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A review of passive methods in microchannel heat sink application through advanced geometric structure and nanofluids: Current advancements and challenges

机译:通过先进的几何结构和纳米流体综述微通道散热器应用中的无源方法:当前的进步与挑战

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摘要

Microchannel heat sink (MCHS) is an advanced cooling technique to fulfil the cooling demand for electronic devices installed with high-power integrated circuit packages (microchips). Various microchannel designs have been innovated to improve the heat transfer performance in an MCHS. Specifically, the utilisation of nanotechnology in the form of nanofluid in an MCHS attracted the attention of researchers because of considerable enhancement of thermal conductivity in nanofluid even at a low nanoparticle concentration. However, a high-pressure drop was the main limitation as it controls the MCHS performance resulted from heat transfer augmentation. Therefore, this study aimed to critically summarise the challenges and limitations of both single and hybrid passive methods of MCHS. Furthermore, the performance of nanofluid as a coolant in the MCHS as affected by the type and concentration of nanoparticle and the type of base fluid was reviewed systematically. The review indicated that the hybrid MCHS provides a better cooling performance than MCHS with the single passive method as the former results in a higher heat transfer rate with minimal pressure drop penalty. Besides that, further heat transfer performance can be enhanced by dispersing aluminium dioxide (Al2O3) nanoparticles with a concentration of less than 2.0% (v/v) in the water-based coolant.
机译:微通道散热器(MCH)是一种先进的冷却技术,以满足安装有高功率集成电路封装(Microchips)的电子设备的冷却需求。已经创新了各种微通道设计,以提高MCH中的传热性能。具体而言,在MCH中纳米流体形式的纳米技术的利用引起了研究人员的注意,即使在低纳米颗粒浓度下也具有纳米流体中的导热性的显着提高。然而,高压下降是主要限制,因为它控制了传热增强所产生的MCH性能。因此,本研究旨在批判性总结均衡的锰和混合无源方法的挑战和局限。此外,系统地综述了纳米流体作为纳米粒子的浓度的浓度的冷却剂的性能和基础流体的类型。审查表明,随着前者导致具有最小压力下降罚款的较高的传热速率,混合MCH提供比具有单一无源方法的MCH更好的冷却性能。除此之外,通过在水基冷却剂中分散浓度小于2.0%(v / v)的二氧化铝(Al 2 O 3)纳米颗粒,可以提高进一步的传热性能。

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