Multi-axis shaker systems for the mechanical testing of components up to 2 kHz generally exhibit multiple resonances within their operating range of frequencies. Equipment testing requires the control of the shaker’s power density spectra in all axes of shaker motion. The paper describes the results of a 4-year ongoing project to develop a predictive model of 6-axis shaker dynamics, and presents a comparison between the computer model and a series of experiments on a small 6-DOF electrodynamic shaker, employing computed and experimentally recorded power density and coherence spectra, as well as modal analyses. Modifications of the shaker’s structural stiffness and damping are shown to be correctly predicted and validated by the experiments.
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ASME 2007 International Mechanical Engineering Congress and Exposition
November 11–15, 2007
Seattle, Washington, USA
Conference Sponsors:
- ASME
ISBN:
0-7918-4303-3
PROCEEDINGS PAPER
Design and Evaluation of Multi-Axis Vibration Shaker Concepts Available to Purchase
Georg F. Mauer
Georg F. Mauer
University of Nevada at Las Vegas, Las Vegas, NV
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Georg F. Mauer
University of Nevada at Las Vegas, Las Vegas, NV
Paper No:
IMECE2007-42350, pp. 209-213; 5 pages
Published Online:
May 22, 2009
Citation
Mauer, GF. "Design and Evaluation of Multi-Axis Vibration Shaker Concepts." Proceedings of the ASME 2007 International Mechanical Engineering Congress and Exposition. Volume 9: Mechanical Systems and Control, Parts A, B, and C. Seattle, Washington, USA. November 11–15, 2007. pp. 209-213. ASME. https://doi.org/10.1115/IMECE2007-42350
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