Abstract
The design and characterization of a mechanical vibration absorber are addressed. A distinctive feature of the absorber is its tunable piecewise-linear stiffness, which is realized by means of a slider with two stop-blocks installed constraining the bilateral deflections of the elastic support. A new analytical approach named as the equivalent stiffness technique (EST) is introduced and then employed to obtain the analytical relations of the frequency, amplitude and phase with a view to exhibit a more comprehensive characterization of the absorber. Experiments are conducted to demonstrate the feasibility of the design. The experimental data show good agreement with the analytical results. The final results indicate that the tunable stiffness absorber (TSA) possesses a typical nonlinear characteristic at each given position of the slider, and its stiffness can be tuned in real time over a wide range by adjusting the slider position. Hence the TSA has a large optimum vibration-absorption range together with a wide suppression band around each optimal position, which contributes to its excellent capacity of vibration absorption.
| Original language | English |
|---|---|
| Pages (from-to) | 330-343 |
| Number of pages | 14 |
| Journal | Mechanical Systems and Signal Processing |
| Volume | 100 |
| DOIs | |
| State | Published - 1 Feb 2018 |
Keywords
- Equivalent stiffness technique
- Mechanical vibration absorber
- Tunable stiffness
- Wide suppression band
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