会议论文详细信息
13th International Conference on Motion and Vibration Control; 12th International Conference on Recent Advances in Structural Dynamics
Response moments of dynamic systems under non-Gaussian random excitation by the equivalent non-Gaussian excitation method
Tsuchida, Takahiro^1 ; Kimura, Koji^1
Department of Mechanical and Environmental, Informatics, Tokyo Institute of Technology, Tokyo
152-8552, Japan^1
关键词: Equivalent diffusion coefficients;    Ito stochastic differential equations;    Non gaussian excitation;    Non-Gaussian excitations;    Non-gaussian randoms;    Probability densities;    Quadratic polynomial;    Rayleigh distributions;   
Others  :  https://iopscience.iop.org/article/10.1088/1742-6596/744/1/012172/pdf
DOI  :  10.1088/1742-6596/744/1/012172
来源: IOP
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【 摘 要 】

Equivalent non-Gaussian excitation method is proposed to obtain the response moments up to the 4th order of dynamic systems under non-Gaussian random excitation. The non-Gaussian excitation is prescribed by the probability density and the power spectrum, and is described by an Ito stochastic differential equation. Generally, moment equations for the response, which are derived from the governing equations for the excitation and the system, are not closed due to the nonlinearity of the diffusion coefficient in the equation for the excitation even though the system is linear. In the equivalent non-Gaussian excitation method, the diffusion coefficient is replaced with the equivalent diffusion coefficient approximately to obtain a closed set of the moment equations. The square of the equivalent diffusion coefficient is expressed by a quadratic polynomial. In numerical examples, a linear system subjected to nonGaussian excitations with bimodal and Rayleigh distributions is analyzed by using the present method. The results show that the method yields the variance, skewness and kurtosis of the response with high accuracy for non-Gaussian excitation with the widely different probability densities and bandwidth. The statistical moments of the equivalent non-Gaussian excitation are also investigated to describe the feature of the method.

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