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Seismic response of steel frame structures with hybrid passive control systems

机译:混合动力被动控制系统对钢框架结构的地震响应

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The concept of the hybrid passive control system is studied analytically by investigating the seismic response of steel frame structures. Hybrid control systems consist of two different passive elements combined into a single device or system. The hybrid systems investigated in this research consist of a rate-dependent damping device paired with a rate-independent energy dissipation element. The innovative configurations exploit individual element strengths and offset their weaknesses through multiphased behavior. A nine-story, five-bay steel moment-frame was used for the analysis. Six different seismic resisting systems were analyzed and compared. The conventional systems included a special moment-resisting frame (SMRF) and a dual SMRF-buckling-restrained brace (BRB) system. The final four configurations are hybrid passive systems. The different hybrid configurations utilize a BRB and either a high-damping rubber damper or viscous fluid damper. The analyses were run in the form of an incremental dynamic analysis. Several damage measures were calculated, including maximum roof drift, base shear, and total roof acceleration. The results demonstrate the capability of hybrid passive control systems to improve structural response compared with conventional lateral systems and to be effective for performance-based seismic design. Each hybrid configuration improved some aspect of structural response with some providing benefits for multiple damage measures. The multiphased nature provides improved response for frequent and severe seismic events.
机译:通过研究钢框架结构的地震响应,对混合型被动控制系统的概念进行了分析研究。混合控制系统由两个不同的无源元件组成,它们组合成一个设备或系统。在这项研究中研究的混合动力系统由与速率无关的阻尼装置和与速率无关的能量耗散元件配对组成。创新的配置可利用各个元素的优势,并通过多阶段行为来弥补其劣势。分析使用了一个九层五托架的钢制框架。分析并比较了六个不同的抗震系统。传统系统包括一个特殊的抗力矩框架(SMRF)和一个双SMRF屈曲约束支撑(BRB)系统。最后四种配置是混合被动系统。不同的混合动力配置利用BRB和高阻尼橡胶阻尼器或粘性流体阻尼器。分析以增量动态分析的形式运行。计算了几种破坏措施,包括最大屋顶位移,基础剪力和总屋顶加速度。结果表明,与传统的横向系统相比,混合动力无源控制系统能够改善结构响应,并且对于基于性能的抗震设计有效。每种混合配置均改善了结构响应的某些方面,并为多种破坏措施提供了好处。多相性质可改善对频繁和严重地震事件的响应。

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