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An investigation into momentum and temperature fields of a meso-scale synthetic jet

机译:中尺度合成射流的动量和温度场研究

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Thermal management has become a critical part of advanced micro and nano electronics systems due to high heat transfer rates. More constraints such as compactness, small footprint area, lightweight, high reliability, easy-access and low cost are exposed to thermal engineers. Advanced electronic systems such as laptops, tablets, smart phones and slim TV systems carry those challenging thermal needs. For these devices, smaller thermal real estates with higher heat fluxes than ever have created issues that current thermal technologies cannot meet those needs easily. Therefore, innovative cooling techniques are necessary to fulfill these aggressive thermal demands. Synthetic jets have been studied as a promising technology to satisfy the thermal needs of such tight electronics devices. The effect of nozzle-to-surface distance for a synthetic jet on its cooling performance has neither been studied extensively nor been well-understood. In a few available experimental studies, it was reported that synthetic jet performance is very sensitive to this distance and when the jet gets closer to the hot surface its performance degrades. Therefore, a computational study has been performed to understand the flow physics of a small-scale synthetic jet for a jet-to-surface spacing of H/Dh=5. Spatial discretization is implemented via a second order upwind scheme and a second order implicit scheme is used for temporal discretization to ensure stability. It is found that pulsating flow at the nozzle exit generates vortices and these vortices seem to have minimal effect on the target surface profiles. Local surface pressure, velocity, turbulence profiles and heat transfer coefficient distributions are determined, then the effects of jet frequency as well as near-wall vortices are discussed.
机译:由于高的传热速率,热管理已成为先进的微米和纳米电子系统的关键部分。热工程师面临更多的限制,例如紧凑性,占地面积小,重量轻,可靠性高,易于访问和成本低。诸如笔记本电脑,平板电脑,智能手机和超薄电视系统之类的先进电子系统可以满足那些具有挑战性的散热需求。对于这些设备,具有比以往更高的热通量的较小的热空间产生了当前热技术无法轻松满足这些需求的问题。因此,需要创新的冷却技术来满足这些苛刻的散热要求。合成射流已经被研究为满足这种紧凑的电子设备的热需求的有前途的技术。合成喷嘴的喷嘴到表面的距离对其冷却性能的影响尚未得到广泛研究,也未得到很好的理解。在一些可用的实验研究中,据报道,合成射流的性能对此距离非常敏感,当射流靠近热表面时,其性能会下降。因此,已经进行了计算研究以了解对于H / Dh = 5的射流与表面的距离的小型合成射流的流动物理学。空间离散化通过二阶迎风方案实现,二阶隐式方案用于时间离散化以确保稳定性。发现喷嘴出口处的脉动流会产生旋涡,并且这些旋涡似乎对目标表面轮廓的影响最小。确定了局部表面压力,速度,湍流分布和传热系数分布,然后讨论了射流频率以及近壁涡旋的影响。

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