Assessment of Earthquake Performance of Structures by Hybrid Simulation

A. Elnashai, H. Mahmoud
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Abstract

With current rapid growth of cities and the move toward the development of both sustainable and resilient infrastructure systems, it is vital for the structural engineering community to continue to improve their knowledge in earthquake engineering to limit infrastructure damage and the associated social and economic impacts. Historically, the development of such knowledge has been accomplished through the deployment of analytical simulations and experimental testing. Experimental testing is considered the most accurate tool by which local behavior of components or global response of systems can be assessed, assuming the test setup is realistically configured and the experiment is effectively executed. However, issues of scale, equipment capacity, and availability of research funding continue to hinder full-scale testing of complete structures. On the other hand, analytical simulation software is limited to solving specific type of problems and in many cases fail to capture complex behaviors, failure modes, and collapse of structural systems. Hybrid simulation has emerged as a potentially accurate and efficient tool for the evaluation of the response of large and complex structures under earthquake loading. In hybrid (experiment-analysis) simulation, part of a structural system is experimentally represented while the rest of the structure is numerically modeled. Typically, the most critical component is physically represented. By combining a physical specimen and a numerical model, the system-level behavior can be better quantified than modeling the entire system purely analytically or testing only a component. This article discusses the use of hybrid simulation as an effective tool for the seismic evaluation of structures. First, a chronicled development of hybrid simulation is presented with an overview of some of the previously conducted studies. Second, an overview of a hybrid simulation environment is provided. Finally, a hybrid simulation application example on the response of steel frames with semi-rigid connections under earthquake excitations is presented. The simulations included a full-scale physical specimen for the experimental module of a connection, and a 2D finite element model for the analytical module. It is demonstrated that hybrid simulation is a powerful tool for advanced assessment when used with appropriate analytical and experimental realizations of the components and that semi-rigid frames are a viable option in earthquake engineering applications.
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基于混合模拟的结构抗震性能评估
随着当前城市的快速发展以及可持续和弹性基础设施系统的发展,结构工程界必须继续提高他们在地震工程方面的知识,以限制基础设施的破坏和相关的社会和经济影响。历史上,这种知识的发展是通过分析模拟和实验测试的部署来完成的。实验测试被认为是最准确的工具,通过它可以评估组件的局部行为或系统的整体响应,假设测试设置是现实的配置和实验有效地执行。然而,规模、设备能力和研究资金的可用性问题继续阻碍完整结构的全面测试。另一方面,分析模拟软件仅限于解决特定类型的问题,并且在许多情况下无法捕获结构系统的复杂行为,失效模式和崩溃。混合模拟已成为评估大型复杂结构在地震荷载作用下的反应的一种潜在的准确和有效的工具。在混合(实验-分析)模拟中,结构系统的一部分用实验表示,其余部分用数值模拟。通常,最关键的组件是物理表示的。通过结合物理样本和数值模型,系统级行为可以比纯分析建模或仅测试一个组件更好地量化整个系统。本文讨论了混合模拟作为一种有效的结构抗震评估工具的应用。首先,混合模拟的一个编年史的发展,提出了一些以前进行的研究的概述。其次,对混合仿真环境进行了概述。最后,给出了半刚性连接钢框架在地震作用下响应的混合仿真应用实例。模拟包括连接实验模块的全尺寸物理试样和分析模块的二维有限元模型。结果表明,当混合模拟与适当的构件分析和实验实现相结合时,混合模拟是一种强大的高级评估工具,半刚性框架在地震工程应用中是一种可行的选择。
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