基于SMA线缆自复位装置与结构研究进展

RESEARCH PROGRESS ON SMA CABLE-BASED SELF-CENTERING DEVICES AND STRUCTURES

  • 摘要: 形状记忆合金(Shape Memory Alloy, SMA)线缆凭借超弹性特性所形成的旗型滞回,具有优越的自复位能力、良好的耗能性能及足够的承载能力,在地震工程中展现出广阔应用前景。该文系统梳理近年来团队研究工作,对SMA线缆在自复位装置及结构抗震中的应用进展进行了全面总结。从材料层面归纳总结SMA线缆在锚固系统、循环稳定性、温度效应、疲劳性能以及应力松弛与蠕变特性等方面的实验研究成果,揭示SMA线缆力学机理与服役演化规律,指出预拉力保持与训练策略的关键性。围绕SMA线缆自复位支撑构件的创新设计与性能优化,介绍了SMA线缆支撑、SMA线缆-黏弹阻尼自复位支撑、SMA线缆-摩擦复合自复位支撑以及双阶段自复位支撑的构造特征、工作机理及力学性能,建立相应的宏观力学模型与退化模型。在结构层面梳理了基于SMA线缆支撑钢框架结构的抗震性能研究,包括振动台试验验证、数值模拟分析、极罕遇地震下的韧性提升作用以及主-余震序列下的抗倒塌性能评估。该文构建了贯通“材料-构件-结构”的多层次研究框架,为SMA线缆在高性能抗震结构中的工程化应用与规范化设计提供了系统的理论支撑与实验依据。

     

    Abstract: Shape memory alloy (SMA) cables features flag-shaped hysteresis arising from superelasticity, which possesses excellent self-centering capability, good energy dissipation, and high force capacity, demonstrating broad application prospects in earthquake engineering. Systematically summarizes the recent research work conducted by the authors’ group and provides a comprehensive overview of SMA cable applications in self-centering devices and seismic-resilient structures. Experimental investigations on anchorage systems, cyclic stability, temperature effects, fatigue performance, stress relaxation, and creep behavior of SMA cables are summarized, revealing their mechanical mechanisms and time-dependent evolution, and highlighting the roles of prestress retention and training strategies in SMA cables. The innovative designs and performance optimization of SMA cable-based self-centering bracing systems are presented, including pure SMA-cable brace (SMAB), SMA-viscoelastic self-centering brace (SVSCB), SMA-friction self-centering brace (SFSCB), and two-stage self-centering brace (TSSCB). Their configurations, working mechanisms and mechanical behavior are discussed, and corresponding macro-mechanical and degradation models are developed. Furthermore, seismic performance of steel frame structures equipped with SMA cable-based braces is reviewed, covering shaking table tests, numerical simulation, resilience improvement under rare earthquakes, and collapse resistance under mainshock-aftershock sequences. Overall, this study establishes a multi-scale research framework spanning “material-component-structure”, and provides theoretical foundations together with experimental evidence for the engineering application and codified design of high-performance seismic systems employing SMA cables.

     

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