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Stability of Thermovibrational Convection of a Pseudoplastic Fluid in a Plane Vertical Layer

机译:平面垂直层中假塑性流体热振动对流的稳定性

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Based on the thermovibrational convection equations, we have investigated the structure of the averaged plane-parallel convective flow in a plane vertical layer of Williamson fluid executing high-frequency linearly polarized vibrations along the layer. We show that as the vibrations are intensified, the nonlinear viscous properties of a pseudoplastic fluid cease to affect the structure and intensity of its main flow, and it becomes similar to a flow of ordinary Newtonian fluid. The linear problem of stability of an averaged plane-parallel flow of pseudoplastic Williamson fluid has been formulated and solved for the case of longitudinal high-frequency linearly polarized vibrations for small periodic perturbations along the layer. Numerical calculations have shown that, as in a Newtonian fluid, the monotonic hydrodynamic perturbations are most dangerous at low Prandtl numbers. As the Prandtl number increases, the thermal instability modes begin to exert an undesirable effect. An enhancement of pseudoplastic fluid properties leads to destabilization of the main flow for both types of perturbations. Similarly to a Newtonian fluid, an additional vibrational instability mode to which small Grashof numbers correspond appears in the presence of vibrations. The influence of this vibrational mode on the stability of the main flow is determined by the vibration frequency and the temperature gradient. An intensification of the vibrations destabilizes the flow for all of the investigated instability modes. For a given set of rheological parameters of the Williamson model, there are critical values of the modified and vibrational Grashof numbers at which the averaged flow completely loses its stability with respect to the types of perturbations under consideration. Absolute destabilization of the main flow in a pseudoplastic fluid occurs at higher values of the vibrational Grashof number than those in a Newtonian fluid.
机译:基于热振动对流方程,我们研究了沿着层执行高频线性偏振振动的平均平面平行对流流程的平均平行对流流动的结构。我们表明,随着振动的增强,假塑性流体的非线性粘性特性不再影响其主流的结构和强度,并且它变得类似于普通牛顿流体的流动。已经制定了沿着层的小周期性扰动的纵向高频线性偏振振动的情况下配制并解决了平均平面平行流动稳定性的线性问题。数值计算表明,如在牛顿流体中,单调流体动力学扰动在低PRANDTL数字时最危险。随着Prandtl号的增加,热不稳定模式开始发挥不良影响。伪塑性流体性质的增强导致对两种类型扰动的主流的稳定化。与牛顿流体类似地,额外的振动不稳定性模式在振动的存在下出现在存在上。该振动模式对主流稳定性的影响由振动频率和温度梯度确定。振动的强化使所有研究的不稳定性模式的流量稳定下来。对于威廉姆森模型的给定的一组流变学参数,存在改性和振动的垃圾的临界值,其中平均流量完全失去其相对于所考虑的扰动类型的稳定性。伪塑料流体中主流的绝对稳定性发生在比牛顿流体中的振动胶质的较高值更高的值。

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