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Removal of Hg~0 from Simulated Flue Gas by Ultraviolet Light/Heat/Persulfate Process in an UV-Impinging Stream Reactor

机译:紫外线冲击流反应器中紫外光/热/过硫酸盐法从模拟烟气中脱除Hg〜0

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摘要

Removal of Hg-0 from simulated flue gas by ultraviolet light (UV)/heat/ammonium persulfate process in an UV-impinging stream reactor was investigated for the first time. Experiments were conducted to evaluate the effects of several parameters and gas composition on Hg-0 removal. Mechanism and kinetics of Hg-0 removal were also investigated. The results indicated that Hg-0 removal efficiency was increased by increasing UV radiation intensity, activation temperature, persulfate concentration, and solution circulation rate; was decreased by increasing solution pH and SO2 concentration; and was not obviously affected by Hg-0 and NO concentrations. Hg-0 was oxidized by four pathways: (A) oxidized by SO4-center dot and (OH)-O-center dot that were produced from UV-light activation of S2O82-; (B) removed by UV light-water excitation reaction; (C) oxidized by SO4-center dot and (OH)-O-center dot that were produced from heat activation of S2O82-; (D) oxidized by S2O82-. In the four pathways, the "A" pathway plays a major role in the removal of Hg-0, and the other pathways "B-D" only play a complementary role. When C-S2O8(2-) 0.06 mol/L or UV radiation intensity 78 mu W/cm(2), the Hg-0 removal process belongs to a moderate speed reaction. Hg-0 removal can be enhanced by simultaneously increasing the mass transfer rate and chemical reaction rate. When C-S2O8(2-) = 0.06 mol/L and UV radiation intensity = 78 mu W/cm(2), the Hg-0 removal process belongs to a fast reaction. Hg-0 removal can be further enhanced by improving mass transfer rate (e.g., increasing gas-liquid contact area and enhancing turbulence in reactor).
机译:首次研究了在紫外线撞击流反应器中通过紫外光/加热/过硫酸铵法从模拟烟道气中去除Hg-0的过程。进行实验以评估几个参数和气体组成对Hg-0去除的影响。还研究了去除Hg-0的机理和动力学。结果表明,通过增加紫外线辐射强度,活化温度,过硫酸盐浓度和溶液循环速率可以提高Hg-0的去除效率。通过增加溶液的pH值和SO2浓度降低;并且不受Hg-0和NO浓度的明显影响。 Hg-0通过四个途径被氧化:(A)被紫外线激活S2O82-产生的SO4-中心点和(OH)-O-中心点氧化; (b)通过紫外光-水激发反应除去; (C)被S2O82-的热活化产生的SO4-中心点和(OH)-O中心点氧化; (D)被S2O82-氧化。在这四个途径中,“ A”途径在Hg-0的去除中起主要作用,而其他途径“ B-D”仅起补充作用。当C-S2O8(2-)<0.06 mol / L或UV辐射强度<78μW / cm(2)时,Hg-0的去除过程属于中速反应。通过同时提高传质速率和化学反应速率可以提高Hg-0的去除率。当C-S2O8(2-)> = 0.06 mol / L并且UV辐射强度> = 78μW / cm(2)时,Hg-0的去除过程属于快速反应。通过提高传质速率(例如,增加气液接触面积并增强反应器中的湍流),可以进一步提高Hg-0的去除率。

著录项

  • 来源
    《Energy & fuels》 |2018年第12期|12416-12425|共10页
  • 作者

    Liu Yangxian; Wang Yan;

  • 作者单位

    Jiangsu Univ, Sch Energy & Power Engn, Zhenjiang 212013, Jiangsu, Peoples R China;

    Jiangsu Univ, Sch Energy & Power Engn, Zhenjiang 212013, Jiangsu, Peoples R China;

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

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