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Active vibration suppression of multilayered plates integrated with piezoelectric fiber reinforced composites using an efficient finite element model

机译:使用有效的有限元模型主动抑制压电纤维增强复合材料制成的多层板的振动

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摘要

The active vibration suppression of hybrid composite and fiber metal laminate (FML) plates integrated with piezoelectric fiber reinforced composite (PFRC) sensors and actuators is studied for the first time, using an efficient and advanced layerwise plate theory. Unlike the conventional finite elements, the equipotential condition of electroded surfaces of sensors is satisfied exactly and conveniently using a novel concept of electric node. The effective electromechanical properties of the PFRC laminas are computed using a coupled three-dimensional iso-field micromechanical model. Numerical results are presented for both classical constant gain velocity feedback (CGVF) and optimal control strategies. The instability phenomena in CGVF control with conventionally collocated actuator-sensor pairs, and its remedy with a truly collocated arrangement are illustrated. The effect of segmentation of electrodes on the control response is studied. The segmentation of electrodes leads to a multi-input-multi-output (MIMO) configuration. The effects of piezoelectric fiber orientation, volume fraction and dielectric ratio of PFRC on the control response and the actuation/sensing authority are investigated for cantilever and simply supported plates.
机译:首次使用高效和先进的分层板理论研究了混合复合材料和集成有压电纤维增强复合材料(PFRC)传感器和执行器的纤维金属层压板(FML)的主动振动抑制。与传统的有限元不同,传感器的电极表面的等电位条件可以使用新颖的电节点概念来精确,方便地满足。 PFRC薄片的有效机电性能是使用耦合的三维等场微力学模型计算的。给出了经典恒增益速度反馈(CGVF)和最优控制策略的数值结果。说明了使用常规并置的执行器/传感器对进行CGVF控制时的不稳定性现象,以及采用真正并置的布置的补救措施。研究了电极分段对控制响应的影响。电极的分割导致多输入多输出(MIMO)配置。研究了悬臂板和简单支撑板的压电纤维取向,PFRC的体积分数和介电比对控制响应和致动/传感权限的影响。

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