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Frequency-Domain Identification of Linear Time-Periodic Systems Using LTI Techniques

机译:使用LTI技术的线性时间周期系统的频域识别

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摘要

A variety of systems can be faithfully modeled as linear with coefficients that vary periodically with time or linear time-periodic (LTP). Examples include anisotropic rotor-bearing systems, wind turbines, and nonlinear systems linearized about a periodic trajectory. Many of these have been treated analytically in the literature, yet few methods exist for experimentally characterizing LTP systems. This paper presents a set of tools that can be used to identify a parametric model of a LTP system, using a frequency-domain approach and employing existing algorithms to perform parameter identification. One of the approaches is based on lifting the response to obtain an equivalent linear time-invariant (LTI) form and the other based is on Fourier series expansion. The development focuses on the preprocessing steps needed to apply LTI identification to the measurements, the postprocessing needed to reconstruct the LTP model from the identification results, and the interpretation of the measurements. This elucidates the similarities between LTP and LTI identification, allowing the experimentalist to transfer insight between the two. The approach determines the model order of the system and the postprocessing reveals the shapes of the time-periodic functions comprising the LTP model. Further postprocessing is also presented, which allows one to generate the state transition and time-varying state matrices of the system from the output of the LTI identification routine, so long as the measurement set is adequate. The experimental techniques are demonstrated on simulated measurements from a Jeffcott rotor mounted on an anisotropic flexible shaft supported by anisotropic bearings.
机译:可以将各种系统忠实地建模为线性,其系数随时间周期性变化或线性时间周期(LTP)。示例包括各向异性的转子轴承系统,风力涡轮机和围绕周期性轨迹线性化的非线性系统。在文献中已对其中许多方法进行了分析处理,但很少有用于实验表征LTP系统的方法。本文介绍了一套可用于识别LTP系统参数模型的工具,这些工具使用频域方法并采用现有算法进行参数识别。一种方法是基于提升响应以获得等效线性时不变(LTI)形式,另一种方法是基于傅立叶级数展开。开发重点在于将LTI识别应用于测量所需的预处理步骤,从识别结果重建LTP模型所需的后处理以及测量的解释。这阐明了LTP和LTI识别之间的相似性,从而使实验者能够在两者之间传递见解。该方法确定系统的模型顺序,后处理揭示了包含LTP模型的时间周期函数的形状。还提出了进一步的后处理,只要测量集足够,就可以从LTI识别例程的输出中生成系统的状态转换和时变状态矩阵。在安装在由各向异性轴承支撑的各向异性挠性轴上的Jeffcott转子的模拟测量值上演示了实验技术。

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