辅助
耐撞性
蜂巢
模块化设计
结构工程
有限元法
材料科学
压力(语言学)
蜂窝结构
变形(气象学)
高原(数学)
分层(地质)
屈曲
铆钉
计算机科学
理论(学习稳定性)
机械工程
消散
过程(计算)
超材料
限制
延展性(地球科学)
可扩展性
能量(信号处理)
材料失效理论
制作
作者
Ye Fu,Yilin Zhu,Kuijian Yang,Chuanzeng Zhang
标识
DOI:10.1142/s175882512550111x
摘要
Auxetic metamaterials process unconventional negative Poisson’s ratio (NPR) and superior mechanical properties, but their complex monolithic designs often rely on costly additive manufacturing (AM), limiting practical applications. To address these challenges, we develop a mortise-and-tenon modular discrete auxetic honeycomb (MDAH-MT) which enables scalable fabrication and structural reconfigurability. In this work, we investigate the plateau stress — a key indicator of crashworthiness — of the MDAH-MT through theoretical analysis and numerical simulations. Based on the underlying deformation mechanisms and the energy method, theoretical models of the plateau stresses under quasi-static compression, low- and high-velocity impacts are established. Finite element (FE) simulations validate these models, showing good agreement with the theoretical predictions. The crashworthiness and structural stability of the MDAH-MT are further evaluated, revealing that it not only provides effective energy absorption but also exhibits superior self-locking stability and transmits lower forces to the protected object compared with other modular discrete energy-absorbing structures. This study provides theoretical foundations for the applications of the MDAH-MT in engineering fields related to crash protection and safety.
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