Magnetostriction Enhancement in Midrange Modulus Magnetorheological Elastomers for Sensor Applications

Author:

Tasin Muhammad Asyraf1,Aziz Siti Aishah Abdul2ORCID,Mazlan Saiful Amri1ORCID,Johari Mohd Aidy Faizal1ORCID,Nordin Nur Azmah1,Yusuf Shahir Yasin Mohd1ORCID,Choi Seung-Bok34ORCID,Bahiuddin Irfan5ORCID

Affiliation:

1. Engineering Materials and Structures (eMast) iKohza, Malaysia-Japan International Institute of Technology (MJIIT), Universiti Teknologi Malaysia, Kuala Lumpur 54100, Malaysia

2. Faculty of Applied Sciences, Universiti Teknologi MARA (UiTM) Cawangan Pahang, Jengka 26400, Malaysia

3. Department of Mechanical Engineering, The State University of New York, Korea (SUNY Korea), Incheon 21985, Republic of Korea

4. Department of Mechanical Engineering, Industrial University of Ho Chi Minh (IUH), Ho Chi Minh City 70000, Vietnam

5. Department of Mechanical Engineering, Vocational College, Universitas Gadjah Mada, Yogyakarta 55281, Indonesia

Abstract

Magnetorheological elastomer (MRE), which is capable of exhibiting magnetostriction in the presence of a magnetic field, has a great potential to be used for the development of sensor devices. Unfortunately, to date, many works focused on studying low modulus of MRE (less than 100 kPa) which can hamper their potential application in sensors due to short lifespan and low durability. Thus, in this work, MRE with storage modulus above 300 kPa is to be developed to enhance magnetostriction magnitude and reaction force (normal force). To achieve this goal, MREs are prepared with various compositions of carbonyl iron particles (CIPs), in particular, MRE with 60, 70 and 80 wt.% of CIP. It is shown that both the magnetostriction percentage and normal force increment are achieved as the concentration of CIPs increases. The highest magnetostriction magnitude of 0.075% is obtained with 80 wt.% of CIP, and this increment is higher than that of moderate stiffness MRE developed in the previous works. Therefore, the midrange range modulus MRE developed in this work can copiously produce the required magnetostriction value and potentially be implemented for the design of forefront sensor technology.

Funder

Universiti Teknologi Malaysia

Professional Development Research University

Publisher

MDPI AG

Subject

Electrical and Electronic Engineering,Mechanical Engineering,Control and Systems Engineering

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