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Piezoceramic actuator placement for acoustic control of panels.

机译:压电陶瓷致动器的放置,用于面板的声学控制。

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Optimum placement of multiple traditional piezoceramic actuators is determined for active structural acoustic control of flat panels. The structural acoustic response is determined using acoustic radiation filters and structural surface vibration characteristics. Linear Quadratic Regulator (LQR) control is utilized to determine the optimum state feedback gain for active structural acoustic control. The optimum actuator location is determined by minimizing the structural acoustic radiated noise using a modified genetic algorithm. Experimental tests are conducted and compared to analytical results.; Anisotropic piezoceramic actuators exhibit enhanced performance when compared to traditional isotropic piezoceramic actuators. As a result of the inherent isotropy, these advanced actuators develop strain along the principal material axis. The orientation of anisotropic actuators is investigated on the effect of structural vibration and acoustic control of curved and flat panels. A fully coupled shallow shell finite element formulation is developed to include anisotropic piezoceramic actuators for shell structures.
机译:确定了多个传统压电陶瓷执行器的最佳位置,以实现平板的主动结构声学控制。使用声辐射滤波器和结构表面振动特性确定结构声响应。线性二次调节器(LQR)控制用于确定主动结构声控制的最佳状态反馈增益。通过使用改进的遗传算法将结构声辐射噪声降至最低,可以确定最佳执行器位置。进行实验测试并与分析结果进行比较。与传统的各向同性压电陶瓷作动器相比,各向异性压电陶瓷作动器表现出增强的性能。由于固有的各向同性,这些高级执行器沿主材料轴产生应变。研究了各向异性促动器的方向,以研究结构振动和弯曲和平板控制的声学效果。开发了一种完全耦合的浅壳有限元公式,其中包括用于壳结构的各向异性压电陶瓷执行器。

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