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Thermodynamic irreversibility and conjugate effects of integrated microchannel cooling device using TiO_2 nanofluid

机译:TiO_2纳米流体集成微通道冷却装置的热力学不可逆性和共轭效应

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摘要

Thermal management is highly essential for the latest electronic devices to effectively dissipate heat in a densely packed environment. Usually, these high power devices are cooled by integrating micro scale cooling systems. Most of the works reported in the literature majorly concentrate on microchannel heat sink in which the characteristics of friction factor and enhancement of heat transfer are analyzed in detail. However, due to the advent of compact electronic devices a crucial investigation is required to facilitate an amicable environment for the neighboring components so as to improve the reliability of the electronic devices. Henceforth, in the present study a combined experimental and numerical analysis is performed to provide an insight to determine the performance of a copper microchannel integrated with aluminium block using TiO2 nanofluid for different particle configurations. Needless to say, the present study, which also focuses on entropy generation usually attributed to the thermodynamic irreversibility, is very much significant to design an optimum operating condition for better reliability and performance of the cooling devices.
机译:热管理对于最新的电子设备在密集的环境中有效地散热是至关重要的。通常,这些大功率设备通过集成微型冷却系统进行冷却。文献中报道的大多数工作主要集中在微通道散热器上,其中详细分析了摩擦系数和传热的特性。然而,由于小型电子设备的出现,需要进行关键的研究以促进相邻组件的友好环境,从而提高电子设备的可靠性。今后,在本研究中,进行了组合的实验和数值分析,以提供洞察力来确定使用TiO2纳米流体对不同颗粒结构集成铝块的铜微通道的性能。不用说,本研究也关注通常归因于热力学不可逆性的熵的产生,对于设计最佳运行条件以提高冷却装置的可靠性和性能非常重要。

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