基于物理的磁力学超材料离散模型

IF 5 2区 工程技术 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY Journal of The Mechanics and Physics of Solids Pub Date : 2024-07-06 DOI:10.1016/j.jmps.2024.105759
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引用次数: 0

摘要

磁机械超材料是一种新兴的智能材料,其机械响应可通过结构架构和磁相互作用进行定制。后者为材料设计提供了额外的自由度,并由于其非局部性而产生新的行为。丰富的功能为致动器、能量吸收器和软机器人等各种应用提供了新的可能性。然而,弹性力和磁力之间的非线性和非局部耦合给这些系统的建模和仿真带来了巨大挑战,进一步阻碍了基于理论的合理设计策略。在此,我们重点研究一类由嵌入刚性永磁体的弹性固体组成的磁力学超材料。弹性力和磁力之间的明确分离简化了设计和制造过程,但它们之间的非局部相互作用仍能产生复杂的行为。通过将弹性固体的晶格弹簧模型与磁相互作用的偶极子模型相结合,并在 LAMMPS 分子动力学软件中加以实现,我们提出了针对此类磁机械超材料的模拟框架。我们通过模拟一些具有代表性的结构,包括形状锁定晶格超材料、具有可控屈曲的软蜂窝固体和具有相变行为的超材料链,展示了我们的框架的能力。对于形状锁定晶格超材料,我们成功捕捉到了磁驱动的重新配置和弯曲晶格的非线性机械响应。对于软细胞固体,我们确定了其在外部非均匀磁场下的屈曲模式,并模拟了与实验一致的屈曲演化过程。对于超材料链,我们包含了嵌入磁体之间的强长程相互作用,并重现了实验中的可控相变。我们的工作提供了一种简单而通用的模拟方法,用于研究强内外磁力作用下的非线性力学行为,这将有助于磁力学材料的设计和分析。它还可应用于其他磁驱动智能结构,如软机器人。
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Physics-based discrete models for magneto-mechanical metamaterials

Magneto-mechanical metamaterials are emerging smart materials whose mechanical responses can be tailored through structure architecture and magnetic interactions. The latter provides additional freedom in the material design space and leads to novel behaviors due to its nonlocal nature. The enriched functionalities open new possibilities in various applications, such as actuators, energy absorbers, and soft robots. However, the nonlinear and nonlocal coupling between elastic and magnetic forces poses a great challenge in the modeling and simulation of these systems, further hindering theory-based rational design strategies. Here, we focus on a class of magneto-mechanical metamaterials comprising elastic solids embedded with rigid permanent magnets. The clear separation between elastic and magnetic forces simplifies the design and fabrication process, yet their nonlocal interplay still allows for complex behaviors. We present a simulation framework for such magneto-mechanical metamaterials by combining a lattice spring model for the elastic solid with the dipole model for the magnetic interactions and implementing it in the LAMMPS molecular dynamics software. We demonstrate the capabilities of our framework by simulating a few representative structures, including shape-locking lattice metamaterials, a soft cellular solid with controllable buckling, and a metamaterial chain with phase-transforming behavior. For the shape-locking lattice metamaterials, we successfully capture the magnetic-actuation-driven reconfiguration and the nonlinear mechanical response of the curved lattices. For the soft cellular solid, we identify its buckling patterns under external non-uniform magnetic fields and simulate a buckling evolution process consistent with experiments. For the metamaterial chain, we include the strong long-range interactions among the embedded magnets and reproduce the controllable phase transitions in the experiments. Our work provides a simple yet versatile simulation methodology to investigate the nonlinear mechanical behaviors in the presence of strong external and internal magnetic forces, which will facilitate the design and analysis of magneto-mechanical materials. It can also be applied to other magnetically-driven smart structures, such as soft robots.

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来源期刊
Journal of The Mechanics and Physics of Solids
Journal of The Mechanics and Physics of Solids 物理-材料科学:综合
CiteScore
9.80
自引率
9.40%
发文量
276
审稿时长
52 days
期刊介绍: The aim of Journal of The Mechanics and Physics of Solids is to publish research of the highest quality and of lasting significance on the mechanics of solids. The scope is broad, from fundamental concepts in mechanics to the analysis of novel phenomena and applications. Solids are interpreted broadly to include both hard and soft materials as well as natural and synthetic structures. The approach can be theoretical, experimental or computational.This research activity sits within engineering science and the allied areas of applied mathematics, materials science, bio-mechanics, applied physics, and geophysics. The Journal was founded in 1952 by Rodney Hill, who was its Editor-in-Chief until 1968. The topics of interest to the Journal evolve with developments in the subject but its basic ethos remains the same: to publish research of the highest quality relating to the mechanics of solids. Thus, emphasis is placed on the development of fundamental concepts of mechanics and novel applications of these concepts based on theoretical, experimental or computational approaches, drawing upon the various branches of engineering science and the allied areas within applied mathematics, materials science, structural engineering, applied physics, and geophysics. The main purpose of the Journal is to foster scientific understanding of the processes of deformation and mechanical failure of all solid materials, both technological and natural, and the connections between these processes and their underlying physical mechanisms. In this sense, the content of the Journal should reflect the current state of the discipline in analysis, experimental observation, and numerical simulation. In the interest of achieving this goal, authors are encouraged to consider the significance of their contributions for the field of mechanics and the implications of their results, in addition to describing the details of their work.
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