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Catalytic steam reforming of bio-oil

机译:生物油的催化蒸汽重整

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摘要

Hydrogen and synthesis gas can be produced in an environmentally friendly and sustainable way through steam reforming (SR) of bio-oil and this review presents the state-of-the-art of SR of bio-oil and model compounds hereof. The possible reactions, which can occur in the SR process and the influence of operating conditions will be presented along with the catalysts and processes investigated in the literature. Several catalytic systems with Ni, Ru, or Rh can achieve good performance with respect to initial conversion and yield of hydrogen, but the main problem is that the catalysts are not stable over longer periods of operation (>100 h) due to carbon deposition. Support materials consisting of a mixture of basic oxides and alumina have shown the potential for low carbon formation and promotion with K is beneficial with respect to both activity and carbon formation. romising results have been obtained in both fluidized and fixed bed reactors, but the coke formation appears to be less significant in fluidized beds. The addition of O_2 to the system can decrease the coke formation and provide autothermal conditions at the expense of a lower H_2 and CO-yield. The SR of bio-oil is still in an early stage of development and far from industrial application mainly due the short lifetime of the catalysts, but there are also other aspects of the process which need clarification. Future investigations in SR of bio-oil could be to find a sulfur tolerant and stable catalyst, or to investigate if a prereformer concept, which should be less prone to deactivation by carbon, is suitable for the SR of bio-oil.
机译:氢气和合成气可以通过生物油的蒸汽重整(SR)以对环境友好和可持续的方式生产,而本综述介绍了生物油及其模型化合物的最新SR。 SR过程中可能发生的可能反应以及操作条件的影响将与文献中研究的催化剂和方法一起介绍。几种具有Ni,Ru或Rh的催化体系在初始转化率和氢产率方面都可以实现良好的性能,但是主要问题是由于碳沉积,催化剂在较长的运行时间(> 100 h)中不稳定。由碱性氧化物和氧化铝的混合物组成的载体材料已显示出低碳形成的潜力,并且在活性和碳形成方面,用K促进都是有益的。在流化床反应器和固定床反应器中均获得了雾化结果,但是在流化床中焦炭的形成似乎不太重要。向系统中添加O_2可以减少焦炭的形成,并以较低的H_2和CO收率为代价提供自热条件。生物油的SR仍处于开发的早期阶段,远未达到工业应用,这主要是由于催化剂的寿命短,但是该方法的其他方面也需要澄清。未来对生物油SR的研究可能是寻找一种耐硫且稳定的催化剂,或者研究应该不太倾向于被碳钝化的预重整概念是否适合于生物油SR。

著录项

  • 来源
    《International journal of hydrogen energy 》 |2012年第8期| p.6447-6472| 共26页
  • 作者单位

    Department of Chemical and Biochemical Engineering, Technical University of Denmark, Soltofts Plods, Building 229,2800 Kgs. Lyngby, Denmark;

    Department of Physics, Technical University of Denmark, Building 307, 2800 Kgs. Lyngby, Denmark;

    Haldor Topsoe A/S, Nymollevej 55, 2800 Kgs. Lyngby, Denmark;

    Department of Chemical and Biochemical Engineering, Technical University of Denmark, Soltofts Plods, Building 229,2800 Kgs. Lyngby, Denmark;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    team reforming; oxygenates; bio-oil; ethanol; acetic acid; review;

    机译:团队改革;含氧化合物生物油乙醇醋酸;评论;

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