Active damping of a micro-cantilever piezo-composite beam

被引:24
|
作者
Collet, M [1 ]
Walter, V [1 ]
Delobelle, P [1 ]
机构
[1] CNRS, UMR 6604, Lab Mecan Appl R Chaleat, F-25000 Besancon, France
关键词
D O I
10.1016/S0022-460X(02)00948-3
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
Thick PZT films are of major interest in the actuation of mechanical structures. One of the promising fields deals with active damping. Since it is a dynamic application, hard-PZT type of screen-printed films are suited to this kind of use. Nevertheless, the drop in dielectric, ferroelectric and piezoelectric properties induced by the fabrication process is a serious constraint and it needs to be evaluated. The first section of this paper will present the mechanical system used for the experimental investigations. These investigations look to quantify the electromechanical properties of the films once the deposition process is achieved. The experimental observations highlighting the efficiency of hard-PZT thick films in active damping despite the drop in the electromechanical properties will then be considered. The control strategy used in the experiments can be called pseudo-direct-velocity feedback. Then the constitutive relations of the composites will be needed to derive the roots locus analysis by means of finite element modelling on one hand and through the roots of the partial derivative equations on the other hand. The unconditional stability of the uncollocated system will be demonstrated and its typical asymptotic behavior when the gain tends towards infinity will be explained. (C) 2002 Elsevier Science Ltd. All rights reserved.
引用
收藏
页码:453 / 476
页数:24
相关论文
共 50 条
  • [41] Resonant control of an atomic force microscope micro-cantilever for active Q control
    Fairbairn, M.
    Moheimani, S. O. R.
    REVIEW OF SCIENTIFIC INSTRUMENTS, 2012, 83 (08):
  • [42] Fatigue characteristics of lightweight piezo-composite actuators
    Kim, KY
    Park, KH
    Goo, NS
    Park, HC
    Yoon, KJ
    SMART STRUCTURES AND MATERIALS 2003: SMART STRUCTURES AND INTEGRATED SYSTEMS, 2003, 5056 : 367 - 372
  • [43] Simulation of Two Damping Mechanisms of Cantilever Beam with Active Constrained Layer Damping
    Li M.
    Sun W.
    Liu Y.
    Zhendong Ceshi Yu Zhenduan/Journal of Vibration, Measurement and Diagnosis, 2023, 43 (06): : 1129 - 1135and1244
  • [44] Dynamic analysis of micro-cantilever with electrostatic force
    Kaneria, Anchit J.
    Patel, Pinank
    Sharma, D. S.
    Trivedi, Reena
    AUSTRALIAN JOURNAL OF MECHANICAL ENGINEERING, 2022, 20 (03) : 875 - 882
  • [45] Understanding interferometry for micro-cantilever displacement detection
    von Schmidsfeld, Alexander
    Noerenberg, Tobias
    Temmen, Matthias
    Reichling, Michael
    BEILSTEIN JOURNAL OF NANOTECHNOLOGY, 2016, 7 : 841 - 851
  • [46] Micro-cantilever flow sensor for small aircraft
    Ghommem, Mehdi
    Calo, Victor M.
    Claudel, Christian G.
    JOURNAL OF VIBRATION AND CONTROL, 2015, 21 (10) : 2043 - 2058
  • [47] Study of infrared thermal detector of micro-cantilever
    Liang, JT
    Liu, JH
    Zheng, ZZ
    ISTM/2005: 6TH INTERNATIONAL SYMPOSIUM ON TEST AND MEASUREMENT, VOLS 1-9, CONFERENCE PROCEEDINGS, 2005, : 2151 - 2153
  • [48] A resonant gas sensor based on micro-cantilever
    Li, Shuangmei
    TRENDS IN BUILDING MATERIALS RESEARCH, PTS 1 AND 2, 2012, 450-451 : 1532 - 1535
  • [49] Vacuum packaged micro-cantilever with a magnetic particle
    Mohd N.
    Xue G.
    Inomata N.
    Van Toan N.
    Toda M.
    Ono T.
    IEEJ Transactions on Sensors and Micromachines, 2017, 137 (08) : 245 - 246
  • [50] Dynamic analysis of a micro-cantilever beam in noncontact mode: Classic and strain gradient theories
    Mohammadi, Mohammad Ali
    Farajollahi, Meisam
    Yousefi-Koma, Aghil
    MICROSCOPY RESEARCH AND TECHNIQUE, 2022, 85 (01) : 352 - 363