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Thermal and Flow Performance of a Microconvective Heat Sink With Three-Dimensional Constructal Channel Configuration

机译:具有三维构造通道结构的微对流散热器的热和流动性能

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The design, performance, manufacturing, and experimental validation of two convective heat sinks with scalable dimensions are presented. The heat sinks consist of an array of elemental units arranged in parallel. Each elemental unit is designed as a network of branching channels whose dimensions follow a group of geometric relations that have been derived from physiological fluid transport systems and the constructal method. The goal of these relations is to optimize both the point-to-point temperature difference within the heat sink and the pressure drop across the device under imposed geometric constraints. The first branching network is a generic three-dimensional (3-D) structure that was analyzed to push the limit of the heat sinks capability. The second is a heat sink that was designed specifically with the tape-casting fabrication method in mind. The heat sink has a branching network embedded within low temperature cofire ceramic (LTCC) and the same network embedded within thick film silver, which has the ability of being cofired with low temperature cofired ceramic substrates. The performance is evaluated using both a channel-level lumped model and a CFD model. The performance for different heat sink materials (low-temperature cofired ceramic and silver) is presented. The key results are then compared with the experimental results of the two scaled models. The results show good agreement within the experimental uncertainty. This validation confirms that the thermal performance and pumping efficiency of the constructal heat sink is superior compared to porous metal and conventional microchannel heat sinks under the same operating conditions, and that the designs are only limited by manufacturing techniques.
机译:介绍了两个具有可扩展尺寸的对流散热器的设计,性能,制造和实验验证。散热器由平行排列的一系列单元组成。每个基本单元被设计为分支通道的网络,其尺寸遵循一组几何关系,这些几何关系已从生理流体传输系统和构造方法得出。这些关系的目的是在施加的几何约束下优化散热器内的点对点温度差和整个设备上的压降。第一个分支网络是通用的三维(3-D)结构,已对其进行分析以突破散热片能力的极限。第二个是专门针对流延制造方法设计的散热器。散热器具有嵌入在低温共烧陶瓷(LTCC)内的分支网络和嵌入在厚膜银内的相同网络,具有与低温共烧陶瓷基板共烧的能力。使用通道级集总模型和CFD模型来评估性能。介绍了不同散热器材料(低温共烧陶瓷和银)的性能。然后将关键结果与两个比例模型的实验结果进行比较。结果表明在实验不确定性范围内有很好的一致性。该验证证实,在相同的工作条件下,结构性散热器的热性能和泵送效率优于多孔金属散热器和常规微通道散热器,并且设计仅受制造技术限制。

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