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External force estimation of a piezo-actuated compliant mechanism based on a fractional order hysteresis model

机译:基于分数阶滞后模型的压电致动柔顺机构外力估计

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摘要

Sensing of external forces applied on piezo-actuated compliant mechanisms plays a key role in state monitoring, process control and feedback strategy design in a variety of fields, including micro-anopositioning, micro-anomanipulation, and micro-anomanufacturing. In this paper, a force estimation strategy is proposed by comparing the practically measured displacement with the estimated free one without external forces, when subjecting to any given actuation voltages. To have an accurate prediction of the free displacement relating to the actuation voltage, an improved fractional order model is proposed. With this model, the system response is decomposed into a basic linear component and a nonlinear hysteresis component, and the extracted hysteresis is then described by an ordinary fractional order differential model using a modified voltage signal as the model input, which extracts a linear time-delay component from the original voltage. Comparative study with other two differential type hysteresis models are experimentally conducted on a piezo-actuated bridge-type compliant mechanism, demonstrating well the effectiveness and superiority of the proposed model for both system response modeling and external force estimation.
机译:施加在压电驱动的柔顺机构上的外力感测在各种领域的状态监视,过程控制和反馈策略设计中起着关键作用,包括微/纳米定位,微/纳米夹持和微/纳米制造。在本文中,提出了一种力估计策略,该方法通过比较实际测量的位移与在没有给定驱动电压的情况下没有外力的估计自由位移。为了准确预测与驱动电压有关的自由位移,提出了一种改进的分数阶模型。使用此模型,系统响应被分解为基本线性分量和非线性磁滞分量,然后通过使用修正电压信号作为模型输入的普通分数阶微分模型描述提取的磁滞,从而提取线性时间。从原始电压延迟组件。在压电致动桥式柔顺机构上进行了与其他两种差分类型磁滞模型的对比研究,很好地证明了该模型在系统响应建模和外力估计中的有效性和优越性。

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