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Journal article

Bifurcation analysis of a smoothed model of a forced impacting beam and comparison with an experiment

From

Department of Applied Mathematics and Computer Science, Technical University of Denmark1

Mathematics, Department of Applied Mathematics and Computer Science, Technical University of Denmark2

The University of Auckland3

Dynamical Systems, Department of Applied Mathematics and Computer Science, Technical University of Denmark4

Department of Mechanical Engineering, Technical University of Denmark5

Solid Mechanics, Department of Mechanical Engineering, Technical University of Denmark6

A piecewise-linear model with a single degree of freedom is derived from first principles for a driven vertical cantilever beam with a localized mass and symmetric stops. The aim is to show that this model constitutes a considerable step toward developing a vibro-impact model that is able to make qualitative and quantitative predictions of the observed dynamics.

The resulting piecewise-linear dynamical system is smoothed by a switching function (nonlinear homotopy). For the chosen smoothing function, it is shown that the smoothing can induce bifurcations in certain parameter regimes. These induced bifurca tions disappear when the transition of the switching is sufficiently and increasingly localized as the impact becomes harder.

The bifurcation structure of the impact oscillator response is investigated via the one- and twoparameter continuation of periodic orbits in the driving frequency and/or forcing amplitude. The results are in good agreement with experimental measurements.

Language: English
Publisher: Springer Netherlands
Year: 2014
Pages: 951-966
Journal subtitle: An International Journal of Nonlinear Dynamics and Chaos in Engineering Systems
ISSN: 1573269x and 0924090x
Types: Journal article
DOI: 10.1007/s11071-014-1353-x
ORCIDs: Starke, Jens and Thomsen, Jon Juel

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