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Experimental study on convection heat transfer of a single fin duct with pulsated airflow

机译:脉动气流单翅片管对流换热的实验研究

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With the recent advancements in the electronics industry, thinner systems with greater functionality are on demand. Natural convection air-cooling is the method of choice for many low power electronics applications due to cost, availability, and reliability. However, its performance is very limited due to buoyancy dependent weak flow. Therefore, there is a need for further enhancement of natural convection. An experimental study is performed to understand the synthetic jet heat transfer over a single fin surface. The primary focus is for the understanding of the local temperatures and heat transfer coefficients on the fin surface. We used microscopic infrared temperature measurement technique to understand local temperatures leading to local convective cooling. Heat transfer is correlated to pulsation frequency, air velocity, duct width, flow angle, fin spacing, and jet orifice size. The results show that heat transfer can be improved by increasing air velocity and pulse rate. Smaller fin spacing can cause increase of heat transfer coefficient. Airflow impinging on one fin with angle can enhance heat transfer in the local area, but not for the fin duct as a whole. Strong heat transfer is observed close to the inlet and exit of the duct.
机译:随着电子工业的最新发展,对具有更强大功能的更薄系统的需求日益迫切。自然对流空气冷却由于成本,可用性和可靠性而成为许多低功率电子应用的首选方法。但是,由于依赖于浮力的弱流,其性能非常有限。因此,需要进一步增强自然对流。进行了一项实验研究,以了解单个翅片表面上的合成射流传热。主要重点是了解散热片表面的局部温度和传热系数。我们使用显微红外测温技术来了解导致局部对流冷却的局部温度。传热与脉动频率,空气速度,管道宽度,流动角度,散热片间距和射流孔尺寸相关。结果表明,可以通过提高空气速度和脉冲率来改善热传递。较小的散热片间距会导致传热系数增加。气流以一定角度撞击到一个散热片上可以增强局部区域的热传递,但对于整个散热片管道却不能。在管道的入口和出口附近观察到强烈的热传递。

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