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Identification of stochastic loads applied to a non-linear dynamical system using an uncertain computational model and experimental responses

机译:使用不确定的计算模型和实验响应识别应用于非线性动力系统的随机载荷

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摘要

The paper is devoted to the identification of stochastic loads applied to a non-linear dynamical system for which experimental dynamical responses are available. The identification of the stochastic load is performed using a simplified computational non-linear dynamical model containing both model uncertainties and data uncertainties. Uncertainties are taken into account in the context of the probability theory. The stochastic load which has to be identified is modelled by a stationary non-Gaussian stochastic process for which the matrix-valued spectral density function is uncertain and is then modelled by a matrix-valued random function. The parameters to be identified are the mean value of the random matrix-valued spectral density function and its dispersion parameter. The identification problem is formulated as two optimization problems using the computational stochastic model and experimental responses. A validation of the theory proposed is presented in the context of tubes bundles in Pressurized Water Reactors.
机译:本文致力于识别应用于非线性动力系统的随机载荷,对于该系统,可以提供实验动力响应。随机负载的识别是使用简化的计算非线性动力学模型进行的,其中包含模型不确定性和数据不确定性。在概率论的背景下考虑了不确定性。要确定的随机负载是通过平稳的非高斯随机过程建模的,对于该过程,矩阵值的频谱密度函数不确定,然后通过矩阵值的随机函数进行建模。要确定的参数是随机矩阵值谱密度函数的平均值及其色散参数。利用计算随机模型和实验响应将识别问题表述为两个优化问题。在加压水反应堆中的管束环境中对提出的理论进行了验证。

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