广州典型印刷企业VOCs排放特征及环境影响和健康风险评价

冯旸, 刘锐源, 刘雷璐, 卢诗文, 黄皓旻, 范丽雅, 叶代启

中国环境科学 ›› 2020, Vol. 40 ›› Issue (9) : 3791-3800.

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中国环境科学 ›› 2020, Vol. 40 ›› Issue (9) : 3791-3800.
大气污染与控制

广州典型印刷企业VOCs排放特征及环境影响和健康风险评价

  • 冯旸1, 刘锐源1, 刘雷璐1, 卢诗文1, 黄皓旻1,2,3,4, 范丽雅1,2,3,4, 叶代启1,2,3,4
作者信息 +

VOCs emission characteristics, environmental impact and health risk assessment of typical printing enterprises in Guangzhou

  • FENG yang1, LIU Rui-yuan1, LIU Lei-lu1, LU Shi-wen1, HUANG Hao-min1,2,3,4, FAN Li-ya1,2,3,4, YE Dai-qi1,2,3,4
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摘要

本文以广州市典型印刷企业为研究对象,通过对各排放环节的浓度和组分的全面统计和综合分析,深入探讨广州市该行业VOCs排放特征、环境影响及人体健康风险.结果表明,印前环节车间VOCs浓度为3.51~73.57mg/m3,印刷环节车间VOCs浓度为0.86~435.10mg/m3,印后环节车间VOCs浓度为0.05~221.93mg/m3,废气治理设施出口浓度为4.28~66.84mg/m3,处理效率为3.01%~54.90%;且VOCs物种以芳香烃类、醇醚类和酯类为主,平均臭氧生成潜势为111.09mg/m3,其中芳香烃类物质对环境影响贡献和人体健康风险较大,建议加强针对性控制.

Abstract

Taking typical printing enterprises in Guangzhou as the research objects, this paper discussed the emission characteristics, environmental impact and human health risks of VOCs in this industry based on the comprehensive statistical analysis of the concentrations and components of each emission stages. The results showed that the VOCs concentration was 3.51~73.57mg/m3 in the pre-press workshop, 0.86~435.10mg/m3 in the printing workshop, 0.05~221.93mg/m3 in the post-press workshop, respectively. The concentration at outlet of the exhaust-gas treatment facility was 4.28 ~ 66.84mg/m3 with treatment efficiencies ranging between 3.01% and 54.90%. The main emitted VOCs species consisted of aromatic hydrocarbons, alcohol ethers and esters, and the average ozone formation potential was 111.09mg/m3. Since aromatic hydrocarbons poses greater environmental impacts and health risks, it was recommended that the targeted control of aromatic hydrocarbons should be strengthened.

关键词

环境影响 / 挥发性有机物(VOCs) / 健康风险 / 排放浓度 / 印刷企业

Key words

emission concentration / environmental impact / health risk / printing enterprise / volatile organic compounds (VOCs)

引用本文

导出引用
冯旸, 刘锐源, 刘雷璐, 卢诗文, 黄皓旻, 范丽雅, 叶代启. 广州典型印刷企业VOCs排放特征及环境影响和健康风险评价[J]. 中国环境科学. 2020, 40(9): 3791-3800
FENG yang, LIU Rui-yuan, LIU Lei-lu, LU Shi-wen, HUANG Hao-min, FAN Li-ya, YE Dai-qi. VOCs emission characteristics, environmental impact and health risk assessment of typical printing enterprises in Guangzhou[J]. China Environmental Science. 2020, 40(9): 3791-3800
中图分类号: X511   

参考文献

[1] 广州市生态环境局.2018年广州市环境质量状况公报[EB/OL]. http://sthjj.gz.gov.cn/zwgk/hjgb/content/post_2808232.html. Guangzhou Municpal Ecological Environment Bureau. 2018 Guangzhou environmental quality status bulletin[EB/OL]. http://sthjj.gz.gov.cn/zwgk/hjgb/content/post_2808232.html.
[2] Wu R, Xie S. Spatial distribution of ozone Formation in China derived from emissions of speciated volatile organic compounds[J]. Environmental Science & Technology, 51(5):2574-2583.
[3] Ran L, Zhao C S, Xu W Y, et al. VOC reactivity and its effect on ozone production during the HaChi summer campaign[J]. Atmospheric Chemistry & Physics, 2011,11(10):4657-4667.
[4] 王川,夏士勇,曹礼明,等.深圳西部城区大气O3污染特征及超标成因[J]. 中国环境科学, 2020,40(4):1414-1420. Wang C, Xia S X, Cao L M, et al. Study on the characteristics and the cause of atmospheric O3 pollution in western urban of Shenzhen[J]. China Environmental Science, 2020,40(4):1414-1420.
[5] 张瑞旭,刘焕武,邓顺熙,等.宝鸡市秋冬季大气VOCs浓度特征及其O3和SOA生成潜势[J]. 中国环境科学, 2020,40(3):983-996. Zhang R X, Liu H W, Deng S X, et al. Characteristics of VOCs and formation potential of O3 and SOA in autumn and winter in Baoji, China[J]. China Environmental Science, 2020,40(3):983-996.
[6] 陈颖.我国工业源VOCs行业排放特征及未来趋势研究[D]. 广州:华南理工大学, 2011. Chen Y. Study on current and future industrial emissions of volatile organic compounds in China[D]. Guangzhou:South China University of Technology, 2011.
[7] 杨杨,杨静,尹沙沙,等.珠江三角洲印刷行业VOCs组分排放清单及关键活性组分[J]. 环境科学研究, 2013,26(3):326-333. Yang Y, Yang J, Yin S S, et al. Speciated VOCs emission invetory and key specis from printng industry in the Pearl River Delta Region[J]. Research of Environmental Sciences, 2013,26(3):326-333.
[8] 王家德,吕建璋,李文娟,等.浙江省包装印刷行业挥发性有机物排放特征及排放系数[J]. 环境科学, 2018,39(8):3552-6. Wang J D, Lu J Z, Li W J, et al. Pollution characteristics and emission coefficients of volatile organic compounds from the packaging and printing industry in Zhejiang Province[J]. Environmental Science, 2018,39(8):3552-6.
[9] 杨利娴,谢芳,刘育.印刷业挥发性有机物排放特征[J]. 广东化工, 2014,41(18):129-130. Yang L X, Xie F, Liu Y. The characteristics and control strategies of VOCs emission from the printing industry[J]. Guangdong Chemical Industry, 2014,41(18):129-130.
[10] 蔡宗平,蔡慧华.印刷行业VOCs排放特征研究[J]. 环境科学与管理, 2013,38(8):166-172. Cai Z P, Cai H H. Study on characteristics of VOCs Emission from printing industry[J]. Environmental Science and Management, 2013, 38(8):166-172.
[11] 窦德星,于宏兵,张艳芳,等.包装印刷业VOCs污染特征分析[J]. 化工环保, 2019,39(3):342-348. Dou D X, Yu H B,Zhang H B, et al. Analysis of VOCs pollution characteristics in packaging and printing industry[J]. Environmental Protection of Chemical Industry, 2019,39(3):342-348.
[12] 刘文文,方莉,郭秀锐,等.京津冀地区典型印刷企业VOCs排放特征及臭氧生成潜势分析[J]. 环境科学, 2019,40(9):3942-3948. Liu W W, Fang L, Guo X R, et al. Emission characteristics and ozone formation potential of VOCs in printing enterprises in Beijing-Tianjin-Hebei[J]. Environmental Science, 2019,40(9):3942-3948.
[13] L i Q Q, Su G J, Li C Q, et al. Emission profiles, ozone formation potential and health-risk assessment of volatile organic compounds in rubber footwear industries in China[J]. Journal of hazardous materials, 2019:375.
[14] 夏芬美,李红,李金娟,等.北京市东北城区夏季环境空气中苯系物的污染特征与健康风险评价[J]. 生态毒理学报, 2014,9(6):1041-1052. Xia F M, Li H, Li J J, et al. Characteristics and health risk assessment of atmospheric benzene homologues in Summer in the Northeastern Urban Area of Beijing, China[J]. Asian Journal of Ecotoxicology, 2014,9(6):1041-1052.
[15] 冷朋波,边国林,王爱红,等.美国EPA吸入风险模型在木质家具制造企业职业健康风险评估中的应用[J]. 环境与职业医学, 2014, 31(11):858-862. Leng P B, Bian G L, Wang A H, et al. Application of U.S.EPA inhalation risk model to occupational health risk assessment of wooden furniture manufacturing factories[J]. Journal of Environmental & Occupational Medicine, 2014,31(11):858-862.
[16] 程曦,张利慧,李红,等.首届"一带一路"会议期间北京市典型城区空气中VOCs的污染特征及健康风险评价[J]. 环境科学学报, 2019,39(9):2839-2851. Cheng X, Zhang L H, Li H, et al. Atmospheric VOCs in a typical urban area of Beijing:Pollution characterization and health risk during the period of the first forum on the Belt and Road Initiatives[J]. Acta Scientiae Circumstantiae, 2019,39(9):2839-2851.
[17] 谢轶嵩,郑新梅,刘春蕾.南京市印刷行业VOCs成分谱及臭氧生成潜势[J]. 环境科技, 2018,31(5):64-67. Xie Y S, Zheng X M, Liu C L. Source profiles and ozone formation potental of volatile organic compounds from printing industry in Nanjing[J]. Environmental Science and Technology, 2018,31(5):64-67.
[18] 方莉,刘文文,陈丹妮,等.北京市典型溶剂使用行业VOCs成分谱[J]. 环境科学, 2019,40(10):4395-4403. Fang L, Liu W W, Chen D N, et al. Source profiles of volatile organic compounds(VOCs) from typical solvent-based industries in Beijing[J]. Environmental Science, 2019,40(10):4395-4403.
[19] Abdullah A, Ashraf R, Peter D, et al. Inhalation exposure to volatile organic compounds in the printing industry[J]. Journal of the Air & Waste Management Association (1995), 2019,69(10).
[20] HJ 734-2014固定污染源废气挥发性有机物的测定固相吸附-热脱附/气相色谱-质谱法[S]. HJ 734-2014 Stationary source emission -Determination of volatile organic compounds-Sorbent adsorption and thermal desorption gas chromatography mass spectrometry method[S].
[21] HJ 644-2013环境空气挥发性有机物的测定吸附管采样-热脱附气相色谱-质谱法[S]. HJ 644-2013 Ambient air-Determination of volatile organic compounds-Sorbent adsorption and thermal desorption/gas chromatography mass spectrometry method[S].
[22] HJ 759-2015环境空气挥发性有机物的测定罐采样气相色谱-质谱法[S]. HJ 759-2015 Ambient air-determination of volatile organic compounds-collected by specially-prepared canistersand analyzed by gas chromatography/mass spectrometry[S].
[23] Carter W L P. Updated maximum incremental reactivity scale and hydrocarbon bin reactivities for regulatory applications[R]. Reported to California Air Resources Board Contract, 2010:07-339.
[24] Yoshio N. Measurement of odor threshold by triangle odor bag method[R]. Odor Measurement Review. 2004:118-127.
[25] Office of Superfund Remediation and Technology Innovation, Environmental Protection Agency. Risk assessment guidance for superfund Volume I human health evaluation manual (Part F,Supplemental guidance for inhalation risk assessment)[R]. Environmental Protection Agency, 2009,EPA540-R-070-002.
[26] United States Environmental Protection Agency. IRIS Assessments[EB/OL]. https://cfpub.epa.gov/ncea/iris_drafts/AtoZ.cfm.

基金

国家自然科学基金资助项目(51808227);广州市生态环境局大气污染综合整治项目(D9193610);广州市科技计划(202002020020);国家重点研发计划(2017YFC0212805)

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