揭示由微观不稳定性诱发的模式可变软颗粒晶体

Jongmin Shim, Nidhish Jain
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引用次数: 0

摘要

压缩时,一些软颗粒晶体会发生形态转变。最近的研究揭示了这种转变的基本机制与微观不稳定性密切相关,从而导致对称性破坏。这种有趣的现象使颗粒晶体具有非常规的机械特性,为超材料的潜在应用铺平了道路。然而,目前还没有关于研究其他尚未探索的可转化粒状晶体的一致方法的报道。在这项研究中,我们提出了一种系统的方法来识别一组具有可调声波带隙的新的可模式转换二原子粒状晶体。我们以二元紧密堆积为基础,首先提出了一个可行的粒子排列目录,并考虑了粒子间的运动约束所产生的不稳定性。随后,我们根据上述粒子排列的接触网络构建了简单的质量弹簧模型。为了确定可发生模式转换的颗粒晶体,这些质量弹簧模型被用于线性扰动框架内的不稳定性分析和涉及无限周期配置的准静态分析。通过采用连续元素的详细有限元模型,最终验证了这些所选粒状晶体中确凿的模式转换。此外,通过观察其声波带结构的演变,突出了它们在压缩条件下的模式转变所产生的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Uncovering pattern-transformable soft granular crystals induced by microscopic instability
Upon compression, some soft granular crystals undergo pattern transformation. Recent studies have unveiled that the underlying mechanism of this transformation is closely tied to microscopic instability, resulting in symmetry breaking. This intriguing phenomenon gives rise to unconventional mechanical properties in the granular crystals, paving the way for potential metamaterial application. However, no consistent approach has been reported for studying other unexplored transformable granular crystals. In this study, we propose a systematic approach to identify a new set of pattern-transformable diatomic granular crystals having tunable phononic band-gaps. Utilizing diatomic compact packing as a foundation, we first present a catalog of viable particle arrangements, considering the instability arising from kinematic constraints between articles. Subsequently, simple mass-spring models are constructed based on the contact network of the aforementioned particle arrangements. To identify pattern-transformable granular crystals, these mass-spring models are employed for both instability analyses within the linear perturbation framework and quasi-static analyses involving infinitely-periodic configurations. The conclusive pattern transformation in these chosen granular crystals is ultimately validated through detailed finite element models employing continuum elements. Furthermore, the impact of their pattern transformation under compression is highlighted by observing the evolution in their phononic band structure.
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