a]pyrene equivalent) were calculated. The mean concentrations of PAHs were 29.26 ± 14.13,18.14 ± 5.37 and 48.47 ± 16.03 ng/m3 in gas phase, particle phase and both phases, respectively. The mean concentrations of BaPeq were 0.87 ± 0.51, 2.71 ± 2.17 and 4.06 ± 2.31 ng/m3 in gas phase, particle phase and both phases, respectively. Secondly, diagnostic ratios and principal component analysis were adopted to identify the sources of PAHs and the outcomes were the same: traffic exhaust was the predominant source followed by fuel combustion and industrial process. Finally, incremental lung cancer risk (ILCR) induced by whole year inhalation exposure to PAHs for population groups of different age and gender were estimated based on a Monte Carlo simulation. ILCR values caused by particle phase PAHs were greater than those caused by gas phase PAHs. ILCR values for adults were greater than those for other age groups. ILCR values caused by total (gas + particle) PAHs for diverse groups were all greater than the significant level (10-6), indicating high potential lung cancer risk. Sensitivity analysis results showed that cancer slope factor for BaP inhalation exposure and BaPeq concentration had greater impact than body weight and inhalation rate on the ILCR. 展开更多
关键词 PAHs bapeq Ring distribution Source identification ILCR
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