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Real-time seismic hybrid simulation procedures for reliable structural performance testing.

机译:实时地震混合仿真程序,用于可靠的结构性能测试。

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摘要

The increased need for experimental verification of the seismic performance of conventional and novel structural systems has resulted in highly sophisticated dynamic test procedures. Hybrid simulation, including pseudo-dynamic testing of experimental substructures, offers an efficient method for assessment of dynamic and rate-dependent behavior of large-scale structural systems subjected to earthquake excitation. Compared to earthquake simulations using shake tables, hybrid simulation may have significant advantages in terms of cost, scale, geometry, and required physical mass of structures and components that can be tested. However, recent hybrid simulations have been limited to simplified structural models with only a few degrees of freedom. This is primarily due to the fact that hybrid simulation is a relatively new test method that is still being improved through research. Currently, the major challenges for using hybrid simulation in large and complex structural systems are the lack of robust simulation algorithms, and the sensitivity of the results to experimental errors in the presence of high-frequency modes. The main motivation for this research is to develop reliable test procedures that can be easily applied to fast and real-time hybrid simulations of large and complex structural systems. It is also attempted to develop test procedures that are effective for geographically distributed hybrid simulations.; In this dissertation, recent developments to improve the accuracy and stability of hybrid simulation are described using the state-of-the-art pseudo-dynamic hybrid simulation system at the Structural Engineering and Earthquake Simulation Laboratory, University at Buffalo. In particular, delay compensation procedures are examined, and new methods are proposed. These methods are based on the correction of tracking errors in force measurement signal, and using the numerical integration procedure for prediction and compensation of command displacement signal. A new online procedure is proposed for estimation of delay during the simulation, and is shown to have better performance compared to existing online delay estimation methods. Furthermore, two numerical integration procedures are introduced for hybrid simulation, which are shown to improve the stability and accuracy properties of the simulation. The proposed integration algorithms use experimental measurements to iterate within implicit scheme and also take advantage of a new approach to estimate the tangent stiffness matrix of experimental substructures. For assessment of the reliability of hybrid simulation results, energy-based error monitors are proposed to examine the severity of experimental and numerical errors. These measures are then used to demonstrate the improved accuracy offered by new algorithms proposed here through analytical and numerical studies, and numerical and experimental simulations.
机译:对常规和新型结构系统的抗震性能进行实验验证的需求不断增加,导致了高度复杂的动态测试程序。混合仿真,包括对实验子结构的拟动力测试,为评估遭受地震激励的大型结构系统的动力和速率相关行为提供了一种有效的方法。与使用振动台的地震模拟相比,混合模拟在成本,规模,几何形状以及可测试的结构和组件所需的物理质量方面可能具有显着优势。但是,最近的混合仿真仅限于只有几个自由度的简化结构模型。这主要是由于以下事实:混合仿真是一种相对较新的测试方法,目前仍在通过研究加以改进。当前,在大型和复杂的结构系统中使用混合仿真的主要挑战是缺乏鲁棒的仿真算法,以及在高频模式下结果对实验误差的敏感性。这项研究的主要动机是开发可靠的测试程序,这些程序可以轻松地应用于大型和复杂结构系统的快速实时混合仿真。还尝试开发对地理分布混合仿真有效的测试程序。本文利用布法罗大学结构工程与地震模拟实验室最新的伪动态混合仿真系统描述了提高混合仿真精度和稳定性的最新进展。特别是,研究了延迟补偿程序,并提出了新的方法。这些方法基于力测量信号中跟踪误差的校正,并使用数值积分程序来预测和补偿指令位移信号。提出了一种新的在线过程来估计仿真过程中的延迟,与现有的在线延迟估计方法相比,该方法具有更好的性能。此外,为混合仿真引入了两种数值积分程序,这些程序可以提高仿真的稳定性和准确性。提出的集成算法使用实验测量值在隐式方案中进行迭代,并且还利用新方法来估计实验子结构的切线刚度矩阵。为了评估混合仿真结果的可靠性,提出了基于能量的错误监视器,以检查实验和数字错误的严重性。然后,这些措施用于通过分析和数值研究以及数值和实验模拟来证明此处提出的新算法所提供的更高的准确性。

著录项

  • 作者

    Ahmadizadeh, Mehdi.;

  • 作者单位

    State University of New York at Buffalo.$bCivil, Structural and Environmental Engineering.;

  • 授予单位 State University of New York at Buffalo.$bCivil, Structural and Environmental Engineering.;
  • 学科 Engineering Civil.; Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 271 p.
  • 总页数 271
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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