Performance and optimal design of base‐isolated structures with clutching inerter damper

R. S. Jangid
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引用次数: 6

Abstract

The performance and optimal design of the base‐isolated structure supplemented with clutching inerter damper (CID) subjected to seismic loading are investigated. Because of the nonlinear force‐deformation behavior of the CID, the stochastic response of the isolated structure subjected to nonstationary earthquake excitation is obtained using the time‐dependent equivalent linearization technique. To investigate the effects of nonstationary earthquake characteristics, the isolated structure's nonstationary response is compared to the corresponding stationary response. For a given isolated structural system and excitation, there exists an optimum value of the CID inertance at which the root mean square absolute acceleration of the superstructure achieves a minimum value. The effects of key parameters like superstructure flexibility, isolation period, and isolation damping ratio on the CID's optimal inertance are examined. The seismic response of base‐isolated structures is also obtained under real earthquakes using the nonlinear model of the CID. The effects of the CID on the response of isolated structures under real earthquakes were found to be well correlated with those of stochastic analysis. Finally, for the approximate response and initial design of base‐isolated structures, a closed‐form expression for the equivalent damping of the CID is proposed. Using the equivalent inertance and damping of the CID, the bearing displacements and forces of isolated structures with the CID were found to be matching with that obtained by the nonlinear analysis. However, there can be an error in the prediction of structural acceleration and force in the CID by using this equivalent approach.
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夹紧式阻尼器隔基结构的性能与优化设计
研究了在地震荷载作用下,附加夹紧式阻尼器(CID)的基础隔震结构的性能和优化设计。由于隔震结构的非线性力-变形特性,采用时间相关等效线性化技术获得了隔震结构在非平稳地震激励下的随机响应。为了研究非平稳地震特征的影响,将隔震结构的非平稳响应与相应的平稳响应进行了比较。对于给定的孤立结构系统和激励,存在一个最优CID惯性值,使上部结构的绝对加速度均方根达到最小值。研究了上部结构柔度、隔振周期、隔振阻尼比等关键参数对隔振器最优惰性的影响。利用CID的非线性模型,得到了基础隔震结构在实际地震作用下的地震反应。发现CID对实际地震下孤立结构响应的影响与随机分析的影响具有良好的相关性。最后,针对隔基结构的近似响应和初始设计,提出了隔基结构等效阻尼的封闭表达式。利用CID的等效惯性和阻尼,发现具有CID的隔离结构的轴承位移和力与非线性分析的结果相匹配。然而,使用这种等效方法在CID中预测结构加速度和力时可能存在误差。
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