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Confinement-induced stabilization of the Rayleigh-Taylor instability and transition to the unconfined limit

机译:限制诱导的Rayleigh-Taylor不稳定性和过渡到无占限的极限

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The prevention of hydrodynamic instabilities can lead to important insights for understanding the instabilities’ underlying dynamics. The Rayleigh-Taylor instability that arises when a dense fluid sinks into and displaces a lighter one is particularly difficult to arrest. By preparing a density inversion between two miscible fluids inside the thin gap separating two flat plates, we create a clean initial stationary interface. Under these conditions, we find that the instability is suppressed below a critical plate spacing. With increasing spacing, the system transitions from the limit of stability where mass diffusion dominates over buoyant forces, through a regime where the gap sets the wavelength of the instability, to the unconfined regime governed by the competition between buoyancy and momentum diffusion. Our study, including experiment, simulation, and linear stability analysis, characterizes all three regimes of confinement and opens new routes for controlling mixing processes.
机译:防止流体动力学稳定性可能导致了解稳定性潜在动态的重要见解。当密集的流体沉入并取代更轻的流体时出现的瑞利泰勒不稳定性特别难以阻止。通过在分离两个平板的薄隙内的两个可混溶性流体之间的密度反转,我们创建清洁的初始静止界面。在这些条件下,我们发现不稳定性被抑制在临界平板下方。随着间距的增加,通过稳定性偏移的稳定性极限地,通过间隙设定不稳定性波长的状态来转换,通过浮力和动量扩散之间的竞争所致的无限制的制度。我们的研究包括实验,仿真和线性稳定性分析,其特征在于所有三个限制的制度,并打开了用于控制混合过程的新途径。

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