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Model structure detection and system identification of metal rubber devices

机译:金属橡胶装置的模型结构检测与系统辨识

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摘要

Metal rubber (MR) devices, a new wire mesh material, have been extensively used in recent years due to several unique properties especially in adverse environments. Although many practical studies have been completed, the related theoretical research on metal rubber is still in its infancy. In this paper, a semi-constitutive dynamic model that involves nonlinear elastic stiffness, nonlinear viscous damping and bilinear hysteresis Coulomb damping is adopted to model MR devices. After approximating the bilinear hysteresis damping using Chebyshev polynomials of the first kind, a very efficient procedure based on the orthogonal least squares (OLS) algorithm and the adjustable prediction error sum of squares (APRESS) criterion is proposed for model structure detection and parameter estimation of an MR device for the first time. The OLS algorithm provides a powerful tool to effectively select the significant model terms step by step, one at a time, by orthogonalizing the associated terms and maximizing the error reduction ratio, in a forward stepwise procedure. The APRESS statistic regularizes the OLS algorithm to facilitate the determination of the optimal number of model terms that should be included into the dynamic model. Because of the orthogonal property of the OLS algorithm, the approach leads to a parsimonious model. Numerical ill-conditioning problems confronted by the conventional least squares algorithm can also be avoided by the new approach. Finally by utilising the transient response of a MR specimen, it is shown how the model structure can be detected in a practical application. The identified model agrees with the experimental measurements very well.
机译:金属橡胶(MR)设备是一种新型的丝网材料,近年来由于其独特的性能而被广泛使用,尤其是在恶劣的环境中。尽管已经完成了许多实践研究,但有关金属橡胶的相关理论研究仍处于起步阶段。在本文中,采用包含非线性弹性刚度,非线性粘性阻尼和双线性滞后库仑阻尼的半本构动力学模型来建模MR设备。在使用第一类Chebyshev多项式逼近双线性磁滞阻尼之后,提出了一种基于正交最小二乘(OLS)算法和可调节预测误差平方和(APRESS)准则的非常有效的程序,用于模型结构检测和参数估计。首次使用MR设备。 OLS算法提供了一种功能强大的工具,可通过使相关项正交化并最大程度地减少错误减少率,以逐步的方式逐步,有效地逐步选择重要的模型项。 APRESS统计信息对OLS算法进行了正则化,以便于确定应包含在动态模型中的模型项的最佳数量。由于OLS算法的正交性,该方法导致了一个简约模型。新的方法也可以避免传统的最小二乘算法所面临的数值不适问题。最后,通过利用MR标本的瞬态响应,说明了如何在实际应用中检测模型结构。所确定的模型与实验测量结果非常吻合。

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