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Subharmonic response of a single-degree-of-freedom nonlinear vibro-impact system to a narrow-band random excitation

Rong Haiwu and Xiangdong Wang

Wei Xu and Tong Fang

  • Department of Mathematics, Foshan University, Foshan 528000, People’s Republic of China

  • Department of Applied Mathematics, Northwestern Polytechnical University, Xi’an 710072, People’s Republic of China

Phys. Rev. E 80, 026604 – Published 21 August, 2009

DOI: https://doi.org/10.1103/PhysRevE.80.026604

Abstract

The subharmonic response of single-degree-of-freedom nonlinear vibro-impact oscillator with a one-sided barrier to narrow-band random excitation is investigated. The narrow-band random excitation used here is a filtered Gaussian white noise. The analysis is based on a special Zhuravlev transformation, which reduces the system to one without impacts, or velocity jumps, thereby permitting the applications of asymptotic averaging over the “fast” variables. The averaged stochastic equations are solved exactly by the method of moments for the mean-square response amplitude for the case of linear system with zero offset. A perturbation-based moment closure scheme is proposed and the formula of the mean-square amplitude is obtained approximately for the case of linear system with nonzero offset. The perturbation-based moment closure scheme is used once again to obtain the algebra equation of the mean-square amplitude of the response for the case of nonlinear system. The effects of damping, detuning, nonlinear intensity, bandwidth, and magnitudes of random excitations are analyzed. The theoretical analyses are verified by numerical results. Theoretical analyses and numerical simulations show that the peak amplitudes may be strongly reduced at large detunings or large nonlinear intensity.

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