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Multiscale Modeling and Model Updating of a Cable-Stayed Bridge. II: Model Updating Using Modal Frequencies and Influence Lines

机译:斜拉桥的多尺度建模和模型更新。 II:使用模态频率和影响线进行模型更新

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To facilitate an effective assessment of stress-related bridge performance and safety, a baseline multiscale finite-element (FE) model and a corresponding model-updating technique are required so that the FE model can best represent the prototype and can be used to well predict both global and local responses. The companion paper demonstrates that considering modal frequencies alone as updating objectives cannot ensure the updated multiscale FE model being able to predict local (stress) responses accurately. This paper presents a new updating method that uses both modal frequencies and multiscale (displacement and stress) static influence lines as updating objectives. The paper first explains the relationship between displacement influence lines and mode shapes and the relationship between strain influence lines and strain mode shapes. The formulation of the multiscale objective functions and the selection of updating parameters are then presented. As a case study, the proposed model-updating method is finally applied to the multiscale FE model of the Stonecutters Bridge. In light of the large number of degrees of freedom of the multiscale model, the response surface method is adopted in the optimization process to reduce computation time. The updated results show that the proposed model-updating technique can reduce the differences not only between measured and computed modal frequencies but also between measured and computed influence lines. (C) 2014 American Society of Civil Engineers.
机译:为了便于有效评估与应力有关的桥梁性能和安全性,需要基线多尺度有限元(FE)模型和相应的模型更新技术,以便FE模型可以最好地表示原型并可以用来很好地预测全球和当地的回应。随附的论文表明,仅将模态频率视为更新目标并不能确保更新后的多尺度有限元模型能够准确预测局部(应力)响应。本文提出了一种新的更新方法,该方法同时使用模态频率和多尺度(位移和应力)静态影响线作为更新目标。本文首先解释了位移影响线与模式形状之间的关系以及应变影响线与应变模式形状之间的关系。然后介绍了多尺度目标函数的公式化和更新参数的选择。作为案例研究,所提出的模型更新方法最终被应用于昂船洲大桥的多尺度有限元模型。鉴于多尺度模型的自由度较大,在优化过程中采用了响应面法来减少计算时间。更新结果表明,所提出的模型更新技术不仅可以减小实测模态频率与计算出的模态频率之间的差异,而且还可以减小实测线与计算出的影响线之间的差异。 (C)2014年美国土木工程师学会。

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