首页> 外文会议>ASME international mechanical engineering congress and exposition;IMECE2011 >A COMPUTATIONAL STUDY OF ACTIVE HEAT TRANSFER ENHANCEMENT OF AIR-COOLED HEAT SINKS BY ACTUATED PLATES
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A COMPUTATIONAL STUDY OF ACTIVE HEAT TRANSFER ENHANCEMENT OF AIR-COOLED HEAT SINKS BY ACTUATED PLATES

机译:活化板主动增强空冷传热传热的计算研究

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Heat transfer performance of air-cooled heat sinks must be improved to meet thermal management requirements of microelectronic devices. The present paper addresses this need by putting actuated plates into channels of a heat sink so that heat transfer is enhanced by the agitation and unsteadiness they generate. A proof-of-concept exercise was computationally conducted in a single channel consisting of one base surface, two fin wall surfaces, and an adiabatic fourth wall, with an actuated plate within the channel. Air flows through the channel, and the actuated plate generates periodic motion in a transverse direction to the air flow and to the fin surface. Turbulence is generated along the tip of the actuated plate due to its periodical motion, resulting in substantial heat transfer enhancement in the channel. Heat transfer is enhanced by 61% by agitating operation for a representative situation. Translational operation of the plate induces 33% more heat transfer than a corresponding flapping operation. Heat transfer on the base surface increases sharply as the gap distance between it and the plate tip decreases, while heat transfer on the fin wall surface is insensitive to the tip gap. Heat transfer in the channel increases linearly with increases of amplitude or frequency. The primary operational parameter to the problem is the product of amplitude and frequency, with amplitude being slightly more influential than frequency. The analysis shows that the proposed method can be used for modern levels of chip heat flux in an air-cooled model forestalling transition to liquid or phase-change cooling.
机译:必须提高风冷散热器的传热性能,以满足微电子设备的热管理要求。本论文通过将致动板放入散热器的通道中来满足这种需求,从而通过其产生的搅动和不稳定来增强热传递。在由一个底面,两个翅片壁面和一个绝热的第四壁组成的单个通道中,通过计算进行概念验证,并在通道内安装了一个驱动板。空气流过通道,致动板在气流和散热片表面的横向产生周期性运动。由于其周期性运动,沿致动板的尖端产生湍流,导致通道中的传热大大增强。通过在典型情况下进行搅拌操作,可使热传递提高61%。平板的平移操作比相应的拍打操作引起的热量传递高33%。随着底面与板尖端之间的间隙距离减小,底面上的热传递急剧增加,而翅片壁表面上的导热对尖端间隙不敏感。通道中的传热随着幅度或频率的增加而线性增加。该问题的主要操作参数是幅度和频率的乘积,幅度的影响比频率稍大。分析表明,该方法可用于空冷模型中现代水平的切屑热通量,从而避免了向液相或相变冷却的过渡。

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