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高温燃料电池中的催化作用。

Catalysis in high-temperature fuel cells.

作者信息

Föger K, Ahmed K

机构信息

Ceramic Fuel Cells Ltd., 170 Browns Road, Noble Park, Victoria 3174, Australia.

出版信息

J Phys Chem B. 2005 Feb 17;109(6):2149-54. doi: 10.1021/jp0490507.

DOI:10.1021/jp0490507
PMID:16851206
Abstract

Catalysis plays a critical role in solid oxide fuel cell systems. The electrochemical reactions within the cell--oxygen dissociation on the cathode and electrochemical fuel combustion on the anode--are catalytic reactions. The fuels used in high-temperature fuel cells, for example, natural gas, propane, or liquid hydrocarbons, need to be preprocessed to a form suitable for conversion on the anode-sulfur removal and pre-reforming. The unconverted fuel (economic fuel utilization around 85%) is commonly combusted using a catalytic burner. Ceramic Fuel Cells Ltd. has developed anodes that in addition to having electrochemical activity also are reactive for internal steam reforming of methane. This can simplify fuel preprocessing, but its main advantage is thermal management of the fuel cell stack by endothermic heat removal. Using this approach, the objective of fuel preprocessing is to produce a methane-rich fuel stream but with all higher hydrocarbons removed. Sulfur removal can be achieved by absorption or hydro-desulfurization (HDS). Depending on the system configuration, hydrogen is also required for start-up and shutdown. Reactor operating parameters are strongly tied to fuel cell operational regimes, thus often limiting optimization of the catalytic reactors. In this paper we discuss operation of an authothermal reforming reactor for hydrogen generation for HDS and start-up/shutdown, and development of a pre-reformer for converting propane to a methane-rich fuel stream.

摘要

催化作用在固体氧化物燃料电池系统中起着关键作用。电池内部的电化学反应——阴极上的氧解离和阳极上的电化学燃料燃烧——都是催化反应。高温燃料电池中使用的燃料,例如天然气、丙烷或液态烃,需要进行预处理,使其转化为适合在阳极上进行转化的形式——脱硫和预重整。未转化的燃料(经济燃料利用率约为85%)通常使用催化燃烧器进行燃烧。陶瓷燃料电池有限公司已开发出阳极,这种阳极除了具有电化学活性外,还对甲烷的内部蒸汽重整具有反应活性。这可以简化燃料预处理,但其主要优点是通过吸热散热对燃料电池堆进行热管理。采用这种方法,燃料预处理的目标是产生富含甲烷的燃料流,但要去除所有的高级烃。脱硫可通过吸收或加氢脱硫(HDS)实现。根据系统配置,启动和关闭时也需要氢气。反应器的操作参数与燃料电池的运行状态密切相关,因此常常限制了催化反应器的优化。在本文中,我们讨论了用于HDS和启动/关闭制氢的自热重整反应器的操作,以及将丙烷转化为富含甲烷的燃料流的预重整器的开发。

相似文献

1
Catalysis in high-temperature fuel cells.高温燃料电池中的催化作用。
J Phys Chem B. 2005 Feb 17;109(6):2149-54. doi: 10.1021/jp0490507.
2
A redox-stable efficient anode for solid-oxide fuel cells.一种用于固体氧化物燃料电池的氧化还原稳定高效阳极。
Nat Mater. 2003 May;2(5):320-3. doi: 10.1038/nmat871.
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Direct oxidation of hydrocarbons in a solid-oxide fuel cell.固体氧化物燃料电池中碳氢化合物的直接氧化
Nature. 2000 Mar 16;404(6775):265-7. doi: 10.1038/35005040.
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Methane oxidation at redox stable fuel cell electrode La0.75Sr0.25Cr0.5Mn0.5O(3-delta).氧化还原稳定的燃料电池电极La0.75Sr0.25Cr0.5Mn0.5O(3-δ)上的甲烷氧化
J Phys Chem B. 2006 Nov 2;110(43):21771-6. doi: 10.1021/jp062376q.
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A thermally self-sustained micro solid-oxide fuel-cell stack with high power density.一种具有高功率密度的热自维持微型固体氧化物燃料电池堆。
Nature. 2005 Jun 9;435(7043):795-8. doi: 10.1038/nature03673.
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A high-performance cathode for the next generation of solid-oxide fuel cells.用于下一代固体氧化物燃料电池的高性能阴极。
Nature. 2004 Sep 9;431(7005):170-3. doi: 10.1038/nature02863.
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An octane-fueled solid oxide fuel cell.一种以辛烷为燃料的固体氧化物燃料电池。
Science. 2005 May 6;308(5723):844-7. doi: 10.1126/science.1109213. Epub 2005 Mar 31.
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Nanostructured thin solid oxide fuel cells with high power density.具有高功率密度的纳米结构固体氧化物薄膜燃料电池。
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Disruption of extended defects in solid oxide fuel cell anodes for methane oxidation.用于甲烷氧化的固体氧化物燃料电池阳极中扩展缺陷的破坏。
Nature. 2006 Feb 2;439(7076):568-71. doi: 10.1038/nature04438.
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Advanced anodes for high-temperature fuel cells.用于高温燃料电池的先进阳极
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