DocumentCode :
1837560
Title :
Analytical modeling and optimal design of a MR damper with power generation
Author :
Xiaocong Zhu ; Weiwei Wang ; Bin Yao ; Jian Cao ; Qingfeng Wang
Author_Institution :
Sate Key Lab. of Fluid Power Transm. & Control, Zhejiang Univ., Hangzhou, China
fYear :
2015
fDate :
7-11 July 2015
Firstpage :
1531
Lastpage :
1536
Abstract :
Magnetorheological (MR) dampers have promising applications for providing instantaneous and controllable damping to attenuate vibrations in various dynamic systems. Currently, the mechanical energy along with motion of the MR damper is mostly transferred into heat energy and is finally dissipated into environments. In view of recycling usage of such dissipated energy in MR damper systems, the MR damper with power generation is consequently needed in practical applications. In this paper, a MR damper with compact power generation mechanism in parallel is proposed, which can provide both damping effect and recycling energy from mechanical vibration. The physical modeling of the MR damper with power generation in a non-dimensional parametric analysis is developed to give a clear and quantitative insight of performance influences from parameter design. The analytical modeling was validated by comparison results with finite element analysis of this prototype. Then, a performance-oriented parameter optimization design of this prototype is proposed, which could achieve a maximum damping force with fairly large dynamic range for the MR damper and a maximum resulting energy for the power generator subject to physical structure limitation under various external excitations in applications.
Keywords :
damping; finite element analysis; magnetorheology; prototypes; vibration control; MR damper; analytical modeling; damping effect; dynamic systems; energy dissipation; energy recycling; external excitations; finite element analysis; heat energy; instantaneous controllable damping; magnetorheological dampers; maximum damping force; mechanical energy; mechanical vibration; nondimensional parametric analysis; optimal design; parameter design; performance-oriented parameter optimization design; physical modeling; power generation; prototypes; vibration attenuation; Analytical models; Fluids; Generators; Magnetic flux; Magnetomechanical effects; Power generation; Shock absorbers;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Advanced Intelligent Mechatronics (AIM), 2015 IEEE International Conference on
Conference_Location :
Busan
Type :
conf
DOI :
10.1109/AIM.2015.7222759
Filename :
7222759
Link To Document :
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