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首页> 外文期刊>International Journal of Thermal Sciences >Perforated plates for fluid management: Plate geometry effects and flow regimes
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Perforated plates for fluid management: Plate geometry effects and flow regimes

机译:用于流体管理的多孔板:板的几何形状影响和流态

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Perforated plates are the preferred means of passive management of fluid flow proper and for convective heat transfer applications. The investigation reported here is a synergistic use of numerical simulation and experimentation to provide both in-depth fluid mechanic fundamentals and results for applications. The experimental results validated the choice of the turbulence model. A trio of dimensionless geometrical parameters was varied systematically, as was the Reynolds number to encompass both laminar and turbulent flows. For the laminar flow regime, higher pressure drops were associated with thicker plates and with the staggered-array hole pattern; higher porosities led to lower pressure drops. For the turbulent case, the thinner plate caused higher pressure drops as did the square-array hole pattern; also, the pressure drop was found to depend on the square of the Reynolds number, indicating the dominance of momentum-based losses. These trend reversals are attributable to the differences in separated-flow reattachment patterns for the different plate thicknesses.
机译:多孔板是对流体进行适当的被动管理以及对流传热应用的首选手段。此处报告的研究是数值模拟和实验的协同使用,以提供深入的流体力学基础知识和应用结果。实验结果验证了湍流模型的选择。三个无因次几何参数的变化是系统的,雷诺数也包括层流和湍流。对于层流状态,较高的压降与较厚的板和交错的阵列孔型有关;较高的孔隙率导致较低的压降。对于湍流的情况,较薄的板会导致较高的压降,与方形阵列的孔型一样。同样,发现压降取决于雷诺数的平方,表明基于动量的损失占主导地位。这些趋势的逆转归因于不同板厚的分离流再附着模式的差异。

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