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Probabilistic-based assessment of composite steel-concrete structures through an innovative framework

机译:通过创新框架对钢-混凝土复合结构进行基于概率的评估

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摘要

This paper presents the probabilistic-based assessment of composite steel-concrete structures through an innovative framework. This framework combines model identification and reliability assessment procedures. The paper starts by describing current structural assessment algorithms and the most relevant uncertainty sources. The developed model identification algorithm is then presented. During this procedure, the model parameters are automatically adjusted, so that the numerical results best fit the experimental data. Modelling and measurement errors are respectively incorporated in this algorithm. The reliability assessment procedure aims to assess the structure performance, considering randomness in model parameters. Since monitoring and characterization tests are common measures to control and acquire information about those parameters, a Bayesian inference procedure is incorporated to update the reliability assessment. The framework is then tested with a set of composite steel-concrete beams, which behavior is complex. The experimental tests, as well as the developed numerical model and the obtained results from the proposed framework, are respectively present.
机译:本文通过创新框架介绍了基于概率的复合钢混凝土结构评估。该框架结合了模型识别和可靠性评估程序。本文首先介绍了当前的结构评估算法和最相关的不确定性来源。然后提出了开发的模型识别算法。在此过程中,将自动调整模型参数,以使数值结果最适合实验数据。该算法中分别包含了建模误差和测量误差。可靠性评估程序旨在考虑模型参数的随机性来评估结构性能。由于监视和特性测试是控制和获取有关这些参数的信息的常用措施,因此采用了贝叶斯推理程序来更新可靠性评估。然后用一组复合钢混凝土梁对框架进行测试,这种行为很复杂。分别给出了实验测试,开发的数值模型和从所提出的框架获得的结果。

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