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Sustained High-Frequency Dynamic Instability of a Nonlinear System of Coupled Oscillators Forced by Single or Repeated Impulses: Theoretical and Experimental Results

机译:单脉冲或重复脉冲强迫耦合振子非线性系统的持续高频动态不稳定性:理论和实验结果

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摘要

This report describes the impulsive dynamics of a system of two coupled oscillators with essential (nonlinearizable) stiffness nonlinearity. The system considered consists of a grounded weakly damped linear oscillator coupled to a lightweight weakly damped oscillating attachment with essential cubic stiffness nonlinearity arising purely from geometry and kinematics. It has been found that under specific impulse excitations the transient damped dynamics of this system tracks a high-frequency impulsive orbit manifold (IOM) in the frequency-energy plane. The IOM extends over finite frequency and energy ranges, consisting of a countable infinity of periodic orbits and an uncountable infinity of quasi-periodic orbits of the underlying Hamiltonian system and being initially at rest and subjected to an impulsive force on the linear oscillator. The damped nonresonant dynamics tracking the IOM then resembles continuous resonance scattering; in effect, quickly transitioning between multiple resonance captures over finite frequency and energy ranges. Dynamic instability arises at bifurcation points along this damped transition, causing bursts in the response of the nonlinear light oscillator, which resemble self-excited resonances. It is shown that for an appropriate parameter design the system remains in a state of sustained high-frequency dynamic instability under the action of repeated impulses. In turn, this sustained instability results in strong energy transfers from the directly excited oscillator to the lightweight nonlinear attachment; a feature that can be employed in energy harvesting applications. The theoretical predictions are confirmed by experimental results.
机译:该报告描述了具有基本(非线性)刚度非线性的两个耦合振荡器系统的脉冲动力学。所考虑的系统由接地的弱阻尼线性振荡器和轻型弱阻尼振荡附件组成,该附件具有基本的立方刚度非线性,纯粹是由几何和运动学引起的。已经发现,在特定的脉冲激励下,该系统的瞬态阻尼动力学在频率-能量平面中跟踪高频脉冲轨道流形(IOM)。 IOM在有限的频率和能量范围内扩展,包括一个可计数的周期性轨道的无穷大和基础哈密顿系统的准周期轨道的不可数的无穷大,并且最初处于静止状态并受到线性振荡器上的冲击力的作用。跟踪IOM的阻尼非共振动力学类似于连续共振散射。实际上,可以在有限的频率和能量范围内在多个共振捕获之间快速转换。动态不稳定性会沿着该阻尼跃迁在分叉点处出现,从而导致非线性光振荡器的响应中出现猝发,类似于自激谐振。结果表明,对于适当的参数设计,系统在反复脉冲的作用下仍保持持续的高频动态不稳定状态。反过来,这种持续的不稳定性会导致能量从直接激发的振荡器转移到轻型的非线性附件。可用于能量收集应用程序的功能。理论预测得到实验结果的证实。

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