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Improvement of motion accuracy and energy consumption of a mechanical feed drive system using a Fourier series-based nonlinear friction model

机译:基于傅里叶串联的非线性摩擦模型改进机械馈送驱动系统的运动精度和能耗

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摘要

Friction occurring in all mechanical systems, such as computer numerical controlled (CNC) machine tools, is an important issue in achieving the high accurate performance. Friction adversely affects not only motion accuracy of drive axes but also excessively consumes energy. Feed drives of CNC machines normally operate all day and night around the world, and therefore consumed energy reduction is highly expected. The motivation behind this work is to construct a novel friction model that can comprise many unknown friction sources in both low and high velocity regions and enable a friction compensator to precisely describe actual frictional behavior. A sliding mode control (SMC) is designed to verify the effectives of the proposed friction model in a biaxial feed drive system. Experimental results confirm that a combination of SMC and the proposed friction can effectively improve tracking accuracy and further achieve significant reduction of consumed energy compared to combining with the conventional model. Results show that the proposed approach can largely decrease the mean tracking error to less than 5 μ m for each axis. The new friction also achieved effective reduction of control variance by 7.62%. Consequently, consumed energy of feed drives was significantly improved by 12.83% compared to using the conventional model.
机译:在所有机械系统中发生的摩擦,例如计算机数控(CNC)机床,是实现高准确性能的重要问题。摩擦不仅影响驱动轴的运动精度,而且过度消耗能量。 CNC机器的饲料驱动器通常在世界各地整天运行,因此占用的消耗能量减少。这项工作背后的动机是构造一种新的摩擦模型,该模型可以包括在低速和高速区域中的许多未知摩擦源,并使摩擦补偿器能够精确描述实际的摩擦行为。滑动模式控制(SMC)旨在验证双轴馈送驱动系统中提出的摩擦模型的效果。实验结果证实,与传统模型相结合,SMC和所提出的摩擦的组合可以有效地提高跟踪精度,并进一步降低消耗的能量的显着降低。结果表明,对于每个轴,所提出的方法可以在很大程度上将平均跟踪误差降低至小于5μm。新摩擦还达到了对照方差减少7.62%。因此,与使用传统模型相比,饲料驱动器的消耗能量显着提高12.83%。

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