Javascript must be enabled to continue!
Transient Magnetic Model of Magnetorheological Damper and Its Experimental Verification
View through CrossRef
The present paper deals with the transient magnetic model of the magnetorheological (MR) damper and its experimental verification. The response time of MR damper affects the quality of semi-active control of this damper. The lower the response time, the higher the system efficiency. The most important part of the response time of the MR damper is the response time of magnetic field of the MR damper which can be determined by transient magnetic model. The transient magnetic model was created by the software Ansys Electromagnetics 17.1 as 2D axisymmetric and verified by measurement of magnetic field in the gap of MR damper piston. The maximum difference between the model and the experiment was 28 %. The response time depends on the electric current in the coil of MR damper. The transient magnetic model was used for determination of influence of MR fluid type, material of cover and material of magnetic circuit on the response time of magnetic field of MR damper. The type of MR fluid has a significant influence on the response time. The lower the mass concentration of ferromagnetic particles, the lower the response time of magnetic field. A material selection of magnetic circuit is always a trade-off between the response time and the maximum magnetic flux density (dynamic force range) in the gap of the MR damper. According to the verified transient magnetic model, it is possible to find a suitable material of magnetic circuit for specific application (response time).
Title: Transient Magnetic Model of Magnetorheological Damper and Its Experimental Verification
Description:
The present paper deals with the transient magnetic model of the magnetorheological (MR) damper and its experimental verification.
The response time of MR damper affects the quality of semi-active control of this damper.
The lower the response time, the higher the system efficiency.
The most important part of the response time of the MR damper is the response time of magnetic field of the MR damper which can be determined by transient magnetic model.
The transient magnetic model was created by the software Ansys Electromagnetics 17.
1 as 2D axisymmetric and verified by measurement of magnetic field in the gap of MR damper piston.
The maximum difference between the model and the experiment was 28 %.
The response time depends on the electric current in the coil of MR damper.
The transient magnetic model was used for determination of influence of MR fluid type, material of cover and material of magnetic circuit on the response time of magnetic field of MR damper.
The type of MR fluid has a significant influence on the response time.
The lower the mass concentration of ferromagnetic particles, the lower the response time of magnetic field.
A material selection of magnetic circuit is always a trade-off between the response time and the maximum magnetic flux density (dynamic force range) in the gap of the MR damper.
According to the verified transient magnetic model, it is possible to find a suitable material of magnetic circuit for specific application (response time).
Related Results
Semi‐active control of metal foam magnetorheological damper
Semi‐active control of metal foam magnetorheological damper
AbstractA new type of foam metal magnetorheological damper is designed, and its performance in semi‐active control is investigated. At first, magnetorheological fluid is stored in ...
Pre-Optimization of Asymmetrical Underplatform Dampers
Pre-Optimization of Asymmetrical Underplatform Dampers
The numerical coupled optimization of an underplatform damper is the exploration of its dynamics through a finite element model which includes both the damper and the blades. This ...
Comparative Study on Axial Magnetorheological Effect and Shear Magnetorheological Effect of Magnetorheological Elastomer
Comparative Study on Axial Magnetorheological Effect and Shear Magnetorheological Effect of Magnetorheological Elastomer
The magnetorheological effect of magnetorheological elastomer (MRE) suggests that the viscoelasticity of MRE can be reversibly regulated by magnetic fields in real time. Presently,...
Optimal Design Methodology of Maxwell Coulomb Friction Damper
Optimal Design Methodology of Maxwell Coulomb Friction Damper
An optimal design methodology of Maxwell Coulomb friction damper is proposed for minimization of resonant vibration of dynamic structures. The simple Coulomb friction damper has th...
Effective Test Procedures for Evaluating Force Characteristics of Magneto-Rheological Dampers
Effective Test Procedures for Evaluating Force Characteristics of Magneto-Rheological Dampers
This paper will provide a new test procedure for determining the force characteristics of magneto rheological (MR) dampers that are commonly used for vehicle suspensions. Force cha...
Multi‐objective optimal design and performance of magnetorheological damper
Multi‐objective optimal design and performance of magnetorheological damper
AbstractIn order to solve the problems of high power consumption and low output damping force of magnetorheological dampers, the relationship model between the structural parameter...
MR Damper for Artificial Knee Joint: Concept Design and Performance Assessment
MR Damper for Artificial Knee Joint: Concept Design and Performance Assessment
Abstract
One of the most common types of amputation in the world is transfemoral amputation. A transfemoral amputation necessitates the use of a prosthesis, or artif...
Experimental Evaluation of Magnetorheological Damper Characteristics for Vibration Analysis
Experimental Evaluation of Magnetorheological Damper Characteristics for Vibration Analysis
Magnetorheological (MR) fluid damper has been designed, fabricated and tested to find the stiffness and damping characteristics. Experimentally the MR damper has been tested to ana...

