A novel bi-directional shear mode magneto-rheological elastomer vibration isolator

Author:

Jalali Amir12,Dianati Hashem1,Norouzi Mahmood1ORCID,Vatandoost Hossein2ORCID,Ghatee Mojtaba3

Affiliation:

1. Department of Mechanical Engineering, Shahrood University of Technology, Shahrood, Iran

2. Department of Mechanical, Industrial and Aerospace Engineering (MIAE), Concordia University, Montreal, QC, Canada

3. Department of Materials Science and Engineering, Shahrood University of Technology, Shahrood, Iran

Abstract

In this article, a novel bi-directional shear mode magneto-rheological elastomer–based vibration isolator has been designed, fabricated, and characterized to improve the dynamic response and identification of this class of “intellectual” mechanical devices. A heuristic embodiment has been realized in order to design such an isolator wherein both the vertical and horizontal directions can be operated only in the shear mode not only individually but also simultaneously. Two fixtures have been designed for performing the characterization of the magneto-mechanical behavior of the proposed magneto-rheological elastomer isolator in the vertical and horizontal shear modes under wide ranges of strain amplitude (4%–32%), excitation frequency (1–8 Hz), and magnetic flux density (0–220 mT). Experimental results revealed maximum relative magneto-rheological effects of 35% and 27 % in the vertical and horizontal shear modes, respectively. Furthermore, basic mathematical models of single-degree-of-freedom systems, employing the magneto-rheological elastomer–based isolator in the vertical and horizontal shear modes, have been established. The proposed magneto-rheological elastomer isolator in the vertical mode exhibited natural frequency shift of 6.1% by a small increment in the magnetic flux density which approves the potential of the proposed bi-directional shear mode magneto-rheological elastomer–based vibration isolator for vibration control applications, such as seat suspension systems.

Publisher

SAGE Publications

Subject

Mechanical Engineering,General Materials Science

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