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Frequency- and Amplitude-Dependent Transmission of Stress Waves in Curved One-Dimensional Granular Crystals Composed of Diatomic Particles

机译:双原子粒子组成的弯曲一维颗粒状晶体中应力波的频率和振幅相关传输

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We study the stress wave propagation in curved chains of particles (granular crystals) confined by bent elastic guides. We report the frequency- and amplitude-dependent filtering of transmitted waves in relation to various impact conditions and geometrical configurations. The granular crystals studied consist of alternating cylindrical and spherical particles pre-compressed with variable static loads. First, we excite the granular crystals with small-amplitude, broadband perturbations using a piezoelectric actuator to generate oscillatory elastic waves. We find that the linear frequency spectrum of the transmitted waves creates pass- and stop-bands in agreement with the theoretical dispersion relation, demonstrating the frequency-dependent filtering of input excitations through the diatomic granular crystals. Next, we excite high-amplitude nonlinear pulses in the crystals using striker impacts. Experimental tests verify the formation and propagation of highly nonlinear solitary waves that exhibit amplitude-dependent attenuation. We show that the wave propagation can be easily tuned by manipulating the pre-compression imposed to the chain or by varying the initial curvature of the granular chains. We use a combined discrete element (DE) and finite element (FE) numerical model to simulate the propagation of both dispersive linear waves and compactly-supported highly nonlinear waves. We find that the tunable, frequency- and amplitude-dependent filtering of the incoming signals results from the close interplay between the granular particles and the soft elastic media. The findings in this study suggest that hybrid structures composed of granular particles and linear elastic media can be employed as new passive acoustic filtering materials that selectively transmit or mitigate excitations in a desired range of frequencies and amplitudes.
机译:我们研究了应力波在弯曲弹性导向装置限制下的颗粒(粒状晶体)弯曲链中的传播。我们报告了与各种冲击条件和几何构造有关的,与频率和振幅有关的透射波滤波。研究的粒状晶体由交替的圆柱形和球形颗粒组成,这些颗粒预先以可变的静载荷压缩。首先,我们使用压电致动器激发具有小振幅,宽带扰动的粒状晶体,以产生振荡弹性波。我们发现,传输波的线性频谱与理论色散关系相一致地创建了通带和阻带,这说明了通过双原子颗粒晶体对输入激发进行频率相关的滤波。接下来,我们利用撞针冲击激发晶体中的高振幅非线性脉冲。实验测试验证了呈现出幅度相关衰减的高度非线性孤波的形成和传播。我们表明,可以通过操纵施加到链上的预压缩或通过更改颗粒链的初始曲率来轻松调整波传播。我们使用组合的离散元素(DE)和有限元(FE)数值模型来模拟色散线性波和紧密支撑的高度非线性波的传播。我们发现,输入信号的可调,与频率和幅度有关的滤波是颗粒状颗粒与软弹性介质之间紧密相互作用的结果。这项研究中的发现表明,由颗粒和线性弹性介质组成的混合结构可以用作新的无源声滤波材料,以选择性地传输或减轻所需频率和振幅范围内的激励。

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