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Research Article

The migration and transformation characteristics of particulate matter and trace elements in a cement plant

, ORCID Icon, , &
Pages 5978-5990 | Received 11 Apr 2022, Accepted 20 Jun 2022, Published online: 30 Jun 2022

References

  • Bao, J., J. Xu, J. Tang, G. Xie, H. Liu, L. Sun, and H. Yang. 2017. Study on the nucleation and growth of fine particles in flue gas promoted by heterogeneous condensation of water vapor. Advanced Engineering Sciences 49 (5):171–77.
  • Bijie, H. 2013. Characteristics and control technology of dust pollution in cement industry. Journal of Green Science and Technology (12):140–42.
  • Burmistrz, P., T. Dziok, D. Makowska, F. Wieronska, and A. Strugala. 2019. Contents of ecotoxic elements in polish coking bituminous coals and in products of coking. E3S Web of Conferences 108:02002. doi:10.1051/e3sconf/201910802002.
  • Du, Y., H. Liu, H. Tan, F. Yang, R. Ruan, and J. Xiao. 2019. Characteristics of distribution and emission for fine particulates from a cement kiln tail. Environment Engineering 37 (9):113–118,148.
  • Environment, Q. M. B. o. E. a. 2015. Solid waste-Determination of metals -Inductively coupled plasma mass spectrometry (ICP-MS). Vol. HJ 766–2015.
  • Gang, W., M. Luying, W. Jian, and S. Yong. 2013. Baghose precipitation technology and PM2.5 dust control in cement industry. China Environmental Protection Industry (6):26–28.
  • Gupta, R. K., D. Majumdar, J. V. Trivedi, and A. D. Bhanarkar. 2012. Particulate matter and elemental emissions from a cement kiln. Fuel Processing Technology 104:343–51. doi:10.1016/j.fuproc.2012.06.007.
  • Houzhang, T., M. Shuanghua, L. Liangliang, L. Guohui, C. Ruijie, D. Tianmin, and R. Renhui. 2018. Performance research on the new integrated system of wet phase transiton agglomeration dust collector, water saving and flue gas waste heat recovery. Thermal Power Generation 47 (6):16–22.
  • Institute of Environmental Health and Engineering, C. A. o. P. 1996. Medicine, determination of particulates and sampling methods of gaseous pollutants emitted from exhaust gas of stationary source. In Ministry of ecology and environment of the people’s republic of China, Vol. GB/T., 16157–1996. Beijing.
  • Jiancai, S. U. I., D. U. Yungui, L. I. U. Yi, and X. U. Minghou. 2008. Status Quo of the study on the development of coal combustion in China and its development trend. Journal of Engineering for Thermal Energy and Power 23 (2):111–16.
  • Jingsi, L. 2011. Analysis on the status quo and market prospects of dust removal technology in my country’s cement industry. Energy and Environment (6):85–86.
  • Kunlong, G. 2015. Study on the emission characteristics of atmospheric pollutants exhausted from NSP cement plants. HeFei: Master, Hefei University of Technology.
  • Lanzerstorfer, C. 2018. Fly ash from coal combustion: Dependence of the concentration of various elements on the particle size. Fuel 228:263–71. doi:10.1016/j.fuel.2018.04.136.
  • Lind, T., J. Hokkinen, J. K. Jokiniemi, S. Saarikoski, and R. Hillamo. 2003. Electrostatic precipitator collection efficiency and trace element emissions from co-combustion of biomass and recovered fuel in fluidized-bed combustion. Environmental Science & Technology 37 (12):2842–46. doi:10.1021/es026314z.
  • Liu, H. M., C. B. Wang, X. Sun, Y. Zhang, and C. Zou. 2016. Volatilization of arsenic in coal during isothermal oxy-fuel combustion. Energy & Fuels 30 (4):3479–87. doi:10.1021/acs.energyfuels.6b00057.
  • Liu, H. X., F. X. Yang, Y. L. Du, R. H. Ruan, H. Z. Tan, J. F. Xiao, and S. C. Zhang. 2019. Field measurements on particle size distributions and emission characteristics of PM10 in a cement plant of China. Atmospheric Pollution Research 10 (5):1464–72. doi:10.1016/j.apr.2019.04.003.
  • Liu, B. J., J. Y. Wang, H. T. He, V. Mishra, Y. H. Li, J. X. Wang, and C. L. Zhao. 2020. Geochemistry of carboniferous coals from the laoyaogou mine, ningwu coalfield, Shanxi Province, northern China: Emphasis on the enrichment of valuable elements. Fuel 279: 12. doi:10.1016/j.fuel.2020.118414.
  • Liu, Z., B. Bai, and S. Wang. 2020. Species distribution of As,Se and Pb in coal-fired flue gas and influence of elements S and Cl on them. Journal of Fuel Chemistry and Technology 48 (11):1298–309.
  • Ma, J. 2010. Research on emission characteristics of air pollutants from cement industry. Handan: Master, Hebei University of Engineering.
  • Quann, R. J., M. Neville, M. Janghorbani, C. A. Mims, and A. F. Sarofim. 1982. Mineral matter and trace-element vaporization in a laboratory-pulverized coal combustion system. Environmental Science & Technology 16 (11):776–81. doi:10.1021/es00105a009.
  • Ratafiabrown, J. A. 1994. Overview of trace-element partitioning in flames and furnaces of utility coal-fired boilers. Fuel Processing Technology 39 (1–3):139–57. doi:10.1016/0378-3820(94)90177-5.
  • Seames, W. S., and J. O. L. Wendt. 2000. Partitioning of arsenic, selenium, and cadmium during the combustion of Pittsburgh and Illinois #6 coals in a self-sustained combustor. Fuel Processing Technology 63 (2–3):179–96. doi:10.1016/S0378-3820(99)00096-X.
  • Senior, C. L., T. Zeng, J. Che, M. R. Ames, A. F. Sarofim, I. Olmez, F. E. Huggins, N. Shah, G. P. Huffman, A. Kolker, et al. 2000. Distribution of trace elements in selected pulverized coals as a function of particle size and density. Fuel Processing Technology 63 (2–3):215–41. doi:10.1016/S0378-3820(99)00098-3.
  • Shen, A., L. Yang, X. Wu, Y. Duan, and C. Liang. 2021. Study on co-removal of PM_(10) and trace elements in coal-fired flue gas enhanced by turbulent agglomeration. Journal of Central South University of Science and Technology 52 (1):106–15.
  • Song, W. J., F. C. Jiao, N. Yamada, Y. Ninomiya, and Z. B. Zhu. 2013. Condensation behavior of heavy metals during oxy-fuel combustion: Deposition, species distribution, and their particle characteristics. Energy & Fuels 27 (10):5640–52. doi:10.1021/ef400484p.
  • Sun, Y. 2021. Preliminary analysis of pollutants emission characteristics of industrial furnaces and kilns of Anhui province. Environmental Science Survey 40 (4):52–55+74.
  • Vassilev, S. V., K. Kitano, and C. G. Vassileva. 1996. Some relationships between coal rank and chemical and mineral composition. Fuel 75 (13):1537–42. doi:10.1016/0016-2361(96)00116-0.
  • Wang, H. L., Z. P. Hao, Y. H. Zhuang, W. Wang, and X. Y. Liu. 2008. Characterization of inorganic components of size-segregated particles in the flue gas of a coal-fired power plant. Energy & Fuels 22 (3):1636–40. doi:10.1021/ef700527y.
  • Wang, J., B. Zhao, S. Wang, F. Yang, J. Xing, L. Morawska, A. Ding, M. Kulmala, V.-M. Kerminen, and J. Kujansuu, et al. 2017. Particulate matter pollution over China and the effects of control policies. Science of the Total Environment 584: 426–447. doi:10.1016/j.scitotenv.2017.01.027.
  • Wang, J. H., X. Zhang, Q. Yang, K. Zhang, Y. Zheng, and G. H. Zhou. 2018. Pollution characteristics of atmospheric dustfall and heavy metals in a typical inland heavy industry city in China. Journal of Environmental Sciences 71:283–91. doi:10.1016/j.jes.2018.05.031.
  • Wang, X., and B. Shen. 2020. Research advances on emission control of trace heavy metals in coal-burning process. Modern Chemical Industry 40 (11):25–29.
  • Wang, S., X. Bai, C. Song, Y. Zhang, Y. Gu, Z. Guo, B. Wu, X. Yu, L. Duan, and H. Tian. 2021. Study of atmospheric trace elements emission standards for coal-fired power plants in China. China Environmental Science 41 (4):1949–58.
  • Xiang, F. P., Y. He, S. Kumar, Z. H. Wang, L. L. Liu, Z. Y. Huang, J. Z. Liu, and K. F. Cen. 2017. Influence of hydrothermal dewatering on trace element transfer in Yimin coal. Applied Thermal Engineering 117:675–81. doi:10.1016/j.applthermaleng.2016.12.100.
  • Xiong, G., S. Li, S. Chen, X. Zhang, and Q. Yao. 2015. Development of advanced electrostatic precipitation technologies for reducing PM_(2.5)emissions from coal-fired power plants. Proceedings of the Chinese Society of Electrical Engineering 35 (9):2217–23.
  • Xu, M. H., R. Yan, C. G. Zheng, Y. Qiao, J. Han, and C. D. Sheng. 2004. Status of trace element emission in a coal combustion process: A review. Fuel Processing Technology 85 (2–3):215–37. doi:10.1016/S0378-3820(03)00174-7.
  • Yang, Z., S. Tang, Z. Zhang, C. Liu, and X. Ge. 2018. Characterization of PM 10 surrounding a cement plant with integrated facilities for co-processing of hazardous wastes. Journal of Cleaner Production 186:831–39. doi:10.1016/j.jclepro.2018.03.178.
  • Zajusz-Zubek, E., and J. Konieczynski. 2003. Dynamics of trace elements release in a coal pyrolysis process. Fuel 82 (10):1281–90. doi:10.1016/S0016-2361(03)00031-0.
  • Zhao, S. L., Y. F. Duan, J. C. Lu, R. Gupta, D. Pudasainee, S. Liu, M. Liu, and J. H. Lu. 2018. Chemical speciation and leaching characteristics of hazardous trace elements in coal and fly ash from coal-fired power plants. Fuel 232:463–69. doi:10.1016/j.fuel.2018.05.135.
  • Zhao, Q.-Y., S.-J. Han, T.-S. Zhang, L.-M. Yang, R.-Q. Zhang, and Q.-S. Yan. 2019. Emission characteristics and list of inorganic elements in fine particles of typical industrial kilns in Zhengzhou city. Huanjing Kexue 40 (5):2052–61. doi:10.13227/j.hjkx.201810109.

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