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A computationally efficient approach for evaluating the response of nonlinear systems subjected to nonstationary stochastic loads

机译:一种评估非营养随机负荷的非线性系统响应的计算上有效方法

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A new method based on equivalent linearization approaches is presented for estimating the nonstationary response of a class of nonlinear mlulti-degree-of-freedom systems subjected to nonstationary excitations. The highly efficient method is based on creating a compact analytical approximation of measured nonstationary excitation process data through use of a two stage decomposition procedure: (1) by performing the Karhunen-Loeve spectral decomposition on the covariance matrix of the input random process to obtain the dominant eigenvectors, and (2) by fitting these eigenvectors with orthogonal polynomials to produce a truncated scries of analytically approximated eigenvectors. The efficiency and accuracy of the method is demonstrated through simulation with synthetically generated excitation data, as well as measured data from a real-world physical process. Although the decomposition procedure used can characterize very general input processes, because the equivalent linearization technique requires the gaussian assumption of the response process, the constraint on applying this approach is similar to the constraints on all other equivalent linearization techniques. However, the additional freedom gained from being able to work with data-based nonstationary random processes is a significant contribution to the analytical tools in the field of stochastic dynamics.
机译:提出了一种基于等效线性化方法的新方法,用于估计对非营养激发的一类非线性MLULTI - 自由度系统的非间断响应。高效的方法是基于通过使用两个阶段分解过程创建测量的非间断激励过程数据的紧凑分析近似:(1)通过对输入随机过程的协方差矩阵进行Karhunen-Loeve频谱分解来获得通过用正交多项式拟合这些特征向量来产生这些特征向量,以产生分析近似的特征向量的截短脆性。通过用合成产生的激励数据的模拟来证明该方法的效率和准确性,以及来自现实世界物理过程的测量数据。尽管所使用的分解过程可以表征非常一般的输入过程,因为等效的线性化技术需要高斯假设响应过程,所以应用该方法的约束类似于所有其他等效线性化技术的约束。然而,能够使用基于数据的非间断随机过程的额外自由是对随机动力学领域的分析工具的重要贡献。

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