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一种新型的微波加热混合液辅助V₂O₅-WO₃/TiO₂ 商用SCR催化剂再生方法。

A novel method of microwave heating mixed liquid-assisted regeneration of V₂O₅-WO₃/TiO₂ commercial SCR catalysts.

作者信息

Qiu Kunzan, Song Jin, Song Hao, Gao Xiang, Luo Zhongyang, Cen Kefa

机构信息

State Key Laboratory of Clean Energy Utilization, Zhejiang University, Hangzhou, 310027, People's Republic of China.

出版信息

Environ Geochem Health. 2015 Oct;37(5):905-14. doi: 10.1007/s10653-014-9663-y. Epub 2015 Mar 3.

Abstract

An experimental study on the regeneration of deactivated SCR catalysts was carried out using a microwave-assisted method containing three steps of washing with mixed liquid of ethanol and water, impregnating, and drying. After the regeneration treatment, NO conversion at 320 °C increased from 39 to 90% and vanadium content increased by 62.2%, which were much higher than those regenerated by the traditional method. The more impregnated vanadium was due to the fact that the rapid evaporation of mixed liquid inside the catalyst channels led to the enlargement of surface areas by creating more pores on the catalysts. Meanwhile, with the increasing concentrations of ethanol, the heating rate of the mixed liquid increased, and the volume after complete evaporation of the mixed liquid was gradually reduced. Since higher heating rate and lager volume after the liquid evaporation could help to create more pores, therefore, when the volume ratio of ethanol/mixed solution was 20%, the catalyst obtained the maximum specific surface area, which significantly increased to ca. 123% compared with the deactivated catalyst. In addition, the catalyst dried by microwave exhibited better catalytic activity than that dried in conventional oven. Therefore, this method showed great potential in industrial applications.

摘要

采用微波辅助法对失活的选择性催化还原(SCR)催化剂进行再生实验研究,该方法包括用乙醇和水的混合液洗涤、浸渍和干燥三个步骤。再生处理后,320℃下的NO转化率从39%提高到90%,钒含量增加了62.2%,远高于传统方法再生后的转化率和钒含量。钒浸渍量增加的原因是催化剂通道内混合液的快速蒸发通过在催化剂上产生更多孔隙导致表面积增大。同时,随着乙醇浓度的增加,混合液的加热速率提高,混合液完全蒸发后的体积逐渐减小。由于较高的加热速率和液体蒸发后的较大体积有助于产生更多孔隙,因此,当乙醇/混合溶液的体积比为20%时,催化剂获得最大比表面积,与失活催化剂相比显著增加至约123%。此外,微波干燥的催化剂比传统烘箱干燥的催化剂表现出更好的催化活性。因此,该方法在工业应用中显示出巨大潜力。

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