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On the aeroelastic energy transfer from a Lamb dipole to a flexible cantilever

机译:从羊池偶极器到柔性悬臂的空气弹性能量

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This paper studies the aeroelastic energy transfer from an advecting Lamb dipole to a flexible cantilever. The cantilever is initially placed either along or against the dipole's advection direction with various lateral distances. As the dipole moves towards the cantilever, they interact and exchange the energy. Such a fluid-structure interaction problem is numerically solved at a low Reynolds number of 200 using a lattice Boltzmann method based numerical framework. The simulation results confirm that, when the lateral distance is around the dipole radius, placing the cantilever against the dipole's advection direction is more favorable for energy transfer. Under this setting, the cantilever generally experiences two notable increases in its mechanical energy. The first one is caused by the direct impact associated with the dipole's approach, whereas the second one occurs when the dipole just passes by and exerts suction on the cantilever's free end. Each increase leads to a peak, and the second peak is much larger representing the maximum transferred energy. It is further found that when the lateral distance is about a half of the dipole radius, the cantilever's length is about one dipole radius, and its bending stiffness is moderate, the aeroelastic efficiency can be as high as 10.6%. (C) 2019 Elsevier Ltd. All rights reserved.
机译:本文研究了从平流的羊池到柔性悬臂的空气弹性能量。悬臂最初以各种横向距离沿着或抵抗偶极的平流方向放置。当偶极朝向悬臂移动时,它们互动并交换能量。这种流体结构相互作用问题在基于晶格Boltzmann方法的数值框架中以低雷诺数为200的数量求解。仿真结果证实,当横向距离在偶极半径周围时,将悬臂放在偶极子的平流方向上更有利的是能源转移。在该设置下,悬臂通常经历其机械能中的两个显着增加。第一个是由与偶极的方法相关的直接影响引起的,而第二个在偶极刚刚通过并在悬臂的自由端上发挥吸入时发生。每个增加导致峰值,第二峰值大得多表示最大转移能量。进一步发现,当横向距离大约是偶极半径的一半时,悬臂的长度约为一个偶极半径,并且其弯曲刚度是中等的,空气弹性效率可以高达10.6%。 (c)2019年elestvier有限公司保留所有权利。

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