Published May 2015 | Version v1
Journal article

Transient and chaotic low-energy transfers in a system with bistable nonlinearity

  • 1. Department of Structural and Geotechnical Engineering, SAPIENZA University of Rome, Rome (Italy)
  • 2. Institute of Chemical Physics, RAS, Moscow (Russian Federation)
  • 3. College of Engineering, University of Illinois at Urbana–Champaign, Champaign, Illinois 61820 (United States)

Description

The low-energy dynamics of a two-dof system composed of a grounded linear oscillator coupled to a lightweight mass by means of a spring with both cubic nonlinear and negative linear components is investigated. The mechanisms leading to intense energy exchanges between the linear oscillator, excited by a low-energy impulse, and the nonlinear attachment are addressed. For lightly damped systems, it is shown that two main mechanisms arise: Aperiodic alternating in-well and cross-well oscillations of the nonlinear attachment, and secondary nonlinear beats occurring once the dynamics evolves solely in-well. The description of the former dissipative phenomenon is provided in a two-dimensional projection of the phase space, where transitions between in-well and cross-well oscillations are associated with sequences of crossings across a pseudo-separatrix. Whereas the second mechanism is described in terms of secondary limiting phase trajectories of the nonlinear attachment under certain resonance conditions. The analytical treatment of the two aformentioned low-energy transfer mechanisms relies on the reduction of the nonlinear dynamics and consequent analysis of the reduced dynamics by asymptotic techniques. Direct numerical simulations fully validate our analytical predictions

Additional details

Identifiers

Publishing Information

Journal Title
Chaos (Woodbury, N. Y.)
Journal Volume
25
Journal Issue
5
Journal Page Range
p. 053109-053109.13
ISSN
1054-1500
CODEN
CHAOEH

Optional Information

Notes
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