Static and Dynamic Experiment Evaluations of a Displacement Differential Self-Induced Magnetorheological Damper

This paper presents the development of a novel magnetorheological damper (MRD) which has a self-induced ability. In this study, a linear variable differential sensor (LVDS) based on the electromagnetic induction mechanism was integrated with a conventional MRD. The structure of the displacement diff...

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Main Authors: Guoliang Hu, Wei Zhou, Mingke Liao, Weihua Li
Format: Article
Language:English
Published: Hindawi Limited 2015-01-01
Series:Shock and Vibration
Online Access:http://dx.doi.org/10.1155/2015/295294
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spelling doaj-90e94022bf36463db1497a1209902b4f2020-11-24T23:41:37ZengHindawi LimitedShock and Vibration1070-96221875-92032015-01-01201510.1155/2015/295294295294Static and Dynamic Experiment Evaluations of a Displacement Differential Self-Induced Magnetorheological DamperGuoliang Hu0Wei Zhou1Mingke Liao2Weihua Li3School of Mechatronic Engineering, East China Jiaotong University, Nanchang, Jiangxi 330013, ChinaSchool of Mechatronic Engineering, East China Jiaotong University, Nanchang, Jiangxi 330013, ChinaSchool of Mechatronic Engineering, East China Jiaotong University, Nanchang, Jiangxi 330013, ChinaSchool of Mechanical, Materials and Mechatronic Engineering, University of Wollongong, Wollongong, NSW 2522, AustraliaThis paper presents the development of a novel magnetorheological damper (MRD) which has a self-induced ability. In this study, a linear variable differential sensor (LVDS) based on the electromagnetic induction mechanism was integrated with a conventional MRD. The structure of the displacement differential self-induced magnetorheological damper (DDSMRD) was developed, and the theory of displacement differential self-induced performance was deduced. The static experiments of the DDSMRD under different displacement positions were carried out by applying sine excitation signals to the excitation coils, and the experimental results show that the self-induced voltage is proportional to the damper piston displacement. Meanwhile, the dynamic experiments were also carried out using the fatigue test machine to investigate the change of the self-induced voltage under the typical direct current inputs and the different piston rod displacements; the experimental results also show that the self-induced voltage is proportional to the damper piston displacements. Additionally, the dynamic mechanical performance of the DDSMRD was evaluated. The theory deduction and the experimental results indicate that the proposed DDSMRD has the ability of the integrated displacement sensor in addition to the output controllable damping force.http://dx.doi.org/10.1155/2015/295294
collection DOAJ
language English
format Article
sources DOAJ
author Guoliang Hu
Wei Zhou
Mingke Liao
Weihua Li
spellingShingle Guoliang Hu
Wei Zhou
Mingke Liao
Weihua Li
Static and Dynamic Experiment Evaluations of a Displacement Differential Self-Induced Magnetorheological Damper
Shock and Vibration
author_facet Guoliang Hu
Wei Zhou
Mingke Liao
Weihua Li
author_sort Guoliang Hu
title Static and Dynamic Experiment Evaluations of a Displacement Differential Self-Induced Magnetorheological Damper
title_short Static and Dynamic Experiment Evaluations of a Displacement Differential Self-Induced Magnetorheological Damper
title_full Static and Dynamic Experiment Evaluations of a Displacement Differential Self-Induced Magnetorheological Damper
title_fullStr Static and Dynamic Experiment Evaluations of a Displacement Differential Self-Induced Magnetorheological Damper
title_full_unstemmed Static and Dynamic Experiment Evaluations of a Displacement Differential Self-Induced Magnetorheological Damper
title_sort static and dynamic experiment evaluations of a displacement differential self-induced magnetorheological damper
publisher Hindawi Limited
series Shock and Vibration
issn 1070-9622
1875-9203
publishDate 2015-01-01
description This paper presents the development of a novel magnetorheological damper (MRD) which has a self-induced ability. In this study, a linear variable differential sensor (LVDS) based on the electromagnetic induction mechanism was integrated with a conventional MRD. The structure of the displacement differential self-induced magnetorheological damper (DDSMRD) was developed, and the theory of displacement differential self-induced performance was deduced. The static experiments of the DDSMRD under different displacement positions were carried out by applying sine excitation signals to the excitation coils, and the experimental results show that the self-induced voltage is proportional to the damper piston displacement. Meanwhile, the dynamic experiments were also carried out using the fatigue test machine to investigate the change of the self-induced voltage under the typical direct current inputs and the different piston rod displacements; the experimental results also show that the self-induced voltage is proportional to the damper piston displacements. Additionally, the dynamic mechanical performance of the DDSMRD was evaluated. The theory deduction and the experimental results indicate that the proposed DDSMRD has the ability of the integrated displacement sensor in addition to the output controllable damping force.
url http://dx.doi.org/10.1155/2015/295294
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