A Review on Vibration Control Strategies Using Magnetorheological Materials Actuators: Application Perspective

Magnetorheological (MR) materials are a group of smart materials used in new technologies with controlled reliability. The development of these materials is expanding, starting from MR fluids, elastomers, grease, and gel. This large number of material types further expands the various applications o...

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Main Authors: Aji Masa’id, Bhre Wangsa Lenggana, U. Ubaidillah, Didik Djoko Susilo, Seung-Bok Choi
Format: Article
Language:English
Published: MDPI AG 2023-03-01
Series:Actuators
Subjects:
Online Access:https://www.mdpi.com/2076-0825/12/3/113
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author Aji Masa’id
Bhre Wangsa Lenggana
U. Ubaidillah
Didik Djoko Susilo
Seung-Bok Choi
author_facet Aji Masa’id
Bhre Wangsa Lenggana
U. Ubaidillah
Didik Djoko Susilo
Seung-Bok Choi
author_sort Aji Masa’id
collection DOAJ
description Magnetorheological (MR) materials are a group of smart materials used in new technologies with controlled reliability. The development of these materials is expanding, starting from MR fluids, elastomers, grease, and gel. This large number of material types further expands the various applications of MR materials as a creative technology to support performance enhancement. For example, MR fluid is used to improve the performance of shock absorbers such as vehicle suspension, the damping of building structures, and polishing of the workpiece. MR elastomers are used for engine mounting, insulation base, and many other applications with intelligent material properties such as stiffness controllability. However, there are still complexities in the practical implementation of the control system beyond reliability. Many previous studies have focused on the performance improvement and reliability of MR materials as smart materials for application devices and systems. In this review article, the specific discussion related to vibration control strategies in MR material-based systems was thoroughly investigated. To discuss this point, many MR applications including transportation system and vibration isolation were adopted using different types of control strategies. Many different control strategies that have been used for MR applications such as fuzzy logic control, optimal control, and skyhook control are discussed in-depth in terms of the inherent control characteristics of merits and demerits.
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spelling doaj.art-9a2bbf2ac0eb4cc5be1ea4d1266aa0222023-11-17T08:56:50ZengMDPI AGActuators2076-08252023-03-0112311310.3390/act12030113A Review on Vibration Control Strategies Using Magnetorheological Materials Actuators: Application PerspectiveAji Masa’id0Bhre Wangsa Lenggana1U. Ubaidillah2Didik Djoko Susilo3Seung-Bok Choi4Department of Mechanical Engineering, Faculty of Engineering, Universitas Sebelas Maret, Surakarta 57126, IndonesiaDepartment of Mechanical Engineering, Faculty of Engineering, Universitas Sebelas Maret, Surakarta 57126, IndonesiaDepartment of Mechanical Engineering, Faculty of Engineering, Universitas Sebelas Maret, Surakarta 57126, IndonesiaDepartment of Mechanical Engineering, Faculty of Engineering, Universitas Sebelas Maret, Surakarta 57126, IndonesiaDepartment of Mechanical Engineering, Industrial University of Ho Chi Minh City (IUH), Ho Chi Minh City 70000, VietnamMagnetorheological (MR) materials are a group of smart materials used in new technologies with controlled reliability. The development of these materials is expanding, starting from MR fluids, elastomers, grease, and gel. This large number of material types further expands the various applications of MR materials as a creative technology to support performance enhancement. For example, MR fluid is used to improve the performance of shock absorbers such as vehicle suspension, the damping of building structures, and polishing of the workpiece. MR elastomers are used for engine mounting, insulation base, and many other applications with intelligent material properties such as stiffness controllability. However, there are still complexities in the practical implementation of the control system beyond reliability. Many previous studies have focused on the performance improvement and reliability of MR materials as smart materials for application devices and systems. In this review article, the specific discussion related to vibration control strategies in MR material-based systems was thoroughly investigated. To discuss this point, many MR applications including transportation system and vibration isolation were adopted using different types of control strategies. Many different control strategies that have been used for MR applications such as fuzzy logic control, optimal control, and skyhook control are discussed in-depth in terms of the inherent control characteristics of merits and demerits.https://www.mdpi.com/2076-0825/12/3/113magnetorheological materialscontrol strategiesvibration controladaptive controlfuzzy control
spellingShingle Aji Masa’id
Bhre Wangsa Lenggana
U. Ubaidillah
Didik Djoko Susilo
Seung-Bok Choi
A Review on Vibration Control Strategies Using Magnetorheological Materials Actuators: Application Perspective
Actuators
magnetorheological materials
control strategies
vibration control
adaptive control
fuzzy control
title A Review on Vibration Control Strategies Using Magnetorheological Materials Actuators: Application Perspective
title_full A Review on Vibration Control Strategies Using Magnetorheological Materials Actuators: Application Perspective
title_fullStr A Review on Vibration Control Strategies Using Magnetorheological Materials Actuators: Application Perspective
title_full_unstemmed A Review on Vibration Control Strategies Using Magnetorheological Materials Actuators: Application Perspective
title_short A Review on Vibration Control Strategies Using Magnetorheological Materials Actuators: Application Perspective
title_sort review on vibration control strategies using magnetorheological materials actuators application perspective
topic magnetorheological materials
control strategies
vibration control
adaptive control
fuzzy control
url https://www.mdpi.com/2076-0825/12/3/113
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