4.6 Article

Longitudinal vibration characteristics analysis of nonlocal rod structure with arbitrary internal elastic supports

期刊

JOURNAL OF VIBRATION AND CONTROL
卷 29, 期 17-18, 页码 3893-3906

出版社

SAGE PUBLICATIONS LTD
DOI: 10.1177/10775463221106534

关键词

longitudinal vibration; nonlocal elasticity; elastic restraints; Fourier series; elastic supports

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This manuscript presents an exact solution for the longitudinal vibrating characteristics of generally restrained nanorod structures with multiple internal elastic supports. By introducing artificial springs and setting restrained stiffness accordingly, the general boundary restraints are formulated. The study provides an effective method for predicting the longitudinal vibration characteristics of nanorods with complex boundary and coupling conditions.
This manuscript obtained an exact solution for longitudinal vibrating characteristics of generally restrained nanorod structure with multiple internal elastic supports via an improved Fourier series method. Due to the nonlocal elasticity theory, the general boundary restraints have been formulated by introducing artificial springs. Then, classical boundary conditions can be easily realized by setting the restrained stiffness to zero or infinity accordingly. Energy formulation is derived for describing longitudinal vibration characteristics of generally restrained nanorod with multiple internal elastic supports. To improve the differential continuities at the elastically restrained boundary, nonlocal longitudinal vibrating displacement is expanded as the standard Fourier series combined with auxiliary polynomials, which makes the field function sufficiently smooth in the calculation region. By making use Rayleigh-Ritz procedure, the unknown coefficients can be obtained by solving the standard eigenvalue matrix. Then, numerical results are presented and compared with those in the literature to illustrate the reliability and effectiveness of the current model. The influence of parameters of the multiple internal elastic supports, nonlocal structural parameters, and boundary restraints on vibration characteristics are discussed and analyzed. This study provides an effective method for predicting longitudinal vibration characteristics of a generally restrained nanorod with multiple internal elastic supports, in which the nanorod has complex boundary and coupling conditions.

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