Passive non-linear targeted energy transfer and its applications to vibration absorption: a review

被引:145
作者
Lee, Y. S. [1 ]
Vakakis, A. F. [2 ]
Bergman, L. A. [1 ]
McFarland, D. M. [1 ]
Kerschen, G. [3 ]
Nucera, F. [4 ]
Tsakirtzis, S. [2 ]
Panagopoulos, P. N. [2 ]
机构
[1] Univ Illinois, Dept Aerosp Engn, Urbana, IL 61801 USA
[2] Natl Tech Univ Athens, Sch Appl Math & Phys Sci, Athens, Greece
[3] Univ Liege, Dept Aerosp & Mech Engn, Liege, Belgium
[4] Mediterranean Univ, Dept Mat & Mech, Reggio Di Calabria, Italy
关键词
passive non-linear targeted energy transfer; vibration absorbtion;
D O I
10.1243/14644193JMBD118
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
This review paper discusses recent efforts to passively move unwanted energy from a primary structure to a local essentially non-linear attachment (termed a non-linear energy sink) by utilizing targeted energy transfer (TET) (or non-linear energy pumping). First, fundamental theoretical aspects of TET will be discussed, including the essentially non-linear governing dynamical mechanisms for TET. Then, results of experimental studies that validate the TET phenomenon will be presented. Finally, some current engineering applications of TET will be discussed. The concept of TET may be regarded as contrary to current common engineering practise, which generally views non-linearities in engineering systems as either unwanted or, at most, as small perturbations of linear behaviour. Essentially non-linear stiffness elements are intentionally introduced in the design that give rise to new dynamical phenomena that are very beneficial to the design objectives and have no counterparts in linear theory. Care, of course, is taken to avoid some of the unwanted dynamic effects that such elements may introduce, such as chaotic responses or other responses that are contrary to the design objectives.
引用
收藏
页码:77 / 134
页数:58
相关论文
共 169 条
[11]  
Boashash B, 2003, TIME FREQUENCY SIGNAL ANALYSIS AND PROCESSING: A COMPREHENSIVE REFERENCE, P627
[12]   TRANSITION TO CHAOS BY INTERACTION OF RESONANCES IN DISSIPATIVE SYSTEMS .2. JOSEPHSON-JUNCTIONS, CHARGE-DENSITY WAVES, AND STANDARD MAPS [J].
BOHR, T ;
BAK, P ;
JENSEN, MH .
PHYSICAL REVIEW A, 1984, 30 (04) :1970-1981
[13]   ADIABATIC INVARIANCE AND TRANSIENT RESONANCE IN VERY SLOWLY VARYING OSCILLATORY HAMILTONIAN-SYSTEMS [J].
BOSLEY, DL ;
KEVORKIAN, J .
SIAM JOURNAL ON APPLIED MATHEMATICS, 1992, 52 (02) :494-527
[14]   AVERAGING METHODS FOR THE PHASE-SHIFT OF ARBITRARILY PERTURBED STRONGLY NONLINEAR OSCILLATORS WITH AN APPLICATION TO CAPTURE [J].
BOURLAND, FJ ;
HABERMAN, R ;
KATH, WL .
SIAM JOURNAL ON APPLIED MATHEMATICS, 1991, 51 (04) :1150-1167
[15]   A MECHANISM FOR CAPTURE INTO RESONANCE [J].
BURNS, TJ ;
JONES, CKRT .
PHYSICA D, 1993, 69 (1-2) :85-106
[16]   Localized modes in a two-degree-coupling periodic system with a nonlinear disordered subsystem [J].
Cai, CW ;
Chan, HC ;
Cheung, YK .
CHAOS SOLITONS & FRACTALS, 2000, 11 (10) :1481-1492
[17]   Localizing energy through nonlinearity and discreteness [J].
Campbell, DK ;
Flach, S ;
Kivshar, YS .
PHYSICS TODAY, 2004, 57 (01) :43-49
[18]   Time-frequency analysis of chaotic systems [J].
Chandre, C ;
Wiggins, S ;
Uzer, T .
PHYSICA D-NONLINEAR PHENOMENA, 2003, 181 (3-4) :171-196
[19]   Research on the intrinsic mode function (IMF) criterion in EMD method [J].
Cheng, JS ;
Yu, DJ ;
Yang, Y .
MECHANICAL SYSTEMS AND SIGNAL PROCESSING, 2006, 20 (04) :817-822
[20]   Application of support vector regression machines to the processing of end effects of Hilbert-Huang transform [J].
Cheng, Junsheng ;
Yu, Dejie ;
Yang, Yu .
MECHANICAL SYSTEMS AND SIGNAL PROCESSING, 2007, 21 (03) :1197-1211