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Modeling and experimental investigation of thermal-mechanical-electric coupling dynamics in a standing wave ultrasonic motor

机译:驻波超声波电机中热机电耦合动力学的建模与实验研究

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摘要

Ultrasonic motor operation relies on high-frequency vibration of a piezoelectric vibrator and interface friction between the stator and rotor/slider, which can cause temperature rise of the motor under continuous operation, and can affect motor parameters and performance in turn. In this paper, an integral model is developed to study the thermal-mechanical-electric coupling dynamics in a typical standing wave ultrasonic motor. Stick-slip motion at the contact interface and the temperature dependence of material parameters of the stator are taken into account in this model. The elastic, piezoelectric and dielectric material coefficients of the piezoelectric ceramic, as a function of temperature, are determined experimentally using a resonance method. The critical parameters in the model are identified via measured results. The resulting model can be used to evaluate the variation in output characteristics of the motor caused by the thermal-mechanical-electric coupling effects. Furthermore, the dynamic temperature rise of the motor can be accurately predicted under different input parameters using the developed model, which will contribute to improving the reliable life of a motor for long-term running.
机译:超声波电机操作依赖于压电振动器的高频振动和定子和转子/滑块之间的界面摩擦,这可能在连续操作下引起电动机的温度升高,并且可以反过来影响电机参数和性能。在本文中,开发了一种积分模型来研究典型的常设波超声波电动机中的热机电耦合动力学。在该模型中考虑了接触界面处的粘滑运动和定子材料参数的温度依赖性。作为温度的功能的压电陶瓷的弹性,压电和介电材料系数使用共振方法通过实验确定。模型中的关键参数通过测量结果识别。所得到的模型可用于评估由热机电耦合效应引起的电动机的输出特性的变化。此外,可以使用开发的模型在不同的输入参数下精确地预测电动机的动态温度升高,这将有助于改善电动机的可靠寿命,以便长期运行。

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