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Microchannel Size Effects on Two-Phase Local Heat Transfer and Pressure Drop in Silicon MicroChannel Heat Sinks with a Dielectric Fluid

机译:微通道尺寸对具有介电流体的硅微通道散热器中的两相局部传热和压降

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Two-phase heat transfer in microchannels can support very high heat fluxes for use in high-performance electronics-cooling applications. However, the effects of microchannel cross-sectional dimensions on the heat transfer coefficient and pressure drop have not been investigated extensively. In the present work, experiments are conducted to investigate the local flow boiling heat transfer in microchannel heat sinks. The effect of channel size on the heat transfer coefficient and pressure drop is studied for mass fluxes ranging from 250 to 1600 kg/m~2s. The test sections consist of parallel microchannels with nominal widths of 100, 250,400, 700, and 1000 μrn, all with a depth of 400 μm, cut into 12.7 mm × 12.7 mm silicon substrates. Twenty-five microheaters embedded in the substrate allow local control of the imposed heat flux, while twenty-five temperature microsensors integrated into the back of the substrates enable local measurements of temperature. The dielectric fluid Fluorinert FC-77 is used as the working fluid. The results of this study serve to quantify the effectiveness of microchannel heat transport while simultaneously assessing the pressure drop trade-offs.
机译:微通道中的两相热传递可以支持非常高的热通量,用于高性能电子冷却应用。然而,微通道横截面尺寸对传热系数和压降的影响尚未广泛研究。在本工作中,进行实验以研究微通道散热器中的局部流沸热。研究了通道尺寸对传热系数和压降的影响,用于从250-1600kg / m〜2s的质量助熔剂研究。试验部分由具有100,250,400,700和1000μr的标称宽度的并联微通道组成,所有的深度为400μm,切成12.7mm×12.7mm的硅基板。嵌入基板中的二十五个微热允许局部控制施加的热通量,而二十五的温度微传感器集成在基板的背面,使局部测量温度。电介质流体氟化物Fc-77用作工作流体。本研究的结果有助于量化微通道热传输的有效性,同时评估压降折衷。

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