Resonant excitation of the bushes of nonlinear vibrational modes in monoatomic chains
George Chechin, Galina Bezuglova

TL;DR
This paper investigates the resonant excitation of nonlinear vibrational mode groups, called bushes, in monoatomic chains with fixed boundaries, revealing new intermode interaction properties and methods for their construction using group theory.
Contribution
It introduces a novel approach to construct bushes of nonlinear normal modes in monoatomic chains with fixed boundaries, expanding understanding beyond periodic boundary conditions.
Findings
Identified new properties of intermode interactions in fixed-boundary chains.
Developed a method to construct bushes of NNMs via continuation from normal modes.
Validated the approach for Lennard-Jones potential, applicable to other interatomic potentials.
Abstract
Intermode interactions in one-dimensional nonlinear periodic structures have been studied by many authors, starting with the classic work by Fermi, Pasta, and Ulam (FPU) in the middle of the last century. However, symmetry selection rules for the energy transfer between nonlinear vibrational modes of different symmetry, which lead to the possibility of excitation of some bushes of such modes, were not revealed. Each bush determines an exact solution of nonlinear dynamical equations of the considered system. The collection of modes of a given bush does not change in time, while there is a continuous energy exchange between these modes. Bushes of nonlinear normal modes (NNMs) are constructed with the aid of group-theoretical methods and therefore they can exist for cases with large-amplitude atomic vibrations and for any type of interatomic interactions. In most publications, bushes of…
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Taxonomy
TopicsNonlinear Photonic Systems · Quantum optics and atomic interactions · Mechanical and Optical Resonators
