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首页> 外文期刊>The European physical journal. Applied physics >Thermohydraulic characteristics and entropy analysis of a novel clockwise and anti-clockwise twisted sinusoidal wavy micro-channel under pulsating inlet condition
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Thermohydraulic characteristics and entropy analysis of a novel clockwise and anti-clockwise twisted sinusoidal wavy micro-channel under pulsating inlet condition

机译:脉动入口下的新型顺时针和逆时针扭曲正弦波微通道的热液化特性和熵分析

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Heat transfer performance of microchannel are becoming an important area of research with the current fast growing scenario of high speed computing and miniaturized electronic devices. These devices pile up large amount of heat accompanied by smaller surface area to release it. The current work examines unsteady, laminar flow heat transfer inside a novel twisted sinusoidal wavy microchannel. The channel with square cross section is wavy in nature as well as twisted. The first half portion of the channel is twisted clockwise, whereas the twist in the remaining part is having counterclockwise twist. The novel geometry promotes mixing of fluid layers leading to transport augmentation. The inlet pulsation follows sinusoidal pattern in time. The thermal performance parameter of the proposed novel geometry was assessed within a Reynolds number range of 1-100. Both the pulsation amplitude and Strouhal number are varied during the course of this study. To solve the governing equations, a finite volume based method was utilized. The Nusselt number data shows significant enhancement for the sinusoidal inlet velocity as compared to that of the steady case, i.e. without inlet flow pulsation. The performance enhancement criterion combining heat transfer and pressure drop shows significant improvement over steady flow case as well as for one-way twisted tube. Entropy generation, which is the measure of dissipated energy, is also reported in the present work.
机译:随着当前高速计算和小型化电子设备的快速发展,微通道的传热性能正成为一个重要的研究领域。这些设备积累了大量的热量,并伴随着较小的表面积来释放热量。本文研究了一种新型扭曲正弦波形微通道内的非定常层流换热。方形横截面的渠道在本质上是波浪形的,也有扭曲的。通道的前半部分是顺时针扭曲的,而其余部分是逆时针扭曲的。这种新颖的几何结构促进了流体层的混合,从而增加了输运。入口脉动在时间上遵循正弦模式。在雷诺数为1-100的范围内,对所提出的新型几何结构的热性能参数进行了评估。在本研究过程中,脉动幅度和斯特劳哈尔数都会发生变化。为了求解控制方程,采用了基于有限体积的方法。努塞尔数数据显示,与稳定情况相比,正弦入口速度显著增强,即无入口流量脉动。结合传热和压降的性能增强准则表明,与稳流情况以及单向扭曲管相比,性能显著提高。熵产生是耗散能的量度,在目前的工作中也有报道。

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