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ENHANCED GAS-SIDE HEAT TRANSFER IN RECTANGULAR MICRO-HONEYCOMBS

机译:增强矩形微蜂窝中的气侧传热

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Gas and air-side heat transfer is ubiquitous throughout many technological sectors, including HVAC (heating, ventilating, and air conditioning) systems, thermo-electric power generators and coolers, renewable energy, electronics and vehicle cooling, and forced-draft cooling in the petrochemical and power industries. The poor thermal conductivity and low heat capacity of air causes air-side heat transfer to typically dominate heat transfer resistance even with the use of extended area structures. In this paper, we report design, analysis, cost modeling, fabrication, and performance characterization of micro-honeycombs for gas-side heat transfer augmentation in thermoelectric (TE) cooling and power systems. Semi-empirical model aided by experimental validation was undertaken to characterize fluid flow and heat transfer parameters. We explored a variety of polygonal shapes to optimize the duct shape for air-side heat transfer enhancement. Predictions using rectangular micro-honeycomb heat exchangers, among other polygonal shapes, suggest that these classes of geometries are able to provide augmented heat transfer performance in high-temperature energy recovery streams and low-temperature cooling streams. Based on insight gained from theoretical models, rectangular micro-honeycomb heat exchangers that can deliver high performance were fabricated and tested. High- and low-cost manufacturing prototype designs with different thermal performance expectations were fabricated to explore the cost-performance design domain. Simple metrics were developed to correlate heat transfer performance with heat exchanger cost and weight and define optimum design points. The merits of the proposed air-side heat transfer augmentation approach are also discussed within the context of relevant thermoelectric power and cooling systems.
机译:燃气和空气侧传热在许多技术领域普遍存在,包括HVAC(加热,通风和空调)系统,热电发电机和冷却器,可再生能源,电子和车辆冷却,以及强制脱气石油化工和电力产业。即使使用延长的区域结构,空气的导热性差和空气的低热容量也会导致空气侧传热通常为传热阻力。在本文中,我们报告了微蜂窝的设计,分析,成本建模,制造和性能表征,用于热电(TE)冷却和动力系统中的气侧传热增强。采用实验验证的半经验模型进行了含流体流动和传热参数的特征。我们探索了各种多边形形状,以优化用于空气侧传热增强的管道形状。在其他多边形形状中,使用矩形微蜂窝热交换器的预测表明这些几何类别能够在高温能量回收流和低温冷却流中提供增强的传热性能。基于从理论模型中获得的洞察力,可以制造和测试能够提供高性能的矩形微蜂窝热交换器。制造了具有不同热性能预期的高和低成本制造原型设计,以探索成本性能设计域。开发了简单的指标,以将传热性能与热交换器成本和重量相关,并定义最佳设计点。在相关的热电动力和冷却系统的背景下还讨论了所提出的空气侧传热增强方法的优点。

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