首页> 外文会议>Proceedings of the 13th International Symposium on Structural Engineering >DATA DRIVEN IDENTIFICATION OF NONLINEAR STRUCTURAL SYSTEMS WITH PARTIAL RESPONSE MEASUREMENTS
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DATA DRIVEN IDENTIFICATION OF NONLINEAR STRUCTURAL SYSTEMS WITH PARTIAL RESPONSE MEASUREMENTS

机译:带有部分响应测量的非线性结构系统的数据驱动识别

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As well known,nonlinearity widely exists in structures under severe excitation.Thus,the research on the identification of structural nonlinearity plays a very important role in the structural safety assessment and damage diagnosis.In this paper,with partial measurements of structural responses,a data driven algorithm is proposed for the identification of nonlinear structural systems without the priori knowledge of the nature and mathematical form of the nonlinearities.This algorithm consists of two stages: In the first stage,the identification of an equivalent linear system of a nonlinear structural system is conducted based on the extended Kalman filter,and the locations of nonlinearity are identified by comparing the difference between the structural parameters of linear system and those of equivalent linear system.Then,the nonlinear restoring force is expanded by power series polynomial,and the coefficients of the series are identified by the extended Kalman filter.The feasibility and robustness of the proposed algorithm are verified a numerical simulation example.
机译:众所周知,强烈激励下的结构中普遍存在非线性。因此,结构非线性识别的研究在结构安全性评估和损伤诊断中起着非常重要的作用。在不事先了解非线性的性质和数学形式的前提下,提出了一种驱动算法,用于非线性结构系统的辨识。该算法包括两个阶段:第一阶段,对非线性结构系统的等效线性系统进行辨识。在扩展卡尔曼滤波器的基础上进行,通过比较线性系统和等效线性系统的结构参数之间的差异来识别非线性的位置,然后通过幂级数多项式扩展非线性恢复力,并利用该系列由扩展卡尔曼滤波器确定。算例验证了所提算法的鲁棒性。

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