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首页> 外文期刊>Journal of vibration and control: JVC >Application of advanced data-driven parametric models to load reconstruction in mechanical structures and systems
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Application of advanced data-driven parametric models to load reconstruction in mechanical structures and systems

机译:先进的数据驱动参数模型在机械结构和系统中的载荷重建中的应用

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摘要

This paper considers a method for reconstructing sine-wave excitation using an inverse, parametric data-driven model developed to monitor the magnitude and frequency of the load to which a structure is exposed. The main goal of the paper is to discuss, and experimentally verify, the applicability of different SISO and MIMO structures of parametric models, such as the ARX, ARARX, OE, BJ, and PEM models described by the linear system identification theory. Experimental validation tests were conducted on a set-up consisting of a metal frame equipped with two electrodynamic exciters, several acceleration transducers and a data-acquisition system. The fidelity and adequacy of various model structures was judged in time and frequency domains based on stability diagrams, FPE and AIC criteria, as well as on the magnitude of the relative error between the measured and reconstructed load. The experimental test results showed that, in the case of measurement data moderately corrupted by noise, the ARX and OE models provide better accuracy of inversion than advanced models, such as ARARAX, BJ or PEM. This leads to the conclusion that increasing the complexity of a model structure does not result in better reconstruction of the load. Therefore, less complicated structures are acceptable for practical applications and, in fact, should be favored.
机译:本文考虑了一种使用反向参数化数据驱动模型重建正弦波激励的方法,该模型开发用于监视结构所承受的载荷的大小和频率。本文的主要目的是讨论和实验验证参数模型的不同SISO和MIMO结构的适用性,例如线性系统识别理论所描述的ARX,ARARX,OE,BJ和PEM模型。实验验证测试是在一个装置上进行的,该装置包括一个装有两个电动激励器,几个加速度传感器和一个数据采集系统的金属框架。根据稳定性图,FPE和AIC标准以及所测得的载荷与重构的载荷之间的相对误差的大小,在时域和频域中判断各种模型结构的保真度和适当性。实验测试结果表明,在测量数据受到噪声适度破坏的情况下,与ARARAX,BJ或PEM等高级模型相比,ARX和OE模型可提供更好的反演精度。这得出结论,增加模型结构的复杂性不会导致更好地重构负载。因此,较简单的结构对于实际应用是可以接受的,实际上应该受到青睐。

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