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Tuned inerter dampers for civil structures subjected to earthquake ground motions: optimum design and seismic performance

机译:地震地震作用下用于民用建筑的调谐惯性阻尼器:最佳设计和抗震性能

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Tuned inerter damper (TID) is a promising passive vibration control device in earthquake engineering because it achieves a large inertance-to-mass ratio without requiring a large space and thus can effectively decrease the cost. This paper presents a theoretical and numerical study of a structure-TID system subjected to earthquake ground motions. Using the fixed-point theory, we derived simple design formulas for the TID when it attached to a singledegree-of-freedom system subjected to ground acceleration excitations. Analytical and numerical results demonstrate that the optimally designed TID using the proposed parameters is capable of suppressing the displacement response of structures with natural period ranging from 0.3 s to 5 s, and the performance positively relates to the inertance-to-mass ratio used. Particularly, a TID with a large inertance-to-mass ratio can significantly prolong the fundamental period of a structure-TID system, which is similar to a seismic isolation system. The optimally designed TID can effectively mitigate the absolute acceleration response of short-to-moderate period structures, but is far less likely to be effective for long-period structures. It is suggested that a value of less than one is used for the inertance-to-mass ratio of long-period structures if one intended to mitigate both displacement and absolute acceleration responses. In addition, numerical results illustrate that an optimal inertance-to-mass ratio exists when a single TID is applied to a multi-degree-of-freedom building structure. The results also indicate that the emerging TID outperforms the conventional tuned mass damper for seismic response control because the former device introduce no additional seismic energy to the system and is more robust due to large inertance-to-mass ratio used.
机译:调谐式惰性减振器(TID)是地震工程中很有希望的被动振动控制设备,因为它无需大的空间即可实现大的惯性质量比,从而可以有效地降低成本。本文提出了结构TID系统在地震地震动作用下的理论和数值研究。使用定点理论,当TID附着到受到地面加速度激励的单自由度系统时,我们推导了TID的简单设计公式。分析和数值结果表明,使用建议的参数优化设计的TID能够抑制自然周期为0.3 s至5 s的结构的位移响应,并且性能与所使用的惯性质量比成正比。特别是,惯性质量比大的TID可以显着延长结构TID系统的基本周期,类似于地震隔离系统。最佳设计的TID可以有效地减轻短至中周期结构的绝对加速度响应,但是对于长周期结构而言,有效的可能性要小得多。建议如果要减轻位移和绝对加速度响应,则将长周期结构的惯性与质量的比值小于1。此外,数值结果表明,当将单个TID应用于多自由度建筑结构时,存在最佳惯性质量比。结果还表明,新兴的TID在控制地震响应方面优于传统的调谐质量阻尼器,因为前一种设备不会向系统引入额外的地震能量,并且由于使用了较大的惯性质量比,因此更加坚固。

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