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Active vibration control of piezoelectric laminated beams with electroded actuators and sensors using an efficient finite element involving an electric node

机译:使用带电节点的高效有限元,对带有电极驱动器和传感器的压电叠层梁进行主动振动控制

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This paper presents an efficient finite element (FE) model for the active vibration control response of smart laminated beams integrated with electroded piezoelectric sensors and actuators. The FE model is based on an efficient layerwise theory with a quadratic variation of electric potential across the piezoelectric layers. The beam element has two conventional nodes and one electric node, which has no physical coordinate. The electric potential degrees of freedom (DOF) at the electroded piezoelectric surfaces are attached to the electric node which is connected to multiple elements belonging to the same electroded surface. This models the equipotential surface of the electroded sensors and actuators conveniently, and eliminates the cumbersome task of averaging the electric DOF over the surface. The control system is designed using a reduced-order modal state space model. The constant gain velocity feedback (CGVF) and optimal control strategies are studied for smart composite and sandwich beams with single-input-single-output (SISO) and multi-input-multi-output (MIMO) configurations under step and impulse excitations. The numerical study for CGVF control is performed on cantilever smart beams with both conventionally and 'truly' collocated actuators and sensors. The reasons for experimentally observed instability in CGVF control with conventional collocated sensors and actuators is explained. The effect of multiple segmentation of electrodes on the control performance is investigated.
机译:本文提出了一个有效的有限元(FE)模型,用于集成电极压电传感器和执行器的智能叠层梁的主动振动控制响应。 FE模型基于有效的分层理论,压电层两端的电势呈二次方变化。梁单元有两个常规节点和一个电节点,它们没有物理坐标。电极压电表面上的电势自由度(DOF)连接到电节点,该电节点连接到属于同一电极表面的多个元素。这可以方便地对电极式传感器和执行器的等电位表面进行建模,并消除了在表面上平均电自由度的繁琐工作。使用降阶模态状态空间模型设计控制系统。研究了在步进激励和脉冲激励下具有单输入单输出(SISO)和多输入多输出(MIMO)配置的智能复合材料夹层梁的恒定增益速度反馈(CGVF)和最优控制策略。 CGVF控制的数值研究是在悬臂式智能梁上进行的,传统的和“真正的”并置的致动器和传感器都可以使用。解释了使用常规并置传感器和执行器在CGVF控制中实验观察到的不稳定的原因。研究了电极的多个分段对控制性能的影响。

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