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首页> 外文期刊>Numerical Heat Transfer, Part A. Application: An International Journal of Computation and Methodology >A NUMERICAL STUDY OF THE THERMAL PERFORMANCE OF MICROCHANNEL HEAT SINKS WITH MULTIPLE LENGTH BIFURCATION IN LAMINAR LIQUID FLOW
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A NUMERICAL STUDY OF THE THERMAL PERFORMANCE OF MICROCHANNEL HEAT SINKS WITH MULTIPLE LENGTH BIFURCATION IN LAMINAR LIQUID FLOW

机译:层流中多径分岔的微通道传热性能的数值研究

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摘要

A rectangular, straight microchannel heat sink with multiple length bifurcation has been designed, and the corresponding laminar flow and thermal performance have been investigated, numerically. Five different cases with multiple length bifurcation and various arrangements are investigated, as well as one case without bifurcations. All laminar fluid flow and surface heat transfer results are obtained using computation fluid dynamics, and a constant heat flux thermal boundary condition is applied to the heated surfaces. The inlet velocity ranges from 0.6m/s to 1.4m/s, with the corresponding Reynolds number from 220 to 520. The local pressure, velocity, temperature distributions, and averaged heat transfer coefficient are presented. The overall thermal resistances subjected to inlet Reynolds number are evaluated and compared for six different microchannel heat sinks. Numerical results show that the thermal performance of the microchannel heat sink with bifurcation flow is better than that of the corresponding straight microchannel heat sink, especially the heat sink with longer length bifurcation. The usage of multiple length bifurcated plates in microchannel heat sink can reduce the overall thermal resistance by a factor of up to 2, and make the temperature of a heated surface more uniform, especially for the heat sink having a short bifurcation in the center and two bifurcations near the sides (case 4). It is suggested that proper design of the multiple length bifurcation could be employed to improve the overall thermal performance of microchannel heat sinks.
机译:设计了具有多个分叉长度的矩形直的微通道散热器,并通过数值研究了相应的层流和热性能。研究了五种不同的情况,这些情况有多处分叉和各种布置,还有一例没有分叉。使用计算流体动力学获得所有层流流体和表面传热的结果,并将恒定的热通量热边界条件应用于加热的表面。入口速度范围为0.6m / s至1.4m / s,相应的雷诺数为220至520。显示了局部压力,速度,温度分布和平均传热系数。对于六个不同的微通道散热器,评估并比较了受入口雷诺数影响的总热阻。数值结果表明,具有分叉流的微通道散热器的热性能要优于相应的直型微通道散热器,尤其是具有较长分叉长度的散热器。在微通道散热器中使用多个长度的分叉板可将整体热阻降低多达2倍,并使受热表面的温度更均匀,尤其是对于在中心和两个分叉处较短的散热器而言侧面附近的分叉(情况4)。建议多长度分叉的适当设计可以用来改善微通道散热器的整体热性能。

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