Finite element based modeling of magnetorheological dampers

For an efficient damper design, a design engineer always faces the challenge of providing the largest forces in the most compact and efficient envelope. It is important to identify the nature of the force required at the output in order to configure the damper to produce more force in less space. Th...

Full description

Bibliographic Details
Main Author: Malankar, Kedar Prakash
Other Authors: Bahr, Behnam
Format: Others
Language:en_US
Published: 2007
Subjects:
Online Access:http://hdl.handle.net/10057/666
id ndltd-WICHITA-oai-soar.wichita.edu-10057-666
record_format oai_dc
spelling ndltd-WICHITA-oai-soar.wichita.edu-10057-6662013-05-03T04:19:01ZFinite element based modeling of magnetorheological dampersMalankar, Kedar PrakashElectronic dissertationsFor an efficient damper design, a design engineer always faces the challenge of providing the largest forces in the most compact and efficient envelope. It is important to identify the nature of the force required at the output in order to configure the damper to produce more force in less space. This thesis takes into consideration the role of MagnetoRheological (MR) fluids played when used in conjunction with dampers. In order to achieve this purpose, a finite element model is constructed to analyze and examine a 2-D axisymmetric MR damper. The results obtained in this thesis will help designers to create more efficient and reliable MR dampers. With the help of finite element tools, some design analyses are created to change the shape of the piston in the damper or other parameters in the model. The main benefit of this research is to show a 2-D MR damper and generate the magnetic flux density along the MR Fluid gap. The magnetic saturation is detected by looking at the nodal solution for the magnetic flux density. Increasing the current in the model, results in an increase in magnetic induction. Three different configurations of an MR damper piston were studied in order to determine how changing the shape of the piston affects the maximum force which the damper provides. The variations provided in the MR fluid gap were plotted for magnetic flux density contour before and after reaching the rheological saturation. By increasing the current, the color spectrum of the magnetic flux density will shift from the MR fluid gap to the piston centerline. As the current provided to a reasonably good amount, the force obtained was to a good extent. But it reaches saturation at around 2 amps. Thus for constraint or heat build up limitations, the second model could work the best among the three designs that we considered. For cases where higher electrical currents can be tolerated, model 2 would be the most advantageous design, since it provides the largest force among the three models.Thesis (M.S.)--Wichita State University, College of Engineering, Dept. of Mechanical Engineering"December 2006."Bahr, Behnam2007-08-19T01:12:41Z2007-08-19T01:12:41Z2006-12Thesis3573163 bytesapplication/pdft06094http://hdl.handle.net/10057/666en_USCopyright Kedar Prakash Malankar, 2006. All rights reserved.
collection NDLTD
language en_US
format Others
sources NDLTD
topic Electronic dissertations
spellingShingle Electronic dissertations
Malankar, Kedar Prakash
Finite element based modeling of magnetorheological dampers
description For an efficient damper design, a design engineer always faces the challenge of providing the largest forces in the most compact and efficient envelope. It is important to identify the nature of the force required at the output in order to configure the damper to produce more force in less space. This thesis takes into consideration the role of MagnetoRheological (MR) fluids played when used in conjunction with dampers. In order to achieve this purpose, a finite element model is constructed to analyze and examine a 2-D axisymmetric MR damper. The results obtained in this thesis will help designers to create more efficient and reliable MR dampers. With the help of finite element tools, some design analyses are created to change the shape of the piston in the damper or other parameters in the model. The main benefit of this research is to show a 2-D MR damper and generate the magnetic flux density along the MR Fluid gap. The magnetic saturation is detected by looking at the nodal solution for the magnetic flux density. Increasing the current in the model, results in an increase in magnetic induction. Three different configurations of an MR damper piston were studied in order to determine how changing the shape of the piston affects the maximum force which the damper provides. The variations provided in the MR fluid gap were plotted for magnetic flux density contour before and after reaching the rheological saturation. By increasing the current, the color spectrum of the magnetic flux density will shift from the MR fluid gap to the piston centerline. As the current provided to a reasonably good amount, the force obtained was to a good extent. But it reaches saturation at around 2 amps. Thus for constraint or heat build up limitations, the second model could work the best among the three designs that we considered. For cases where higher electrical currents can be tolerated, model 2 would be the most advantageous design, since it provides the largest force among the three models. === Thesis (M.S.)--Wichita State University, College of Engineering, Dept. of Mechanical Engineering === "December 2006."
author2 Bahr, Behnam
author_facet Bahr, Behnam
Malankar, Kedar Prakash
author Malankar, Kedar Prakash
author_sort Malankar, Kedar Prakash
title Finite element based modeling of magnetorheological dampers
title_short Finite element based modeling of magnetorheological dampers
title_full Finite element based modeling of magnetorheological dampers
title_fullStr Finite element based modeling of magnetorheological dampers
title_full_unstemmed Finite element based modeling of magnetorheological dampers
title_sort finite element based modeling of magnetorheological dampers
publishDate 2007
url http://hdl.handle.net/10057/666
work_keys_str_mv AT malankarkedarprakash finiteelementbasedmodelingofmagnetorheologicaldampers
_version_ 1716585452289392640