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  • 教师姓名:朱晓兵
  • 性别:
  • 电子邮箱:xzhu@dlut.edu.cn
  • 职称:副教授
  • 所在单位:化工海洋与生命学院
  • 学位:博士
  • 学科:化学工程. 物理化学
  • 毕业院校:中科院大连化学物理研究所
  • 曾获荣誉:辽宁省第二批“十百千高端人才引进工程”“百人”层次
  • 办公地点:大连理工大学氢能与环境催化中心、等离子体物理化学实验室
    Center for Hydrogen Energy and Environmental Catalysis, Laboratory of Plasma Physical Chemistry
    Dalian University of Technology, 2 Linggong Road, Dalian 116024, China
论文成果
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Post-plasma catalytic oxidative CO2 reforming of methane over Ni-based catalysts
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  • 论文类型:期刊论文
  • 发表时间:2015-11-01
  • 发表刊物:2nd China-USA Symposium on Energy
  • 收录刊物:SCIE、CPCI-S、Scopus
  • 卷号:256
  • 期号:P1
  • 页面范围:96-101
  • ISSN号:0920-5861
  • 关键字:Plasma; Ni catalyst; Methane reforming; Syngas
  • 摘要:To seek an efficient route for syngas production from oxidative CO2 reforming of methane (OCRM) via post-plasma catalytic technique, three routes were compared using spark-shade plasma (input power = 106W, with Fl of 1.36 SLM at CH4:O-2: CO2 = 1:0.6:0.7) and Ni/CeO2/Al2O3 catalyst (catalyst temperature = 800 degrees C, with or without F2 of 0.52 SLM CH4). Compared with Route 1 (plasma only, Fl only), X-O2, XaL8 CH2+CO and H-2/CO ratio of Route 2 (plasma + catalyst, F1 only) increased to 100%, 99%, 76% and 1.2, respectively; but X-CO2 kept at about 35%, which was close to the thermodynamic-equilibrium values. In Route 3 (plasma + catalyst, F1 + F2), X-co2 increased dramatically to 67%, CH2+CO and H-2/CO ratio further increased to 86% and 1.5, respectively, though X-CO, decreased to 77%. Both S-CO and S-H2 arrived at nearly 100%. Assuming that the plasma could supply the heat energy for the subsequent catalytic reaction at 800 degrees C, syngas energy cost as low as 0.5 eV/molecule and energy efficiency as high as 91% were achieved. (C) 2015 Elsevier B.V. All rights reserved.
  • 发表时间:2015-11-01