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Optimal Discrete-Time Compensation Design for Real-Time Hybrid Simulation

机译:实时混合仿真的最佳离散补偿设计

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摘要

Real-Time Hybrid Simulation (RTHS) is a powerful and cost-effective dynamic experimental technique. In civil engineering, RTHS has the advantage of investigating the dynamic behavior of full-scale and complex structures by testing only the critical components. To implement a stable and accurate RTHS, the time delay in the experiment loop needs to be compensated. This delay is mostly introduced by servo-hydraulic actuator dynamics and can be reduced by applying appropriate compensators. Several existing compensators have demonstrated effective performance in reducing the actuator time delay. But most of them have been applied only in cases where the structure under investigation is subjected to inputs with relatively low-frequency content such as earthquake motion. To make RTHS an attractive technique for engineering applications with broader excitation frequency, a discrete-time feedforward compensator is developed via various optimization techniques to enhance the performance of RTHS. The effectiveness of the proposed compensator is demonstrated through both numerical and experimental studies.;The proposed compensators are successfully applied to RTHS tests to study the seismic behavior of a linear-elastic reinforced concrete building equipped with a new type of tuned mass damper, known as the Disruptive Tuned Mass (DTM) damper designed by the National Aeronautics and Space Administration (NASA). The obtained results show that the proposed compensator reduces the time delay adequately and leads to a successful RTHS test. Results also suggest that the DTM damper can successfully reduce the response of the building subjected to the seismic loads. In addition, the dynamic properties of the DTM damper are fully investigated and a mathematical model is suggested for it.
机译:实时混合仿真(RTHS)是一种功能强大且经济高效的动态实验技术。在土木工程中,RTHS的优势是仅通过测试关键部件来研究大型和复杂结构的动态行为。为了实现稳定且准确的RTHS,需要补偿实验循环中的时间延迟。这种延迟主要是由伺服液压执行器动力学引起的,可以通过应用适当的补偿器来减少。现有的几种补偿器已证明在减少执行器时间延迟方面具有有效性能。但是,大多数方法仅在所研究的结构受到诸如地震运动等具有相对较低频率含量的输入的情况下应用。为了使RTHS成为具有更宽激励频率的工程应用的诱人技术,通过各种优化技术开发了离散时间前馈补偿器,以增强RTHS的性能。通过数值和实验研究证明了所提出的补偿器的有效性。所提出的补偿器已成功地用于RTHS测试中,以研究装有新型调谐质量阻尼器的线性弹性钢筋混凝土建筑的抗震性能。美国国家航空航天局(NASA)设计的破坏性调谐质量(DTM)阻尼器。获得的结果表明,所提出的补偿器充分减少了时间延迟,并成功进行了RTHS测试。结果还表明,DTM阻尼器可以成功降低建筑物在地震荷载作用下的响应。此外,还对DTM阻尼器的动态特性进行了充分研究,并为其建立了数学模型。

著录项

  • 作者

    Hayati, Saeid.;

  • 作者单位

    The University of Alabama.;

  • 授予单位 The University of Alabama.;
  • 学科 Civil engineering.
  • 学位 Ph.D.
  • 年度 2017
  • 页码 118 p.
  • 总页数 118
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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