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首页> 外文期刊>Journal of Sound and Vibration >Modeling of rotating machinery: A novel frequency sweep system identification approach
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Modeling of rotating machinery: A novel frequency sweep system identification approach

机译:旋转机械造型:一种新型频率扫描系统识别方法

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摘要

In this study, the dynamic modeling of rotating machinery, which is a harmonic excitation system, is investigated based on a nonlinear autoregressive (NARX) model with external inputs. Generally, NARX model-based techniques require Gaussian (white) noise, and thus these methods are not suitable for rotating machinery. Although there have been some reports on the modeling of harmonic excitation systems, the existing methods cannot establish a single-input single-output (SISO) NARX model to represent the rotating machinery over a wide range of rotational speeds. An improved modeling method called the frequency sweep system identification approach is proposed in this study to solve this issue. A discrete-time Fourier transform (DTFT) is performed on the system input and output datasets over a wide speed range to obtain the resulting spectra, and the amplitudes corresponding to the rotational frequencies are extracted and spliced together to convert multiple time-domain signals into one input data set and one output data set composed of frequency-domain data. Then, the modeling process can be carried out using the orthogonal forward search algorithm. Moreover, the effect of the data sequence on the identification results is discussed theoretically. A key feature of the proposed method is that the model structure detection and coefficient calculation are conducted with spliced frequency-domain vectors. The feasibility of the proposed modeling approach is validated through numerical and experimental cases. This work is a supplement to existing modeling methods based on the NARX model and provides a modeling basis for the analysis and design of rotating machinery in combination with the NARX model. (C) 2020 Elsevier Ltd. All rights reserved.
机译:本研究基于带外部输入的非线性自回归(NARX)模型,对谐波励磁系统的旋转机械动力学建模进行了研究。通常,基于NARX模型的技术需要高斯(白)噪声,因此这些方法不适用于旋转机械。虽然已经有一些关于谐波励磁系统建模的报告,但现有的方法无法建立单输入单输出(SISO)NARX模型来表示转速范围广泛的旋转机械。为了解决这一问题,本文提出了一种改进的建模方法——扫频系统辨识法。在较宽的速度范围内对系统输入和输出数据集执行离散时间傅里叶变换(DTFT),以获得产生的频谱,并提取和拼接与旋转频率对应的振幅,以将多个时域信号转换为一个输入数据集和一个由频域数据组成的输出数据集。然后,可以使用正交正向搜索算法执行建模过程。此外,还从理论上讨论了数据序列对识别结果的影响。该方法的一个关键特点是,模型结构检测和系数计算是通过拼接频域向量进行的。通过数值和实验验证了该建模方法的可行性。这项工作是对基于NARX模型的现有建模方法的补充,并为结合NARX模型的旋转机械的分析和设计提供了建模基础。(C) 2020爱思唯尔有限公司版权所有。

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