用于纳米流体流动和散热评估的微通道几何结构的数值优化

ty10086 提交于 周三, 08/25/2021 - 15:55
文章英文标题
Numerical Optimization of a Microchannel Geometry for Nanofluid Flow and Heat Dissipation Assessment
正文
本研究采用数值方法分析了不同几何形状的微通道热沉对单相流中强迫对流换热的影响。采用商用软件COMSOL Multiphysics 5.6® ( Burlington,MA,USA )进行模拟,并与聚二甲基硅氧烷( PDMS )微通道热沉实验结果进行对比。研究了三种几何构型:矩形、三角形和圆形。根据集流器的流向、集流器的类型和并联通道的数量对不同构型进行了表征。主要结果表明,矩形集热器是导致微通道内传热分布更加均匀的集热器。对于圆形形状也得到了类似的结果。但是对于三角形的几何形状,在射流冲击中观察到了扰动,导致了最小的均匀性。通道数目的增加也增强了流动分布的均匀性,从而改善了传热性能,这也是优化新型微通道热沉设计必须考虑的问题。所实现的具有纳米流体流动微通道和较高散热率的热沉优化设计包括8个微通道的矩形集热器和进出口垂直放置。
文章内容(英文)
In this study, a numerical approach was carried out to analyze the effects of different geometries of microchannel heat sinks on the forced convective heat transfer in single-phase flow. The simulations were performed using the commercially available software COMSOLMultiphysics 5.6® (Burlington, MA, USA) and its results were compared with those obtained from experimental tests performed in microchannel heat sinks of polydimethylsiloxane (PDMS). Distilled water was used as the working fluid under the laminar fluid flow regime, with a maximum Reynolds number of 293. Three sets of geometries were investigated: rectangular, triangular and circular. The different configurations were characterized based on the flow orientation, type of collector and number of parallel channels. The main results show that the rectangular shaped collector was the one that led to a greater uniformity in the distribution of the heat transfer in the microchannels. Similar results were also obtained for the circular shape. For the triangular geometry, however, a disturbance in the jet impingement was observed, leading to the least uniformity. The increase in the number of channels also enhanced the uniformity of the flow distribution and, consequently, improved the heat transfer performance, which must be considered to optimize new microchannel heat sink designs. The achieved optimized design for a heat sink, with microchannels for nanofluid flow and a higher heat dissipation rate, comprised a rectangular collector with eight microchannels and vertical placement of the inlet and outlet.
来源出处
Journal|[J]Applied SciencesVolume 11, Issue 5. 2021. PP 2440-2440
DOI
https://doi.org/10.3390/APP11052440

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