首页> 外文会议>ASME international mechanical engineering congress and exposition;IMECE2008 >INTEGRATION OF CATALYTIC COMBUSTION AND HEAT RECOVERY WITH MESO- SCALE SOLID OXIDE FUEL CELL SYSTEM
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INTEGRATION OF CATALYTIC COMBUSTION AND HEAT RECOVERY WITH MESO- SCALE SOLID OXIDE FUEL CELL SYSTEM

机译:中尺度固体氧化物燃料电池系统与催化燃烧和热回收的整合

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To facilitate high-power density operation of a meso-scale solid oxide fuel cell (SOFC) system, fuel processing and anode exhaust catalytic combustor with waste heat recovery are critical components. An integrated modeling study of a catalytic combustor with a solid oxide fuel cell and a catalytic partial oxidation (CPOx) reactor indicates critical aspects of the butane-fueled system design in order to ensure stable operation of the SOFC as well as the combustor and CPOx reactor. The modeled system consists of: 1) a Rh-coated ceramic foam catalytic partial oxidation reactor, 2) a SOFC with a Ni/YSZ structural anode, a dense YSZ electrolyte, and a LSM/YSZ cathode layer, and 3) a Pt-coated anode exhaust combustor with waste heat recovery. Model results for a system designed to produce < 30 W electric power from n-butane show how the design of the inlet-air cooled catalytic combustor can maximize combustion efficiency of the anode exhaust and heat recovery to the system inlet air flow. The model also shows the need to minimize heat loss in the air flow passages in order to maintain stable SOFC operation at 700 °C or higher. There is a strong sensitivity of the system operation to the SOFC operating voltage as well as the overall air to fuel ratio, and these sensitivities place important bounds on the range of operating conditions.
机译:为了促进中规模固体氧化物燃料电池(SOFC)系统的高功率密度运行,具有余热回收的燃料处理和阳极排气催化燃烧器是关键组件。带有固体氧化物燃料电池和催化部分氧化(CPOx)反应器的催化燃烧器的综合建模研究表明,丁烷燃料系统设计的关键方面是为了确保SOFC以及燃烧器和CPOx反应器的稳定运行。该模型系统包括:1)Rh涂层陶瓷泡沫催化部分氧化反应器,2)具有Ni / YSZ结构阳极,致密YSZ电解质和LSM / YSZ阴极层的SOFC,以及3)Pt-带涂层的阳极废气燃烧器,具有余热回收功能。设计用于从正丁烷产生<30 W功率的系统的模型结果表明,进气冷却的催化燃烧器的设计如何使阳极废气的燃烧效率和对系统进气的热能回收最大化。该模型还表明,有必要将气流通道中的热损失降至最低,以保持SOFC在700°C或更高的温度下稳定运行。系统操作对SOFC操作电压以及总的空燃比具有很强的敏感性,而这些敏感性对操作条件范围具有重要的限制。

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