Effects of Nozzle Pitch Adaptation in Micro-Scale Liquid Jet Impingement

Fluids Pub Date : 2024-03-07 DOI:10.3390/fluids9030069
Georg Elsinger, H. Oprins, V. Cherman, G. van der Plas, E. Beyne, Ingrid De Wolf
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Abstract

With ever increasing integration density of electronic components, the demand for cooling solutions capable of removing the heat generated by such systems grows along with it. It has been shown that a viable answer to this demand is the use of direct liquid jet impingement. While this method can generally be scaled to the cooling of large areas, this is restricted by the necessity of coolant flow rate scaling. In this study, the benefits and restrictions of using increased nozzle pitch to remedy the increasing demand for overall flow rate are investigated. To this end, a model is validated against experimental findings and then used for computational fluid dynamics simulations, exploring effects of the pitch change for micro-scale nozzle diameters and nozzle-to-target spacings. It is found that while this method is efficient in adjusting the tradeoff between total coolant flow rate and pressure drop up to a certain pint, the occurrence of a hydraulic jump in the cavity causes a deterioration of its effect for large nozzle pitches.
微尺度液体射流对喷嘴间距的影响
随着电子元件集成密度的不断提高,对能够去除此类系统产生的热量的冷却解决方案的需求也随之增长。研究表明,满足这一需求的可行方法是使用直接液体喷射撞击。虽然这种方法一般可以扩展到大面积冷却,但受到冷却剂流速扩展的限制。在本研究中,我们将研究使用增大喷嘴间距来满足日益增长的总流量需求的好处和限制。为此,根据实验结果对模型进行了验证,然后用于计算流体动力学模拟,探索微尺度喷嘴直径和喷嘴与目标间距的间距变化效果。研究发现,虽然这种方法能有效调整冷却剂总流量和压降之间的权衡,但在达到一定品位时,空腔中出现的水力跃迁会导致喷嘴间距过大时效果变差。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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