Tunable Mechanical Filter for Longitudinal Vibrations

This paper presents both theoretically and experimentally a new kind of vibration isolator called tunable mechanical filter which consists of four parallel hybrid periodic rods connected between two plates. The rods consist of an assembly of periodic cells, each cell being composed of a short rod an...

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Main Author: S. Asiri
Format: Article
Language:English
Published: Hindawi Limited 2007-01-01
Series:Shock and Vibration
Online Access:http://dx.doi.org/10.1155/2007/372650
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spelling doaj-86fc55d075cb4584b024227f927856e82020-11-24T21:18:46ZengHindawi LimitedShock and Vibration1070-96221875-92032007-01-0114537739110.1155/2007/372650Tunable Mechanical Filter for Longitudinal VibrationsS. Asiri0Department of Mechanical Engineering, King Abdulaziz University, P.O. Box 80204, Jeddah21589, Saudi ArabiaThis paper presents both theoretically and experimentally a new kind of vibration isolator called tunable mechanical filter which consists of four parallel hybrid periodic rods connected between two plates. The rods consist of an assembly of periodic cells, each cell being composed of a short rod and piezoelectric inserts. By actively controlling the piezoelectric elements, it is shown that the periodic rods can efficiently attenuate the propagation of vibration from the upper plate to the lower one within critical frequency bands and consequently minimize the effects of transmission of undesirable vibration and sound radiation. In such a filter, longitudinal waves can propagate from the vibration source in the upper plate to the lower one along the rods only within specific frequency bands called the “Pass Bands” and wave propagation is efficiently attenuated within other frequency bands called the “Stop Bands”. The spectral width of these bands can be tuned according to the nature of the external excitation. The theory governing the operation of this class of vibration isolator is presented and their tunable filtering characteristics are demonstrated experimentally as functions of their design parameters. The concept of this mechanical filter as presented can be employed in many applications to control the wave propagation and the force transmission of longitudinal vibrations both in the spectral and spatial domains in an attempt to stop/attenuate the propagation of undesirable disturbances.http://dx.doi.org/10.1155/2007/372650
collection DOAJ
language English
format Article
sources DOAJ
author S. Asiri
spellingShingle S. Asiri
Tunable Mechanical Filter for Longitudinal Vibrations
Shock and Vibration
author_facet S. Asiri
author_sort S. Asiri
title Tunable Mechanical Filter for Longitudinal Vibrations
title_short Tunable Mechanical Filter for Longitudinal Vibrations
title_full Tunable Mechanical Filter for Longitudinal Vibrations
title_fullStr Tunable Mechanical Filter for Longitudinal Vibrations
title_full_unstemmed Tunable Mechanical Filter for Longitudinal Vibrations
title_sort tunable mechanical filter for longitudinal vibrations
publisher Hindawi Limited
series Shock and Vibration
issn 1070-9622
1875-9203
publishDate 2007-01-01
description This paper presents both theoretically and experimentally a new kind of vibration isolator called tunable mechanical filter which consists of four parallel hybrid periodic rods connected between two plates. The rods consist of an assembly of periodic cells, each cell being composed of a short rod and piezoelectric inserts. By actively controlling the piezoelectric elements, it is shown that the periodic rods can efficiently attenuate the propagation of vibration from the upper plate to the lower one within critical frequency bands and consequently minimize the effects of transmission of undesirable vibration and sound radiation. In such a filter, longitudinal waves can propagate from the vibration source in the upper plate to the lower one along the rods only within specific frequency bands called the “Pass Bands” and wave propagation is efficiently attenuated within other frequency bands called the “Stop Bands”. The spectral width of these bands can be tuned according to the nature of the external excitation. The theory governing the operation of this class of vibration isolator is presented and their tunable filtering characteristics are demonstrated experimentally as functions of their design parameters. The concept of this mechanical filter as presented can be employed in many applications to control the wave propagation and the force transmission of longitudinal vibrations both in the spectral and spatial domains in an attempt to stop/attenuate the propagation of undesirable disturbances.
url http://dx.doi.org/10.1155/2007/372650
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