磁场和崖体对微通道传热增强和压降降低的协同效应的数值研究

IF 6 Q1 ENGINEERING, MULTIDISCIPLINARY
Shohreh Jalali, Ebrahim Barati, Mahdi Farkhondeh Kalat
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引用次数: 0

摘要

高效的热管理对于设计紧凑型高性能散热器和热交换器至关重要。本研究通过提出一种同时采用主动和被动涡流发生器的新方法,解决了在暴露于集中热流的系统中优化传热同时尽量减少压力损失的难题。具体来说,就是在含有 2 Vol% 铁流体的微通道内利用永磁体和崖体产生的均匀磁场。在雷诺数为 100 到 500、磁场强度为 0.5 T 的范围内进行了数值模拟,以评估系统的性能。结果表明,磁场和栅栏体的结合可诱导涡流产生、改变速度分布并增强流动混合,从而在最佳条件下将传热效率提高 30%,压降降低 11%。虽然屏障的引入导致压降增加了 3%,但均匀磁场通过减少流动分离和限制表面接触,有效地减轻了摩擦。这些发现凸显了这种方法在改进先进热管理系统设计方面的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Numerical investigation of synergistic effects of magnetic fields and bluff bodies on heat transfer enhancement and pressure drop reduction in microchannels

Efficient thermal management is essential for designing compact and high-performance heat sinks and heat exchangers. This study addresses the challenge of optimizing heat transfer while minimizing pressure losses in systems exposed to concentrated heat flux by proposing a novel approach that employs both active and passive vortex generators. Specifically, a uniform magnetic field generated by permanent magnets and a bluff body are utilized within a microchannel containing a 2 vol% ferrofluid. Numerical simulations were performed across Reynolds numbers ranging from 100 to 500 and magnetic field intensities up to 0.5 T to evaluate the system's performance. The results demonstrate that the combination of magnetic fields and a bluff body induces vortex generation, alters velocity distribution, and enhances flow mixing, resulting in a 30 % increase in heat transfer efficiency and an 11 % reduction in pressure drop under optimal conditions. Although the introduction of barriers led to a 3 % rise in pressure drop, the uniform magnetic field effectively mitigated friction by reducing flow separation and limiting surface contact. These findings highlight the potential of this method for improving the design of advanced thermal management systems.

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来源期刊
Results in Engineering
Results in Engineering Engineering-Engineering (all)
CiteScore
5.80
自引率
34.00%
发文量
441
审稿时长
47 days
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