• 中文核心期刊要目总览
  • 中国科技核心期刊
  • 中国科学引文数据库(CSCD)
  • 中国科技论文与引文数据库(CSTPCD)
  • 中国学术期刊文摘数据库(CSAD)
  • 中国学术期刊(网络版)(CNKI)
  • 中文科技期刊数据库
  • 万方数据知识服务平台
  • 中国超星期刊域出版平台
  • 国家科技学术期刊开放平台
  • 荷兰文摘与引文数据库(SCOPUS)
  • 日本科学技术振兴机构数据库(JST)

Effect of gas composition on pulsed corona discharge characteristics and Hg0 removal performance

  • Abstract: Plasma technology effectively removes Hg0 by oxidizing it via highly reactive species, offering an efficient and rapid approach for mercury emission control. In this work, we investigated the mechanism of Hg0(g) removal by pulsed corona discharge non-thermal plasma in pure N2 and N2(80%)-O2(20%) mixtures (or simulated air). Experimental and simulation methods were employed to thoroughly investigate corona discharge electrical characteristics, optical properties, and Hg0 removal efficiency, while plasma processes and particle evolution mechanisms were analyzed. Hg0 was effectively removed in pure N2 under pulsed corona discharge, achieving 79% efficiency. Despite discharge instability in simulated air due to oxygen’s electronegativity, its strong oxidizing ability enabled nearly complete Hg0 oxidation via enhanced plasma chemistry. Mechanistic analysis indicates that the pulse corona discharge generates abundant high-energy electrons and reactive oxygen species, which play a critical role in the effective removal of Hg0. The reactive oxygen species in the N2-O2 plasma is suggested to be the key issue for improving the efficiency of Hg0 removal. The higher electron temperature in simulated air helps provide sufficient reactive conditions for Hg0 removal. This research provides valuable insights into the development of more effective non-thermal plasma systems for Hg0 control and enhances the theoretical foundation of plasma technology for Hg0 removal.

     

/

返回文章
返回