烟气脱硫
反硝化
烟气
化学
硫黄
废物管理
过程(计算)
无机化学
核化学
环境化学
化学工程
氮气
有机化学
工程类
计算机科学
操作系统
作者
Jiatao Xiang,Junting Li,Xiong Zhang,Han Zhang,Shaohui Ren,Shihong Zhang
出处
期刊:Energy & Fuels
[American Chemical Society]
日期:2024-10-02
卷期号:38 (20): 19696-19714
被引量:3
标识
DOI:10.1021/acs.energyfuels.4c03361
摘要
This study focused on the development of a novel process of H 2 O 2 /FeSO 4 preoxidation combined with wet flue gas desulfurization (WFGD) postabsorption for simultaneous desulfurization and denitrification, and recovery of sulfur and nitrogen from flue gas. The results show that when no oxidant is added, the denitrification efficiency by WFGD is only 5.3%, while under the H 2 O 2 /FeSO 4 preoxidation, the desulfurization and denitrification efficiency can reach 99.9% and 83.6%, respectively. When the liquid/gas ratio reaches 18 L·m –3, the desulfurization efficiency is nearly 100%, and the denitrification efficiency can reach 90.6% due to the increased liquid/gas contact area and improved heat and mass transfer. The absorption process of SO 2 and NO x involves both physical and chemical absorption, which is dominated by physical absorption, and the absorption characteristics are multilayer absorption. The desulfurization products CaSO 3 and CaSO 4, and the denitrification products Ca(NO 2 ) 2 and Ca(NO 3 ) 2, are absorbed by the CaCO 3 slurry. The Aspen Plus process simulation results show that the desulfurization and denitrification efficiencies are 99.5% and 89.6%, respectively, and the concentrations of SO 2 and NO x in the flue gas are 21.4 mg·m –3 and 41.5 mg·m –3, respectively, which meet the ultralow emission standards. In addition, the H 2 O 2 /NO molar ratio, oxidation temperature, and SO 2 concentration have an important effect on the NO conversion, which then affects the denitrification efficiency.
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