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Self-powered active control of elastic and aeroelastic oscillations using piezoelectric material

机译:使用压电材料的弹性和气动弹性振荡的自供电主动控制

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Piezoelectric materials have been used as sensors and actuators in vibration control problems. Recently, the use of piezoelectric transduction in vibration-based energy harvesting has received great attention. In this article, the self-powered active vibration control of multilayered structures that contain both power generation and actuation capabilities with one piezoceramic layer for scavenging energy and sensing, another one for actuation, and a central substructure is investigated. The piezoaeroelastic finite element modeling is presented as a combination of an electromechanically coupled finite element model and an unsteady aerodynamic model. An electrical circuit that calculates the control signal based on the electrical output of the sensing piezoelectric layer and simultaneously energy harvesting capabilities is presented. The actuation energy is fully supplied by the harvested energy, which also powers active elements of the circuit. First, the numerical predictions for the self-powered active vibration attenuation of an electromechanically coupled beam under harmonic base excitation are experimentally verified. Then, the performance of the self-powered active controller is compared to the performance of a conventional active controller in another base excitation problem. Later, the self-powered active system is employed to damp flutter oscillations of a plate-like wing.
机译:压电材料已被用作振动控制问题中的传感器和致动器。近来,压电换能在基于振动的能量收集中的使用已引起极大关注。在本文中,研究了多层结构的自供电主动振动控制,该结构同时具有发电和驱动功能,其中一个压电陶瓷层用于清除能量和感测,另一个压电陶瓷层用于驱动和中央下部结构。压电气动弹性有限元建模是机电耦合有限元模型和非稳态空气动力学模型的组合。提出了一种电路,其基于感测压电层的电输出并同时具有能量收集能力来计算控制信号。所收集的能量完全提供了驱动能量,该能量也为电路的有源元件供电。首先,通过实验验证了谐波耦合激励下机电耦合梁自供电主动振动衰减的数值预测。然后,在另一个基本激励问题中,将自供电有源控制器的性能与常规有源控制器的性能进行比较。后来,采用自供电主动系统来抑制板状机翼的颤振。

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