Open Access
Issue
E3S Web Conf.
Volume 711, 2026
2026 2nd International Conference on Environmental Monitoring and Ecological Restoration (EMER 2026)
Article Number 02014
Number of page(s) 8
Section Ecological Restoration and Remediation
DOI https://doi.org/10.1051/e3sconf/202671102014
Published online 19 May 2026
  1. Yang W., Chen G. J., et al. Methane emissions from oil and gas systems in the United States and China [J]. Oil-Gas Field Environmental Protection, 2012, 22(02): 54–58+81. [Google Scholar]
  2. Liang X. L. Investigation and application of VOCs treatment and its influence on environmental management [J]. Environment and Development, 2017, 131(04): 231–232. [Google Scholar]
  3. Dlugokencky E. J., Nisbet E. G., Lowry D., et al. Global atmospheric methane: budget, changes and dangers [J]. Philosophical Transactions of the Royal Society A, 2011, 369(1943): 2058–2072. [Google Scholar]
  4. Dong Y. P., Yu Y. Y., et al. Study on the major components of characteristic volatile organic compounds in the petrochemical industry [J]. Environmental Science and Management, 2016, 41(09): 109–113. [Google Scholar]
  5. Yue M. M., Wang Y. Y., et al. Research progress on the spatiotemporal pollution characteristics of VOCs under coordinated control of PM2.5 and O3 [J]. Guangdong Chemical Industry, 2024, 51(02): 65–66+53. [Google Scholar]
  6. Li Y., Wang T., Wang Q., et al. Impact of aerosol-radiation interaction and heterogeneous chemistry on the winter decreasing PM2.5 and increasing O3 in Eastern China 2014-2020 [J]. Journal of Environmental Sciences, 2025, 151(05): 469–483. [Google Scholar]
  7. Wang M. M. Analysis of VOCs pollution sources in oil and gas fields and corresponding control countermeasures [J]. Chemical Engineering Design Communications, 2020, 46(03): 38–39. [Google Scholar]
  8. Chen D. Analysis of treatment technologies for volatile organic waste gas in the atmospheric environment [J]. Leather Manufacturing and Environmental Technology, 2025, 6(15): 85–87. [Google Scholar]
  9. Liu F. J., Liu Q. H., et al. Research progress in catalysts for complete methane oxidation [J]. Renewable Energy, 2025, 43(09): 1137–1144. [Google Scholar]
  10. Xia X., Cui B. J., et al. VOCs waste-gas treatment measures and their applications [J]. Contemporary Chemical Industry, 2025, 54(08): 1997–2000. [Google Scholar]
  11. Zhen H. H. Application of catalytic incineration (CO) in VOCs treatment [J]. Chemical Engineering Design Communications, 2023, 49(09): 181–193. [Google Scholar]
  12. Ren Y., Xie C., et al. Application of UV photolysis technology in the treatment of dehydration exhaust gas from oil and gas fields [J]. China Environmental Protection Industry, 2011, 12: 28–30. [Google Scholar]
  13. Fan H. M. Correlation between alkane structural parameters and thermodynamic properties [J]. Journal of Lanzhou Petrochemical Vocational and Technical College, 2008, 8(04): 1–4. [Google Scholar]
  14. Lu J. Research progress in catalytic oxidation of methane by precious-metal complexes [J]. Guangzhou Chemical Industry, 2020, 48(15): 51–53+64. [Google Scholar]
  15. an Q., Yu Z., et al. Synergism in platinum enhanced nickel catalysts for oxidation of methane to syngas [J]. Journal of Natural Gas Chemistry, 2000(01): 18–31+87. [Google Scholar]
  16. Colussi S., Fornasiero P., et al. Structure-activity relationship in Pd/CeO2 methane oxidation catalysts [J]. Chinese Journal of Catalysis, 2020, 41(06): 938–950. [Google Scholar]
  17. Boutros M., Gálvez M. E., et al. Influence of synthesis parameters of SBA-15 supported palladium catalysts for methane combustion and simultaneous NOx reduction [J]. Microporous and Mesoporous Materials, 2014: 183. [Google Scholar]
  18. Zhao X. T., Hou J., et al. Research progress in the oxidation of low-concentration methane over palladium-based catalysts [J]. Energy Environmental Protection, 2023, 37(02): 106–116. [Google Scholar]
  19. Zhang X., Guan Q., et al. Comparison study of structural thermostability of SiO2 supported Au@Pt and Au@Pd core-shell nanoparticles [J]. Chinese Journal of Chemical Physics, 2023, 36(02): 132–140. [Google Scholar]
  20. Pi D. Experimental study on catalytic combustion of low-concentration methane over Pd-based catalysts [D]. Anhui: University of Science and Technology of China, 2016. [Google Scholar]
  21. Zheng Q. X., Liu J. D., et al. Relationship of catalytic reaction conversion in flow reactors with temperature and space velocity [J]. Chemical Reaction Engineering and Technology, 2005, 21(04): 360–364. [Google Scholar]
  22. Pu G., Xu P., et al. Study on catalytic combustion characteristics of low-concentration methane and Cr catalysts [J]. Coal Conversion, 2012, 35(02): 77–80. [Google Scholar]
  23. Hu Y., Jiang L. L., et al. Optimization and modification of a fine desulfurization system [J]. Fertilizer Industry, 2016, 43(04): 64–66+70. [Google Scholar]
  24. Chen Y. K. Application and optimization of regenerative thermal oxidation (RTO) technology in VOCs treatment [J]. Chemical Safety and Environment, 2025, 38(07): 41–44. [Google Scholar]
  25. Qian J. L. Tubular Heating Furnace [M]. Beijing: China Petrochemical Press, 2005. [Google Scholar]
  26. Yang W. F. Applied study on high-temperature regulation by heat-dissipation units in the catalytic oxidation of high-concentration VOCs [D]. Guangdong: South China University of Technology, 2022. [Google Scholar]

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