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Comprehensive Study of Fe2O3/Al2O3 Reduction with Ultralow Concentration Methane under Conditions Pertinent to Chemical Looping Combustion

机译:在化学环流燃烧条件下用超低浓度甲烷还原Fe2O3 / Al2O3的综合研究

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摘要

An experimental study was conducted to identify the most suitable alumina-supported iron-based oxygen carrier for the abatement of ultralow concentration methane using a chemical looping approach. This was done by evaluating the performance characteristics such as reactivity, cyclic stability, and gas conversion. The experiments were carried out in a thermogravimetric analyzer and a fixed bed reactor setup under the desired conditions. Thermodynamics analysis was carried out using the commercially available software ASPENPLUS. The analysis suggested that the favorable iron-based oxygen carriers were those with the weight content of Fe2O3 less than 50 wt %. Three Fe2O3/Al2O3 samples were therefore prepared with the metal oxide contents in the range of 10-45 wt %, i.e., Fe10Al, Fe25Al, and Fe45Al. The thermogravimetric analysis experimental results showed that the reduction reactivity and stability were improved with the addition of support material compared with unsupported Fe2O3. Moreover, the reduction reactivity varied with the solid conversion range and the weight content of the parent material. For full reduction of Fe2O3 to Fe3O4, the sample Fe10Al showed the highest reduction reactivity. However, in terms of the rate of oxygen transport (which considers the combined effects of the oxygen transfer capacity and reactivity), the highest value was achieved by the Fe45Al sample. The gas conversion of CH4 to CO2 was also quite dependent on the weight content of Fe2O3. Essentially, Fe45Al delivered the longest duration on high-level conversion (i.e., complete conversion of CH4 to CO2). In summary, Fe45Al was found to be the most suitable oxygen carrier candidate in this application. The effect of operational parameters was further examined with various reaction temperatures (873-1073 K), methane concentrations (0.1-1.5 vol %), and CO2 compositions (0-50 vol %).
机译:进行了一项实验研究,以鉴定最合适的氧化铝负载的铁基氧载体,采用化学循环方法可消除超低浓度甲烷。这是通过评估性能特性(例如反应性,循环稳定性和气体转化率)来完成的。实验在所需的条件下在热重分析仪和固定床反应器中进行。使用可商购的软件ASPENPLUS进行热力学分析。分析表明,有利的铁基氧载体是Fe 2 O 3的重量含量小于50wt%的那些。因此,制备了三个Fe 2 O 3 / Al 2 O 3样品,其中金属氧化物的含量为10-45wt%,即Fe 10 Al,Fe 25 Al和Fe 45 Al。热重分析实验结果表明,与无载体的Fe2O3相比,载体材料的添加降低了还原反应性和稳定性。此外,还原反应性随固体转化范围和母体材料的重量含量而变化。为了将Fe2O3完全还原为Fe3O4,样品Fe10Al表现出最高的还原反应性。但是,就氧气传输速率(考虑氧气传输能力和反应性的综合影响)而言,Fe45Al样品获得了最高值。 CH4转化为CO2的气体也完全取决于Fe2O3的重量含量。本质上,Fe45Al在高水平转化(即将CH4完全转化为CO2)中提供了最长的持续时间。总之,发现Fe45Al是该应用中最合适的氧载体候选物。用各种反应温度(873-1073 K),甲烷浓度(0.1-1.5 vol%)和CO2组成(0-50 vol%)进一步检查了操作参数的影响。

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  • 来源
    《Energy & fuels》 |2015年第maraaapra期|1951-1960|共10页
  • 作者单位

    China Univ Petr, Beijing Key Lab Urban Oil & Gas Distribut Technol, Natl Engn Lab Pipeline Safety, Beijing 102249, Peoples R China;

    Univ Newcastle, Fac Engn & Built Environm, Sch Engn, Prior Res Ctr Adv Particle Proc & Transport Chem, Callaghan, NSW 2308, Australia;

    Univ Newcastle, Fac Engn & Built Environm, Sch Engn, Ctr Frontier Energy Technol, Callaghan, NSW 2308, Australia;

  • 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

  • 入库时间 2022-08-18 00:40:19

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