基于机械元材料的拓极化转换的扣扣-桶对应
Jingyi Zhang1, Jingran Liu1, Anton Souslov2
1IMDEA Materials Institute, Calle Eric Kandel, 2, Getafe, Madrid, 28906, Spain.
Advanced materials (Deerfield Beach, Fla.)
|February 27, 2025
概括
架构的超材料使用受控的不稳定性来实现可预测的机械功能. 灵感来自物理学的新"扣扣-桶对应"预测了材料变形和故障模式.
科学领域:
- 材料机械学 材料机械学
- 超材料科学科学 超材料科学
- 凝聚物质物理类比 凝聚物质物理类比
背景情况:
- 建筑格子和元材料通过受控的不稳定性提供可调整的机械性能.
- 非线性变形,通常被视为故障,可以用于功能应用,如形状变形和能量吸收.
- 凝聚物质物理学中的散体边界对应的概念为理解材料中的拓效应提供了一个框架.
研究的目的:
- 探索建筑元材料中类似的体积边界对应.
- 在负载下,建立材料拓和变形模式 (曲与制) 之间的可预测关系.
- 调查驱动这些拓变形现象的潜在物理机制.
主要方法:
- 对基本光束网络的分析,以了解极化转换.
- 理论建模以预测基于拓学的变形模式.
- 将概念扩展到更复杂的拓和更高的维度.
主要成果:
- 在元材料中发现了一个"扣扣-桶对应",类似于批量-边界对应.
- 一种模式逆转过程控制着全球变形和局部剪切应变.
- 该机制的根源在于光束网络内的极化转换.
结论:
- 扣子-桶对应提供了一个新的范式,用于设计可预测的金属材料的机械反应.
- 这种框架可以通过控制拓不稳定性来指导特定功能材料的工程.
- 这些发现可扩展到非胡克材料,可能预测材料故障.
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