边界层壁面驱动下的最优初始扰动

Leonardo Bettini, F. Auteri, F. Dercole
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引用次数: 0

摘要

在流体的表面,即壁面上的跨向速度波,在减少湍流通道和边界层中的摩擦阻力方面是非常有效的。它们还可以延缓层流-湍流的转变。为了研究这一有趣的性质,在这项工作中,我们在具有壁面驱动的三维Blasius边界层中添加了速度扰动,通过在流向方向上的驻正弦波。我们寻找能够在给定的目标时间内触发最大能量增益的初速度扰动模式。Navier-Stokes方程在优化问题中起约束作用。结果受到驱动参数的强烈影响,即正弦剖面的振幅和波长,就能量增益而言,以及在目标时间内由初始速度扰动所传播的空间。相反的行为出现了,例如当驱动波长大于/小于扰动所传播的空间时,能量的增益/损失。
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Optimal initial perturbations in a boundary layer with wall actuation
Waves of span-wise velocity at the surface of the flow body, the wall, are known to be very effective in reducing the friction drag in turbulent channels and boundary layers. They can also delay the laminar-turbulent transition. To investigate this interesting property, in this work, we add velocity perturbations within a 3D Blasius boundary layer with wall actuation by means of a standing sinusoidal wave in the stream-wise direction. We look for the initial velocity perturbation pattern able to trigger the maximum energy gain in a given target time. The Navier-Stokes equations act as a constraint in the optimization problem. The results are strongly affected by the actuating parameters, namely the amplitude and wave-length of the sinusoidal profile, in terms of the energy gain and also of the space travelled by initial velocity perturbations during the target time. Opposite behaviours arise, such as an energy gain/loss whenever the actuating wave-length is greater/smaller of the space travelled by the perturbation.
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