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Biomass-based hydrogen production: A review and analysis

机译:基于生物质的氢气生产:回顾与分析

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摘要

In this study, various processes for conversion of biomass into hydrogen gas are comprehensively reviewed in terms of two main groups, namely (ⅰ) thermo-chemical processes (pyrolysis, conventional gasification, supercritical water gasification (SCWG)), and (ⅱ) biological conversions (fermentative hydrogen production, photosynthesis, biological water gas shift reactions (BWGS)). Biomass-based hydrogen production systems are discussed in terms of their energetic and exergetic aspects. Literature studies and potential methods are then summarized for comparison purposes. In addition, a biomass gasification process via oxygen and steam in a downdraft gasifier is exergetically studied for performance assessment as a case study. The operating conditions and strategies are really important for better performance of the system for hydrogen production. A distinct range of temperatures and pressures is used, such as that the temperatures may vary from 480 to 1400 ℃, while the pressures are in the range of 0.1-50 MPa in various thermo-chemical processes reviewed. For the operating conditions considered the data for steam biomass ratio (SBR) and equivalence ratio (ER) range from 0.6 to 10 and 0.1 to 0.4, respectively. In the study considered, steam is used as the gasifying agent with a product gas heating value of about 10-15 MJ/Nm~3, compared to an air gasification of biomass process with 3-6 MJ/Nm~3. The exergy efficiency value for the case study system is calculated to be 56.8%, while irreversibility and improvement potential rates are found to be 670.43 and 288.28 kW, respectively. Also, exergetic fuel and product rates of the downdraft gasifier are calculated as 1572.08 and 901.64 kW, while fuel depletion and productivity lack ratios are 43% and 74.3%, respectively.
机译:在这项研究中,从两个主要方面全面回顾了将生物质转化为氢气的各种过程,即(ⅰ)热化学过程(热解,常规气化,超临界水气化(SCWG))和(ⅱ)生物过程转化(发酵产氢,光合作用,生物水煤气变换反应(BWGS))。就基于生物质的制氢系统的能量和能量方面进行了讨论。然后总结文献研究和可能的方法,以进行比较。此外,作为案例研究,对下行气流气化炉中通过氧气和蒸汽进行的生物质气化过程进行了研究,以进行性能评估。操作条件和策略对于提高制氢系统的性能确实非常重要。使用了不同的温度和压力范围,例如温度在480到1400℃之间变化,而在各种热化学过程中压力在0.1-50 MPa的范围内。对于所考虑的操作条件,蒸汽生物量比(SBR)和当量比(ER)的数据分别为0.6到10和0.1到0.4。在考虑的研究中,与生物质过程的空气气化率为3-6 MJ / Nm〜3相比,蒸汽被用作气化剂,产品气的热值约为10-15 MJ / Nm〜3。案例研究系统的火用效率值计算为56.8%,而不可逆性和改进潜力率分别为670.43和288.28 kW。同样,向下气流气化炉的高能燃料和产物比率经计算为1572.08和901.64 kW,而燃料消耗和生产率缺乏比率分别为43%和74.3%。

著录项

  • 来源
    《International journal of hydrogen energy》 |2009年第21期|8799-8817|共19页
  • 作者单位

    Department of Technical Programs, Izmir Vocational High School, Dokuz Eylul University, Education Campus Buca, Izmir, Turkey;

    Department of Mechanical Engineering, Faculty of Engineering, Ege University, 35100 Izmir, Turkey;

    Faculty of Engineering and Applied Science, University of Ontario Institute of Technology, 2000 Simcoe Street North, Oshawa, Ontario, Canada L1H 7K4;

  • 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

    hydrogen energy; biomass; energy; exergy; efficiency; gasification; pyrolysis; performance;

    机译:氢能生物质能源;火用效率;气化;热解性能;

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