低周疲劳和非弹性屈曲对NiTi SMA钢筋超弹性和耗能能力的影响。

IF 2.4 3区 材料科学 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY
Ali Mohammadgholipour, Ahm Muntasir Billah
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引用次数: 0

摘要

超弹性NiTi形状记忆合金(SMA)钢筋由于其优异的超弹性和能量耗散性能,已成为混凝土桥墩结构工程应用的引人注目的材料。结合NiTi SMA钢筋可以有效地耗散地震能量,同时最大限度地减少结构损伤,从而增强结构抗地震荷载的弹性。然而,在拉压缩循环载荷下,NiTi SMA钢筋会发生应变逆转,导致屈曲和潜在的低周疲劳(LCF)失效。考虑不同强度、直径和长细比(L/D),研究了NiTi SMA钢筋在拉压循环加载下的LCF行为。研究结果表明,与长细比较低的螺纹钢相比,长细比较高的NiTi SMA螺纹钢由于屈曲而加速了LCF破坏,导致其机械性能在较少的循环次数后恶化。此外,研究表明,应变幅值和长细比对NiTi SMA钢筋的总能量耗散和残余应变有影响。具体而言,增加长细比和应变幅值会降低总能量耗散,增加残余应变,强调非弹性屈曲对NiTi SMA钢筋LCF行为的显著影响。最后,建立了不同长细比的NiTi SMA钢筋在不同应变幅值的拉压缩循环加载下的能量耗散和残余应变预测方程。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effects of low cycle fatigue and inelastic buckling on the superelasticity and energy dissipation capacity of NiTi SMA rebar.

Superelastic NiTi Shape Memory Alloy (SMA) rebars have emerged as compelling materials for structural engineering applications in concrete bridge piers, owing to their superior superelastic and energy dissipation properties. Incorporating NiTi SMA rebars enhances structural resilience against seismic loads by enabling effective earthquake energy dissipation while minimizing structural damage. However, under tension-compression cyclic loads, NiTi SMA rebars are subjected to strain reversals, leading to buckling and potential low cycle fatigue (LCF) failure. This study investigates the LCF behavior of NiTi SMA rebars under tension-compression cyclic loading, considering various strengths, diameters, and slenderness ratios (L/D). The findings indicate that NiTi SMA rebars with higher slenderness ratios experience accelerated LCF failure due to buckling, leading to deteriorated mechanical properties after fewer cycles compared to rebars with lower slenderness ratios. Moreover, the study reveals that total energy dissipation and residual strain of NiTi SMA rebars are influenced by strain amplitudes and slenderness ratios. Specifically, increasing the slenderness ratio and strain amplitude results in decreased total energy dissipation and increased residual strain, underscoring the significant impact of inelastic buckling on the LCF behavior of NiTi SMA rebars. Finally, equations are presented for the prediction of energy dissipation and residual strain of NiTi SMA rebars with different slenderness ratios under tension compression cyclic loading with different strain amplitudes.

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来源期刊
Journal of Intelligent Material Systems and Structures
Journal of Intelligent Material Systems and Structures 工程技术-材料科学:综合
CiteScore
5.40
自引率
11.10%
发文量
126
审稿时长
4.7 months
期刊介绍: The Journal of Intelligent Materials Systems and Structures is an international peer-reviewed journal that publishes the highest quality original research reporting the results of experimental or theoretical work on any aspect of intelligent materials systems and/or structures research also called smart structure, smart materials, active materials, adaptive structures and adaptive materials.
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