位置:成果数据库 > 期刊 > 期刊详情页
Carbon dioxide reforming of methane over bimetallic catalysts of Pt-Ru/γ-Al_2O_3 for thermochemical energy storage
  • ISSN号:1000-565X
  • 期刊名称:《华南理工大学学报:自然科学版》
  • 时间:0
  • 分类:O643.36[理学—物理化学;理学—化学] O623.11[理学—有机化学;理学—化学]
  • 作者机构:[1]Key Laboratory of Enhanced Heat Transfer and Energy Conservation of the Ministry of Education (South China University of Technology), Guangzhou 510640, China, [2]Key laboratory of Distributed Energy Systems of Guangdong Province, Dongguan University of Technology, Dongguan 523808, China, [3]School of Engineering, Sun Yat-sen University, Guangzhou 510006, China
  • 相关基金:Project(2010CB227103) supported by the National Basic Research Program of China; Projects(50930007, 50836005) supported by the Key Program of the National Natural Science Foundation of China; Project(U1034005) supported by the National Natural Science Foundation of China
中文摘要:

The reaction of CO2 reforming of CH4 has been investigated with γ-Al2O3-supported platinum and ruthenium bimetallic catalysts, with the specific purpose of thermochemical energy storage. The catalysts were prepared by using the wetness impregnation method. The prepared catalysts were characterized by a series of physico-chemical characterization techniques such as BET surface area, thermo-gravimetric (TG), transmission electron microscope (TEM) and X-ray photoelectron spectroscopy (XPS). In addition, the amount of carbon deposits on the surface of the catalysts and the type of the carbonaceous species were discussed by TG. It was found that the bimetallic Pt-Ru/γ-Al2O3 catalysts exhibit both superior catalytic activity and remarkable stability by comparison of monometallic catalysts. During the 500 h stability test, the bimetallic catalyst showed a good performance at 800 °C in CO2 reforming of CH4 , exhibiting an excellent anti-carbon performance with the mass loss of less than 8.5%. The results also indicate that CO2 and CH4 have quite stable conversions of 96.0 % and 94.0 %, respectively. Also, the selectivity of the catalysts is excellent with the products ratio of CO/H 2 maintaining at 1.02. Furthermore, it was found in TEM images that the active carbonaceous species were formed during the catalytic reaction, and well-distributed dot-shaped metallic particles with a relatively uniform size of about 3 nm as well as amorphous carbon structures were observed. Combined with BET, TG, TEM tests, it is concluded that the selected bimetallic catalysts can work continuously in a stable state at the high temperature, which has a potential to be utilized for the closed-loop cycle of the solar thermochemical energy storage in future industry applications.

英文摘要:

The reaction of CO2 reforming of CH4 has been investigated with y-A1203-supported platinum and ruthenium bimetallic catalysts, with the specific purpose of thermochemical energy storage. The catalysts were prepared by using the wetness impregnation method. The prepared catalysts were characterized by a series of physico-chemical characterization techniques such as BET surface area, thermo-gravimetric (TG), transmission electron microscope (TEM) and X-ray photoelectron spectroscopy (XPS). In addition, the amount of carbon deposits on the surface of the catalysts and the type of the carbonaceous species were discussed by TG. It was found that the bimetallic Pt-Ru/7-A1203 catalysts exhibit both superior catalytic activity and remarkable stability by comparison of monometallic catalysts. During the 500 h stability test, the bimetallic catalyst showed a good performance at 800 ~C in CO2 reforming of CH4, exhibiting an excellent anti-carbon performance with the mass loss of less than 8.5%. The results also indicate that CO2 and CH4 have quite stable conversions of 96.0 % and 94.0 %, respectively. Also, the selectivity of the catalysts is excellent with the products ratio of CO/H2 maintaining at 1.02. Furthermore, it was found in TEM images that the active carbonaceous species were formed during the catalytic reaction, and well-distributed dot-shaped metallic particles with a relatively uniform size of about 3 nm as well as amorphous carbon structures were observed. Combined with BET, TG, TEM tests, it is concluded that the selected bimetallic catalysts can work continuously in a stable state at the high temperature, which has a potential to be utilized for the closed-loop cycle of the solar thermochemical energy storage in future industry applications.

同期刊论文项目
期刊论文 75 会议论文 25 专利 24 著作 2
期刊论文 66 会议论文 11 专利 31 著作 3
同项目期刊论文
期刊信息
  • 《华南理工大学学报:自然科学版》
  • 北大核心期刊(2011版)
  • 主管单位:国家教育部科技司
  • 主办单位:华南理工大学
  • 主编:李元元
  • 地址:广州市天河区五山路华南理工大学17号楼
  • 邮编:510640
  • 邮箱:journal@scut.edu.cn
  • 电话:
  • 国际标准刊号:ISSN:1000-565X
  • 国内统一刊号:ISSN:44-1251/T
  • 邮发代号:46-174
  • 获奖情况:
  • 本学报荣获1996年国家教委系统优秀科技期刊二等奖...,1999年荣获全国优秀高校自然科学学报及教育部优秀...,2001年荣获广东省优秀期刊奖和广东省优秀科技期刊...,2004年获全国高校优秀科技期刊二等奖,2006年获首届教育部优秀科技期刊奖,2008年荣获第二届教育部优秀科技期刊奖
  • 国内外数据库收录:
  • 俄罗斯文摘杂志,美国化学文摘(网络版),荷兰文摘与引文数据库,美国工程索引,美国剑桥科学文摘,英国科学文摘数据库,中国中国科技核心期刊,中国北大核心期刊(2004版),中国北大核心期刊(2008版),中国北大核心期刊(2011版),中国北大核心期刊(2014版),中国北大核心期刊(2000版)
  • 被引量:22954