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首页> 外文期刊>International journal of non-linear mechanics >Panel flutter suppression with nonlinear energy sinks: Numerical modeling and analysis
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Panel flutter suppression with nonlinear energy sinks: Numerical modeling and analysis

机译:带有非线性能量吸收器的面板颤动抑制:数值建模和分析

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High-speed flight can cause aircraft skin to exhibit an aeroelastic instability typically called panel flutter. Due to the risk of fatigue failure imposed by this undesired phenomenon, several techniques have been proposed over the years to passively or actively control such aeroelastic vibrations. One relatively new method that has been proven effective for controlling various aeroelastic phenomena is the use of nonlinear energy sinks (NES). Here, for the first time, this technique is employed for suppressing panel flutter and reducing the intensity of limit cycle oscillations (LCOs). The present work consists of a comprehensive study on the numerical modeling of a NES, its coupling to an aeroelastic finite element plate model, and several solutions attained through the resulting system. In order to simulate LCOs, a geometrically nonlinear plate model is employed. The supersonic aerodynamic loads are modeled by piston theory, and the final aeroelastic equations of motion are solved directly in time by an implicit integrator. The energy dissipated by the NES and the energy injected in the panel by the flow are obtained numerically as a function of time. This provides important insights on the mechanism through which a NES can either suppress flutter or mitigate LCOs by partially balancing the aerodynamic work. The performance of the NES is tested in three regimes: At the pre-flutter regime, the NES leads the panel to a faster return to equilibrium after a perturbation; at higher speeds, the NES is still able to suppress flutter, whereas an uncontrolled panel would exhibit LCOs; at even higher speeds, the NES is no longer able to completely suppress the motion but can pump enough energy to reduce the amplitude of the LCOs. In any of these scenarios, the practical outcome would be a longer lifespan for the skin structure. Furthermore, a parametric study is conducted to assess how different NES parameters such as damping coefficient and nonlinear stiffness affect the aeroelastic response. The results reveal that a NES can be used as a lightweight device for passively controlling panel flutter, and that such technique is suitable for optimization-driven design.
机译:高速飞行会导致飞机蒙皮表现出气动弹性不稳定性,通常称为面板颤振。由于这种不希望的现象导致的疲劳破坏的风险,多年来提出了几种技术来被动或主动地控制这种气动弹性振动。一种被证明对控制各种气动弹性现象有效的相对较新的方法是使用非线性能量吸收器(NES)。在此,该技术首次用于抑制面板颤动并减小极限循环振荡(LCO)的强度​​。本工作包括对NES的数值模型,其与气动弹性有限元板模型的耦合以及通过所得系统获得的几种解决方案的全面研究。为了模拟LCO,采用了几何非线性板模型。利用活塞理论对超音速空气动力学载荷进行建模,并通过隐式积分器直接直接求解最终的空气弹性运动方程。 NES消散的能量和通过流动注入面板的能量是作为时间的函数数值获得的。这提供了关于NES通过部分平衡空气动力工作来抑制抖动或减轻LCO的机理的重要见解。 NES的性能在以下三种情况下进行了测试:在颤动前的状态下,NES会导致面板在扰动后更快地返回平衡状态;在更高的速度下,NES仍然能够抑制颤动,而不受控制的面板会显示LCO。在更高的速度下,NES不再能够完全抑制运动,而是可以泵送足够的能量来减小LCO的幅度。在任何这些情况下,实际结果都是皮肤结构的使用寿命更长。此外,进行了一项参数研究,以评估不同的NES参数(例如阻尼系数和非线性刚度)如何影响气动弹性响应。结果表明,NES可以用作用于被动控制面板颤动的轻型设备,并且这种技术适用于优化驱动的设计。

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