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Experimental study on the rate-dependency of reinforced concrete structures using slow and real-time hybrid simulations

机译:实时和慢速混合仿真的钢筋混凝土结构速率相关性试验研究

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A great number of studies have been conducted to study the loading rate effect on the behavior of reinforced concrete (RC) structures. A majority of these studies, however, are focused on the component behavior of an RC specimen by imposing a predefined cyclic displacement history on the specimen without considering the interaction of the specimen with the entire structural system. In this study, the rate dependency effect of an RC pier on the global response of a bridge is experimentally investigated using the slow and real-time hybrid simulations. The RC pier is used to support a two-span prestressed concrete girder bridge. The nonlinear response of the bridge under earthquake loads is accounted for by physically testing the RC pier in a laboratory, while the upper structural system of the bridge including the bridge deck and girders are analytically modeled. A dynamic servo-hydraulic actuator is connected to the top of the pier to transfer the inertial force of the bridge deck and girders to the pier. Due to the lack of knowledge in real-time force control, the axial load effect on the dynamic response of the RC pier is not considered in this study. Prior to conducting the hybrid simulations, predefined cyclic displacement tests are conducted for the bridge pier specimens with the same displacement history, but with different rates, in order to investigate any change in strength and energy dissipation capacity of the RC pier. Then, a series of slow and real-time hybrid simulations are conducted to investigate the rate-dependency effect on the seismic response of the bridge. The results from the predefined cyclic displacement tests and hybrid simulations are provided and discussed along with the observation from these tests. (C) 2016 Elsevier Ltd. All rights reserved.
机译:已经进行了大量研究来研究加载速率对钢筋混凝土(RC)结构性能的影响。然而,这些研究中的大多数都通过在样品上施加预定义的循环位移历史而不考虑样品与整个结构系统的相互作用来关注RC样品的部件性能。在这项研究中,RC桥墩对桥梁整体响应的速率依赖性效应是通过慢速和实时混合仿真实验研究的。 RC墩用于支撑两跨预应力混凝土箱梁桥。桥梁在地震荷载下的非线性响应是通过在实验室中对RC墩进行物理测试来解决的,而桥梁的上部结构系统(包括桥面板和大梁)则进行了分析建模。动态伺服液压致动器连接到码头的顶部,以将桥面板和大梁的惯性力传递到码头。由于缺乏实时力控制方面的知识,本研究未考虑轴向荷载对RC墩动力响应的影响。在进行混合模拟之前,对具有相同位移历史但速率不同的桥墩标本进行预定义的循环位移测试,以研究RC墩强度和耗能能力的任何变化。然后,进行一系列慢速和实时混合仿真,以研究速率依赖性对桥梁地震响应的影响。提供并讨论了预定义的循环位移测试和混合仿真的结果以及这些测试的观察结果。 (C)2016 Elsevier Ltd.保留所有权利。

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