Smart control of nonlinear vibrations of doubly curved functionally graded laminated composite shells under a thermal environment using 1–3 piezoelectric composites

被引:0
作者
Saroj Kumar Sarangi
M. C. Ray
机构
[1] SOA University,Institute of Technical Education and Research (ITER)
[2] Indian Institute of Technology,undefined
来源
International Journal of Mechanics and Materials in Design | 2013年 / 9卷
关键词
Geometrically nonlinear vibration; 1–3 piezoelectric composites; Active control;
D O I
暂无
中图分类号
学科分类号
摘要
This paper addresses the active control of geometrically nonlinear vibrations of doubly curved functionally graded (FG) laminated composite shells integrated with a patch of active constrained layer damping (ACLD) treatment under the thermal environment. Vertically/obliquely reinforced 1-3 piezoelectric composite (PZC) and active fiber composite (AFC) are used as the materials of the constraining layer of the ACLD treatment. Each layer of the substrate FG laminated composite shell is made of fiber-reinforced composite material in which the fibers are longitudinally aligned in the plane parallel to the top or bottom surface of the layer and the layer is assumed to be graded in the thickness direction by way of varying the fiber orientation angle across its thickness according to a power law. The novelty of the present work is that, unlike the traditional laminated composite shells, the FG laminated composite shells are constructed in such a way that the continuous variation of material properties and stresses across the thickness of the shell is achieved. The Golla-Hughes-McTavish (GHM) method has been implemented to model the constrained viscoelastic layer of the ACLD treatment in time domain. Based on the first-order shear deformation theory (FSDT), a finite element (FE) model has been developed to model the open-loop and closed-loop nonlinear dynamics of the overall FG laminated composite shell under a thermal environment. Both symmetric and asymmetric FG laminated composite doubly curved shells are considered for presenting the numerical results. The analysis suggests that the ACLD patch significantly improves the damping characteristics of the doubly curved FG laminated composite shells for suppressing their geometrically nonlinear transient vibrations. It is found that the performance of the ACLD patch with its constraining layer being made of the AFC material is significantly higher than that of the ACLD patch with vertically/obliquely reinforced 1-3 PZC constraining layer. The effects of variation of piezoelectric fiber orientation in both the obliquely reinforced 1-3 PZC and the AFC constraining layers on the control authority of the ACLD patch have also been investigated.
引用
收藏
页码:253 / 280
页数:27
相关论文
共 74 条
  • [1] Bailey T(1985)Distributed piezoelectric polymer active vibration control of a cantilever beam J. Guidance Control Dyn. 8 605-611
  • [2] Hubbard JE(1988)Performance of an active control system with piezoelectric actuators J. Sound Vib. 126 327-343
  • [3] Baz A(1996)Vibration control of plates with active constrained layer damping Smart Mater. Struct. 5 135-144
  • [4] Poh S(1997)Piezoelectric fiber composites with interdigitated electrodes J. Intell. Mater. Syst. Struct. 8 903-919
  • [5] Baz A(2001)Active constrained layer damping of clamped–clamped plate vibrations J. Sound Vib. 241 755-777
  • [6] Ro J(1987)Use of piezoelectric actuators as elements of intelligent structures AIAA J. 25 1373-1385
  • [7] Bent AA(2006)Vibration control of piezoelectric smart structures based on system identification technique: numerical simulation and experimental study J. Sound Vib. 297 680-693
  • [8] Hagood NW(2010)Vibration suppression of composite laminated beams using distributed piezoelectric patches Smart Mater. Struct. 19 115018-928
  • [9] Chantalakhana C(2003)Active control of geometrically nonlinear transient vibration of composite plates with piezoelectric actuators J. Sound Vib. 264 911-1357
  • [10] Stanway R(1995)Shape control of plates using piezoceramic elements AIAA J. 33 1354-118