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Vehicle axle load identification on bridge deck with irregular road surface profile

机译:具有不规则路面轮廓的桥面板上的车轴载荷识别

摘要

The vehicular axle load on top of a bridge deck is estimated in this paper including the effect of the road surface roughness which is modeled as a Gaussian random process represented by the Karhunen-Loève expansion. The bridge is modeled as a simply supported planar Euler-Bernoulli beam and the vehicle is modeled by a four degrees-of-freedom mass-spring system. A stochastic force identification algorithm is proposed in which the statistics of the moving interaction forces can be accurately identified from a set of samples of the random responses of the bridge deck. Numerical simulations are conducted in which the Gaussian assumption for the road surface roughness, the response statistics calculation and the stochastic force identification technique for the proposed bridge-vehicle interaction model are verified. Both the effect of the number of samples used and the effect of different road surface profiles on the accuracy of the proposed stochastic force identification algorithm are investigated. Results show that the Gaussian assumption for the road surface roughness is correct and the proposed algorithm is accurate and effective.
机译:本文估算了桥面板顶部的车轴载荷,包括路面粗糙度的影响,该影响建模为以Karhunen-Loève展开为代表的高斯随机过程。桥梁建模为简单支撑的平面Euler-Bernoulli梁,车辆采用四自由度质量弹簧系统建模。提出了一种随机力识别算法,该算法可以从桥面板随机响应的样本集中准确地识别出移动相互作用力的统计数据。进行了数值模拟,验证了所提出的桥梁-车辆相互作用模型的路面粗糙度的高斯假设,响应统计计算和随机力识别技术。既研究了样本数量的影响,又研究了不同路面轮廓对所提出的随机力识别算法精度的影响。结果表明,高斯假设对路面粗糙度是正确的,所提算法是准确有效的。

著录项

  • 作者

    Wu SQ; Law SS;

  • 作者单位
  • 年度 2011
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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