Principal resonance in transverse nonlinear parametric vibration of an axially accelerating viscoelastic string |
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Authors: | Chen Liqun Jean W. Zu Wu Jun |
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Affiliation: | (1) Department of Mechanics, Shanghai University, 200436 Shanghai, China;(2) Shanghai Institute of Applied Mathematics and Mechanics, 200072 Shanghai, China;(3) Department of Mechanical and Industrial Engineering, University of Toronto, M5S 3G8 Ontario, Canada |
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Abstract: | To investigate the principal resonance in transverse nonlinear parametric vibration of an axially accelerating viscoelastic string, the method of multiple scales is applied directly to the nonlinear partial differential equation that governs the transverse vibration of the string. To derive the governing equation, Newton's second law, Lagrangean strain, and Kelvin's model are respectively used to account the dynamical relation, geometric nonlinearity and the viscoelasticity of the string material. Based on the solvability condition of eliminating the secular terms, closed form solutions are obtained for the amplitude and the existence conditions of nontrivial steady-state response of the principal parametric resonance. The Lyapunov linearized stability theory is employed to analyze the stability of the trivial and nontrivial solutions in the principal parametric resonance. Some numerical examples are presented to show the effects of the mean transport speed, the amplitude and the frequency of speed variation. The project supported by the National Natural Science Foundation of China (10172056) |
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Keywords: | principal parametric resonance axially accelerating string viscoelasticity method of multiple scales stability |
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