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Hydrothermal performance of microchannel heat sink: The effect of channel design

机译:微通道散热器的水热性能:通道设计的影响

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This review article reports the influence of channel zone related geometrical parameters such as corrugated channel and flow disruption (FD) on the hydrothermal performance (HP) of microchannel heat sink (MCHS). Rapid increase in the power density accompanied by extreme miniaturization of electronic packages that demanded efficient cooling in MCHS is still to be explored. Despite several dedicated efforts for enhancing the heat transfer (HT) in MCHS an optimized technique is far from developed. The passive HT augmentation techniques for conventional channel also suffered from many limitations. In this context, corrugated channel appears as one of the prospective strategies due to the generation of Dean vortices (DVs) and chaotic advection (CA) in the bends. For efficient cooling, various channel shapes such as sinusoidal wavy, zigzag and convergent-divergent are introduced. The wavy MCHS with sinusoidal shape achieved high rate of HT with acceptable levels of PD compared with other shapes of zigzag and convergent-divergent MCHS. The other augmentation technique so called FD is established to be effective due to several interesting mechanisms including promotion of flow mixing, interruption of boundary layer, jetting, throttling and CA. Diverse FD methods such as grooves, cavities, ribs, hybridized ribs and grooves or cavities, offset-fin and interrupted wall channel are proposed. The hybrid techniques between ribs and either grooves or cavities have additional advantages than single technique in isolation. These features are manifested in increasing the HT area, induction of better fluid mixing and formation CA. The most important characteristic within flow disturbance techniques is found in interrupted-wall channel which manifested low PD. It is established to be the most desirable feature in MCHS applications due to its role in reducing the pump power and liquid leakage risk. We analyzed, discussed and made a comparative evaluation among various characteristics of geometrical parameters in each such technique to determine their impact on the HP of MCHS in terms of pressure drop (PD) and HT.
机译:这篇评论文章报告了通道区域相关的几何参数(如波纹通道和流动中断(FD))对微通道散热器(MCHS)的水热性能(HP)的影响。功率密度的快速提高,伴随着电子封装的极端小型化,要求在MCHS中进行有效冷却,还有待探索。尽管为提高MCHS中的传热(HT)进行了许多专门的努力,但远远没有开发出一种优化的技术。用于常规信道的无源HT增强技术也遭受许多限制。在这种情况下,由于弯道中产生了迪安涡(DVs)和混沌对流(CA),波纹通道成为一种潜在的策略。为了有效冷却,引入了各种通道形状,例如正弦波状,锯齿形和会聚发散。与其他形状的锯齿形和收敛发散型MCHS相比,具有正弦曲线形状的波浪式MCHS可以实现较高的HT率和PD可接受的水平。由于几种有趣的机制,包括促进流动混合,中断边界层,喷射,节流和CA,建立了另一种所谓的FD技术是有效的。提出了多种FD方法,例如沟槽,腔体,肋,混合肋和沟槽或腔,偏置鳍片和间断壁通道。肋与凹槽或空腔之间的混合技术在隔离方面比单一技术具有更多优势。这些特征表现为增加HT面积,诱导更好的流体混合和形成CA。流动扰动技术中最重要的特征是在断壁通道中发现,PD较低。由于其在降低泵功率和液体泄漏风险中的作用,它被认为是MCHS应用中最理想的功能。我们分析,讨论并比较了每种技术中几何参数的各种特征,以确定它们对压降(PD)和高温对MCHS高压的影响。

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