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Structural flexibility identification and fast-Bayesian-based uncertainty quantification of a cable-stayed bridge

机译:基于斜拉桥的结构灵活性识别和基于快速的贝叶斯的不确定性量化

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摘要

Most current uncertainty analyses are limited to the basic modal parameters such as frequencies and mode shapes, which are not enough to evaluate structural performance. In order to quantify the uncertainty of the deep parameters, a quantitative technique combining the mass-changing strategy and the fast Bayesian fast Fourier transform (FFT) approach is proposed. Basic modal parameters and their variance and coefficient of variation (c.o.v) are obtained from the fast Bayesian FFT approach, which only uses the ambient testing data. Deep parameters (scaling factor and flexibility matrix) are calculated on the mass-changing strategy. On this basis, the uncertainty quantification of deep parameters is strictly derived by the first-order expansion and used to predict the confidence interval of deflection. In this study, a static load testing of the Sutong Bridge is utilized to verify the effectiveness and reliability of the proposed uncertainty quantification technique. The structural flexibility matrix and its confidence interval are identified and then applied to predict the deflection of the main span under truck loads. The predicted results agree well with the displacement measurements, which are also within the estimated confidence interval.
机译:大多数电流不确定性分析仅限于诸如频率和模式形状的基本模态参数,这是不足以评估结构性能的。为了量化深度参数的不确定性,提出了一种组合质量变化策略和快速贝叶斯快速傅里叶变换(FFT)方法的定量技术。基本的模态参数及其差异和变异系数(C.O.V)是从快速贝叶斯FFT方法获得的,这只使用环境测试数据。在质量变化策略上计算了深度参数(缩放因子和灵活性矩阵)。在此基础上,深度参数的不确定性量化是由一阶扩展的严格导出,并用于预测偏转的置信区间。在这项研究中,利用Sutong桥的静载载荷测试来验证所提出的不确定性量化技术的有效性和可靠性。识别结构柔韧性矩阵及其置信区间,然后施加以预测卡车负荷下主跨度的偏转。预测结果与位移测量相吻合,这也在估计的置信区间内。

著录项

  • 来源
    《Engineering Structures》 |2020年第jul1期|110616.1-110616.11|共11页
  • 作者单位

    Hong Kong Polytech Univ Dept Civil & Environm Engn Hong Kong Peoples R China;

    Southeast Univ Jiangsu Key Lab Engn Mech Nanjing 210096 Peoples R China|Southeast Univ Sch Civil Engn Nanjing 210096 Peoples R China;

    Southeast Univ Jiangsu Key Lab Engn Mech Nanjing 210096 Peoples R China|Southeast Univ Sch Civil Engn Nanjing 210096 Peoples R China;

    Southeast Univ Jiangsu Key Lab Engn Mech Nanjing 210096 Peoples R China|Southeast Univ Sch Civil Engn Nanjing 210096 Peoples R China;

  • 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

    Uncertainty analysis; Fast Bayesian; Flexibility identification; Scaling factor; Mass-changing strategy;

    机译:不确定性分析;快速贝叶斯;灵活性识别;缩放因子;质量变化策略;

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