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Thermohydraulic performance of microchannel heat sinks with triangular ribs on sidewalls - Part 2: Average fluid flow and heat transfer characteristics

机译:侧壁带有三角形肋的微通道散热器的热工液压性能-第2部分:平均流体流量和传热特性

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摘要

Triangular ribs mounted in the microchannel heat sink generally result in higher heat transfer coefficient, but are usually accompanied by higher pressure drop per unit length. In order to obtain some insight into the effect of geometry parameters of triangular ribs on laminar flow and heat transfer characteristics, three-dimensional conjugated heat transfer models taking account of the entrance effect, viscous heating and temperature-dependent thermophysical properties are conducted, and four non-dimensional variables related to the width, height, converging-diverging ratio and spacing of the triangular rib for both aligned and offset arrangements are designed. Effects of the geometry and arrangement of triangular ribs on thermohydraulic performance are examined by the variations of average friction factor and Nusselt number for Reynolds number (Re) ranging from 187 to 715. The studied microchannels have the same width (W-c) of 0.1 mm and same depth (H-c) of 0.2 mm in the constant cross-section region. The geometric parameters of aligned or offset triangular ribs are ranged in 0.025-0.4 mm for width (W-r), 0.0050.025 mm for height (H-r), 0.2-5 mm for spacing (S-r) and 0-1 for the width ratio of converging region to a single rib (W-con/W-r). Based on the total 660 computational cases of the microchannel heat sinks with triangular ribs, the correlations of average friction factor and Nusselt number are proposed, respectively for aligned and offset arrangements. For the studied Reynolds number range and geometry parameters of flow passage, the microchannel heat sinks with aligned triangular ribs present 1.03-2.01 times higher of average Nusselt number and 1.06-9.09 times larger of average friction factor, and those with offset triangular ribs show 1.01-2.16 times higher of average Nusselt number and 1.04-7.43 times larger of average friction factor, compared with the reference straight microchannel heat sink. Proposed heat transfer and friction factor correlations show good agreements with the computational results for the microchannel heat sinks within the parameter ranges of 187 = Re = 715, 0.25 = W-r/W-c = 4, 0.05 = H-r/W-c = 0.25, 0 = W-con/W-r = 1, and 2 = S-r/W-c = 50. (C) 2018 Elsevier Ltd. All rights reserved.
机译:安装在微通道散热器中的三角形肋通常会导致更高的传热系数,但通常伴随着每单位长度更高的压降。为了深入了解三角形肋的几何参数对层流和传热特性的影响,我们考虑了入口效应,粘性加热和温度相关的热物理性质,对三维共轭传热模型进行了研究,并提出了四个设计了与三角形肋的宽度,高度,会聚-发散比和间距相关的无量纲变量,用于对齐和偏移布置。通过平均摩擦因数和努塞尔数对雷诺数(Re)在187到715之间的变化,研究了三角形肋的几何形状和排列对热工液压性能的影响。研究的微通道具有相同的宽度(Wc)为0.1 mm和在恒定横截面区域中的相同深度(Hc)为0.2毫米。对齐或偏置的三角形肋的几何参数的宽度(Wr)为0.025-0.4 mm,高度(Hr)为0.0050.025 mm,间距(Sr)为0.2-5 mm,宽度比为0-1。会聚区域到单个肋(W-con / Wr)。基于具有三角形肋的微通道散热器的总共660个计算案例,分别针对对准和偏移布置提出了平均摩擦系数和Nusselt数的相关性。对于所研究的雷诺数范围和流道的几何参数,具有对齐的三角形肋的微通道散热器的平均努塞尔数高1.03-2.01倍,平均摩擦系数大1.06-9.09倍,带有偏置三角形肋的微通道散热器的1.01倍与参考直线微通道散热器相比,平均努塞尔数高-2.16倍,平均摩擦系数大1.04-7.43倍。建议的传热和摩擦系数相关性与微通道散热器的计算结果在187 <= Re <= 715,0.25 <= Wr / Wc <= 4,0.05 <= Hr / Wc <= 0.25、0 <= W-con / Wr <= 1和2 <= Sr / Wc <=50。(C)2018 Elsevier Ltd.保留所有权利。

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