Active-passive hybrid vibration isolation with magnetic negative stiffness isolator based on Maxwell normal stress

被引:86
作者
Zhang, Feng [1 ]
Shao, Shubao [1 ]
Tian, Zheng [1 ]
Xu, Minglong [1 ]
Xie, Shilin [1 ]
机构
[1] Xi An Jiao Tong Univ, Sch Aerosp, State Key Lab Strength & Vibrat Mech Struct, Xian 710049, Shaanxi, Peoples R China
基金
中国国家自然科学基金;
关键词
Vibration isolation; Magnetic negative stiffness; Maxwell magnetic normal stress; Active-passive hybrid control; QUASI-ZERO-STIFFNESS; DESIGN; SYSTEM;
D O I
10.1016/j.ymssp.2019.01.022
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
A new magnetic negative stiffness isolator based on Maxwell normal stress is proposed to improve the low-frequency vibration isolation performance of a system with high static support stiffness. The isolator can provide high negative stiffness maintaining compact size and light weight. The negative stiffness characteristic of the isolator was first modeled through magnetic circuit analysis. Then, the passive vibration isolation performance of the isolator was validated experimentally. Active control was then introduced into the isolation system to improve its ability to adapt to external disturbances and suppress the system's resonance response. The governing equation of the active-passive hybrid vibration isolation system was established. The simulated and experimental results showed that the magnetic negative stiffness isolator with active-passive hybrid control can greatly reduce the isolation initial frequency and significantly suppress the system resonance response in comparison with passive methods. The present work provides a promising way to realize low-frequency broad-band vibration isolation for systems with high static support stiffness. (C) 2019 Elsevier Ltd. All rights reserved.
引用
收藏
页码:244 / 263
页数:20
相关论文
共 30 条
[1]  
[Anonymous], 2001, SIGNAL PROCESSING AC
[2]  
[Anonymous], 2004, APPL MECH REV
[3]   Nonlinear vibration isolator with adjustable restoring force [J].
Araki, Yoshikazu ;
Asai, Takehiko ;
Kimura, Kosuke ;
Maezawa, Kosei ;
Masui, Takeshi .
JOURNAL OF SOUND AND VIBRATION, 2013, 332 (23) :6063-6077
[4]   On the design of a high-static-low-dynamic stiffness isolator using linear mechanical springs and magnets [J].
Carrella, A. ;
Brennan, M. J. ;
Waters, T. P. ;
Shin, K. .
JOURNAL OF SOUND AND VIBRATION, 2008, 315 (03) :712-720
[5]   Optimization of a quasi-zero-stiffness isolator [J].
Carrella, A. ;
Brennan, M. J. ;
Waters, T. P. .
JOURNAL OF MECHANICAL SCIENCE AND TECHNOLOGY, 2007, 21 (06) :946-949
[6]   Static analysis of a passive vibration isolator with quasi-zero-stiffness characteristic [J].
Carrella, A. ;
Brennan, M. J. ;
Waters, T. P. .
JOURNAL OF SOUND AND VIBRATION, 2007, 301 (3-5) :678-689
[7]   On the force transmissibility of a vibration isolator with quasi-zero-stiffness [J].
Carrella, A. ;
Brennan, M. J. ;
Kovacic, I. ;
Waters, T. P. .
JOURNAL OF SOUND AND VIBRATION, 2009, 322 (4-5) :707-717
[8]   Simulated and experimental studies on a high-static-low-dynamic stiffness isolator using magnetic negative stiffness spring [J].
Dong, Guangxu ;
Zhang, Xinong ;
Xie, Shilin ;
Yan, Bo ;
Luo, Yajun .
MECHANICAL SYSTEMS AND SIGNAL PROCESSING, 2017, 86 :188-203
[9]   Analytical and Experimental Investigation of Buckled Beams as Negative Stiffness Elements for Passive Vibration and Shock Isolation Systems [J].
Fulcher, Benjamin A. ;
Shahan, David W. ;
Haberman, Michael R. ;
Seepersad, Carolyn Conner ;
Wilson, Preston S. .
JOURNAL OF VIBRATION AND ACOUSTICS-TRANSACTIONS OF THE ASME, 2014, 136 (03)
[10]   ACTIVE VERSUS PASSIVE VIBRATION ABSORBERS [J].
HERZOG, R .
JOURNAL OF DYNAMIC SYSTEMS MEASUREMENT AND CONTROL-TRANSACTIONS OF THE ASME, 1994, 116 (03) :367-371