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Single phase flow pressure drop and heat transfer in rectangular metallic microchannels

机译:矩形金属微通道中的单相流压降和传热

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Numerical simulations were performed using Fluent 14.5 to investigate single phase flow and conjugate heat transfer in copper rectangular microchannels. Two different configurations were simulated: (1) single channel with hydraulic diameter of 0.561 mm and (2) multichannel configuration consisting of inlet and outlet manifolds and 25 channels with hydraulic diameter of 0.409 mm. In the single channel configuration, four numerical models were investigated namely, 2D thin-wall, 3D thin-wall (heated from the bottom), 3D thin-wall (three side heated) and 3D full conjugate models. In the multichannel configuration, only 3D full conjugate model was used. The simulation results of the single channel configuration were validated using experimental data of water as a test fluid while the results of the multichannel configuration were validated using experimental data of R134a refrigerant. In the multichannel configuration, flow distribution among the channels was also investigated. The 3D thin-wall model simulation was conducted at thermal boundary conditions similar to those assumed in the experimental data reduction (uniform heat flux) and showed excellent agreement with the experimental data. However, the results of the 3D full conjugate model demonstrated that there is a significant conjugate effect and the heat flux is not uniformly distributed along the channel resulting in significant deviation compared to the experimental data (more than 50%). Also, the results demonstrated that there is a significant difference between the 3D thin-wall and full conjugate models. The simulation of the multichannel configuration with an inlet manifold having gradual decrease in cross sectional area achieved very reasonable uniform flow distribution among the channels which will provide uniform heat transfer rates across the base of the microchannels. (C) 2015 The Authors. Published by Elsevier Ltd.
机译:使用Fluent 14.5进行了数值模拟,以研究铜矩形微通道中的单相流和共轭传热。模拟了两种不同的配置:(1)液压直径为0.561 mm的单通道和(2)包括入口和出口歧管的多通道配置以及25条液压直径为0.409 mm的通道。在单通道配置中,研究了四个数值模型,即2D薄壁,3D薄壁(从底部加热),3D薄壁(三个侧面加热)和3D全共轭模型。在多通道配置中,仅使用3D全共轭模型。使用水作为测试流体的实验数据验证了单通道配置的仿真结果,而使用R134a制冷剂的实验数据验证了多通道配置的结果。在多通道配置中,还研究了通道之间的流量分配。 3D薄壁模型模拟是在类似于实验数据缩减(均匀热通量)中假设的热边界条件下进行的,并且显示出与实验数据极好的一致性。但是,3D全共轭模型的结果表明存在显着的共轭效应,并且热通量沿通道的分布不均匀,导致与实验数据相比存在明显的偏差(大于50%)。而且,结果表明3D薄壁模型和完全共轭模型之间存在显着差异。用横截面逐渐减小的进气歧管对多通道配置进行模拟,可以在通道之间实现非常合理的均匀流量分布,这将在整个微通道底部提供均匀的传热速率。 (C)2015作者。由Elsevier Ltd.发布

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