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首页> 外文期刊>Journal of Cleaner Production >The numerical study of the energy and exergy efficiencies of the micro-combustor by the internal micro-fin for thermophotovoltaic systems
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The numerical study of the energy and exergy efficiencies of the micro-combustor by the internal micro-fin for thermophotovoltaic systems

机译:内部微鳍片热燃料对蒸镀系统的能量和漏洞效率的数值研究

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摘要

The use of micro-combustor for thermophotovoltaic systems requires that the energy conversion efficiency, exergy efficiency, and wall temperature be high and uniform. In this work, in order to improve the thermal performance of the micro-combustor, a new micro-fin is placed inside the micro-combustor in the outlet. The key parameter in the design, i.e., the length of the section containing the fin is investigated on the performance of the newly proposed micro-combustor. The hydrogen-air premixed combustion in a stoichiometric state is simulated numerically and the effect of the input speed, the thermal conductivity coefficient of the solid zone and the different heat transfer conditions from the exterior wall are investigated on the energy and exergy performances. The results showed that the micro-fin had a significant positive effect on the performance of the micro-combustor with micro-fin, by increasing the area exposed to heat transfer, thereby significantly increasing the mean wall temperature and uniformity. It also increases the energy conversion efficiency and exergy efficiency by increasing the radiation power. Increasing the micro-fin length, while increasing the thermal performance of the micro-combustor, also causes a little drop in pressure. The best performance is provided for the extended micro-combustor with the micro-fin for micro thermophotovoltaic systems. (C) 2019 Elsevier Ltd. All rights reserved.
机译:使用微燃烧器用于蒸发器系统要求能量转换效率,高效效率和壁温度高而均匀。在这项工作中,为了提高微燃烧器的热性能,将新的微翅片放置在出口中的微燃烧器内。研究了设计中的关键参数,即包含翅片的部分的长度,用于新提出的微燃烧器的性能。在数值上模拟化学计量状态下的氢气预混燃烧,并且对固体区域的导热系数和来自外墙的不同传热条件的效果进行了数量的模拟,并且在能量和暴露性表演中研究了来自外墙的不同传热条件。结果表明,微翅片对微鳍片的微燃烧器的性能具有显着的积极作用,通过增加暴露于传热的区域,从而显着增加平均壁温和均匀性。它还通过增加辐射功率来提高能量转换效率和漏洞效率。增加微鳍长度,同时提高微燃烧器的热性能,也导致压力下降。具有用于微鳍片的微纤维的扩展微燃烧器提供了最佳性能。 (c)2019 Elsevier Ltd.保留所有权利。

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