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首页> 外文期刊>Journal of Fluid Mechanics >Nonlinear coupling of interfacial instabilities with resonant wave interactions in horizontal two-fluid plane Couette-Poiseuille flows: numerical and physical observations
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Nonlinear coupling of interfacial instabilities with resonant wave interactions in horizontal two-fluid plane Couette-Poiseuille flows: numerical and physical observations

机译:水平双流体平面Couette-Poiseuille流中界面不稳定性与共振波相互作用的非线性耦合:数值和物理观测

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We investigate mechanisms governing the initial growth and nonlinear evolution of interfacial waves in horizontal two-fluid plane Couette-Poiseuille flows. Nonlinear coupling of the Kelvin-Helmholtz interfacial instability with resonant wave interactions has been shown to be capable of rapidly generating long waves through the transfer of energy from linearly unstable short waves to stable long-wave components within the context of potential flow theory. The objective of this work is to determine whether that coupled mechanism persists in laminar and turbulent viscous flows. Utilizing both theoretical and computational methods, we analyse the initial Orr-Sommerfeld instability to quantify the frequencies and growth/decay rates of each wave mode for two-fluid laminar and turbulent channel flows. The obtained dispersion relation allows for the identification of resonant and/or near-resonant triads among (unstable and damped) wave components in an interfacial wave spectrum. We perform direct numerical simulations (DNS) of the two-phase Navier-Stokes equations with a fully nonlinear interface to formally establish the validity of our theoretical predictions for viscous flows. DNS results show the existence of a nonlinear energy cascade from unstable short-to damped long-wavelength waves due to resonant subharmonic and/or triadic interactions in both laminar Couette and turbulent Poiseuille flows. Spectral analysis of the interfacial evolution confirms that the combined instability resonance mechanism persists in the presence of viscosity despite being derived under the assumption of potential flow theory. Finally, we perform a detailed examination of experimentally measured wave power spectra from Jurman el at. Fluid Mech., vol. 238, 1992, pp. 187-219) and carry out a numerical sensitivity study of the flow conditions to demonstrate and verify the existence of the coupled instability resonance mechanism in physical systems. Our analysis accurately predicts the initial instability and the resulting nonlinear energy cascade through subharmonic and triadic interfacial wave resonances.
机译:我们研究了控制水平两流体平面Couette-Poiseuille流中界面波的初始增长和非线性演化的机制。已经证明,在势流理论的背景下,开尔文-亥姆霍兹界面不稳定性与共振波相互作用的非线性耦合能够通过将能量从线性不稳定短波传递到稳定长波分量来快速产生长波。这项工作的目的是确定耦合机制是否在层流和湍流粘性流中持续存在。利用理论和计算方法,我们分析了最初的Orr-Sommerfeld不稳定性,以量化双流体层流和湍流通道的每个波模的频率和增长率/衰减率。所获得的色散关系允许识别界面波谱中(不稳定和阻尼)波分量之间的谐振和/或近谐振三重轴。我们使用完全非线性的界面对两相Navier-Stokes方程进行直接数值模拟(DNS),以正式确立我们对粘性流的理论预测的有效性。 DNS结果表明,由于层状Couette流和湍流Poiseuille流中的共振次谐波和/或三重相互作用,存在从不稳定的短波到阻尼长波的非线性能量级联。界面演化的光谱分析证实,尽管是在势流理论的假设下得出的,但组合的不稳定性共振机制在存在粘度的情况下仍然存在。最后,我们对来自Jurman el at的实验测量的波功率谱进行了详细检查。流体机械,卷238号,1992年,第187-219页),并对流动条件进行了数值敏感性研究,以证明和验证物理系统中耦合不稳定性共振机制的存在。我们的分析通过亚谐波和三重界面波共振准确地预测了初始不稳定性以及由此产生的非线性能量级联。

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