高体积模量五模态:三维金属水

IF 4.3 3区 工程技术 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Giacomo Brambilla, Sebastiano Cominelli, Marco Verbicaro, Gabriele Cazzulani, Francesco Braghin
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引用次数: 0

摘要

尽管声子晶体领域取得了重大进展,但在三维空间中复制液体行为的声学元流体的发展仍然难以捉摸。例如,水-典型的五模态(PM)材料-具有比当前最先进的PM高两个数量级的体积模量。对低剪切模量的需求与对高体积模量和密度的需求是内在冲突的。在这封信中,我们阐明了现有PM几何形状的局限性,并为构成网络的链接提出了一种创新的形状。受绳索运动学的启发,这些链接由薄纤维构成,并展示了制造具有类似液体特性的pm的潜力。作为一个典型的例子,我们提出了第一种超材料的设计,它完全配得上3D金属水的名字,因为它在低频区域的声学特性与水无法区分。此外,我们在晶格色散图中突出了剪切带隙,并说明了几何参数对高频动态特性的影响。这种新颖的元流体设计为需要各向异性材料的应用带来了希望,如声学透镜、波导和斗篷。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
High bulk modulus pentamodes: the three-dimensional metal water
Despite significant advances in the field of phononic crystals, the development of acoustic metafluids that replicate the behaviour of liquids in three dimensions remains elusive. For instance, water – the quintessential pentamode (PM) material – has a bulk modulus two orders of magnitude higher than current state-of-the-art PMs. The need for a low shear modulus inherently conflicts with the desire of high bulk modulus and density. In this letter, we shed light on the limitations of existing PM geometries and propose an innovative shape for the links that constitute the network. Inspired by the kinematics of ropes, these links are constructed from thin fibres and demonstrate the potential to create PMs with properties akin to those of liquids. As a prime example, we propose the design of the first metamaterial that fully deserves the name 3D metal water, since its acoustic properties in the low frequency regime are indistinguishable from water. Additionally, we highlight a shear band gap in the lattice dispersion diagram, and illustrate the influence of geometric parameters on the dynamic properties at higher frequencies. This novel design of metafluids holds promise for applications requiring anisotropic materials such as acoustic lenses, waveguides, and cloaks.
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来源期刊
Extreme Mechanics Letters
Extreme Mechanics Letters Engineering-Mechanics of Materials
CiteScore
9.20
自引率
4.30%
发文量
179
审稿时长
45 days
期刊介绍: Extreme Mechanics Letters (EML) enables rapid communication of research that highlights the role of mechanics in multi-disciplinary areas across materials science, physics, chemistry, biology, medicine and engineering. Emphasis is on the impact, depth and originality of new concepts, methods and observations at the forefront of applied sciences.
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