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Vibration control in a composite box beam with piezoelectric actuators

机译:带压电致动器的复合箱形梁的振动控制

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This work presents a theoretical and experimental investigation of vibration control of composite box beams using distributed, surface mounted piezoelectric (PZT) patches as actuators. The finite element modeling of the box beam is done by formulating a first-order shear deformable active composite thin walled beam element. The degrees of freedom at each node are axial, bending in spanwise and chordwise directions, corresponding shears and twist. The superconvergent element derived uses higher order interpolating polynomials obtained by solving electromechanically coupled static governing differential equations. The open loop response is validated with experimental and analytical results available in the current literature. A system equivalent reduction expansion process (SEREP) is implemented for reduced order modeling. Open and closed loop responses to electrical bending actuation are obtained both experimentally and analytically using state space modeling. A proportional-integral (PI) controller using acceleration feedback is implemented for control of vibration due to single-frequency excitations. Experimental and numerical results correlate very well in the above cases. Eigenstructure assignment through output feedback is designed for multimodal control of transient responses.
机译:这项工作提出了使用分布的,表面安装的压电(PZT)贴片作为执行器的复合箱形梁振动控制的理论和实验研究。箱梁的有限元建模是通过公式化一阶剪切可变形有源复合材料薄壁梁单元来完成的。每个节点的自由度是轴向的,沿翼展方向和弦向弯曲,相应的剪切和扭转。导出的超收敛元素使用通过求解机电耦合的静态控制微分方程获得的高阶插值多项式。开环响应已通过当前文献中提供的实验和分析结果进行了验证。实现了系统等效的缩减扩展过程(SEREP),以进行降阶建模。使用状态空间建模可以通过实验和分析获得对电弯曲致动的开环和闭环响应。实现了使用加速度反馈的比例积分(PI)控制器,以控制由于单频激励而引起的振动。在上述情况下,实验和数值结果具有很好的相关性。通过输出反馈进行的本征结构分配旨在用于瞬态响应的多模式控制。

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