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Computational Fluid Dynamic Analyses Of Catalytic Combustors For 100kw-class Molten Carbonate Fuel Cell

机译:100kw级熔融碳酸盐燃料电池催化燃烧器的计算流体动力学分析

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摘要

The asymmetric inner structure of a catalytic combustor causes wall cracking because of regional overheating. Thus, a symmetric shape is proposed in the present work and analyses of the computational fluid dynamics of the existing combustor and the proposed type have been performed. A simulation of the revised combustor without a swirl device revealed that the flow of gases is concentrated on the center of the combustor and only catalysts around the center are used. In the revised combustor with a swirl device, the overall temperatures were estimated to be uniform. However, near the swirl device, high temperature exceeding 1,700 K was measured. Therefore, a heatproof surface coating on the swirl device is necessary for protection of the material. At the initial start-up of the catalytic combustor, hydrogen and natural gas are used. When only natural gas is used, the simulation indicated that the gas does not burn in the revised combustor without a swirl device. However, in the combustor with the swirl device, methane of 34.8% volume burns in the simulation. On the other hand, when hydrogen and natural gas are burned together, methane of 91.7% volume burns in the simulation.
机译:催化燃烧器的不对称内部结构由于区域过热而导致开裂。因此,在本工作中提出了一种对称的形状,并且对现有燃烧室和所提出的燃烧室的计算流体动力学进行了分析。对不带涡流装置的改进型燃烧器的模拟显示,气流集中在燃烧器的中心,仅使用围绕中心的催化剂。在带有涡旋装置的改进型燃烧器中,估计总体温度是均匀的。然而,在旋流装置附近,测得的高温超过1,700K。因此,旋流装置上的耐热表面涂层对于保护材料是必要的。在催化燃烧器的初始启动中,使用氢气和天然气。当仅使用天然气时,模拟表明在没有涡旋装置的情况下,天然气不会在改型燃烧室中燃烧。然而,在具有涡旋装置的燃烧器中,模拟中燃烧了34.8%体积的甲烷。另一方面,当氢气和天然气一起燃烧时,模拟中燃烧体积为91.7%的甲烷。

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