结构工程
材料科学
形状记忆合金
磁滞
屈曲
有限元法
各向同性
巴(单位)
合金
刚度
产量(工程)
断裂(地质)
芯(光纤)
复合材料
工程类
物理
量子力学
气象学
作者
Yuan-Zuo Wang,Tianyuan Jiang,Canxing Qiu,Aifang Zhang,Jiawang Liu,Xiuli Du
标识
DOI:10.1088/1361-665x/ad1c3e
摘要
Abstract Miniature buckling-restrained braces (BRBs) have a concise configuration and clear working mechanism. Owing to stable and full hysteresis, miniature BRBs are emerging as favorable energy-dissipating fuse elements in seismic applications. This paper proposes using iron-shape memory alloy (FeSMA) in lieu of conventional steel as the yielding core and focuses on the cyclic behavior. Four specimens, corresponding to four loading protocols, were fabricated and tested. According to experimental data, the miniature FeSMA BRBs exhibited full hysteresis, which is characterized by large damping, noticeable isotropic and kinematic hardening behavior and appreciable post-yield stiffness ratio. The cumulative plastic deformations meet the requirement by ANSI/AISC 341-16. Further, high fidelity finite element models, which explicitly considered damage and fracture rules, were established for numerical simulations. Good agreement can be found between the experimental data and numerical simulations, in terms of failure modes, fracture locations and global hysteresis.
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