Nonlinear stiffness of a magneto-rheological damper

被引:41
作者
Guo, DL [1 ]
Hu, HY
机构
[1] Nanjing Univ Aeronaut & Astronaut, Aeronaut Sci Key Lab Smart Mat & Struct, Nanjing 210016, Peoples R China
[2] Chinese Acad Sci, Inst Automat, Lab Complex Syst & Intelligence Sci, Beijing 100080, Peoples R China
基金
中国国家自然科学基金;
关键词
additional stiffness; equivalent damping; equivalent stiffness; hysteresis; magneto-rheological damper;
D O I
10.1007/s11071-005-6464-y
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
The last decade has witnessed an important role of magneto-rheological dampers in the semi-active vibration control on the basis of empirical models. Those models established by fitting experimental data, however, do not offer any explicit expressions for the stiffness and the damping of magneto-rheological dampers. Hence, it is not easy for engineers to get any intuitive information about the effects of stiffness and damping of a magneto-rheological damper on the dynamic performance of a controlled system. To manifest the nonlinear properties of a magneto-rheological damper, this paper presents the hysteretic phenomena and the additional nonlinear stiffness of a typical magneto-rheological damper in terms of equivalent linear stiffness and equivalent linear damping. Then, it gives a brief discussion about the effect of nonlinear stiffness on the vibration control through the numerical simulations and an experiment for the semi-active suspension of a quarter car model with a magneto-rheological damper installed. Both numerical simulations and experimental results show that the additional nonlinear stiffness in the magneto-rheological damper is remarkable, and should be taken into consideration in the design of vibration control.
引用
收藏
页码:241 / 249
页数:9
相关论文
共 12 条
[1]   Yield stress in magnetorheological and electrorheological fluids: A comparison between microscopic and macroscopic structural models [J].
Bossis, G ;
Lemaire, E ;
Volkova, O ;
Clercx, H .
JOURNAL OF RHEOLOGY, 1997, 41 (03) :687-704
[2]   DYNAMIC MECHANICAL STUDIES OF ELECTRORHEOLOGICAL MATERIALS - MODERATE FREQUENCIES [J].
GAMOTA, DR ;
FILISKO, FE .
JOURNAL OF RHEOLOGY, 1991, 35 (03) :399-425
[3]   Neural network control for a semi-active vehicle suspension with a magnetorheological damper [J].
Guo, DL ;
Hu, HY ;
Yi, JQ .
JOURNAL OF VIBRATION AND CONTROL, 2004, 10 (03) :461-471
[4]   ER FLUID REQUIREMENTS FOR AUTOMOTIVE DEVICES [J].
HARTSOCK, DL ;
NOVAK, RF ;
CHAUNDY, GJ .
JOURNAL OF RHEOLOGY, 1991, 35 (07) :1305-1326
[5]  
Hu H., 2000, APPL NONLINEAR DYNAM
[6]   Zeolite-based electrorheological fluids: Testing, modeling and instrumental artifacts [J].
Jordan, M ;
Schwendt, A ;
Hill, DA ;
Burton, S ;
Makris, N .
JOURNAL OF RHEOLOGY, 1997, 41 (01) :75-91
[7]   Analysis and testing of Bingham plastic behavior in semi-active electrorheological fluid dampers [J].
Kamath, GM ;
Hurt, MK ;
Wereley, NM .
SMART MATERIALS & STRUCTURES, 1996, 5 (05) :576-590
[8]  
PIPPLEWELL J, 1996, J PHYS D, V29, P2297
[9]   Phenomenological model for magnetorheological dampers [J].
Spencer, BF ;
Dyke, SJ ;
Sain, MK ;
Carlson, JD .
JOURNAL OF ENGINEERING MECHANICS-ASCE, 1997, 123 (03) :230-238
[10]   ELECTRIC-FIELD INDUCED SOLIDIFICATION [J].
TAO, R ;
WOESTMAN, JT ;
JAGGI, NK .
APPLIED PHYSICS LETTERS, 1989, 55 (18) :1844-1846