首页> 外文会议>ASME international conference on nanochannels, microchannels and minichannels >NUMERICAL INVESTIGATION ON THERMO-HYDRODYNAMIC PERFORMANCE OF RECHARGING INTERRUPTED AND STRAIGHT MICROCHANNELS - A COMPARATIVE STUDY
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NUMERICAL INVESTIGATION ON THERMO-HYDRODYNAMIC PERFORMANCE OF RECHARGING INTERRUPTED AND STRAIGHT MICROCHANNELS - A COMPARATIVE STUDY

机译:充电的直通道和微通道的热力性质的数值研究-对比研究。

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In this study, a three-dimensional numerical investigation on the thermo-hydrodynamic performance of a newly proposed recharging microchannel (RMC) is carried out. In this new design, a straight microchannel separated into more than one small channels and each small channels having individual inlet and outlet. This design enhances the heat transfer and makes the temperature almost uniform across the length of the substrate. The comparison of fluid flow and heat transfer performance between this recharging microchannel (RMC), interrupted microchannel (IMC) and straight microchannel (SMC) with same hydraulic diameter and substrate length were conducted to explore the effect of geometrical configuration on the heat transfer enhancement. The results reveal that for the recharging microchannel, the average Nusselt number increases by 49-122%, while the total pressure drop increases by 15-89%, compared with the interrupted and straight microchannel for the Reynolds number ranging from 100 to 500. From the result, it is also observed that for the investigated Reynolds number range the recharging microchannel having the highest thermal performance compared to interrupted and straight microchannel with a maximum performance factor of 1.80. The outcome of this study indicates possible use of recharging microchannel heat sinks for high heat flux removal applications such as electronic cooling.
机译:在这项研究中,对新提出的充电微通道(RMC)的热流体动力学性能进行了三维数值研究。在这种新设计中,直的微通道分为多个小通道,每个小通道都有各自的入口和出口。这种设计增强了热传递,并使温度在整个基板长度上几乎均匀。比较了具有相同水力直径和基底长度的该充电微通道(RMC),间断微通道(IMC)和直线微通道(SMC)之间的流体流动和传热性能,以探讨几何构型对传热增强的影响。结果显示,与雷诺数为100到500的雷诺数为连续且笔直的微通道相比,充电微通道的平均Nusselt数增加了49-122%,而总压降增加了15-89%。结果,还观察到,对于所研究的雷诺数范围,与具有1.80的最大性能的间断和笔直微通道相比,具有最高热性能的充电微通道具有最高的热性能。这项研究的结果表明,可对微通道散热器进行充电,以用于去除高热通量的应用,例如电子冷却。

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