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Numerical Investigation on the Optimum Thermal Design of the Shape and Geometric Parameters of Microchannel Heat Exchangers with Cavities

机译:微通道热交换器与空腔的形状和几何参数的最佳热设计数值研究

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摘要

Due to the large surface-area-to-volume ratio, microchannel heat exchangers have a higher heat transfer rate compared with traditional scale heat exchangers. In this study, the optimum microchannel cavity with high heat transfer and low flow resistance is designed to further improve microchannel exchangers’ thermal performance. A three-dimensional laminar flow model, consisting of Navier–Stokes equations and an energy conservation equation is solved and the conjugate heat transfer between the silicon basement and deionized water is taken into consideration. The impact of the shape, aspect ratio, size and spacing of the cavity on the thermal performance of microchannel exchangers are numerically investigated, respectively. The results indicated that the cavity on the sidewall can enhance heat transfer and reduce flow resistance simultaneously, and cavities with a relatively small expansion angle and streamlined edge could enhance thermal performance the most. Based on the conclusions, a new cavity shape is proposed, and the simulation results verify its excellent thermal performance as expected. Furthermore, investigation is performed to figure out the optimum design of the new cavity and the optimal geometric parameters of the cavity under different flow conditions have been obtained in principle for microchannel exchangers’ design.
机译:由于表面积到体积比大,微通道热交换器与传统刻度换热器相比具有较高的传热速率。在该研究中,设计具有高传热和低流量阻力的最佳微通道腔,以进一步提高微通道交换机的热性能。由Navier-Stokes方程和节能方程组成的三维层流模型,并考虑硅基地下室和去离子水之间的共轭热传递。腔体的形状,纵横比,尺寸和间隔的影响分别对微通道交换剂的热性能进行了数量的研究。结果表明,侧壁上的腔可以同时增强传热并减少流动阻力,并且具有相对小的膨胀角和流线型边缘的空腔可以提高热性能。基于结论,提出了一种新的腔形状,仿真结果验证了其优异的热性能。此外,进行研究以确定新腔的最佳设计,并以微通道交换器的设计原则上获得了不同流量条件下的腔体的最佳几何参数。

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