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Stress self-sensing in Amplified Piezoelectric Actuators through a fully-coupled model of hysteresis

机译:通过完全耦合的滞后模型在扩增压电执行器中的应力自感应

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摘要

Piezoelectric actuators are among the most used devices for micro-positioning applications. Yet, their output displacement shows non-negligible hysteresis effects with respect to both the input voltage and the mechanical stress and, as a consequence, an accurate control system has to be designed, taking into account the mechanical stress measurement too. This task is usually addressed by exploiting external bulky force sensors, e.g. load cells. A novel stress self-sensing approach is proposed in this paper, which allows the stress estimation by simply exploiting the measurement of electrical voltage and current of the piezoelectric stacks. In particular, a thermodynamic consistent fully-coupled multi-input multi-output model of hysteresis is exploited. The method is applied for the first time to a commercial Amplified Piezoelectric Actuator with a crossbow-like amplification system. An experimental validation of the approach is proposed and discussed.
机译:压电致动器是用于微定位应用的最常用装置之一。 然而,它们的输出位移示出了相对于输入电压和机械应力的不可忽略不计的滞后效果,并且由于也必须考虑到机械应力测量来设计精确的控制系统。 这项任务通常通过利用外部庞大的力传感器来解决,例如, 称重传感器。 本文提出了一种新的应力自感应方法,这通过简单地利用压电叠层的电压和电流的测量来允许应力估计。 特别地,利用了滞后的热力学一致的全耦合多输入多输出模型。 该方法首次应用于具有弩的放大系统的商业放大压电致动器。 提出并讨论了该方法的实验验证。

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