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Particle Swarm Optimization for Active Structural Control of Highway Bridges Subjected to Impact Loading

机译:冲击载荷作用下的主动桥梁主动结构控制粒子群算法

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摘要

The application of active structural control technology to highway bridge structures subjected to high-impact loadings is investigated. The effects of high-impact loads on infrastructure, like heavy vehicle collisions with bridge piers, have not been studied as much as seismic load effects on structures. Due to this lack of research regarding impact loads and structural control, a focused study on the application of active control devices to infrastructure after impact events can provide valuable results and conclusions. This research applies active structural control to an idealized two-span, continuous girder, concrete highway bridge structure. The idealization of a highway bridge structure as a two degree-of-freedom structural system is used to investigate the effectiveness of control devices installed between the bridge pier and deck, the two degrees of freedom. The control devices are fixed to bracing between the bridge pier and girders and controlled by the proportional-integral-derivative (PID) control. The PID control gains are optimized by both the Ziegler-Nichols ultimate sensitivity method (USM) and a new method for this impact load application called particle swarm optimization (PSO). The controlled time-domain responses are compared to the uncontrolled responses, and the effectiveness of PID control, USM optimization, and PSO is compared for this control device configuration. The results of this investigation show PID control to be effective for minimizing both superstructure and substructure responses of highway bridges after high-impact loads. Deck response reductions of greater than 19% and 37% were seen for displacement and acceleration responses, respectively, regardless of the performance index used to analyze them. PSO was much more effective than USM optimization for tuning PID control gains.
机译:研究了主动结构控制技术在高冲击荷载作用下公路桥梁结构中的应用。高强度载荷对基础设施的影响,例如重型车辆与桥墩的碰撞,尚未像地震载荷对结构的影响那样受到研究。由于缺乏有关冲击载荷和结构控制的研究,在冲击事件发生后对主动控制设备在基础设施上的应用进行集中研究可以提供有价值的结果和结论。这项研究将主动结构控制应用于理想化的两跨连续梁混凝土公路桥梁结构。将公路桥梁结构理想化为两个自由度的结构系统,用于研究安装在桥墩和桥面之间的两个自由度的控制设备的有效性。控制设备固定在桥墩和大梁之间,并通过比例积分微分(PID)控制进行控制。 PID控制增益既可以通过Ziegler-Nichols极限灵敏度方法(USM)来优化,也可以通过这种冲击负荷应用中的一种称为粒子群优化(PSO)的新方法进行优化。将受控时域响应与非受控响应进行比较,并针对此控制设备配置比较PID控制,USM优化和PSO的有效性。研究结果表明,PID控制可有效地减小高冲击荷载后公路桥梁的上部结构和下部结构响应。无论位移和加速度响应如何,甲板响应降低分别超过19%和37%,而与用于分析它们的性能指标无关。在调整PID控制增益方面,PSO比USM优化更有效。

著录项

  • 来源
    《Shock and vibration》 |2018年第7期|4932870.1-4932870.12|共12页
  • 作者单位

    Korea Inst Machinery & Mat, Daegu Res Ctr Med Devices & Rehabil Engn, Daegu 42994, South Korea;

    CBU, Dept Civil Engn & Construct Management, Riverside, CA 92504 USA;

    WPI, Dept Civil & Environm Engn, Worcester, MA 01609 USA;

    Texas Tech Univ, Dept Elect & Comp Engn, Lubbock, TX 79409 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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