Effect of Calcination Conditions on the Performance of Co-precipitation Catalyst

The Fe-Co-Ce composite catalysts were prepared by co-precipitation method, and the effect of calcination temperature and calcination time on the performances of the Fe-Co-Ce composite catalysts were investigated. The results indicated that the optimum calcination temperature and calcination time of...

Full description

Bibliographic Details
Main Authors: Lin Kai, Chen Wensong, Zhang Yongli, Xu Junjian
Format: Article
Language:English
Published: EDP Sciences 2016-01-01
Series:MATEC Web of Conferences
Online Access:http://dx.doi.org/10.1051/matecconf/20166706049
id doaj-aa4dd81c27f04c9aa7b894e18db57c2d
record_format Article
spelling doaj-aa4dd81c27f04c9aa7b894e18db57c2d2021-02-02T00:27:20ZengEDP SciencesMATEC Web of Conferences2261-236X2016-01-01670604910.1051/matecconf/20166706049matecconf_smae2016_06049Effect of Calcination Conditions on the Performance of Co-precipitation CatalystLin Kai0Chen Wensong1Zhang Yongli2Xu Junjian3Faculty of Environmental Science and Engineering, Guangdong University of TechnologyFaculty of Environmental Science and Engineering, Guangdong University of TechnologySchool of Chemical and Environmental Engineering, Hanshan Normal UniversitySchool of Chemical and Environmental Engineering, Hanshan Normal UniversityThe Fe-Co-Ce composite catalysts were prepared by co-precipitation method, and the effect of calcination temperature and calcination time on the performances of the Fe-Co-Ce composite catalysts were investigated. The results indicated that the optimum calcination temperature and calcination time of the Fe-Co-Ce composite catalysts were 450 °C and 7 h, respectively. Using the catalysts which prepared under the optimum calcination conditions catalytic wet oxidation of methyl orange simulated wastewater, after 90 min, the COD, COD removal rate, absorbance, decolorization rate and pH of the methyl orange simulated wastewater were 737.7, 70.5%, 0.348, 95.3%, and 5.31, respectively. According to the analyses of the SEM, FTIR, and TG-DTA curves, the components of the catalysts which prepared under the optimum calcination conditions distributed evenly, and the chemical compositions of the catalysts including C-O, -OH, and H-O-H, showing a good thermal stability.http://dx.doi.org/10.1051/matecconf/20166706049
collection DOAJ
language English
format Article
sources DOAJ
author Lin Kai
Chen Wensong
Zhang Yongli
Xu Junjian
spellingShingle Lin Kai
Chen Wensong
Zhang Yongli
Xu Junjian
Effect of Calcination Conditions on the Performance of Co-precipitation Catalyst
MATEC Web of Conferences
author_facet Lin Kai
Chen Wensong
Zhang Yongli
Xu Junjian
author_sort Lin Kai
title Effect of Calcination Conditions on the Performance of Co-precipitation Catalyst
title_short Effect of Calcination Conditions on the Performance of Co-precipitation Catalyst
title_full Effect of Calcination Conditions on the Performance of Co-precipitation Catalyst
title_fullStr Effect of Calcination Conditions on the Performance of Co-precipitation Catalyst
title_full_unstemmed Effect of Calcination Conditions on the Performance of Co-precipitation Catalyst
title_sort effect of calcination conditions on the performance of co-precipitation catalyst
publisher EDP Sciences
series MATEC Web of Conferences
issn 2261-236X
publishDate 2016-01-01
description The Fe-Co-Ce composite catalysts were prepared by co-precipitation method, and the effect of calcination temperature and calcination time on the performances of the Fe-Co-Ce composite catalysts were investigated. The results indicated that the optimum calcination temperature and calcination time of the Fe-Co-Ce composite catalysts were 450 °C and 7 h, respectively. Using the catalysts which prepared under the optimum calcination conditions catalytic wet oxidation of methyl orange simulated wastewater, after 90 min, the COD, COD removal rate, absorbance, decolorization rate and pH of the methyl orange simulated wastewater were 737.7, 70.5%, 0.348, 95.3%, and 5.31, respectively. According to the analyses of the SEM, FTIR, and TG-DTA curves, the components of the catalysts which prepared under the optimum calcination conditions distributed evenly, and the chemical compositions of the catalysts including C-O, -OH, and H-O-H, showing a good thermal stability.
url http://dx.doi.org/10.1051/matecconf/20166706049
work_keys_str_mv AT linkai effectofcalcinationconditionsontheperformanceofcoprecipitationcatalyst
AT chenwensong effectofcalcinationconditionsontheperformanceofcoprecipitationcatalyst
AT zhangyongli effectofcalcinationconditionsontheperformanceofcoprecipitationcatalyst
AT xujunjian effectofcalcinationconditionsontheperformanceofcoprecipitationcatalyst
_version_ 1724313853204889600