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Development of a Performance-Enhanced Hybrid Magnetorheological Elastomer-Fluid for Semi-Active Vibration Isolation: Static and Dynamic Experimental Characterization

Magnetorheological elastomers (MREs) are a class of emerging smart materials in which their mechanical and rheological properties can be immediately and reversibly altered upon the application of a magnetic field. The change in the MRE properties under the magnetic field is widely known as the magne...

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Autores principales: Ali, Abdelrahman, Salem, Ayman M. H., Muthalif, Asan G. A., Ramli, Rahizar Bin, Julai, Sabariah
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9101265/
https://www.ncbi.nlm.nih.gov/pubmed/35591572
http://dx.doi.org/10.3390/ma15093238
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author Ali, Abdelrahman
Salem, Ayman M. H.
Muthalif, Asan G. A.
Ramli, Rahizar Bin
Julai, Sabariah
author_facet Ali, Abdelrahman
Salem, Ayman M. H.
Muthalif, Asan G. A.
Ramli, Rahizar Bin
Julai, Sabariah
author_sort Ali, Abdelrahman
collection PubMed
description Magnetorheological elastomers (MREs) are a class of emerging smart materials in which their mechanical and rheological properties can be immediately and reversibly altered upon the application of a magnetic field. The change in the MRE properties under the magnetic field is widely known as the magnetorheological (MR) effect. Despite their inherent viscoelastic property-change characteristics, there are disadvantages incorporated with MREs, such as slow response time and the suspension of the magnetic particles in the elastomer matrix, which depress their MR effect. This study investigates the feasibility of a hybrid magnetorheological elastomer-fluid (MRE-F) for longitudinal vibration isolation. The hybrid MRE-F is fabricated by encapsulating MR fluid inside the elastomer matrix. The inclusion of the MR fluid can enhance the MR effect of the elastomer by providing a better response to the magnetic field and, hence, can improve the vibration isolation capabilities. For this purpose, an MRE-based coupling is developed, and isolation performance is investigated in terms of the linear transmissibility factor. The performance of the hybrid MRE-F was compared against two different MRE samples. The results show that further enhancement of MR-effect in MREs is possible by including MR fluid inside the elastomer. The hybrid MRE-F exhibited better stiffness change with the current increase and recorded the highest value of [Formula: see text]. The transmissivity curves revealed that the MRE-F contributed to a broader shift in the natural frequency with a [Formula: see text] overall shift at [Formula: see text]. The damping characteristics are higher in MRE-F, recording the highest percentage increase in damping with [Formula: see text]. Overall, the results reveal the promising potential of hybrid MRE-F in developing MRE-based coupling for longitudinal vibration isolation.
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spelling pubmed-91012652022-05-14 Development of a Performance-Enhanced Hybrid Magnetorheological Elastomer-Fluid for Semi-Active Vibration Isolation: Static and Dynamic Experimental Characterization Ali, Abdelrahman Salem, Ayman M. H. Muthalif, Asan G. A. Ramli, Rahizar Bin Julai, Sabariah Materials (Basel) Article Magnetorheological elastomers (MREs) are a class of emerging smart materials in which their mechanical and rheological properties can be immediately and reversibly altered upon the application of a magnetic field. The change in the MRE properties under the magnetic field is widely known as the magnetorheological (MR) effect. Despite their inherent viscoelastic property-change characteristics, there are disadvantages incorporated with MREs, such as slow response time and the suspension of the magnetic particles in the elastomer matrix, which depress their MR effect. This study investigates the feasibility of a hybrid magnetorheological elastomer-fluid (MRE-F) for longitudinal vibration isolation. The hybrid MRE-F is fabricated by encapsulating MR fluid inside the elastomer matrix. The inclusion of the MR fluid can enhance the MR effect of the elastomer by providing a better response to the magnetic field and, hence, can improve the vibration isolation capabilities. For this purpose, an MRE-based coupling is developed, and isolation performance is investigated in terms of the linear transmissibility factor. The performance of the hybrid MRE-F was compared against two different MRE samples. The results show that further enhancement of MR-effect in MREs is possible by including MR fluid inside the elastomer. The hybrid MRE-F exhibited better stiffness change with the current increase and recorded the highest value of [Formula: see text]. The transmissivity curves revealed that the MRE-F contributed to a broader shift in the natural frequency with a [Formula: see text] overall shift at [Formula: see text]. The damping characteristics are higher in MRE-F, recording the highest percentage increase in damping with [Formula: see text]. Overall, the results reveal the promising potential of hybrid MRE-F in developing MRE-based coupling for longitudinal vibration isolation. MDPI 2022-04-30 /pmc/articles/PMC9101265/ /pubmed/35591572 http://dx.doi.org/10.3390/ma15093238 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Ali, Abdelrahman
Salem, Ayman M. H.
Muthalif, Asan G. A.
Ramli, Rahizar Bin
Julai, Sabariah
Development of a Performance-Enhanced Hybrid Magnetorheological Elastomer-Fluid for Semi-Active Vibration Isolation: Static and Dynamic Experimental Characterization
title Development of a Performance-Enhanced Hybrid Magnetorheological Elastomer-Fluid for Semi-Active Vibration Isolation: Static and Dynamic Experimental Characterization
title_full Development of a Performance-Enhanced Hybrid Magnetorheological Elastomer-Fluid for Semi-Active Vibration Isolation: Static and Dynamic Experimental Characterization
title_fullStr Development of a Performance-Enhanced Hybrid Magnetorheological Elastomer-Fluid for Semi-Active Vibration Isolation: Static and Dynamic Experimental Characterization
title_full_unstemmed Development of a Performance-Enhanced Hybrid Magnetorheological Elastomer-Fluid for Semi-Active Vibration Isolation: Static and Dynamic Experimental Characterization
title_short Development of a Performance-Enhanced Hybrid Magnetorheological Elastomer-Fluid for Semi-Active Vibration Isolation: Static and Dynamic Experimental Characterization
title_sort development of a performance-enhanced hybrid magnetorheological elastomer-fluid for semi-active vibration isolation: static and dynamic experimental characterization
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9101265/
https://www.ncbi.nlm.nih.gov/pubmed/35591572
http://dx.doi.org/10.3390/ma15093238
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