Active vibration control of machine tool structures -: Part 2: An experimental active-vibration control system

被引:0
作者
Haase, F [1 ]
Lockwood, S [1 ]
Ford, DG [1 ]
机构
[1] Univ Huddersfield, Precis Engn Ctr, Huddersfield HD1 3DH, W Yorkshire, England
来源
LASER METROLOGY AND MACHINE PERFORMANCE VI | 2003年
关键词
D O I
暂无
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The presented work is part of a project aimed at improving machine tool performance due to forced and self-excited vibration. Adaptive algorithms used in digital signal processing (DSP) are implemented in order to model machine tool structures and control the vibration. Self-excited machine tool vibration occurs when the cutting load exceeds the dynamic stiffness of the machine. The phenomenon is called chatter and has a direct impact on the surface finish, tool life and productivity. To avoid this, an experienced machine tool operator would try to change the cutting parameters or the clamping of the tool and work-piece. The aim for this research is to model machine tool structures adaptively in the digital domain, in order to control self-exited, but also forced vibration of machine tool structures. This means that the stiffness and damping of a machine tool structure could be changed actively during operation. The system presented here is a test rig, which is designed to show the potential of this approach and also the difficulties to overcome in order to control machine tool structures. This has been done through simulation and experimental validation.
引用
收藏
页码:451 / 460
页数:10
相关论文
共 50 条
[21]   Experimental Investigation of Spillover Effect in System of Active Vibration Control [J].
Jovanovic, Miroslav M. ;
Simonovic, Aleksandar M. ;
Zoric, Nemanja D. ;
Lukic, Nebojsa S. ;
Stupar, Slobodan N. ;
Petrovic, Ana S. ;
Li, Wei .
FME TRANSACTIONS, 2014, 42 (04) :329-334
[22]   ACTIVE VIBRATION CONTROL AND SUPPRESSION FOR INTEGRATED STRUCTURES [J].
王忠东 ;
陈塑寰 ;
杨晓东 .
Applied Mathematics and Mechanics(English Edition), 1999, (02) :171-178
[23]   On the Active Vibration Control of Nonlinear Uncertain Structures [J].
Dertimanis, Vasilis K. ;
Chatzi, Eleni N. ;
Masri, Sami F. .
JOURNAL OF APPLIED AND COMPUTATIONAL MECHANICS, 2021, 7 :1183-1197
[24]   ACTIVE VIBRATION CONTROL OF LARGE CIVIL STRUCTURES [J].
MILLER, RK ;
MASRI, SF ;
DEHGHANYAR, TJ ;
CAUGHEY, TK .
JOURNAL OF ENGINEERING MECHANICS-ASCE, 1988, 114 (09) :1542-1570
[25]   Active vibration control and suppression for integrated structures [J].
Zhongdong W. ;
Suhuan C. ;
Xiaodong Y. .
Applied Mathematics and Mechanics, 1999, 20 (2) :171-178
[26]   Active vibration control and suppression for integrated structures [J].
Wang, ZD ;
Chen, SH ;
Yang, XD .
APPLIED MATHEMATICS AND MECHANICS-ENGLISH EDITION, 1999, 20 (02) :171-178
[27]   Active vibration control of buildings with smart structures [J].
Fujita, T .
INTERNATIONAL JOURNAL OF THE JAPAN SOCIETY FOR PRECISION ENGINEERING, 1998, 32 (03) :160-165
[28]   Active Vibration Control of Piezoelectric Intelligent Structures [J].
Zhang, Jingjun ;
He, Lili ;
Wang, Ercheng .
JOURNAL OF COMPUTERS, 2010, 5 (03) :401-409
[29]   Experimental investigation on active vibration control of rotor system with CSFDB [J].
Ren, X.M. ;
Yang, W.X. ;
Gu, J.L. ;
Qin, W.Y. .
Yingyong Lixue Xuebao/Chinese Journal of Applied Mechanics, 2001, 18 (01)
[30]   ACTIVE VIBRATION CONTROL OF STRUCTURES ARRANGED IN PARALLEL [J].
MITSUTA, S ;
OKAWA, E ;
SETO, K ;
ITO, H .
JSME INTERNATIONAL JOURNAL SERIES C-DYNAMICS CONTROL ROBOTICS DESIGN AND MANUFACTURING, 1994, 37 (03) :436-443