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Complex Contact-Based Dynamics of Microsphere Monolayers Revealed by Resonant Attenuation of Surface Acoustic Waves

机译:基于表面声波共振衰减的微球单分子层复合接触动力学

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摘要

Contact-based vibrations play an essential role in the dynamics of granular materials. Significant insights into vibrational granular dynamics have previously been obtained with reduced-dimensional systems containing macroscale particles. We study contact-based vibrations of a two-dimensional monolayer of micron-sized spheres on a solid substrate that forms a microscale granular crystal. Measurements of the resonant attenuation of laser-generated surface acoustic waves reveal three collective vibrational modes that involve displacements and rotations of the microspheres, as well as interparticle and particle-substrate interactions. To identify the modes, we tune the interparticle stiffness, which shifts the frequency of the horizontal-rotational resonances while leaving the vertical resonance unaffected. From the measured contact resonance frequencies we determine both particle-substrate and interparticle contact stiffnesses and find that the former is an order of magnitude larger than the latter. This study paves the way for investigating complex contact-based dynamics of microscale granular crystals and yields a new approach to studying micro- to nanoscale contact mechanics in multiparticle networks.
机译:基于接触的振动在粒状材料的动力学中起着至关重要的作用。以前已经使用包含大尺度粒子的降维系统获得了对振动颗粒动力学的重要见解。我们研究了微米级球的二维单层在固体基质上形成微米级颗粒晶体的基于接触的振动。激光产生的表面声波的共振衰减的测量揭示了三种共同的振动模式,这些模式涉及微球的位移和旋转以及粒子间和粒子与底物之间的相互作用。为了识别这些模式,我们调整了粒子间的刚度,这改变了水平旋转共振的频率,而垂直共振不受影响。根据测得的接触共振频率,我们可以确定颗粒与基材之间以及颗粒间的接触刚度,并发现前者比后者大一个数量级。这项研究为研究基于复杂接触的微米级颗粒晶体动力学铺平了道路,并为研究多粒子网络中的微米至纳米级接触力学提供了一种新方法。

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