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Boundary layer turbulence near an actively controlled deformable surface

机译:主动控制可变形表面附近的边界层湍流

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Recent advances in technology, in particular soft robotics and micro-electronics, have renewed the interested in the impact of viscoelastic boundaries and active boundary modulation on hydrodynamic drag and boundary layer turbulence. Viscoelastic boundary materials, such as those found in dolphin skin, are known to have the potential to reduce boundary drag, by delaying the transition from laminar to turbulent flow in the boundary layer around the body and minimizing boundary layer turbulence. The possible mechanisms to reduce boundary layer turbulence include counteracting boundary layer coherent structures or impacting momentum transfer near the boundary. Actuating a deformable membrane in a channel flow allows the investigation of the impact of boundary actuation on boundary layer turbulence for a range of actuation parameters and flow channel speeds. We developed a deformable boundary and tested the system in channel flow, in direct contact with the water, actuating at various wave patterns and frequencies. The impact on boundary layer velocity was investigated with Particle Image Velocimetry, as well as numerical simulations (see companion paper). Boundary actuation is shown to impact the boundary layer velocity profile and near boundary momentum transfer. We characterize the parameter space most likely to reduce boundary layer turbulence in a natural environment, which could lead to more energy-efficient platforms and underwater vehicles.
机译:技术的最新进展,特别是软机器人和微电子器件,对粘弹性边界的影响和主动边界调制对流体动力阻力和边界层湍流的影响感兴趣。粘弹性边界材料,例如在海豚皮肤中发现的材料,可以通过延迟从主体周围的边界层中的湍流到湍流的过渡并最小化边界层湍流来减少边界阻力。减少边界层湍流的可能机制包括抵消边界层附近的边界层相干结构或撞击动量传递。在通道流中致动变形膜允许对一系列致动参数和流动通道速度进行边界致动对边界层湍流的影响。我们开发了可变形的边界并测试了在通道流中的系统,直接接触水,以各种波形和频率致动。研究了颗粒图像速度测速和数值模拟的对边界层速度的影响(参见伴随纸)。边界致动显示为影响边界层速度曲线和近边界动量转移。我们的特征在于最有可能降低自然环境中的边界层湍流的参数空间,这可能导致更节能的平台和水下车辆。

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