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Hydrogen production via sulfur-based thermochemical cycles: Part 2: Performance evaluation of Fe2O3-based catalysts for the sulfuric acid decomposition step

机译:通过硫基热化学循环生产氢:第2部分:用于硫酸分解步骤的Fe2O3基催化剂的性能评估

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摘要

The sulfuric acid dissociation reaction, via which the production of SO2 and O2 is achieved, is the most energy intensive step of the so-called sulfur-based thermochemical cycles for the production of hydrogen. Efforts are focused on the feasibility and effectiveness of performing this reaction with the aid of a high-temperature energy/heat source like the sun. Such coupling can be achieved either directly in a solar reactor by concentrated solar radiation, or indirectly by means of a heat-exchanger/decomposer reactor using a suitable heat transfer fluid. Since a very limited amount of work regarding the potential formulations and sizing of such suitable reactors has been performed so far, the present work addresses further steps necessary for the efficient design, manufacture and operation of such reactors for sulfuric acid decomposition. In this respect, parametric studies on the SO3 decomposition with iron(III) oxide-based catalysts were performed investigating the effect of temperature, pressure and space velocity on SO3 conversion. Based on these results, an empirical kinetic law suitable for the reactor design was developed. In parallel, siliconised silicon carbide honeycombs coated with iron(III) oxide were prepared and tested in structured laboratory-scale reactors to evaluate their durability (i.e. activity vs. time) during SO3 decomposition, with the result of satisfactory and stable performance for up to 100 h of operation. The results in combination with characterization results of "aged" materials can provide valuable input for the design of prototype reactors for sulfuric acid decomposition.
机译:硫酸离解反应是用于产生氢的所谓基于硫的热化学循环中最耗能的步骤,通过硫酸离解反应可实现SO2和O2的产生。努力集中在借助高温能量/热源(如太阳)进行此反应的可行性和有效性上。这种耦合既可以直接在太阳能反应器中通过集中的太阳辐射来实现,也可以间接地通过使用合适的传热流体的热交换器/分解器反应器来实现。由于到目前为止已经进行了关于这种合适的反应器的潜在配方和尺寸的非常有限的工作,因此本工作解决了用于硫酸分解的这种反应器的有效设计,制造和操作所必需的其他步骤。在这方面,进行了用氧化铁(III)基催化剂分解SO3的参数研究,研究了温度,压力和空速对SO3转化的影响。基于这些结果,开发了适用于反应堆设计的经验动力学定律。平行地,制备了涂覆有氧化铁(III)的硅化碳化硅蜂窝,并在结构化实验室规模的反应器中进行了测试,以评估其在SO3分解过程中的耐久性(即活性与时间的关系),从而获得令人满意且稳定的性能,直至运行100小时。该结果与“老化”材料的表征结果相结合,可以为硫酸分解原型反应器的设计提供有价值的输入。

著录项

  • 来源
    《Journal of network and computer applications》 |2011年第4期|p.6496-6509|共14页
  • 作者单位

    ENEA, "Casaccia" Research Center, Via Anguillarese 301, 00060 Rome, Italy;

    ENEA, "Casaccia" Research Center, Via Anguillarese 301, 00060 Rome, Italy;

    ENEA, "Casaccia" Research Center, Via Anguillarese 301, 00060 Rome, Italy;

    ENEA, "Casaccia" Research Center, Via Anguillarese 301, 00060 Rome, Italy;

    Aerosol and Particle Technology Lab. (APTL), Centre for Research and Technology Hellas, 6th fern Harilaou-Thermi Road,57001 Thessalonifei, Greece;

    Aerosol and Particle Technology Lab. (APTL), Centre for Research and Technology Hellas, 6th fern Harilaou-Thermi Road,57001 Thessalonifei, Greece;

    Aerosol and Particle Technology Lab. (APTL), Centre for Research and Technology Hellas, 6th fern Harilaou-Thermi Road,57001 Thessalonifei, Greece;

    Aerosol and Particle Technology Lab. (APTL), Centre for Research and Technology Hellas, 6th fern Harilaou-Thermi Road,57001 Thessalonifei, Greece,Department of Chemical Engineering, Aristotle University, P.O. Box 1517, 54006 Thessalonifei, Greece;

    Deutsches Zentrumfur Luft- und Raumfahrt e.V. (DLR), Solar Research, Under Hohe, 51147 Koln, Germany;

    Deutsches Zentrumfur Luft- und Raumfahrt e.V. (DLR), Solar Research, Under Hohe, 51147 Koln, Germany;

    Deutsches Zentrumfur Luft- und Raumfahrt e.V. (DLR), Solar Research, Under Hohe, 51147 Koln, Germany;

    Deutsches Zentrumfur Luft- und Raumfahrt e.V. (DLR), Solar Research, Under Hohe, 51147 Koln, Germany;

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

    hydrogen production; thermochemical cycles; sulfuric acid decomposition; iron oxide catalysts;

    机译:制氢热化学循环;硫酸分解;氧化铁催化剂;

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