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Modeling and compensation of piezoceramic actuator hysteresis for helicopter vibration control

机译:用于直升机振动控制的压电陶瓷执行器磁滞的建模与补偿

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摘要

Hysteresis in piezoceramic materials causes considerable complications in the use of piezo actuators in applications, such as vibration control. In this study, the classical Preisach model is used to characterize the hysteresis in a piezostack actuator used to move a trailing-edge flap for helicopter vibration control. The hysteresis in the actuator is primarily due to material nonlinearity and to a lesser extent due to losses in the amplification mechanism. Most helicopter vibration control studies ignore the effect of the hysteresis on the actuator performance. The desired motion of the flap for maximum reduction in vibration is determined using an aeroelastic analysis of the helicopter. Numerical results indicate that complete compensation of actuator hysteresis can result in up to 90% reduction in helicopter vibrations. The performance of the vibration control system deteriorates considerably when the actuator is represented by a linear model or when the compensator is based only on the primary material hysteresis of the actuator. Complete compensation of both material and mechanical hysteresis in the actuator is therefore critical to the performance of the trailing-edge flap vibration control system in a helicopter.
机译:压电陶瓷材料中的磁滞会在诸如振动控制之类的应用中使用压电致动器时引起相当大的复杂性。在这项研究中,经典的Preisach模型用于表征压电堆栈致动器中的磁滞,该致动器用于移动后缘襟翼以控制直升机的振动。执行器中的磁滞主要是由于材料的非线性,而在较小程度上是由于放大机构的损耗。大多数直升机振动控制研究都忽略了磁滞对执行器性能的影响。使用直升机的气动弹性分析确定可最大程度减少振动的襟翼所需的运动。数值结果表明,对执行器磁滞的完全补偿可以使直升机的振动降低多达90%。当执行器由线性模型表示或补偿器仅基于执行器的主要材料滞后时,振动控制系统的性能将大大降低。因此,完全补偿执行器中的材料和机械滞后对直升机后缘襟翼振动控制系统的性能至关重要。

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