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Suppressing Aeroelastic Instability Using Broadband Passive Targeted Energy Transfers, Part 2: Experiments

机译:使用宽带无源目标能量转移抑制气弹性不稳定性,第2部分:实验

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This paper presents experimental results corroborating the analysis developed in the companion paper, Part 1 (Lee, Y., Vakakis, A., Bergman, L., McFarland, M., and Kerschen G., "Suppression Aeroelastic Instability Using Broadband Passive Targeted Energy Transfers, Part 1: Theory," AIAA Journal, Vol. 45, No. 3,2007, pp. 693-711), and demonstrates that a nonlinear energy sink can improve the stability of an aeroelastic system. The nonlinear energy sink was, in this case, attached to the heave (plunge) degree of freedom of a rigid airfoil which was supported in a low-speed wind tunnel by nonlinear springs separately adjustable in heave and pitch. This airfoil was found to exhibit a limit cycle oscillation at flow speeds above the critical ("flutter") speed of 9.5 m/s, easily triggered by an initial heave displacement. After attachment of a single degree of freedom, essentially nonlinear energy sink to the wing, the combined system exhibited improved dynamic response as measured by the reduction or elimination of limit cycle oscillation at flow speeds significantly greater than the wing's critical speed. The design, application, and performance of the nonlinear energy sink are described herein, and the results obtained are compared to analytical predictions. The physics of the interaction of the sink with the wing is examined in detail.
机译:本文提供的实验结果证实了在配套论文第1部分(Lee,Y.,Vakakis,A.,Bergman,L.,McFarland,M.和Kerschen G.,“使用宽带无源目标抑制空气弹性不稳定性”)中得到的分析结果。能量转移,第1部分:理论,” AIAA杂志,第45卷,第3期,2007年,第693-711页),并证明了非线性能量吸收器可以改善气动弹性系统的稳定性。在这种情况下,非线性能量吸收器附着在刚性翼型的升沉(下降)自由度上,该刚性翼型由低速风洞中的非线性弹簧支撑,该非线性弹簧的升沉和俯仰可分别调节。发现该翼型件在高于临界(“颤振”)速度9.5 m / s的流速下表现出极限循环振荡,很容易由初始升沉位移触发。在将单个自由度(基本上是非线性的能量吸收)附加到机翼上之后,组合系统显示出改进的动态响应,通过减小或消除流速显着大于机翼临界速度的极限循环振荡来衡量。本文介绍了非线性能量吸收器的设计,应用和性能,并将获得的结果与分析预测进行了比较。仔细研究了水槽与机翼相互作用的物理过程。

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