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INSTABILITY OF A CANTILEVERED FLEXIBLE PLATE IN VISCOUS CHANNEL FLOW DRIVEN BY CONSTANT PRESSURE DROP

机译:悬臂柔性板在持续压降驱动的粘性通道流动中的不稳定性

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A new approach for studying the stability of a cantilevered flexible plate positioned within a 2-D viscous channel flow is presented as a representation of the human upper airway. Previous work has used constant inlet velocity conditions, an unrealistic assumption when modelling inhalation. Here we model a constant pressure drop that reflects inspiratory effort. Positioning of the flexible plate within the channel can also be varied. The constant pressure drop is imposed for each time step by computing appropriate inlet velocities. The Navier-Stokes equations are solved using an explicit finite-element method written specifically for the channel geometry within which the fully coupled plate moves. The motion of the plate, driven by the pressure field, is modelled using classical thin-plate mechanics with the addition of a shear-stress induced tension term. The investigation focuses on the motion of the flexible plate (soft palate) as one of the contributors to airway blockage during sleep. It is found that the tension induced by the fluid shear-stress can be significant when the plate is sufficiently flexible. We also demonstrate that imposing constant inlet velocity generates over-predictions of energy transfer between flow and flexible plate. Finally, we show that offsetting the flexible plate within the channel leads to changes in oscillation frequency and significant change to its energy interaction with the fluid flow.
机译:一种研究定位在2-D粘性通道流内的悬臂柔性板的稳定性的新方法被呈现为人类上气道的表示。以前的工作已经使用了常数入口速度条件,在吸入时的不切实际的假设。在这里,我们模拟了反映吸气努力的恒定压降。柔性板在通道内的定位也可以改变。通过计算适当的入口速度来对每个时间步骤施加恒定压降。使用专门用于完全耦合板移动的沟道几何形状的明确有限元方法来解决Navier-Stokes方程。由压力场驱动的板的运动通过添加剪切应力诱导的张力术语来建模使用经典薄板力学建模。调查重点介绍柔性板(软腭)作为睡眠期间呼吸道堵塞的贡献者之一。发现当板足够柔性时,通过流体剪切应力引起的张力可以是显着的。我们还证明,施加恒定入口速度产生流动和柔性板之间的能量转移过度预测。最后,我们示出了偏移通道内的柔性板导致振荡频率的变化和与流体流动的能量相互作用的显着变化。

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