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Stability of flow through deformable channels and tubes: implications of consistent formulation

机译:通过可变形通道和管的流动稳定性:一致配方的含义

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The present study is aimed at assessing the existing results concerning the stability of canonical shear flows in channels and tubes with deformable walls, in light of consistent formulations of the nonlinear solid constitutive model and linearised interface conditions at the fluid–solid interface. We show that a class of unstable shear-wave modes at low Reynolds number, predicted by previous studies for pressure-driven flows through neo-Hookean tubes and channels, is absent upon use of consistent interfacial conditions. Furthermore, we analyse the consequences of the change in solid model on the stability of the canonical shear flows by using both neo-Hookean and Mooney–Rivlin models. We show that the salient features of the stability of the system are adequately captured by a consistent formulation of the neo-Hookean solid model, thus precluding the need to employ more detailed solid models. The stability analysis of planar flows past a neo-Hookean solid subjected to three-dimensional disturbances showed that two-dimensional disturbances are more unstable than the corresponding three-dimensional disturbances within the consistent formulations. We show that prior inconsistent formulations of the solid constitutive equation predict a physically spurious spanwise instability in disagreement with experiments thereby demonstrating their inapplicability to predict instabilities in flow past deformable solid surfaces. Using the consistent formulation, the present work provides an accurate picture, over a range of Reynolds numbers, of the stability of canonical shear flows through deformable channels and tubes. Importantly, it is shown how inconsistencies in either the bulk constitutive relation or in the linearisation of the interface conditions can separately lead to physically spurious instabilities. The predictions of this work are relevant to experimental studies in flow through deformable tubes and channels in the low and moderate Reynolds number regime.
机译:本研究的目的是评估关于规范的剪切稳定性的现有结果流入通道和管具有变形壁,在非线性固体构模型的一致的制剂的光并线性化接口在流体 - 固体界面的条件。我们表明,一类不稳定横波模式中的低雷诺数,通过新虎克管和通道由先前的研究预测了压力驱动的流动,是在使用时的一致的界面条件不存在。此外,我们分析的典型剪切稳定性在实体模型的变化所带来的后果同时使用新虎克和穆尼 - 里夫林模型流动。我们表明,该系统的稳定性的显着特点是充分利用新虎克实体模型的一致配方捕获,从而排除了需要使用更详细的实体模型。平面的稳定性分析流过一个新虎克固体进行显示,二维干扰比相一致的制剂中的对应的三维扰动更加不稳定三维扰动。我们表明,固体本构方程之前不一致配方预测物理虚假翼展不稳定不同意实验从而表明其不适用预测的不稳定性在流过变形固体表面。使用一致的制剂,本工作提供了一个准确的画面,在一定范围的雷诺数,的典型剪切的稳定性流经变形通道和管。重要的是,它示出了在任一散装本构关系或在界面条件下的线性化的不一致如何可以分别导致物理不稳定性乱真。这项工作的预测是有关在低流量通过变形的管和通道实验研究和中等雷诺数制度。

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