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首页> 外文期刊>Structural Control and Health Monitoring >Performance improvement of base isolation systems by incorporating eddy current damping and magnetic spring under earthquakes
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Performance improvement of base isolation systems by incorporating eddy current damping and magnetic spring under earthquakes

机译:通过在地震中结合涡流阻尼和磁弹簧来改善基础隔离系统的性能

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摘要

SummaryAn innovative subsystem with the incorporation of eddy current (EC) damping and magnetic negative stiffness spring (MNSS) is proposed to develop feasible strategies for performance improvement of existing base isolation techniques. The concept of integrating the eddy current damping mechanism and the nonlinear negative stiffness spring is firstly introduced for better energy transition behavior under earthquake excitations. The analytical expressions of the force characteristics of the EC and the MNSS components are presented accordingly, and a parametric study is conducted to evaluate the inherent properties of the integrated magnetic subsystem. To demonstrate the advantages of the EC–MNSS subsystem, an illustrative example of a two‐DOF model simulating both the superstructure and the isolation layer is numerically investigated by adopting two representative isolators and the proposed subsystem. The EC–MNSS subsystem is illustrated to significantly and simultaneously improve the isolation performances in terms of base drift and structural acceleration. The energy exchange and dissipation behavior are further revealed by employing time history analysis and energy‐displacement‐velocity plots. Furthermore, the proposed EC–MNSS subsystem is implemented in a benchmark isolation problem adopting an eight‐story frame structure subjected to bidirectional earthquake excitations. The simulation results indicate the superior and the comparable performances of the integrated isolation system as compared to those of the passive and the control‐augmented isolations, respectively.
机译:总结提出了一种创新的子系统,该子系统结合了涡流(EC)阻尼和磁负刚度弹簧(MNSS),可为改善现有基础隔离技术的性能开发可行的策略。首先介绍了将涡流阻尼机制与非线性负刚度弹簧集成在一起的概念,以在地震激励下实现更好的能量转换行为。相应地给出了EC和MNSS部件的力特性的解析表达式,并进行了参数研究以评估集成磁子系统的固有特性。为了展示EC–MNSS子系统的优势,通过采用两个代表性的隔离器和所提出的子系统,对一个模拟上层建筑和隔离层的双自由度模型的示例进行了数值研究。举例说明了EC–MNSS子系统,可以在基础漂移和结构加速度方面显着并同时提高隔离性能。通过使用时程分析和能量-位移-速度图,进一步揭示了能量交换和耗散行为。此外,提出的EC–MNSS子系统是在基准隔离问题中实施的,该问题采用受到双向地震激励的八层框架结构。仿真结果表明,与无源和控制增强隔离相比,集成隔离系统的性能优越。

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