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Integrated optimization of actuators and structural topology of piezoelectric composite structures for static shape control

机译:用于静态形状控制的压电复合结构致动器和结构拓扑的集成优化

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This paper investigates a new integrated optimization method for laminated composite structures with piezoelectric patch actuators. Three kinds of design variables, i.e. the actuators' locations, electrical voltages applied on piezoelectric patches and host structural pseudo-densities, are simultaneously optimized to improve the overall deformation precision. To freely place piezoelectric actuator on the host structure surface regardless of coincident finite element in classic lamination theory (CLT), the multi-point constraints (MPC) method is used here to simulate the perfect bonding between actuator layer and host layer, which inherits the advantages of avoidance of remeshing process analytical sensitivity as well as efficient lamination description during the movement of actuators in optimization iterations. For applying to spatially complex shape control, a modified shape error function based on the relative error between computed and desired surfaces is used. The finite circle method (FCM) is implemented to prevent the overlaps among the actuators and those between actuators and boundaries of the global design domain. Finally, numerical examples with plane or curved host structure are tested and discussed to demonstrate the validity and efficiency of this method. (C) 2018 Elsevier B.V. All rights reserved.
机译:本文研究了具有压电贴片致动器的层合复合结构的一种新的集成优化方法。同时优化了三种设计变量,即执行器的位置,施加在压电片上的电压和主体结构的伪密度,以提高整体变形精度。为了在经典层压理论(CLT)中将压电致动器自由地放置在主体结构表面上而不考虑重合的有限元,此处使用多点约束(MPC)方法来模拟致动器层与主体层之间的完美结合,从而继承了避免重新设定过程分析灵敏度以及在优化迭代中的执行器运动过程中进行有效的叠层描述的优势。为了应用于空间复杂的形状控制,使用了基于计算出的曲面和所需曲面之间的相对误差的修改后的形状误差函数。实施有限圆法(FCM)可以防止执行器之间以及执行器之间的重叠和全局设计域的边界。最后,对具有平面或弯曲主体结构的数值示例进行了测试和讨论,以证明该方法的有效性和有效性。 (C)2018 Elsevier B.V.保留所有权利。

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