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Hydrogen production from catalytic steam reforming of biodiesel byproduct glycerol: Issues and challenges

机译:生物柴油副产物甘油催化蒸汽重整制氢:问题与挑战

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摘要

The objective of this review is to analyze potential technologies and their baseline performance of producing hydrogen from catalytic steam reforming of biodiesel byproduct glycerol. High oxygen content and high impurity level of biodiesel byproduct glycerol, as well as the complex intermediates and high coking potential in its thermal degradation, make the modeling, design, and operation of glycerol steam reforming a challenge. Thermal decomposition characterization of biodiesel byproduct glycerol was covered, and the recent developments and methods for high-purity hydrogen production from glycerol steam reforming were illustrated. The thermodynamics constraint of water gas shift reaction can be overcome by the sorption-enhanced steam reforming process, which integrated catalytic steam reforming, water gas shift reaction and in-situ CO_2 removal at high temperatures in a single stage reactor. The effectiveness of both the enhanced H_2 production and the use of CO_2 sorbents have been demonstrated and discussed. The technical challenges to achieve a stable high-purity hydrogen production by the sorption-enhanced steam reforming process included extending operation time, selecting suitable sorbents, finding a way for continuous reaction-regeneration of catalyst and sorbent mixture and improving process efficiencies. The continuous sorption-enhanced steam reforming of glycerol was designed by a simultaneous flow concept of catalyst and sorbent for continuous reaction-regeneration using two slow moving-bed reactors for high-purity hydrogen production and CO_2 capture, and in this process, catalyst and sorbent were run in nearly fresh state for H_2 production. The sorption-enhanced chemical-looping reforming was also demonstrated. The paper discusses some issues and challenges, along with the possible solutions in order to help in efficient production of hydrogen from catalytic steam reforming of biodiesel byproduct glycerol.
机译:本文的目的是分析生物柴油副产物甘油催化蒸汽重整制氢的潜在技术及其基线性能。生物柴油副产物甘油的高氧含量和高杂质水平,以及其热降解中的复杂中间体和高焦化潜力,使甘油蒸汽重整的建模,设计和操作成为一个挑战。涵盖了生物柴油副产物甘油的热分解特征,并阐明了甘油蒸汽重整生产高纯氢的最新进展和方法。吸附增强的蒸汽重整工艺可以克服水煤气变换反应的热力学限制,该吸附重整工艺在单级反应器中将催化蒸汽重整,水煤气变换反应和高温下原位CO_2集成在一起。已经证明和讨论了提高的H_2产量和使用CO_2吸附剂的有效性。通过吸附增强的蒸汽重整工艺实现稳定的高纯度氢气生产的技术挑战包括延长操作时间,选择合适的吸附剂,寻找催化剂和吸附剂混合物连续反应再生的方法以及提高工艺效率。通过使用两个慢速移动床反应器进行高纯度氢气生产和CO_2捕获的连续反应再生的催化剂和吸附剂的同步流动概念,设计了甘油的连续吸附增强蒸汽重整,在此过程中,催化剂和吸附剂在几乎新鲜的状态下运行以生产H_2。还证实了吸附增强的化学环重整。本文讨论了一些问题和挑战,以及可能的解决方案,以帮助从生物柴油副产物甘油的催化蒸汽重整中高效生产氢气。

著录项

  • 来源
    《Renewable & Sustainable Energy Reviews》 |2014年第2期|950-960|共11页
  • 作者单位

    School of Energy and Power Engineering, Key Laboratory of Ocean Energy Utilization and Energy Conservation of Ministry of Education, Dalian University of Technology, 116023 Dalian, China;

    School of Energy and Power Engineering, Key Laboratory of Ocean Energy Utilization and Energy Conservation of Ministry of Education, Dalian University of Technology, 116023 Dalian, China;

    School of Energy and Power Engineering, Key Laboratory of Ocean Energy Utilization and Energy Conservation of Ministry of Education, Dalian University of Technology, 116023 Dalian, China;

    Institute of Engineering Thermophysics, Chinese Academy of Sciences, Beijing 100190, China;

    Institute of Engineering Thermophysics, Chinese Academy of Sciences, Beijing 100190, China;

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

    Glycerol steam reforming; Sorption-enhanced steam reforming; process (SERP); High-purity hydrogen; Catalyst; Sorbent for CO_2 removal;

    机译:甘油蒸汽重整;吸附增强的蒸汽重整;处理(SERP);高纯氢;催化剂;去除CO_2的吸附剂;

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