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Linear stability analysis of miscible two-fluid flow in a channel with velocity slip at the walls

机译:壁面速度滑移的两相溶混流的线性稳定性分析

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The linear stability characteristics of pressure-driven miscible two-fluid flow with same density and varying viscosities in a channel with velocity slip at the wall are examined.Aprominent feature of the instability is that only a band ofwave numbers is unstable whatever the Reynolds number is, whereas shorter wavelengths and smaller wave numbers are observed to be stable. The stability characteristics are different from both the limiting cases of interface dominated flows and continuously stratified flows in a channel with velocity slip at the wall. The flow system is destabilizing when a more viscous fluid occupies the region closer to the wall with slip. For this configuration a new mode of instability, namely the overlap mode, appears for high mass diffusivity of the two fluids. This mode arises due to the overlap of critical layer of dominant instability with the mixed layer of varying viscosity. The critical layer contains a location in the flowdomain atwhich the base flowvelocity equals the phase speed of themost unstable disturbance. Such amode also occurs in the corresponding flow in a rigid channel, but absent in either of the above limiting cases of flow in a channel with slip. The flow is unstable at low Reynolds numbers for a wide range of wave numbers for low mass diffusivity, mimicking the interfacial instability of the immiscible flows. A configuration with less viscous fluid adjacent to the wall is more stable at moderate miscibility and this is also in contrast with the result for the limiting case of interface dominated flows in a channel with slip, where the above configuration ismore unstable. It is possible to achieve stabilization or destabilization of miscible two-fluid flow in a channel with wall slip by appropriately choosing the viscosity of the fluid layer adjacent to the wall. In addition, the velocity slip at the wall has a dual role in the stability of flow system and the trend is influenced by the location of the mixed layer, the location of more viscous fluid and the mass diffusivity of the two fluids. It is well known that creating a viscosity contrast in a particularway in a rigid channel delays the occurrence of turbulence in a rigid channel. The results of the present study show that the flow system can be either stabilized or destabilized by designing the walls of the channel as hydrophobic surfaces, modeled by velocity slip at the walls. The study provides another effective strategy to control the flow system.
机译:研究了在壁上具有速度滑移的通道中具有相同密度和粘度变化的压力驱动的混溶二流体流动的线性稳定性特征。不稳定性的突出特征是,无论雷诺数是多少,只有波数带是不稳定的,而观察到较短的波长和较小的波数是稳定的。稳定性特性不同于界面主导流和壁上速度滑移的通道中连续分层流的极限情况。当更粘稠的流体通过滑移占据更靠近壁的区域时,流动系统不稳定。对于这种配置,出现了一种新的不稳定性模式,即重叠模式,以提高两种流体的质量扩散率。这种模式的出现是由于主要不稳定因素的临界层与粘度变化的混合层的重叠。关键层在流域中包含一个位置,基本流速在该位置等于最不稳定扰动的相速度。这种模式也出现在刚性通道中的相应流动中,但是在上述任何一种带有滑移的通道中的有限流动情况下都不存在。在低雷诺数下,对于大范围的波数,由于质量扩散率低,该流不稳定,从而模拟了不混溶流的界面不稳定性。与壁相邻的粘性流体较少的构造在适度的可混溶性下更稳定,并且这与在滑移的通道中界面主导的流动的极限情况的限制结果相反,其中上述构造更加不稳定。通过适当选择与壁相邻的流体层的粘度,可以在具有壁滑的通道中实现可混溶的二流体流的稳定或去稳定。另外,壁面的速度滑移在流动系统的稳定性中具有双重作用,并且趋势受混合层的位置,粘性流体的位置以及两种流体的质量扩散率的影响。众所周知,以特定方式在刚性通道中产生粘度对比会延迟刚性通道中湍流的发生。本研究的结果表明,通过将通道的壁设计为疏水性表面(通过在壁上的速度滑移建模),可以使流动系统稳定或不稳定。该研究提供了另一种有效的策略来控制流量系统。

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