留言板

尊敬的读者、作者、审稿人, 关于本刊的投稿、审稿、编辑和出版的任何问题, 您可以本页添加留言。我们将尽快给您答复。谢谢您的支持!

姓名
邮箱
手机号码
标题
留言内容
验证码

天津工业区春夏季VOCs污染特征及精细化来源解析

李丛舒 刘永全 刘欢 刘金玉 程绍玲 降升平

李丛舒,刘永全,刘欢,等.天津工业区春夏季VOCs污染特征及精细化来源解析[J].环境工程技术学报,2023,13(2):491-500 doi: 10.12153/j.issn.1674-991X.20220214
引用本文: 李丛舒,刘永全,刘欢,等.天津工业区春夏季VOCs污染特征及精细化来源解析[J].环境工程技术学报,2023,13(2):491-500 doi: 10.12153/j.issn.1674-991X.20220214
LI C S,LIU Y Q,LIU H,et al.Pollution characteristics and refined source apportionment for VOCs in Tianjin Industrial Area in spring and summer[J].Journal of Environmental Engineering Technology,2023,13(2):491-500 doi: 10.12153/j.issn.1674-991X.20220214
Citation: LI C S,LIU Y Q,LIU H,et al.Pollution characteristics and refined source apportionment for VOCs in Tianjin Industrial Area in spring and summer[J].Journal of Environmental Engineering Technology,2023,13(2):491-500 doi: 10.12153/j.issn.1674-991X.20220214

天津工业区春夏季VOCs污染特征及精细化来源解析

doi: 10.12153/j.issn.1674-991X.20220214
基金项目: 天津市自然科学基金项目(18JCYBJC91200)
详细信息
    作者简介:

    李丛舒(1996—),女,硕士研究生,主要研究方向为VOCs污染特征,licongshu@mail.tust.edu.cn

    通讯作者:

    降升平(1977—),男,高级实验师,主要从事环境污染研究,jiangshengping@tust.edu.cn

  • 中图分类号: X511

Pollution characteristics and refined source apportionment for VOCs in Tianjin Industrial Area in spring and summer

  • 摘要:

    2021年3—8月,采用热脱附气相色谱质谱法对天津工业区环境空气中109种挥发性有机物(VOCs)进行离线监测,研究了VOCs组成特征、臭氧生成潜势(OFP)及来源,并对工业源进行精细化分析。结果表明:观测期间VOCs浓度为(46.6±19.7)~(136.8±55.7)µg/m3,对VOCs浓度贡献较高的物种是烷烃、卤代烃、含氧挥发性有机物(OVOCs),烷烃、芳香烃浓度呈中午低、早晚高的日变化趋势,OVOCs反之;OFP贡献占比较大的物种有烷烃、芳香烃、烯烃和OVOCs,烷烃的OFP贡献占比主要受其浓度占比影响,夏季芳香烃、烯烃的OFP贡献占比明显升高,臭氧(O3)治理应加强二者的排放管控。来源解析显示,春夏季VOCs的主要来源为工业源、溶剂使用源、柴油车尾气排放源、油气挥发源和天然源。工业源精细化分析表明,芳香烃浓度与焦炭、纯碱产量,OVOCs浓度与天然气、乙烯、农用氮磷钾化肥产量,卤代烃浓度与天然气、汽车、农用氮磷钾化肥、纯碱产量,烯烃浓度与发电设备产量均呈正相关,初步判断,本地区环境空气中的芳香烃、OVOCs、卤代烃、烯烃可能来自于以上细分工业企业。

     

  • 图  1  天津工业区采样点

    Figure  1.  Sampling points in Tianjin industrial area

    图  2  各类物种浓度占比

    Figure  2.  Percentage of concentration of each species

    图  3  不同采样时段VOCs及其各类组成的浓度

    Figure  3.  Concentrations of different kinds of VOCs components at different sampling time

    图  4  各类物种OFP贡献占比及温度、O3浓度的变化

    Figure  4.  Contribution proportions of OFP of each species and changes in temperature and O3 concentration

    图  5  春夏季VOCs中对OFP贡献前10的物种

    Figure  5.  Top 10 species contributing the most to OFP among VOCs in spring and summer

    图  6  春夏季PMF源解析因子分析结果

    Figure  6.  Results of PMF source apportionment in spring and summer

    图  7  天津各类工业生产量与各类VOCs浓度相关性

    注:*表示P<0.05;烯烃、卤代烃、OVOCs、芳香烃浓度单位为µg/m3,焦炭、乙烯、农用氮磷钾化肥、纯碱产量单位为万t,天然气产量单位为亿m3,汽车产量单位为万辆,发电设备产量单位为104 kW。

    Figure  7.  Correlation between VOCs species concentration and industrial production in Tianjin

    表  1  VOCs月平均浓度

    Table  1.   Monthly VOCs Concentrations µg/m3 

    VOCs春季夏季
    3月4月5月6月7月8月
    烷烃75.2±35.536.2±25.052.3±22.462.6±42.513.5±10.523.1±13.5
    卤代烃34.0±26.620.6±21.713.2±8.317.0±14.916.0±10.67.7±4.0
    OVOCs19.1±6.714.0±5.616.4±12.411.7±2.410.1±3.410.2±2.6
    芳香烃6.3±2.54.8±2.34.1±1.73.9±1.45.2±0.83.8±1.2
    烯烃1.4±0.51.1±0.31.8±3.56.6±4.10.9±0.82.4±1.7
    其他0.7±0.70.8±2.10.1±0.16.2±6.80.8±3.00.9±1.5
    合计136.8±55.777.5±48.987.9±27.4108.0±57.146.6±19.748.1±18.5
      注:数据为平均值±标准偏差。
    下载: 导出CSV

    表  2  春夏季VOCs源解析结果

    Table  2.   Results of VOCs source apportionment in spring and summer

    季节因子各因子中贡献率
    较高的物质
    源解析类别源贡献率/%
    春季1丁烷、异丁烷、正戊烷、异戊烷、3-甲基戊烷、2-甲基戊烷、甲基环戊烷油气挥发源[21,32]17.6
    2C7~C10的烷烃、芳香烃柴油车尾气排放源[3,33]16.3
    3正己烷、丙酮、
    二硫化碳
    工业源1[32,34]26.4
    41,2-二氯乙烷、1,2-二氯丙烷、三氯甲烷、
    三氯乙烯
    工业源2[19]16.1
    5环戊烷、二氯甲烷溶剂使用源[35]23.7
    夏季12,3-二甲基丁烷、3-甲基戊烷、2-甲基戊烷、环戊烷、甲基环戊烷、
    环己烷
    油气挥发源[21,32]29.5
    2C7~C10的烷烃、芳香烃柴油车尾气排放源[3,33]18.3
    3正己烷、丙酮、
    二硫化碳
    工业源[32,34]22.1
    4异戊二烯天然源[31]14.7
    5二氯甲烷溶剂使用源[34]15.2
    下载: 导出CSV
  • [1] 付昱萌, 杨红刚, 卢民瑜, 等.鄂州市大气VOCs污染特征及来源解析[J]. 环境科学,2020,41(3):1085-1092.

    FU Y M, YANG H G, LU M Y, et al. Analysis of pollution characteristics and sources of atmospheric VOCs in Ezhou City[J]. Environmental Science,2020,41(3):1085-1092.
    [2] WEI W, LÜ Z F, YANG G, et al. VOCs emission rate estimate for complicated industrial area source using an inverse-dispersion calculation method: a case study on a petroleum refinery in Northern China[J]. Environmental Pollution,2016,218:681-688. doi: 10.1016/j.envpol.2016.07.062
    [3] 赵秋月, 李春燕, 陈凤, 等.南通市夏季VOCs污染特征与来源研究[J]. 中国环境监测,2020,36(2):148-156.

    ZHAO Q Y, LI C Y, CHEN F, et al. Pollution characteristics and source analysis of ambient VOCs in summer in Nantong[J]. Environmental Monitoring in China,2020,36(2):148-156.
    [4] 王韵杰, 张少君, 郝吉明.中国大气污染治理: 进展·挑战·路径[J]. 环境科学研究,2019,32(10):1755-1762.

    WANG Y J, ZHANG S J, HAO J M. Air pollution control in China: progress, challenges and future pathways[J]. Research of Environmental Sciences,2019,32(10):1755-1762.
    [5] 张浩然, 刘敏, 王小嫚, 等.南昌市2021年春季大气VOCs污染特征和来源分析[J]. 中国环境科学,2022,42(3):1040-1047. doi: 10.3969/j.issn.1000-6923.2022.03.006

    ZHANG H R, LIU M, WANG X M, et al. Characteristics and sources of atmospheric VOCs during spring of 2021 in Nanchang[J]. China Environmental Science,2022,42(3):1040-1047. doi: 10.3969/j.issn.1000-6923.2022.03.006
    [6] 王雪涵, 张文慧, 毕晓辉, 等.2001—2020年天津市大气污染特征的演变与防治历程[J]. 环境科学研究,2022,35(4):945-955. doi: 10.13198/j.issn.1001-6929.2021.12.21

    WANG X H, ZHANG W H, BI X H, et al. Characteristics evolution and prevention development of ambient pollution in Tianjin, China[J]. Research of Environmental Sciences,2022,35(4):945-955. doi: 10.13198/j.issn.1001-6929.2021.12.21
    [7] WANG Y S, REN X Y, JI D S, et al. Characterization of volatile organic compounds in the urban area of Beijing from 2000 to 2007[J]. Journal of Environmental Sciences,2012,24(1):95-101. doi: 10.1016/S1001-0742(11)60732-8
    [8] XIONG C, WANG N, ZHOU L, et al. Component characteristics and source apportionment of volatile organic compounds during summer and winter in downtown Chengdu, southwest China[J]. Atmospheric Environment,2021,258:118485. doi: 10.1016/j.atmosenv.2021.118485
    [9] 王成辉, 陈军辉, 韩丽, 等.成都市城区大气VOCs季节污染特征及来源解析[J]. 环境科学,2020,41(9):3951-3960.

    WANG C H, CHEN J H, HAN L, et al. Seasonal pollution characteristics and analysis of the sources of atmospheric VOCs in Chengdu urban area[J]. Environmental Science,2020,41(9):3951-3960.
    [10] 李康为, 应方, 陈玲红, 等.杭州市主城区VOCs污染特征及影响因素[J]. 浙江大学学报(工学版),2019,53(4):671-683.

    LI K W, YING F, CHEN L H, et al. Ambient VOCs characteristics and associated effects in urban Hangzhou[J]. Journal of Zhejiang University (Engineering Science),2019,53(4):671-683.
    [11] 刘锐泽, 方渊, 张韬, 等.青岛市夏季VOCs污染特征及来源解析[J]. 环境工程技术学报,2021,11(6):1041-1048. doi: 10.12153/j.issn.1674-991X.20210202

    LIU R Z, FANG Y, ZHANG T, et al. Characteristics and source analysis of VOCs pollution in summer in Qingdao[J]. Journal of Environmental Engineering Technology,2021,11(6):1041-1048. doi: 10.12153/j.issn.1674-991X.20210202
    [12] 王帅, 崔建升, 冯亚平, 等.石家庄市挥发性有机物和臭氧的污染特征及源解析[J]. 环境科学,2020,41(12):5325-5335.

    WANG S, CUI J S, FENG Y P, et al. Characteristics and source apportionment of VOCs and O3 in Shijiazhuang[J]. Environmental Science,2020,41(12):5325-5335.
    [13] 彭瑾, 成海容, 王祖武, 等.武汉市城区大气挥发性有机物的污染特征及来源解析[J]. 武汉大学学报(理学版),2020,66(4):369-376.

    PENG J, CHENG H R, WANG Z W, et al. Pollution characteristics and sources apportionment of atmospheric volatile organic compounds in Wuhan urban area[J]. Journal of Wuhan University (Natural Science Edition),2020,66(4):369-376.
    [14] 成翔, 赵继峰, 肖洋, 等.工业聚集区大气VOCs组成特征及对臭氧生成的影响[J]. 环境工程技术学报,2020,10(5):823-830. doi: 10.12153/j.issn.1674-991X.20190209

    CHENG X, ZHAO J F, XIAO Y, et al. Composition characteristics of atmospheric VOCs and the influence on ozone formation in an industrial cluster area[J]. Journal of Environmental Engineering Technology,2020,10(5):823-830. doi: 10.12153/j.issn.1674-991X.20190209
    [15] GENG F H, ZHAO C S, TANG X, et al. Analysis of ozone and VOCs measured in Shanghai: a case study[J]. Atmospheric Environment,2007,41(5):989-1001. doi: 10.1016/j.atmosenv.2006.09.023
    [16] SHAO M, ZHANG Y H, ZENG L M, et al. Ground-level ozone in the Pearl River Delta and the roles of VOC and NOx in its production[J]. Journal of Environmental Management,2009,90(1):512-518. doi: 10.1016/j.jenvman.2007.12.008
    [17] 景盛翱, 高雅琴, 沈建东, 等.杭州市城区挥发性有机物污染特征及反应活性[J]. 环境科学,2020,41(12):5306-5315.

    JING S A, GAO Y Q, SHEN J D, et al. Characteristics and reactivity of ambient VOCs in urban Hangzhou, China[J]. Environmental Science,2020,41(12):5306-5315.
    [18] 罗瑞雪, 刘保双, 梁丹妮, 等.天津市郊夏季的臭氧变化特征及其前体物VOCs的来源解析[J]. 环境科学,2021,42(1):75-87.

    LUO R X, LIU B S, LIANG D N, et al. Characteristics of ozone and source apportionment of the precursor VOCs in Tianjin suburbs in summer[J]. Environmental Science,2021,42(1):75-87.
    [19] HUI L R, LIU X G, TAN Q W, et al. Characteristics, source apportionment and contribution of VOCs to ozone formation in Wuhan, Central China[J]. Atmospheric Environment,2018,192:55-71. doi: 10.1016/j.atmosenv.2018.08.042
    [20] MO Z W, SHAO M, LU S H. Compilation of a source profile database for hydrocarbon and OVOC emissions in China[J]. Atmospheric Environment,2016,143:209-217. doi: 10.1016/j.atmosenv.2016.08.025
    [21] 高璟赟, 肖致美, 徐虹, 等.2019年天津市挥发性有机物污染特征及来源[J]. 环境科学,2021,42(1):55-64. doi: 10.13227/j.hjkx.202006257

    GAO J Y, XIAO Z M, XU H, et al. Characterization and source apportionment of atmospheric VOCs in Tianjin in 2019[J]. Environmental Science,2021,42(1):55-64. doi: 10.13227/j.hjkx.202006257
    [22] LIU B S, LIANG D N, YANG J M, et al. Characterization and source apportionment of volatile organic compounds based on 1-year of observational data in Tianjin, China[J]. Environmental Pollution,2016,218:757-769. doi: 10.1016/j.envpol.2016.07.072
    [23] 高璟赟, 唐邈, 陈魁, 等.天津市不同功能区大气挥发性有机物污染特征及来源分析[J]. 环境污染与防治,2016,38(5):43-47.

    GAO J Y, TANG M, CHEN K, et al. Pollution characteristics and source analysis of atmospheric volatile organic compounds in different function areas, Tianjin[J]. Environmental Pollution & Control,2016,38(5):43-47.
    [24] 环境保护部. 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: HJ 644—2013[S]. 北京: 中国环境科学出版社, 2013.
    [25] CARTER W P L. Development of ozone reactivity scales for volatile organic compounds[J]. Air & Waste,1994,44(7):881-899.
    [26] LYU X P, CHEN N, GUO H, et al. Ambient volatile organic compounds and their effect on ozone production in Wuhan, central China[J]. Science of the Total Environment,2016,541:200-209. doi: 10.1016/j.scitotenv.2015.09.093
    [27] 王珊, 苏亮, 刘远立, 等.皮尔森和偏相关系数模型在稻谷重金属污染程度研究中应用[J]. 中国食品卫生杂志,2020,32(6):631-635.

    WANG S, SU L, LIU Y L, et al. Application of Pearson and partial correlation coefficient model in the research of heavy metal pollution in rice[J]. Chinese Journal of Food Hygiene,2020,32(6):631-635.
    [28] 陈木兰, 王赛男, 陈天舒, 等.西南典型区域夏季大气含氧挥发性有机化合物来源解析[J]. 环境科学,2021,42(6):2648-2658.

    CHEN M L, WANG S N, CHEN T S, et al. Sources apportionment of oxygenated volatile organic compounds (OVOCs) in a typical southwestern region in China during summer[J]. Environmental Science,2021,42(6):2648-2658.
    [29] 田昀, 刘庆岭, 纪娜, 等.挥发性污染物二硫化碳处理技术[J]. 环境工程,2018,36(7):87-92.

    TIAN Y, LIU Q L, JI N, et al. Treatment technology of carbon disulfide from volatile pollutants[J]. Environmental Engineering,2018,36(7):87-92.
    [30] 天津市质量技术监督局. 工业企业挥发性有机物排放控制标准: DB12/ 524—2014[S]. 天津: 天津市市场监督管理委员会, 2014.
    [31] 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.
    [32] 徐晨曦, 陈军辉, 姜涛, 等.成都市区夏季大气挥发性有机物污染特征及来源解析[J]. 环境科学,2020,41(12):5316-5324. doi: 10.13227/j.hjkx.202006040

    XU C X, CHEN J H, JIANG T, et al. Characteristics and sources of atmospheric volatile organic compounds pollution in summer in Chengdu[J]. Environmental Science,2020,41(12):5316-5324. doi: 10.13227/j.hjkx.202006040
    [33] SUN J, SHEN Z X, ZHANG Y, et al. Urban VOC profiles, possible sources, and its role in ozone formation for a summer campaign over Xi'an, China[J]. Environmental Science and Pollution Research,2019,26(27):27769-27782. doi: 10.1007/s11356-019-05950-0
    [34] YU S J, SU F C, YIN S S, et al. Characterization of ambient volatile organic compounds, source apportionment, and the ozone-NOx-VOC sensitivities in a heavily polluted megacity of central China: effect of sporting events and emission reductions[J]. Atmospheric Chemistry and Physics,2021,21(19):15239-15257. doi: 10.5194/acp-21-15239-2021
    [35] 工业和信息化部. 使用环戊烷发泡剂生产家用和类似用途电器安全技术规范: QB/T 2911—2016[S]. 北京: 中国轻工业出版社, 2016.
  • 加载中
图(7) / 表(2)
计量
  • 文章访问数:  216
  • HTML全文浏览量:  115
  • PDF下载量:  43
  • 被引次数: 0
出版历程
  • 收稿日期:  2022-03-07

目录

    /

    返回文章
    返回