Damping performance analysis of magnetorheological damper with serial-type flow channels

In order to obtain a larger damping force with the limited axial size of the vehicle suspension system, a new magnetorheological damper with serial-type flow channels was developed. The piston head was equipped with two piston end covers, three piston non-magnetic sleeves, and four piston magnetic s...

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Main Authors: Guoliang Hu, Hao Liu, Jinfu Duan, Lifan Yu
Format: Article
Language:English
Published: SAGE Publishing 2019-01-01
Series:Advances in Mechanical Engineering
Online Access:https://doi.org/10.1177/1687814018816842
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spelling doaj-cb76355d78a84620af344ee291abd0172020-11-25T03:43:37ZengSAGE PublishingAdvances in Mechanical Engineering1687-81402019-01-011110.1177/1687814018816842Damping performance analysis of magnetorheological damper with serial-type flow channelsGuoliang HuHao LiuJinfu DuanLifan YuIn order to obtain a larger damping force with the limited axial size of the vehicle suspension system, a new magnetorheological damper with serial-type flow channels was developed. The piston head was equipped with two piston end covers, three piston non-magnetic sleeves, and four piston magnetic sleeves, which were sequentially combined into three serial-type flow channels to form three groups of effective damping gaps. The structure and principle of the proposed magnetorheological damper were described in detail, and the model for calculating damping force was deduced too. Simulation and analysis for the proposed magnetorheological damper was implemented using electromagnetic field simulation software. The damping performance was tested and analyzed on the test rig under different applied current, amplitude, and frequency excitation. The experimental results show that the damping force is 6838 N under the load excitation with frequency of 1 Hz, amplitude of 7.5 mm, and current of 1.5 A, which is 1.6 times than the expected damping force. The equivalent damping coefficient is attained to 290 kN/s m −1 , which shows that the developed magnetorheological damper has high vibration control ability and good mechanical properties.https://doi.org/10.1177/1687814018816842
collection DOAJ
language English
format Article
sources DOAJ
author Guoliang Hu
Hao Liu
Jinfu Duan
Lifan Yu
spellingShingle Guoliang Hu
Hao Liu
Jinfu Duan
Lifan Yu
Damping performance analysis of magnetorheological damper with serial-type flow channels
Advances in Mechanical Engineering
author_facet Guoliang Hu
Hao Liu
Jinfu Duan
Lifan Yu
author_sort Guoliang Hu
title Damping performance analysis of magnetorheological damper with serial-type flow channels
title_short Damping performance analysis of magnetorheological damper with serial-type flow channels
title_full Damping performance analysis of magnetorheological damper with serial-type flow channels
title_fullStr Damping performance analysis of magnetorheological damper with serial-type flow channels
title_full_unstemmed Damping performance analysis of magnetorheological damper with serial-type flow channels
title_sort damping performance analysis of magnetorheological damper with serial-type flow channels
publisher SAGE Publishing
series Advances in Mechanical Engineering
issn 1687-8140
publishDate 2019-01-01
description In order to obtain a larger damping force with the limited axial size of the vehicle suspension system, a new magnetorheological damper with serial-type flow channels was developed. The piston head was equipped with two piston end covers, three piston non-magnetic sleeves, and four piston magnetic sleeves, which were sequentially combined into three serial-type flow channels to form three groups of effective damping gaps. The structure and principle of the proposed magnetorheological damper were described in detail, and the model for calculating damping force was deduced too. Simulation and analysis for the proposed magnetorheological damper was implemented using electromagnetic field simulation software. The damping performance was tested and analyzed on the test rig under different applied current, amplitude, and frequency excitation. The experimental results show that the damping force is 6838 N under the load excitation with frequency of 1 Hz, amplitude of 7.5 mm, and current of 1.5 A, which is 1.6 times than the expected damping force. The equivalent damping coefficient is attained to 290 kN/s m −1 , which shows that the developed magnetorheological damper has high vibration control ability and good mechanical properties.
url https://doi.org/10.1177/1687814018816842
work_keys_str_mv AT guolianghu dampingperformanceanalysisofmagnetorheologicaldamperwithserialtypeflowchannels
AT haoliu dampingperformanceanalysisofmagnetorheologicaldamperwithserialtypeflowchannels
AT jinfuduan dampingperformanceanalysisofmagnetorheologicaldamperwithserialtypeflowchannels
AT lifanyu dampingperformanceanalysisofmagnetorheologicaldamperwithserialtypeflowchannels
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