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首页> 外文期刊>Journal of Sound and Vibration >Efficiency of targeted energy transfers in coupled nonlinear oscillators associated with 1 : 1 resonance captures: Part I
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Efficiency of targeted energy transfers in coupled nonlinear oscillators associated with 1 : 1 resonance captures: Part I

机译:与1:1共振捕获相关的耦合非线性振荡器中目标能量转移的效率:第一部分

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We study targeted energy transfers and nonlinear transitions in the damped dynamics of a two degree-of-freedom system of coupled oscillators (a linear oscillator with a lightweight, essentially nonlinear, ungrounded attachment), caused by 1: 1 resonance captures of the dynamics. Part I of this work deals with the underlying structure of the Hamiltonian dynamics of the system, and demonstrates that, for sufficiently small values of viscous damping, the damped transitions are strongly influenced by the underlying topological structure of periodic and quasiperiodic orbits of the corresponding Hamiltonian system. Focusing exclusively on 1:1 resonance captures in the system, it is shown that the topology of these damped transitions affect drastically the efficiency of passive energy transfer from the linear system to the nonlinear attachment. Then, a detailed computational study of the different types of nonlinear transitions that occur in the weakly damped system is presented, together with an analytical treatment of the nonlinear stability of certain families of periodic solutions of the underlying Hamiltonian system that strongly influence the said transitions. As a result of these studies, conditions on the system and forcing parameters that lead to effective or even optimal energy transfer from the linear system to the nonlinear attachment are determined. In Part 11 of this work, direct analytical treatment of the governing strongly nonlinear damped equations of motion is performed, in order to analytically model the dynamics in the region of optimal energy transfer, and to determine the characteristic time scales of the dynamics that influence the capacity of the nonlinear attachment to passively absorb and locally dissipate broadband energy from the linear oscillator. (c) 2007 Elsevier Ltd. All rights reserved.
机译:我们研究了耦合振荡器(具有轻量级,本质上是非线性的,不接地的附件的两自由度系统)的阻尼动力学中的目标能量转移和非线性跃迁,这是由动力学的1:1共振捕获引起的。这项工作的第一部分讨论了系统哈密顿动力学的基本结构,并证明了,对于足够小的粘性阻尼值,阻尼跃迁受到相应哈密顿周期和准周期轨道的基本拓扑结构的强烈影响。系统。专门关注系统中的1:1共振捕获,结果表明,这些阻尼跃迁的拓扑极大地影响了从线性系统到非线性附件的无源能量传输效率。然后,对在弱阻尼系统中发生的不同类型的非线性跃迁进行了详细的计算研究,并给出了对基础哈密顿系统的某些周期解的家族的非线性稳定性的分析处理,这些稳定性严重影响了所述跃迁。这些研究的结果是,确定了导致有效或什至最佳的能量从线性系统转移到非线性附件的系统条件和强迫参数。在这项工作的第11部分中,对主导的强非线性阻尼运动方程式进行了直接分析处理,以便对最佳能量传递区域中的动力学进行分析建模,并确定影响该过程的动力学的特征时标。非线性附件被动吸收和局部耗散线性振荡器的宽带能量的能力。 (c)2007 Elsevier Ltd.保留所有权利。

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