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Hydrogen production with integrated CO_2 capture in a membrane assisted gas switching reforming reactor: Proof-of-Concept

机译:膜辅助气体转换重整反应器中集成了CO_2捕集的制氢技术:概念验证

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This paper presents a new membrane reactor concept for ultra-pure hydrogen production with integrated CO2 capture: the membrane-assisted gas switching reforming (MA-GSR). This concept integrates alternating exothermic and endothermic redox reaction stages in a single fluidized bed consisting of catalytically active oxygen-carrier particles, by switching the feed between air and methane/steam, where the produced hydrogen is selectively removed via Pd-based membranes. This concept results in overall autothermal conditions and allows easier operation at high pressure compared to alternative novel technologies. In this work, the MA-GSR concept is demonstrated at lab scale using four metallic supported membranes (Pd-Ag based) immersed into a fluidized bed consisting of a Ni-based oxygen carrier. The performance of the reactor has been tested under different experimental operating conditions and high methane conversions (50%) have been obtained, well above the thermodynamic equilibrium conversion of a conventional fluidized bed as a result of the selective H-2 extraction, with (ultra-pure) H-2 recoveries above 20% at relatively low temperatures (550 degrees C). These results could be further improved by working at elevated pressures or by integrating more membranes. Even though the concept has been successfully demonstrated, further research is required to develop suitable membranes since post-mortem membrane characterization has revealed defects in the membrane selective layer as a consequence of the frequent exposure to thermal cycles with alternating oxidative and reducing atmospheres. (C) 2018 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:本文提出了一种具有集成式CO2捕集的超纯氢生产的新膜反应器概念:膜辅助气体转换重整(MA-GSR)。该概念通过在空气和甲烷/蒸汽之间切换进料,将交替的放热和吸热氧化还原反应阶段集成在由催化活性氧载体颗粒组成的单个流化床中,在此过程中,生成的氢气通过Pd基膜选择性除去。与替代的新技术相比,此概念可导致整体自热条件,并使其在高压下更容易操作。在这项工作中,MA-GSR概念在实验室规模得到了证明,方法是将四种金属支撑膜(基于Pd-Ag的膜)浸入由Ni基氧载体组成的流化床中。已在不同的实验操作条件下测试了反应器的性能,并获得了较高的甲烷转化率(> 50%),远高于常规流化床通过选择性H-2萃取得到的热力学平衡转化率,其中( H-2在相对较低的温度(<550摄氏度)下回收率超过20%。通过在高压下工作或集成更多膜可以进一步改善这些结果。即使已经成功地证明了这一概念,但由于事后膜表征已经揭示了膜选择层中的缺陷,这是由于频繁暴露于具有交替氧化和还原气氛的热循环的结果,因此仍需要进一步研究以开发合适的膜。 (C)2018氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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