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Meso Scale Pulsating Jets for Electronics Cooling

机译:用于电子冷却的中观规模脉动喷嘴

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Microfluid devices are conventionally used for boundary layer control in many aerospace applications. Synthetic jets are intense small-scale turbulent jets formed from periodic entrainment and expulsion of the fluid in which they are embedded. The jets can be made to impinge upon electronic components thereby providing forced convection impingement cooling. The small size of these devices accompanied by the high exit air velocity provides an exciting opportunity to significantly reduce the size of thermal management hardware in electronics. A proprietary meso scale synthetic jet designed at GE Global Research is able to provide a maximum air velocity of 90 m/s from a 0.85 mm hydraulic diameter rectangular orifice. An experimental study for determining the cooling performance of synthetic jets was carried out by using a single jet to cool a thin foil heater. The heat transfer augmentation caused by the jets depends on several parameters, such as, driving frequency, driving voltage, jet axial distance, heater size, and heat flux. During the experiments, the operating frequency for the jets was varied between 3.4 and 5.4 kHz, while the driving voltage was varied between 50 and 90 VRMS. Two different heater powers, corresponding to approximately 50 and 80 ℃, were tested. A square heater with a surface area of 156 mm{sup}2 was used to mimic the hot component and detailed temperature measurements were obtained with a microscopic infrared thermal imaging technique. A maximum heat transfer enhancement of approximately 10 times over natural convection was measured. The maximum measured coefficient of performance was approximately 3.25 due to the low power consumption of the synthetic jets.
机译:在许多航空航天应用中,微流体装置通常用于边界层控制。合成射流是强烈的小规模湍流射流,由周期性的夹带和排出其中所嵌入的流体形成。可以使射流撞击电子部件,从而提供强制对流撞击冷却。这些设备的小尺寸以及较高的出风速度为大幅降低电子设备中热管理硬件的尺寸提供了令人兴奋的机会。 GE Global Research设计的专有中尺度合成射流能够从水力直径为0.85 mm的矩形孔口提供90 m / s的最大空气速度。通过使用单个喷嘴冷却薄箔加热器进行了确定合成喷嘴冷却性能的实验研究。由射流引起的传热增加取决于几个参数,例如驱动频率,驱动电压,射流轴向距离,加热器尺寸和热通量。在实验过程中,射流的工作频率在3.4至5.4 kHz之间变化,而驱动电压在50至90 VRMS之间变化。测试了两种不同的加热器功率,分别对应于大约50和80℃。使用表面积为156 mm {sup} 2的方形加热器模拟热组件,并通过显微红外热成像技术获得详细的温度测量值。测得最大传热比自然对流提高了约10倍。由于合成射流的低功耗,最大测得的性能系数约为3.25。

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