Volume 46 Issue 8
Aug.  2018
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YANG Jian-guo, HUANG Zhou, GENG Zi-wen, ZHAO Hong, YUAN Wei-zhong, CHEN Xi-jiong, TENG Wei-ming. Effects of different alkali-based materials on coal-fired flue gas dechlorination[J]. Journal of Fuel Chemistry and Technology, 2018, 46(8): 934-939.
Citation: YANG Jian-guo, HUANG Zhou, GENG Zi-wen, ZHAO Hong, YUAN Wei-zhong, CHEN Xi-jiong, TENG Wei-ming. Effects of different alkali-based materials on coal-fired flue gas dechlorination[J]. Journal of Fuel Chemistry and Technology, 2018, 46(8): 934-939.

Effects of different alkali-based materials on coal-fired flue gas dechlorination

Funds:

the Science and Technology Project of Zhejiang Provincial Energy Group ZNKJ-2016-030

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  • Corresponding author: ZHAO Hong, Tel: 0571-87951322, E-mail: zhaohong@zju.edu.cn
  • Received Date: 2018-04-25
  • Rev Recd Date: 2018-06-11
  • Available Online: 2021-01-23
  • Publish Date: 2018-08-10
  • Three common alkali-based materials, NaOH, Na2CO3 and NaHCO3, were utilized to explore their dechlorination performance in a simulated coal-fired flue gas. The results show that the dechlorination efficiency increases along with the enhancement of alkaline intensity. As the Na/Cl molar ratio reaches 5.8, 7.1 and 8.7, respectively, the dechlorination efficiency of all the three alkalis (NaOH, Na2CO3 or NaHCO3) exceeds 70%. The SO2 of high concentration in flue gas has competitive effects on dechlorination. With the increase in SO2 concentration, the dechlorination efficiency drops linearly. The influence of SO2 concentration on the dechlorination efficiency is almost identical regardless of different alkali-based materials. For per 100 mg/m3 augment in SO2 concentration, the dechlorination efficiency decreases by about 1.4%. NaOH is determined to be the most valuable alkali-based material for industrial application considering the cost and solubility.
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