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Minimizing scanning errors in piezoelectric stack-actuated nanopositioning platforms

机译:最小化压电堆叠驱动纳米定位平台中的扫描误差

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摘要

Piezoelectric stack-actuated parallel-kinematic nanopositioning platforms are widely used in nanopositioning applications. These platforms have a dominant first resonant mode at relatively low frequencies, typically in the hundreds of hertz. Furthermore, piezoelectric stacks used for actuation have inherent nonlinearities such as hysteresis and creep. These problems result in a typically low-grade positioning performance. Closed-loop control algorithms have shown the potential to eliminate these problems and achieve robust, repeatable nanopositioning. Using closed-loop noise profile as a performance criterion, three commonly used damping controllers, positive position feedback, polynomial-based pole placement, and resonant control are compared for their suitability in nanopositioning applications. The polynomial-based pole placement controller is chosen as the most suitable of the three. Consequently, the polynomial-based control design to damp the resonant mode of the platform is combined with an integrator to produce raster scans of large areas. A scanning resolution of approximately 8 nm, over a 100 μm X 100 μm area is achieved.
机译:压电堆栈驱动的并联运动纳米定位平台广泛用于纳米定位应用中。这些平台在相对较低的频率(通常为数百赫兹)下具有主要的第一共振模式。此外,用于致动的压电堆具有固有的非线性,例如磁滞和蠕变。这些问题导致典型的低等级定位性能。闭环控制算法已经显示出消除这些问题并实现鲁棒,可重复的纳米定位的潜力。使用闭环噪声曲线作为性能标准,比较了三种常用的阻尼控制器,正位置反馈,基于多项式的极点放置和谐振控制在纳米定位应用中的适用性。基于多项式的极点放置控制器被选为最合适的三种。因此,用于衰减平台共振模式的基于多项式的控制设计与积分器结合使用,可以产生大面积的光栅扫描。在100μmX 100μm的区域内实现了大约8 nm的扫描分辨率。

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