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首页> 外文期刊>Acta Mechanica >Transient Couette flow in a rotating non-Darcian porous medium parallel plate configuration: network simulation method solutions
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Transient Couette flow in a rotating non-Darcian porous medium parallel plate configuration: network simulation method solutions

机译:旋转非达西多孔介质平行板结构中的瞬态库埃特流:网络模拟方法解决方案

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摘要

The transient, viscous, incompressible, hydrodynamic Couette flow in a rotating porous medium channel is studied in this paper. The channel comprises a pair of infinitely long parallel plates which rotate with uniform angular velocity about an axis normal to the plates. The porous medium is simulated using a Darcy-Forchheimer drag force model which includes both bulk matrix porous drag (dominant at low Reynolds numbers) and second order inertial impedance (dominant at higher Reynolds numbers). The two-dimensional Navier-Stokes equations are reduced to a (z*, t*) coordinate system incorporating Coriolis terms, and appropriate initial and boundary conditions are prescribed. Separate porous drag body force terms are incorporated in both the primary and secondary flow momentum equations. Using a set of transformations, the model is rendered dimensionless and shown to be dictated by the Ekman number, Forchheimer number, Darcy number and Reynolds number in a (z, t) coordinate system. Numerical solutions are obtained for the transformed model using the Network Simulation Method. The influence of the hydrodynamic parameters are computed graphically and also the interaction of parameters on the velocity fields is discussed at length. Excellent agreement is found with earlier non-porous flow studies. The analysis has important applications in geophysics and also chemical engineering systems.
机译:本文研究了旋转多孔介质通道中的瞬态,粘性,不可压缩的流体动力库埃特流。通道包括一对无限长的平行板,它们绕垂直于板的轴线以均匀的角速度旋转。使用Darcy-Forchheimer阻力模型模拟多孔介质,该模型既包含体基质多孔阻力(主要在低雷诺数下)又包括二阶惯性阻抗(主要在较高的雷诺数下)。将二维Navier-Stokes方程简化为包含科里奥利项的(z *,t *)坐标系,并规定了适当的初始条件和边界条件。在主要和次要流动动量方程式中都包含了独立的多孔阻力体力项。使用一组转换,模型将变为无量纲,并显示由(z,t)坐标系中的埃克曼数,福希海默数,达西数和雷诺数所决定。使用网络仿真方法获得了转化模型的数值解。图形化地计算了流体动力学参数的影响,并详细讨论了参数对速度场的相互作用。在早期的无孔流动研究中发现了极好的一致性。该分析在地球物理以及化学工程系统中具有重要的应用。

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