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Microscale heat transfer enhancement using thermal boundary layer redeveloping concept

机译:利用热边界层再开发概念增强微尺度传热

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摘要

We demonstrated a new silicon microchannel heat sink, composing of parallel longitudinal microchannels and several transverse microchannels, which separate the whole flow length into several independent zones, in which the thermal boundary layer is in developing. The redeveloping flow is repeated for all of the independent zones thus the overall heat transfer is greatly enhanced. Meanwhile, the pressure drops are decreased compared with the conventional micro-channel heat sink. Both benefits of enhanced heat transfer and decreased pressure drop ensure the possibility to use "larger" hydraulic diameter of the microchannels so that less pumping power is needed, which are attractive for high heat flux chip cooling. The above idea fulfilled in microscale is verified by a set of experiments. The local chip temperature and Nusselt numbers are obtained using a high resolution Infrared Radiator Imaging system. Preliminary explanation is given on the decreased pressure drop while enhancing heat transfer. The dimensionless control parameter that guides the new heat sink design and the prospective of the new heat sink are discussed.
机译:我们展示了一个新的硅微通道散热器,它由平行的纵向微通道和几个横向微通道组成,它们将整个流动长度分成几个独立的区域,其中热边界层正在形成。对所有独立区域重复进行显影流,因此大大提高了整体传热。同时,与常规的微通道散热器相比,压降降低了。增强的热传递和减小的压降的优点都确保了使用“较大”微通道的液压直径的可能性,从而需要较少的泵送功率,这对于高热通量芯片冷却是有吸引力的。在微观上实现的上述想法通过一组实验得到了验证。局部芯片温度和Nusselt数是使用高分辨率红外辐射成像系统获得的。对降低的压降同时增强热传递进行了初步说明。讨论了指导新散热器设计的无量纲控制参数以及新散热器的前景。

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