Reyes Francisco, Torrejón Vicente, Falcón Claudio
Departamento de Física, Facultad de Ciencias Físicas y Matemáticas, Universidad de Chile, Casilla 487-3, Santiago, Chile.
Millenium Nucleus of Soft Smart Mechanical Metamaterials, Santiago, Chile.
Phys Rev E. 2020 Mar;101(3-1):033106. doi: 10.1103/PhysRevE.101.033106.
We report on the enhancement of the hydrodynamic damping of gravity waves at the surface of a fluid layer as they interact with a turbulent vortex flow in a sloshing experiment. Gravity surface waves are excited by oscillating horizontally a square container holding our working fluid (water). At the bottom of the container, four impellers in a quadrupole configuration generate a vortex array at moderate to high Reynolds number, which interact with the wave. We measure the surface fluctuations using different optical nonintrusive methods and the local velocity of the flow. In our experimental range, we show that as we increase the angular velocity of the impellers, the gravity wave amplitude decreases without changing the oscillation frequency or generating transverse modes. This wave dissipation enhancement is contrasted with the increase of the turbulent velocity fluctuations from particle image velocimetry measurements via a turbulent viscosity. To rationalize the damping enhancement a periodically forced shallow water model including viscous terms is presented, which is used to calculate the sloshing wave resonance curve. The enhanced viscous dissipation coefficient is found to scale linearly with the measured turbulent viscosity. Hence, the proposed scheme is a good candidate as an active surface gravity wave dampener via vortex flow reconfiguration.
我们报告了在一个晃动实验中,当重力波在流体层表面与湍流涡旋流相互作用时,其流体动力阻尼的增强情况。通过水平振荡装有我们的工作流体(水)的方形容器来激发重力表面波。在容器底部,四个呈四极配置的叶轮在中到高雷诺数下产生一个涡旋阵列,该涡旋阵列与波相互作用。我们使用不同的光学非侵入性方法测量表面波动以及流场的局部速度。在我们的实验范围内,我们表明,随着叶轮角速度的增加,重力波振幅减小,而振荡频率不变,也未产生横向模式。这种波耗散的增强与通过湍流粘性从粒子图像测速测量得到的湍流速度波动的增加形成对比。为了合理解释阻尼增强现象,我们提出了一个包含粘性项的周期性强迫浅水模型,该模型用于计算晃动波共振曲线。发现增强的粘性耗散系数与测量得到的湍流粘性呈线性比例关系。因此,所提出的方案是通过涡旋流重构作为有源表面重力波阻尼器的一个很好的候选方案。