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Impedance-based modeling of actuators bonded to shell structures

机译:基于阻抗的致动器建模粘接到壳体结构

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When discrete piezoelectric actuator patches bonded on structures are used for active shape, vibration, and acoustic control, the desired deformation field in the structure is obtained through the application of localized line forces and moments generated by expanding or contracting bonded piezoelectric actuators. An impedance-based model to predict the dynamic response of cylindrical shells subjected to excitation from surface-bonded induced strain actuators is presented. The essence of the impedance approach is to match the actuator impedance with the structural impedance at the ends of the actuators, which will retain the dynamic characteristics of the actuators. A detailed derivation of the actuator and structural impedance is included. It is found that the actuator's output dynamic force in the axial and tangential direction are not equal. Various case studies of a cylindrical thin shell are performed to illustrate the capabilities of the developed impedance model. Out-of-phase actuation is shown to be the most efficient in exiciting the lower order bending modes of shell structures. The paper is concluded with a finite element analysis verification of the derived impedance model.
机译:当在结构上粘合的离散压电致动器贴片用于有源形状,振动和声学控制时,通过施加通过扩展或收缩粘合的压电致动器产生的局部线力和矩来获得结构中所需的变形场。提出了一种基于阻抗的模型,以预测受到表面粘合的诱导应变致动器激发激发的圆柱形壳体的动态响应。阻抗方法的本质是将致动器阻抗与致动器末端的结构阻抗匹配,这将保持致动器的动态特性。包括致动器和结构阻抗的详细衍生。发现轴向和切向方向上的致动器的输出动态力不等于。执行圆柱形薄壳的各种案例研究以说明显影阻抗模型的能力。逐相致动显示为剥离壳结构的较低弯曲模式的最有效。本文的结论是衍生阻抗模型的有限元分析验证。

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