Experimental Research of an Active Solution for Modeling In Situ Activating Selective Catalytic Reduction Catalyst

The effect of active solutions suitable for the in situ activation of selective catalytic reduction (SCR) catalysts was experimentally investigated using a designed in situ activation modeling device. To gain further insight, scanning electron microscopy (SEM), specific surface area analysis (BET),...

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Main Authors: Tuo Ye, Donglin Chen, Yanshan Yin, Jing Liu, Xi Zeng
Format: Article
Language:English
Published: MDPI AG 2017-08-01
Series:Catalysts
Subjects:
Online Access:https://www.mdpi.com/2073-4344/7/9/258
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spelling doaj-c9ad333f7eb6422d984478a84e9fb5fd2020-11-24T21:21:51ZengMDPI AGCatalysts2073-43442017-08-017925810.3390/catal7090258catal7090258Experimental Research of an Active Solution for Modeling In Situ Activating Selective Catalytic Reduction CatalystTuo Ye0Donglin Chen1Yanshan Yin2Jing Liu3Xi Zeng4School of Energy and Power Engineering, Changsha University of Science and Technology, Changsha 410114, ChinaSchool of Energy and Power Engineering, Changsha University of Science and Technology, Changsha 410114, ChinaSchool of Energy and Power Engineering, Changsha University of Science and Technology, Changsha 410114, ChinaSchool of Electric Power, South China University of Technology, Guangzhou 510640, ChinaSchool of Energy and Power Engineering, Changsha University of Science and Technology, Changsha 410114, ChinaThe effect of active solutions suitable for the in situ activation of selective catalytic reduction (SCR) catalysts was experimentally investigated using a designed in situ activation modeling device. To gain further insight, scanning electron microscopy (SEM), specific surface area analysis (BET), Fourier transform infrared spectroscopy (FT-IR), X-ray diffraction (XRD), and energy dispersive spectroscopy (EDS) analyses were used to investigate the effects of different reaction conditions on the characteristics of the deactivated catalysts. The activation effect of loading V2O5, WO3 and MoO3 on the surface of the deactivated catalysts was analyzed and the correlation to the denitrification activity was determined. The results demonstrate that the prepared activating solution of 1 wt % vanadium (V), 9 wt % tungsten (W), and 6 wt % molybdenum (Mo) has a beneficial effect on the deactivation of the catalyst. The activated catalyst resulted in a higher NO removal rate when compared to the deactivated catalyst. Furthermore, the NO removal rate of the activated catalyst reached a maximum of 32%. The activity of the SCR catalyst is closely linked to the concentration of the active ingredients. When added in optimum amounts, the active ingredients helped to restore the catalytic activity. In particular, the addition of active ingredients, the availability of labile surface oxygen, and the presence of small pores improved the denitrification efficiency. Based on these results, active solutions can effectively solve the problem of denitrification catalyst deactivation. These findings are a reference for the in-situ activation of the selective catalytic reduction of nitrogen oxides (SCR-DeNOx) catalyst.https://www.mdpi.com/2073-4344/7/9/258in situactivating solutionreactivationdenitrificationcatalyst
collection DOAJ
language English
format Article
sources DOAJ
author Tuo Ye
Donglin Chen
Yanshan Yin
Jing Liu
Xi Zeng
spellingShingle Tuo Ye
Donglin Chen
Yanshan Yin
Jing Liu
Xi Zeng
Experimental Research of an Active Solution for Modeling In Situ Activating Selective Catalytic Reduction Catalyst
Catalysts
in situ
activating solution
reactivation
denitrification
catalyst
author_facet Tuo Ye
Donglin Chen
Yanshan Yin
Jing Liu
Xi Zeng
author_sort Tuo Ye
title Experimental Research of an Active Solution for Modeling In Situ Activating Selective Catalytic Reduction Catalyst
title_short Experimental Research of an Active Solution for Modeling In Situ Activating Selective Catalytic Reduction Catalyst
title_full Experimental Research of an Active Solution for Modeling In Situ Activating Selective Catalytic Reduction Catalyst
title_fullStr Experimental Research of an Active Solution for Modeling In Situ Activating Selective Catalytic Reduction Catalyst
title_full_unstemmed Experimental Research of an Active Solution for Modeling In Situ Activating Selective Catalytic Reduction Catalyst
title_sort experimental research of an active solution for modeling in situ activating selective catalytic reduction catalyst
publisher MDPI AG
series Catalysts
issn 2073-4344
publishDate 2017-08-01
description The effect of active solutions suitable for the in situ activation of selective catalytic reduction (SCR) catalysts was experimentally investigated using a designed in situ activation modeling device. To gain further insight, scanning electron microscopy (SEM), specific surface area analysis (BET), Fourier transform infrared spectroscopy (FT-IR), X-ray diffraction (XRD), and energy dispersive spectroscopy (EDS) analyses were used to investigate the effects of different reaction conditions on the characteristics of the deactivated catalysts. The activation effect of loading V2O5, WO3 and MoO3 on the surface of the deactivated catalysts was analyzed and the correlation to the denitrification activity was determined. The results demonstrate that the prepared activating solution of 1 wt % vanadium (V), 9 wt % tungsten (W), and 6 wt % molybdenum (Mo) has a beneficial effect on the deactivation of the catalyst. The activated catalyst resulted in a higher NO removal rate when compared to the deactivated catalyst. Furthermore, the NO removal rate of the activated catalyst reached a maximum of 32%. The activity of the SCR catalyst is closely linked to the concentration of the active ingredients. When added in optimum amounts, the active ingredients helped to restore the catalytic activity. In particular, the addition of active ingredients, the availability of labile surface oxygen, and the presence of small pores improved the denitrification efficiency. Based on these results, active solutions can effectively solve the problem of denitrification catalyst deactivation. These findings are a reference for the in-situ activation of the selective catalytic reduction of nitrogen oxides (SCR-DeNOx) catalyst.
topic in situ
activating solution
reactivation
denitrification
catalyst
url https://www.mdpi.com/2073-4344/7/9/258
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AT yanshanyin experimentalresearchofanactivesolutionformodelinginsituactivatingselectivecatalyticreductioncatalyst
AT jingliu experimentalresearchofanactivesolutionformodelinginsituactivatingselectivecatalyticreductioncatalyst
AT xizeng experimentalresearchofanactivesolutionformodelinginsituactivatingselectivecatalyticreductioncatalyst
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