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基于数据融合的梁结构动态位移重构理论推导与实验研究

Theoretical derivation and experimental investigation of dynamic displacement reconstruction based on data fusion for beam structures.

作者信息

Ren Liang, Zhang Qing, Fu Xing

机构信息

State Key Laboratory of Coastal and Offshore Engineering, Dalian University of Technology, Dalian, 116023, China.

出版信息

Sci Rep. 2022 Nov 19;12(1):19904. doi: 10.1038/s41598-022-24449-2.

Abstract

Accurately obtaining the dynamic displacement response of the beam structure is of great significance. However, it is difficult to directly measure the dynamic displacement for large structures due to the low measurement accuracy or the installation difficulty of the sensor. Therefore, it is urgent to develop an indirect measurement method for displacement based on measurable physical quantities. Since acceleration and strain contain high and low frequency displacement information respectively, this paper proposes a displacement reconstruction algorithm that can realize the data fusion of the two, which is very helpful for the research of structural health monitoring. Firstly, the stochastic subspace identification (SSI) method is adopted to calculate the strain mode, and then the displacement is derived via the mode shape superposition method. Afterwards, the strain-derived displacement and acceleration are combined by the proposed algorithm to reconstruct the dynamic displacement. Both the numerical simulation and model experiment are conducted to verify the effectiveness of the proposed algorithm. Furthermore, the influences of noise, sampling rate ratio and measurement point position are analyzed. The results show that the proposed algorithm can accurately reconstruct both high-frequency and pseudo-static displacements, and the displacement reconstructed error in the model experiment is within 5%.

摘要

准确获取梁结构的动态位移响应具有重要意义。然而,对于大型结构,由于测量精度低或传感器安装困难,难以直接测量动态位移。因此,迫切需要开发一种基于可测量物理量的位移间接测量方法。由于加速度和应变分别包含高频和低频位移信息,本文提出了一种能够实现两者数据融合的位移重构算法,这对结构健康监测研究非常有帮助。首先,采用随机子空间识别(SSI)方法计算应变模态,然后通过模态叠加法推导位移。之后,将基于应变推导的位移和加速度通过所提算法进行组合,以重构动态位移。进行了数值模拟和模型试验来验证所提算法的有效性。此外,分析了噪声、采样率比和测量点位置的影响。结果表明,所提算法能够准确重构高频和准静态位移,模型试验中的位移重构误差在5%以内。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f855/9675846/c0e94770e55c/41598_2022_24449_Fig1_HTML.jpg

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