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Topology optimization of piezoelectric sensors/actuators for torsional vibration control of composite plates

机译:用于复合板扭转振动控制的压电传感器/执行器的拓扑优化

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摘要

Torsional vibration control can be crucial for applications of smart materials and structures. In this paper, the problem of topology optimization of collocated piezoelectric sensor/actuator (S/A) pairs for torsional vibration control of a laminated composite plate is directly addressed. Both isotropic and anisotropic PZT S/A pairs are considered and it is highlighted that the torsional vibration can be more effectively damped out by employing the topological optimal design of the S/A pairs than by using the conventional designs. To implement this topology optimization, a genetic algorithm (GA) based on a bit-array representation method is presented and a finite element (FE) simulation model based on the first-order shear theory and an output feedback control law is adopted. Numerical experiments are used to verify the present algorithm and show that the present optimal topology design can achieve significantly better active damping effect than the one using a continuously distributed PZT S/A pair, which was often adopted by many other researchers. Together with the progress in laser cutting and micromachining techniques, topology optimization of piezoelectric sensors and/or actuators would be promising in active vibration control of smart structures.
机译:扭转振动控制对于智能材料和结构的应用至关重要。在本文中,直接解决了用于层压复合板扭转振动控制的并置压电传感器/执行器(S / A)对的拓扑优化问题。各向同性和各向异性的PZT S / A对均已考虑在内,并着重指出,与采用常规设计相比,采用S / A对的拓扑优化设计可以更有效地抑制扭转振动。为了实现这种拓扑优化,提出了一种基于位数组表示方法的遗传算法(GA),并采用基于一阶剪切理论和输出反馈控制律的有限元(FE)仿真模型。数值实验被用来验证本算法,并且表明本发明的最佳拓扑设计比使用连续分布的PZT S / A对的主动阻尼效果要好得多,后者经常被许多其他研究人员采用。随着激光切割和微加工技术的进步,压电传感器和/或执行器的拓扑优化在智能结构的主动振动控制中将很有希望。

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