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The Role of Flow Structures on the Thermal Performance of Microchannels With Wall Features

机译:流动结构对墙壁特征微通道热性能的作用

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Innovative design of microchannel heat sinks (MCHS) remains a contemporary research need to meet the increasing cooling demand of modern electronic industries. A transient three-dimensional conjugate heat transfer study has been carried out here for different combinations of constrictors like ribs or protrusions along with cavities on the sidewalls of a microchannel (MC). A facing pair of cavities with circular arc sections, together called a fan-shaped cavity (FC), has been considered. Each in the facing pair of ribs (R) or protrusions (P) is in the form of a part of cylinder or sphere, respectively. The results include the variations of Nusselt number, friction factor, and thermal performance over a range of Reynolds numbers from 140 to 605 in microchannels with rib (MCR), protrusion (MCP), or cavity pairs alone (MCFC), as well as with cavity-rib pairs (MCFCR) or cavity-protrusion pairs (MCFCP). Contrasting the highest thermal performance of 1.6 reported in an earlier study on MCFCR, a value as high as 1.76 has been obtained around Re of 550 for MCFCP with the relative values of cavity length, width, and pitch of 0.015, 0.5, and 0.0625, respectively, along with protrusion length and width of 0.01 and 0.4, respectively. The mechanisms leading to spiraling transverse streamlines in both MCFCR and MCFCP have been explained. The superior performance of MCFCP has presumably arisen from the vortex structure with no interference with the boundary layers at the top and bottom walls.
机译:为了满足现代电子工业日益增长的冷却需求,微通道散热器(MCH)的创新设计仍然是当代研究的需要。本文对微通道(MC)侧壁上的不同收缩体组合,如肋或突起以及空腔,进行了瞬态三维共轭传热研究。考虑了一对具有圆弧截面的面对面空腔,统称为扇形空腔(FC)。面对的一对肋(R)或突出物(P)中的每一个分别为圆柱体或球体的一部分。结果包括在雷诺数从140到605的范围内,带肋(MCR)、突出(MCP)或单独空腔对(MCFC)以及空腔-肋对(MCFCR)或空腔-突出对(MCFCP)的微通道中努塞尔数、摩擦系数和热性能的变化。对比早期MCFCR研究中报告的最高热性能1.6,MCFCP的Re值高达1.76,腔长、宽度和节距的相对值分别为0.015、0.5和0.0625,突出长度和宽度分别为0.01和0.4。对MCFCR和MCFCP中导致螺旋状横向流线的机制进行了解释。MCFCP的优越性能可能源于涡旋结构,且不干扰顶壁和底壁的边界层。

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