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Designs for an adaptive tuned vibration absorber with variable shape stiffness element

Designs for an adaptive tuned vibration absorber with variable shape stiffness element
Designs for an adaptive tuned vibration absorber with variable shape stiffness element
An adaptive tuned vibration absorber (ATVA) with a smart variable stiffness element is capable of retuning itself in response to a time-varying excitation frequency, enabling effective vibration control over a range of frequencies. This paper discusses novel methods of achieving variable stiffness in an ATVA by changing shape, as inspired by biological paradigms. It is shown that considerable variation in the tuned frequency can be achieved by actuating a shape change, provided that this is within the limits of the actuator. A feasible design for such an ATVA is one in which the device offers low resistance to the required shape change actuation while not being restricted to low values of the effective stiffness of the vibration absorber. Three such original designs are identified: (i) A pinned–pinned arch beam with fixed profile of slight curvature and variable preload through an adjustable natural curvature; (ii) a vibration absorber with a stiffness element formed from parallel curved beams of adjustable curvature vibrating longitudinally; (iii) a vibration absorber with a variable geometry linkage as stiffness element. The experimental results from demonstrators based on two of these designs show good correlation with the theory.
vibration absorber, vibration control, smart structures, biomimetics
1364-5021
3955-3976
Bonello, Philip
a990612b-0024-4858-b910-b185414b5e00
Brennan, Michael J.
87c7bca3-a9e5-46aa-9153-34c712355a13
Elliott, Stephen J.
721dc55c-8c3e-4895-b9c4-82f62abd3567
Vincent, Julian F.V.
a7169f3c-6415-4e23-a868-36b4a5178f90
Jeronomidis, George
b475b25a-7182-40f6-9145-3e0738f1a92a
Bonello, Philip
a990612b-0024-4858-b910-b185414b5e00
Brennan, Michael J.
87c7bca3-a9e5-46aa-9153-34c712355a13
Elliott, Stephen J.
721dc55c-8c3e-4895-b9c4-82f62abd3567
Vincent, Julian F.V.
a7169f3c-6415-4e23-a868-36b4a5178f90
Jeronomidis, George
b475b25a-7182-40f6-9145-3e0738f1a92a

Bonello, Philip, Brennan, Michael J., Elliott, Stephen J., Vincent, Julian F.V. and Jeronomidis, George (2005) Designs for an adaptive tuned vibration absorber with variable shape stiffness element. Proceedings of the Royal Society A, 461 (2064), 3955-3976. (doi:10.1098/rspa.2005.1547).

Record type: Article

Abstract

An adaptive tuned vibration absorber (ATVA) with a smart variable stiffness element is capable of retuning itself in response to a time-varying excitation frequency, enabling effective vibration control over a range of frequencies. This paper discusses novel methods of achieving variable stiffness in an ATVA by changing shape, as inspired by biological paradigms. It is shown that considerable variation in the tuned frequency can be achieved by actuating a shape change, provided that this is within the limits of the actuator. A feasible design for such an ATVA is one in which the device offers low resistance to the required shape change actuation while not being restricted to low values of the effective stiffness of the vibration absorber. Three such original designs are identified: (i) A pinned–pinned arch beam with fixed profile of slight curvature and variable preload through an adjustable natural curvature; (ii) a vibration absorber with a stiffness element formed from parallel curved beams of adjustable curvature vibrating longitudinally; (iii) a vibration absorber with a variable geometry linkage as stiffness element. The experimental results from demonstrators based on two of these designs show good correlation with the theory.

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More information

Published date: 8 December 2005
Keywords: vibration absorber, vibration control, smart structures, biomimetics

Identifiers

Local EPrints ID: 28358
URI: http://eprints.soton.ac.uk/id/eprint/28358
ISSN: 1364-5021
PURE UUID: 0ca8056a-ab5f-4dc4-a618-51c9a78e1090

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Date deposited: 28 Apr 2006
Last modified: 15 Mar 2024 07:24

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Contributors

Author: Philip Bonello
Author: Michael J. Brennan
Author: Julian F.V. Vincent
Author: George Jeronomidis

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