4.7 Article

Reduction of HgCl2 to Hg0 in flue gas at high temperature. Part I: Influences of oxidative species

期刊

FUEL
卷 324, 期 -, 页码 -

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.fuel.2022.124417

关键词

Hg-CEMS; High-temperature decomposition; HgCl (2) (g) reduction; Hg (0) (g) re-oxidation; Oxidative species

资金

  1. National Key Research and Devel-opment Program of China [2016YFC0201105]
  2. Environment and Protection Project of Jiangsu Province [2016030]
  3. China Scholarship Council [202006090115]

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The study investigated the reduction of HgCl2(g) to Hg-0(g) under high-temperature decomposition conditions. It was found that temperature and chlorine species play crucial roles in the reaction efficiency. Proper quartz fillers can enhance the decomposition process.
The reduction of gaseous oxidized mercury Hg2+(g) to elemental mercury Hg-0(g) is a key technology to obtain the total flue gas mercury in the mercury continuous emission monitoring system (Hg-CEMS). Investigation of the reduction of HgCl2(g) to Hg-0(g) in the high-temperature decomposition (HTD) was conducted with/without oxidative components in a fixed bed reactor. The chemical reaction path was discussed in-depth by thermodynamic calculation and theoretical analysis. The results show that the higher the temperature, the higher the efficiency of HgCl2(g) reduction. The chlorine species produced in the HTD process inhibit the conversion rate because of re-oxidation on Hg-0(g). For eliminating the negative effect of Cl radicals and promoting the reactive sites, a quartz filler with appropriate size demonstrates a good performance for enhancing the decomposition of HgCl2(g). However, the presence of O-2 and HCl leads to the complete failure of HgCl2(g) HTD because O(2 )greatly promotes the combination of Hg-0(g) with chlorine. Compared with HCl molecules, Cl atoms are more active in thermodynamic favor in speeding up re-oxidation of Hg-0(g). Active Cl atoms are the most crucial factor hindering HTD reaction due to their high reaction initiative and low activation energy.

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