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Numerical investigation of the air flow through a bundle of IP-SOFC modules

机译:通过一组IP-SOFC模块的气流的数值研究

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The integrated-planar solid oxide fuel cell (IP-SOFC) consists of ceramic modules which have electrochemical cells printed on the outer surfaces. The cathodes are the outermost layer of each cell and are supplied with oxygen from air flowing over the outside of each module. The anodes are in direct contact with the ceramic structure and are supplied with fuel from internal gas channels. An IP-SOFC power plant will contain many modules closely packed together in an array inside a pressure vessel. The air flow is also used to cool the modules. This paper describes a three-dimensional numerical method for simulating the air flow. It uses an explicit time-marching scheme that incorporates a preconditioning method to increase the rate of numerical convergence at low flow velocities. The numerical method is used to simulate the air flow through an array of IP-SOFC modules. The scheme is straightforward to implement and can predict the recirculating flows existing between the modules within an array. The calculation procedure is used to investigate the effect of different sized gaps between modules on the local heat and mass transfer coefficients. The results show the effect of the module arrangement on the flow field and how increasing the gap between modules improves the heat and mass transfer at the module surfaces.
机译:集成平面固体氧化物燃料电池(IP-SOFC)由陶瓷模块组成,陶瓷模块的外表面印有电化学电池。阴极是每个电池的最外层,并由流过每个模块外部的空气提供氧气。阳极与陶瓷结构直接接触,并从内部气体通道获得燃料。 IP-SOFC发电厂将包含许多模块,这些模块紧密排列在一起,排列在压力容器内。气流还用于冷却模块。本文介绍了一种模拟气流的三维数值方法。它使用显式的时间前进方案,该方案结合了预处理方法,以提高低流速下的数值收敛速度。数值方法用于模拟通过IP-SOFC模块阵列的气流。该方案易于实现,并且可以预测阵列中模块之间存在的再循环流。该计算程序用于研究模块之间不同尺寸间隙对局部传热和传质系数的影响。结果显示了模块布置对流场的影响,以及如何增加模块之间的间隙如何改善模块表面的热量和质量传递。

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