School of Energy and Power Engineering , Jiangsu University , Zhenjiang , Jiangsu 212013 , China.
Environ Sci Technol. 2020 Feb 4;54(3):2031-2042. doi: 10.1021/acs.est.9b07221. Epub 2020 Jan 15.
As it has a simple system and a small floor area, flue gas simultaneous desulfurization and denitrification technology has a good development prospect, and related research has become a hot topic in the field of flue gas purification. In this work, a novel simultaneous removal technology of NO and SO from flue gas using a semi-dry microwave activation persulfate system was developed for the first time. A series of experiments and characterization analyses had been implemented to research the feasibility of this new flue gas purification technology. The oxidation products, free radicals, and mechanism of NO and SO simultaneous removal were revealed. The effect of the main technological parameters on NO and SO simultaneous removal was also studied. Relevant results demonstrated that an increase in the microwave radiation power, persulfate concentration, and O concentration enhanced NO and SO simultaneous removal. The increase of NO and SO concentrations weakened NO and SO simultaneous removal. The reagent dosage, pH value of the solution, and reaction temperature showed a dual influence on NO and SO simultaneous removal. Free-radical capture experiments revealed that both SO and OH that were produced by microwave activation of persulfate were the major active species and played very key roles in NO and SO simultaneous removal. The main products (sulfate and nitrate) and byproducts (NO) in the tail gas were found. The process application and product post-treatment routes were also proposed. The result may provide the necessary inspiration and guidance for the development and application of microwave-activated advanced oxidation technology in the flue gas treatment area.
由于其系统简单、占地面积小,烟气同时脱硫脱硝技术具有良好的发展前景,相关研究已成为烟气净化领域的热点。本工作首次开发了一种利用半干法微波活化过硫酸盐体系同时去除烟气中 NO 和 SO 的新型去除技术。进行了一系列实验和表征分析,以研究该新型烟气净化技术的可行性。揭示了 NO 和 SO 同时去除的氧化产物、自由基、机制。研究了主要工艺参数对 NO 和 SO 同时去除的影响。相关结果表明,增加微波辐射功率、过硫酸盐浓度和 O 浓度均能增强 NO 和 SO 的同时去除。NO 和 SO 浓度的增加会削弱 NO 和 SO 的同时去除。试剂用量、溶液 pH 值和反应温度对 NO 和 SO 的同时去除具有双重影响。自由基捕获实验表明,过硫酸盐的微波活化产生的 SO 和 OH 是主要的活性物质,在 NO 和 SO 的同时去除中起着非常关键的作用。发现了尾气中的主要产物(硫酸盐和硝酸盐)和副产物(NO)。还提出了该工艺的应用和产物后处理路线。该结果可能为微波活化高级氧化技术在烟气处理领域的开发和应用提供必要的启示和指导。