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Integrated method of non-thermal plasma combined with catalytical oxidation for simultaneous removal of SO_2 and NO

机译:非热等离子体结合催化氧化同时去除SO_2和NO的综合方法

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摘要

In this paper, non-thermal plasma (NTP) discharge and catalyst were integrated, and the dielectric barrier discharge (DBD) reactor was used to prepare a MnCe/Ti catalyst. We then measured its surface characteristics. A NTP catalytic oxidation experimental system based on the MnCe/Ti catalyst was constructed for simultaneous desulfurization and denitrification, and the efficiency of the system for the simultaneous removal of NO and SO2 in simulated flue gas was verified. The effects of specific energy density (SED), flue gas flow rate, and the initial concentrations of NO and SO2 on the removal efficiencies as well as the interactions between NO and SO2 were analyzed. The NO and SO2 removal efficiencies and the corresponding energy efficiency of the integrated system were compared to the system using only the DBD reactor. The results showed that the MnCe/Ti catalyst exhibited higher dispersion of metal oxide active components on the surface and had a higher content of catalytic oxidation active substances than non-doped Mn/Ti and Ce/Ti catalysts. With a SED in the range of 30-250 J/L, the NO and SO2 removal efficiencies increased as the SED increased. At low initial concentrations (200 mg/m(3) NO and 1000 mg/m(3) SO2), the highest NO and SO2 removal efficiencies (86.9% and 100%) were achieved. Versus the flue gas treatment system using only the DBD reactor, the system using the MnCe/Ti catalyst-filled DBD reactor simultaneously removed NO and SO2 with enhanced efficiencies and reduced system energy consumption-this is a reference for further optimization of the flue gas treatment system using a DBD-wet electrostatic precipitator (WESP).
机译:本文将非热等离子体(NTP)放电和催化剂集成在一起,并使用介电势垒放电(DBD)反应器制备了MnCe / Ti催化剂。然后,我们测量了其表面特性。建立了基于MnCe / Ti催化剂同时脱硫和反硝化的NTP催化氧化实验系统,验证了该系统同时去除模拟烟气中NO和SO2的效率。分析了比能密度(SED),烟道气流量,NO和SO2的初始浓度对去除效率以及NO和SO2相互作用的影响。将集成系统的NO和SO2去除效率以及相应的能源效率与仅使用DBD反应器的系统进行了比较。结果表明,与未掺杂的Mn / Ti和Ce / Ti催化剂相比,MnCe / Ti催化剂在表面上具有较高的金属氧化物活性成分分散性,并具有较高的催化氧化活性物质含量。当SED在30-250 J / L范围内时,随着SED的增加,NO和SO2的去除效率也会提高。在较低的初始浓度(200 mg / m(3)NO和1000 mg / m(3)SO2)下,最高的NO和SO2去除效率(86.9%和100%)得以实现。与仅使用DBD反应器的烟气处理系统相比,使用MnCe / Ti催化剂填充的DBD反应器的系统同时去除了NO和SO2,具有更高的效率和更低的系统能耗-这是进一步优化烟气处理的参考使用DBD湿式静电除尘器(WESP)的系统。

著录项

  • 来源
    《Fuel 》 |2019年第15期| 365-374| 共10页
  • 作者单位

    North China Elect Power Univ Dept Environm Sci & Engn Hebei Key Lab Power Plant Flue Gas Multipollutant Baoding 071003 Peoples R China|North China Elect Power Univ Coll Environm Sci & Engn MOE Key Lab Resources & Environm Syst Optimizat Beijing 102206 Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Dielectric barrier discharge (DBD); Catalytic oxidation; NO; SO2;

    机译:介质阻挡放电(DBD);催化氧化;没有;二氧化硫;

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