机械超材料的冲击动力学:综述与展望

IF 3.5 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Chuanqing Chen , Yulong He , Yuli Chen , Guoxing Lu , Ming-Hui Lu , Xin Li
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引用次数: 0

摘要

机械超材料以其独特的性能,作为航空航天、军事、运输和生物医学应用的轻质、高强度抗冲击解决方案,得到了越来越多的研究。本文综述了近年来在冲击载荷作用下机械超材料的研究进展。根据结构形式,可将四种主要类型的超材料分类为:质量-弹簧系统、杆/梁型、板/壳型和其他特殊类型的超材料。此外,他们预期的能量吸收机制和加载速率相关的力学响应进行了讨论。最后,提出了未来可能的研究方向,包括应变速率与惯性效应、应力波传播、局部冲击、尺寸效应与多尺度效应、多功能设计、人工智能辅助按需设计等。本文重点介绍了下一代抗冲击机械超材料发展的关键策略和创新领域。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Impact dynamics of mechanical metamaterials: A short review and perspective
Mechanical metamaterials, with their unique properties, have been increasingly investigated as lightweight, high‑strength impact‑resistant solutions for aerospace, military, transportation, and biomedical applications. In this paper, recent advanced studies in mechanical metamaterials under impact loads are briefly reviewed. On the basis of structural form, four primary types of metamaterials are categorized: mass-spring system, rod/beam-based, plate/shell-based and other specialized types of metamaterials. Additionally, their intended energy-absorption mechanisms and loading-rate‑dependent mechanical responses are discussed. Finally, potential future research directions are proposed, including studies of strain rate and inertial effects, stress wave propagation, localized impact, size effect and multi-scale effect, multifunctional design and AI-assisted on-demand design. This paper highlights key strategies and areas for innovation in the development of next-generation impact-resistant mechanical metamaterials.
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来源期刊
Forces in mechanics
Forces in mechanics Mechanics of Materials
CiteScore
3.50
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0.00%
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