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Experimental and numerical study of micro-pin-fin heat sinks with variable density for increased temperature uniformity

机译:微铅翅片散热器具有可变密度的实验和数值研究,提高温度均匀性

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摘要

Current technologies for the cooling of high power integrated circuits (IC) chips employ single-phase liquid flow through microchannel heat sinks. The surface temperature in these devices increases along the flow direction, leading to temperature nonuniformities in the cooled device. Mitigation of this temperature nonuniformity, while enhancing the heat exchange along the flow path, has been demonstrated through the use of variable fin density microchannels. This paper demonstrates experimentally and numerically the potential of micro-pin-fin heat sinks as an effective alternative to microchannel heat sinks for dissipating high heat fluxes from small areas. Results from this experimental and numerical investigation demonstrate the ability of variable pin-fin density with offset configurations to reach low thermal resistance coefficients and reduce the surface temperature nonuniformity while presenting low-pressure drops. For the maximum Reynolds number considered in this study (2200), we demonstrate the capacity of the cooling scheme, when submitted to a heat flux of 50 W/cm(2), to reach a pumping to chip power ratio of 0.37%, a thermal resistance coefficient of 0.26 cm(2) K/W and a temperature uniformity along the 5 cm long cooling device of 2 degrees C.
机译:用于冷却高功率集成电路(IC)芯片的当前技术采用单相液体流过微通道散热器。这些装置中的表面温度沿着流动方向增加,导致冷却装置中的温度不均匀。通过使用可变翅片密度微通道证明了这种温度不均匀,同时通过使用可变翅片密度微通道来证明这种温度不均匀性。本文通过实验和数值表现出微引脚散热器的电位作为微通道散热器的有效替代方案,用于从小区域消散高热量的散热器。该实验和数值研究的结果证明了可变销翅片密度与偏移配置的能力,以达到低热电阻系数,并在呈现低压下降时降低表面温度不均匀性。对于本研究中考虑的最大雷诺数(2200),我们展示了冷却方案的容量,当提交到50W / cm(2)的热通量时,达到泵送到芯片功率比为0.37%时,a热阻系数0.26cm(2)k / w,沿着5cm长冷却装置的温度均匀,为2℃。

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