Vibration Absorption using KDamper-based Devices with Extreme Geometric Nonlinearity

K. Kapasakalis, E. Sapountzakis
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Abstract

A KDamper oscillator is proven to be a more effective alternative to conventional Tuned Mass Damper (TMD) approaches and Quazi Zero Stiffness (QZS) or negative stiffness isolators. In this paper, an extended version of the KDamper (EKD) concept is employed to control the dynamic responses of an undamped (or low damper) SDoF system subjected to various dynamic loads. The KDamper consists of an additional mass, artificial dampers, and positive and negative stiffness elements. The additional implemented mass is one order of magnitude smaller as compared to most mass related vibration absorbers (TMDs, TMDIs, KDampers, etc.). The artificial dampers and the stiffness element values are selected following an engineering-criteria driven optimization procedure that accounts for geometric constraints and manufacturing limitations. The negative stiffness element is realized with an articulated mechanism that employs pre-stresses conventional stiffness elements (spiral springs) and generates controlled negative stiffness (NS). In order to exploit the advantages that the inherent nonlinear nature the NS offers, such as robustness, broadband response and energy sinks, the proposed dynamic vibration absorber is designed to present significant geometric nonlinearity, that varies from none (linear system) to extreme. Thus, different test cases are presented with respect to the desired nonlinearity of the generated NS, as well as to the type of the external load subjected to the structure. This way we can determine in which cases extreme geometric nonlinearity is beneficial to the dynamic behavior of the controlled structure.
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使用具有极端几何非线性的KDamper基器件的振动吸收
KDamper振荡器被证明是传统调谐质量阻尼器(TMD)方法和Quazi零刚度(QZS)或负刚度隔离器的更有效替代品。本文采用KDamper(EKD)概念的扩展版本来控制无阻尼(或低阻尼)SDoF系统在各种动态负载下的动态响应。KDamper由附加质量、人工阻尼器以及正负刚度元件组成。与大多数与质量相关的减振器(TMDs、TMDI、KDampers等)相比,额外实施的质量要小一个数量级。人工阻尼器和刚度元件值的选择遵循工程标准驱动的优化程序,该程序考虑了几何约束和制造限制。负刚度元件由铰接机构实现,该铰接机构采用预应力传统刚度元件(螺旋弹簧)并产生受控的负刚度(NS)。为了利用NS固有的非线性特性所提供的优点,如鲁棒性、宽带响应和能量汇,所提出的动态减振器被设计为呈现显著的几何非线性,从零(线性系统)到极端。因此,针对生成的NS的期望非线性以及结构承受的外部载荷的类型,提出了不同的测试案例。通过这种方式,我们可以确定在哪些情况下极端几何非线性有利于受控结构的动力学行为。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
International Journal of Mechanics
International Journal of Mechanics Engineering-Computational Mechanics
CiteScore
1.60
自引率
0.00%
发文量
17
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