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Challenges in micro-channel heat transfer experiments: Insight on conjugate heat transfer effects

机译:微通道传热实验中的挑战:共轭传热效果的洞察力

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A numerical study was performed to obtain insight into conduction/convection conjugate heat transfer processes during a typical experiments performed at the micro scale. The experimental work of Wang et al. [1] was used as a baseline to quantify such effects. It consisted of a 225 μm× 18.5 mm × 1.5 mm microchannel with a pillar, which had jet slits. Commercially available software package, Star CCM+, was used for the simulations. Fluid, solid and heater regions were modeled together with heat transfer interfaces at the contact surfaces. Reynolds number of 123, 200, and 280 were simulated. Each case includes jet introduction to the flow quantified with momentum coefficient of 3%, 5%, and 10%. The numerical model was verified by the Grid Convergence Index methods using three different grids and agreed with experimental results within a 10% discrepancy. The discrepancies between numerical and experimental results were found in terms of heat transfer distribution and heat transfer coefficients, which were mainly due to inevitable assumptions made while post processing the experimental data. Therefore, the main aim of this study is to decouple the heat transfer processes inside the three different regions and to provide guidance for future micro scale experimental studies in terms of experimentally non-measurable parameters, such as heat flux paths, local heat transfer coefficients, local boundary heat fluxes, and local temperature values on the heater surfaces.
机译:进行了数值研究,以了解在微观尺度上进行的典型实验过程中对传导/对流共轭换热过程的了解。王等人的实验工作。 [1]被用作量化此类影响的基准。它由一个225μm×18.5 mm×1.5 mm的微通道组成,该微通道带有一个带有喷射缝的立柱。仿真使用了商用软件包Star CCM +。对流体,固体和加热器区域以及接触表面的传热界面进行了建模。模拟了123、200和280的雷诺数。每种情况都包括将射流引入以动量系数3%,5%和10%量化的流量。使用三个不同的网格,通过网格收敛指数方法验证了该数值模型,并且与实验结果相符,差异在10%以内。在传热分布和传热系数方面发现了数值结果与实验结果之间的差异,这主要是由于在对实验数据进行后处理时做出了不可避免的假设。因此,本研究的主要目的是将三个不同区域内的传热过程分离开来,并为以后的微型实验研究提供指导,以实验上不可测量的参数(例如热通量路径,局部传热系数,局部边界热通量和加热器表面上的局部温度值。

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