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首页> 外文期刊>Journal of Fluid Mechanics >Oscillatory Kelvin-Helmholtz instability. Part 2. An experiment in fluids with a large viscosity contrast
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Oscillatory Kelvin-Helmholtz instability. Part 2. An experiment in fluids with a large viscosity contrast

机译:振荡开尔文-亥姆霍兹不稳定。第2部分。在具有较大粘度对比的流体中进行的实验

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摘要

The stability of two-layer oscillatory flows was studied experimentally in a cylindrical container with a vertical axis. Two superposed immiscible liquids, differing greatly in viscosity, were set in relative oscillatory motion by alternating container rotation. Waves arising beyond a threshold were observed in detail for small oscillation frequencies ranging from 0.1 to 6 Hz. Measurements were performed on the growth rate and the wavenumber of these waves. The instability threshold was determined from the growth rate data. It was found that the threshold and the wavenumber varied with the frequency. In particular, significantly lower thresholds and longer waves were found than those predicted by the inviscid theory of the oscillatory Kelvin-Helmholtz instability. Favourable agreement with the predictions of an existing viscous theory for small oscillation amplitude flows indicates the important role of viscosity, even at the highest frequency, and suggests a similar mechanism behind the instability as that for the short wave instability in steady Couette flows. A semi-numerical stability determination for finite amplitude flows was also performed to improve the prediction in experiments with a frequency lower than 1 Hz.
机译:在具有垂直轴的圆柱形容器中,通过实验研究了两层振荡流的稳定性。通过交替旋转容器,将两种粘度大不相同的叠加不混溶液体设置为相对振荡运动。对于从0.1到6 Hz的小振荡频率,可以详细观察到超出阈值的波。对这些波的增长率和波数进行了测量。从增长率数据确定不稳定性阈值。发现阈值和波数随频率变化。特别是,发现比振荡Kelvin-Helmholtz不稳定性的无粘性理论所预测的阈值低得多,波长更长。与现有粘性理论对小振幅振动的预测的良好一致性表明,即使在最高频率下,粘度也起着重要的作用,并且暗示了不稳定性背后的相似机制与稳定库埃特流动中的短波不稳定性相似。还进行了有限振幅流的半数值稳定性确定,以改善频率低于1 Hz的实验中的预测。

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