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Nonlinear energy sinks with nonlinear control strategies in fluid-structure simulations framework for passive and active FIV control of sprung cylinders

机译:具有流体结构模拟中的非线性控制策略的非线性能量下沉,用于喷气气缸的被动和有源FIV控制的框架

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This article investigates the vortex-induced vibration reduction of a circular cylinder as well as the flow-induced vibration suppression of an elastically-mounted square cylinder freely oscillating in the transverse and streamwise directions with the aid of passive and active nonlinear energy sinks that benefit from nonlinear intelligent control strategies. To this end, firstly, the optimized parameters of the passive nonlinear energy sink including mass, damping and stiffness ratios are tuned. Next, the passive control method is turned into an active nonlinear energy sink by employing an adaptive fuzzy sliding-mode controller. Owing to the computational complexity of the employed controller, the obtained results are used to design a fuzzy controller based on the adaptive neuro-fuzzy inference system. The results of collaborative fluid-structure interaction (FSI) simulations indicate that the nonlinear energy sink equipped with the fuzzy controller based on the active fuzzy sliding-mode controller successfully decreases the maximum transverse and stream wise displacements of circular cylinder by, respectively, 95.56% and 98.53% at Re = 85, 96.26% and 97.64% at Re = 90, 95.80% and 97.64% at Re = 95, and 93.82% and 97.05% at Re = 100. Also, for the square cylinder, the maximum transverse and streamwise displacements decrease by 95.06% and 90.9% at Re = 87.5, 99.94% and 86.66% at Re = 90, 95.80% and 96.33% at Re = 220, and 72.41% and 99.21% at Re = 250 compared to the uncontrolled case. All these cases demonstrate the superiority of active nonlinear energy sink over its passive counterpart.(c) 2021 Elsevier B.V. All rights reserved.
机译:本文研究了圆柱形的涡旋诱导的振动减小,以及通过受益的无源和有源非线性能量水槽在横向和流动方向上自由摆动的流动诱导的振动抑制,从而受益非线性智能控制策略。为此,首先,调谐包括质量,阻尼和刚度比的被动非线性能量吸收的优化参数。接下来,通过采用自适应模糊滑模控制器将被动控制方法变成有源非线性能量沉陷。由于采用控制器的计算复杂性,所获得的结果用于根据自适应神经模糊推理系统设计模糊控制器。协同流体结构相互作用(FSI)模拟结果表明,基于主动模糊滑模控制器的模糊控制器配备的非线性能量水池成功地降低了圆柱的最大横向和流式位移,分别为95.56%在RE = 90,95,95.80%和97.64%的RE = 95,95.64%的RE = 95,93.82%和97.64%,93.82%和97.05%在RE = 100的98.53%。此外,对于方形气缸,最大横向和在RE = 90,99.5,99.5,99.94%,99.94%,99.94%和86.66%,在RE = 220,9.41%和99.33%,与不受控制的情况相比,在RE = 90,95.8.5%和96.33%下,在RE = 90,95.5.5%,9.41%和99.21%的速度下降。所有这些情况都展示了活跃的非线性能量沉没在其被动对手上的优越性。(c)2021 Elsevier B.v.保留所有权利。

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