Literature DB >> 24795495

Effect of the boundary conditions and influence of the rotational inertia on the vibrational modes of an elastic ring.

Nicolas Clauvelin1, Wilma K Olson2, Irwin Tobias3.   

Abstract

We present the small-amplitude vibrations of a circular elastic ring with periodic and clamped boundary conditions. We model the rod as an inextensible, isotropic, naturally straight Kirchhoff elastic rod and obtain the vibrational modes of the ring analytically for periodic boundary conditions and numerically for clamped boundary conditions. Of particular interest are the dependence of the vibrational modes on the torsional stress in the ring and the influence of the rotational inertia of the rod on the mode frequencies and amplitudes. In rescaling the Kirchhoff equations, we introduce a parameter inversely proportional to the aspect ratio of the rod. This parameter makes it possible to capture the influence of the rotational inertia of the rod. We find that the rotational inertia has a minor influence on the vibrational modes with the exception of a specific category of modes corresponding to high-frequency twisting deformations in the ring. Moreover, some of the vibrational modes over or undertwist the elastic rod depending on the imposed torsional stress in the ring.

Entities:  

Keywords:  Boundary-value problem; Elastic rods; Numerical continuation; Topology; Vibrations

Year:  2014        PMID: 24795495      PMCID: PMC4006106          DOI: 10.1007/s10659-013-9453-2

Source DB:  PubMed          Journal:  J Elast        ISSN: 0374-3535            Impact factor:   2.085


  15 in total

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