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Local Nusselt number enhancements in liquid-liquid Taylor flows

机译:液-液泰勒流中的局部Nusselt数增强

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Thermal management has emerged as a critical requirement to ensure the performance and reliability of electronic devices and systems. System level heat fluxes are approaching the limits of conventional forced air cooling, and there is a need to develop alternative cooling techniques for devices such as processors, power amplifiers and laser arrays. This paper examines the potential heat transfer enhancements of a two phase liquid-liquid Taylor flow regime. The primary focus of the work was to examine the influence of slug length and carrier phase variations on the local Nusselt numbers. An experimental facility was designed and commissioned to subject the flow to a constant heat flux boundary condition, a boundary condition commonly encountered in thermal management applications. Local temperature measurements were acquired using a high resolution infrared thermography system. Experiments were carried out over slug length, Capillary and Prandtl numbers that spanned several orders of magnitude in a mini-channel geometry. Reductions in carrier slug length and increases in dispersed slug length were found to augment the heat transfer rates, with the greatest enhancements observed in flows with carrier slug lengths approaching the channel diameter. The thickness of the liquid film separating the dispersed slugs from the heated capillary walls was found to play a significant role in the removal of heat, with increases in film thickness resulting in a reduction in the heat transfer rates. Based on the characteristics identified, a novel correlation is proposed to model the flow in the thermally developing and fully-developed regions.
机译:热管理已成为确保电子设备和系统的性能和可靠性的关键要求。系统级的热通量已接近传统的强制空气冷却的极限,因此需要开发用于处理器,功率放大器和激光器阵列等设备的替代冷却技术。本文研究了两相液-液泰勒流态的潜在传热增强。这项工作的主要重点是检查段塞长度和载波相位变化对局部Nusselt数的影响。设计并调试了一个实验设备,以使流体经受恒定的热通量边界条件,这是热管理应用中经常遇到的边界条件。使用高分辨率红外热成像系统获取局部温度测量值。实验是在微通道几何结构中跨段长度,毛细和普朗特数进行的,跨度数个数量级。发现减小载体块的长度和增加分散块的长度可以增加传热速率,其中随着载体块的长度接近通道直径,在流动中观察到最大的增强。已经发现,将分散的团块与加热的毛细管壁分开的液膜厚度在除热方面起着重要作用,随着液膜厚度的增加,传热速率降低。基于所识别的特征,提出了一种新颖的相关性,以对热开发和完全开发区域中的流动进行建模。

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