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Hydrogen Production via Catalytic Steam Reforming of Bio-oil Model Compound in a Two-stage Reaction System

机译:两级反应系统中生物油模型化合物的催化蒸汽重整制氢

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摘要

A mixture of several typical model compounds was chosen as the bio-oil model. Hydrogen production via catalytic steam reforming of model bio-oil in a two-stage reaction system was studied in this article. Quartz sand was used in the first-stage fluidized bed reactor for primary steam reforming, and Ni/modified dolomite was chosen as the catalyst in the second-stage fixed bed reactor for deep steam reforming. The main influential parameters, such as temperature, steam to carbon ratio, and weight hourly space velocity, were tested in this work. The optimum conditions on hydrogen production were obtained at 800℃; steam and carbon mole ratio, 12; and weight hourly space velocity, 1 h~(-1). In addition, there was a comparison between a two-stage reaction system and one-stage fixed bed reactor on the optimum condition. It was concluded that H_2 yield decreased 5.6% in the two-stage reaction system and 9.9% in the one-stage fixed bed reactor after 3 h reaction time; the maximum carbon deposition ratio was 1 and 0.44%, gaseous carbon selectivity dropped from 93.6 and 90.1% to 83.4 and 78.4%. The fresh catalyst as well as used catalyst were analyzed by scanning electron microscopy, which showed that the carbon deposition in the two-stage reaction system is less than that of the one-stage fixed bed reactor.
机译:选择几种典型模型化合物的混合物作为生物油模型。本文研究了在两阶段反应系统中通过模型生物油的催化蒸汽重整制氢。在第一阶段流化床反应器中使用石英砂进行一次蒸汽重整,在第二阶段固定床反应器中选择Ni /改性白云石作为催化剂进行深层蒸汽重整。在这项工作中测试了主要的影响参数,例如温度,蒸汽与碳的比率以及重量时空速度。在800℃获得了最佳的制氢条件。蒸汽与碳的摩尔比为12;重量时空速度1 h〜(-1)。另外,在最佳条件下,在两级反应系统和一级固定床反应器之间进行了比较。结论是,反应3 h后,两步反应体系的H_2收率降低了5.6%,一步固定床反应器的H_2收率降低了9.9%。最大碳沉积率为1%和0.44%,气态碳选择性从93.6%和90.1%下降到83.4%和78.4%。通过扫描电子显微镜对新鲜催化剂和用过的催化剂进行分析,结果表明,两级反应体系中的碳沉积少于一级固定床反应器中的碳沉积。

著录项

  • 来源
    《Energy sources》 |2014年第20期|1921-1930|共10页
  • 作者单位

    Research Center for Biomass Energy, Key Laboratory of Coal Gasification and Energy Chemical Engineering of Ministry of Education, East China University of Science and Technology, Shanghai, China;

    Research Center for Biomass Energy, Key Laboratory of Coal Gasification and Energy Chemical Engineering of Ministry of Education, East China University of Science and Technology, Shanghai, China, School of Chemistry and Eco-engineering of Guangxi University for Nationalities, Key Laboratory of Chemical and Biological Transforming Process, University of Guangxi, Nanning, China;

    Research Center for Biomass Energy, Key Laboratory of Coal Gasification and Energy Chemical Engineering of Ministry of Education, East China University of Science and Technology, Shanghai, China;

    Research Center for Biomass Energy, Key Laboratory of Coal Gasification and Energy Chemical Engineering of Ministry of Education, East China University of Science and Technology, Shanghai, China;

    Research Center for Biomass Energy, Key Laboratory of Coal Gasification and Energy Chemical Engineering of Ministry of Education, East China University of Science and Technology, Shanghai, China;

    Research Center for Biomass Energy, Key Laboratory of Coal Gasification and Energy Chemical Engineering of Ministry of Education, East China University of Science and Technology, Shanghai, China, Resources and Environmental Engineering, Research Center for Biomass Energy, East China University of Science and Technology, 130# Meilong Road, Shanghai 200237, China;

    Research Center for Biomass Energy, Key Laboratory of Coal Gasification and Energy Chemical Engineering of Ministry of Education, East China University of Science and Technology, Shanghai, China;

    Research Center for Biomass Energy, Key Laboratory of Coal Gasification and Energy Chemical Engineering of Ministry of Education, East China University of Science and Technology, Shanghai, China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    bio-oil model; catalyst; hydrogen; steam reforming; two-stage;

    机译:生物油模型催化剂;氢;蒸汽重整;两阶段;

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