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首页> 外文期刊>Journal of Computing in Civil Engineering >Computational Tool for Real-Time Hybrid Simulation of Seismically Excited Steel Frame Structures
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Computational Tool for Real-Time Hybrid Simulation of Seismically Excited Steel Frame Structures

机译:地震激励钢框架结构实时混合仿真的计算工具

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摘要

Real-time hybrid simulation (RTHS) offers an economical and reliable methodology for testing integrated structural systems with rate-dependent behaviors. Within a RTHS implementation, critical components of the structural system under evaluation are physically tested, while more predictable components are replaced with computational models under a one-to-one timescale execution. As a result, RTHS implementations provide a more economical and versatile alternate approach to evaluating structural/rate-dependent systems under actual dynamic and inertial conditions, without the need for full-scale structural testing. One significant challenge in RTHS is the accurate representation of the physical complexities within the computational counterparts. For RTHS, the requirement for computational environments with reliable modeling and real-time execution capabilities is critical. Additionally, the need of a flexible environment for implementation and easy integration of such platforms with remaining RTHS components has also been established. An open-source computational platform, RT-Frame2D, for the RTHS of dynamically excited steel frame structures has been developed to satisfy these demands. The computational platform includes both adequate modeling capabilities for the nonlinear dynamic analysis of steel frame structures under real-time execution, and a versatile design to allow its efficient integration within a RTHS framework. Comparisons of RT-Frame2D modeling capabilities with those of a well-known simulation tool, in addition to challenging experimental implementations based on several RTHS scenarios, are performed herein to verify the accuracy, stability, and real-time execution performance of the proposed computational platform.
机译:实时混合仿真(RTHS)提供了一种经济可靠的方法来测试具有速率相关行为的集成结构系统。在RTHS实施方案中,对被评估结构系统的关键组件进行了物理测试,而在一对一的时间尺度执行下,更多可预测的组件被计算模型所取代。结果,RTHS实施方案提供了一种更经济和通用的替代方法,可以在实际的动态和惯性条件下评估结构/速率相关的系统,而无需进行全面的结构测试。 RTHS的一项重大挑战是在计算对象中如何准确表示物理复杂性。对于RTHS,对具有可靠建模和实时执行功能的计算环境的要求至关重要。另外,还需要灵活的环境来实现这些平台以及将其与剩余的RTHS组件轻松集成。为了满足这些需求,已经开发了用于动态激励钢框架结构RTHS的开源计算平台RT-Frame2D。该计算平台包括用于实时执行下钢框架结构非线性动态分析的适当建模功能,以及允许其在RTHS框架内高效集成的通用设计。除了基于几个RTHS场景的具有挑战性的实验实现之外,本文还对RT-Frame2D建模功能与著名的仿真工具进行了比较,以验证所提出的计算平台的准确性,稳定性和实时执行性能。

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