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Modeling and Identification of the Rate-Dependent Hysteresis of Piezoelectric Actuator Using a Modified Prandtl-Ishlinskii Model

机译:使用改进的Prandtl-Ishlinskii模型对压电执行器的速度相关磁滞进行建模和识别

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摘要

Piezoelectric actuator (PEA) is an ideal microscale and nanoscale actuator because of its ultra-precision positioning resolution. However, the inherent hysteretic nonlinearity significantly degrades the PEA’s accuracy. The measured hysteresis of PEA exhibits strong rate-dependence and saturation phenomena, increasing the difficulty in the hysteresis modeling and identification. In this paper, a modified Prandtl-Ishlinskii (PI) hysteresis model is proposed. The weights of the backlash operators are updated according to the input rates so as to account for the rate-dependence property. Subsequently, the saturation property is realized by cascading a polynomial operator with only odd powers. In order to improve the efficiency of the parameter identification, a special control input consisting of a superimposition of multiple sinusoidal signals is utilized. Because the input rate of such a control input covers a wide range, all the parameters of the hysteresis model can be identified through only one set of experimental data, and no additional curve-fitting is required. The effectiveness of the hysteresis modeling and identification methodology is verified on a PEA-driven flexure mechanism. Experimental results show that the modeling accuracy is on the same order of the noise level of the overall system.
机译:压电执行器(PEA)由于具有超高精度的定位分辨率,因此是理想的微米级和纳米级执行器。但是,固有的滞后非线性会大大降低PEA的精度。 PEA的测得的磁滞表现出很强的速率依赖性和饱和现象,从而增加了磁滞建模和识别的难度。本文提出了一种改进的Prandtl-Ishlinskii(PI)磁滞模型。反冲运算符的权重根据输入速率进行更新,以解决速率依赖属性。随后,通过级联仅具有奇次幂的多项式运算符来实现饱和特性。为了提高参数识别的效率,使用了由多个正弦信号叠加而成的特殊控制输入。由于这种控制输入的输入率范围很广,因此仅通过一组实验数据就可以识别滞后模型的所有参数,并且不需要其他曲线拟合。滞后建模和识别方法的有效性在PEA驱动的挠曲机构上得到了验证。实验结果表明,建模精度与整个系统的噪声水平相同。

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