Macro-micro synchronization strategy based on fuzzy time-delay compensation for high-precision laser on-the-fly processing

IF 3.5 2区 工程技术 Q2 ENGINEERING, MANUFACTURING
Tieshuang Zhu , Chengrui Zhang , Yisheng Yin
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引用次数: 0

Abstract

Real-time control systems of macro-micro manipulators commonly confront time-delay challenges to achieve high precision and synchronization performance, because macro and micro subsystems always have significant difference mainly in mechanical inertia. In this paper, a self-designed PC-based real-time controller utilized in laser on-the-fly processing is introduced as a study case of macro-micro systems. A dynamic time-delay compensation method for this case is proposed based on efficient fuzzy-model prediction and special data compression/extension algorithm. This method takes account of the practical time-delay fluctuation and has capability of adjusting the compensator adaptively rather than fixing the compensator as a constant, compared with the conventional static compensation. Experimental results show that, after applying the dynamic compensation, the process error caused by time-delay is eliminated from 1.059 mm to 0.001 mm, while the quality of synchronization appears even better than the static compensation with the error of 0.014 mm. Besides, the proposed method is computationally optimized, and the extra load of real-time kernel merely fluctuates within 3 % of the total computation performance capacity.

基于模糊时延补偿的宏观-微观同步策略,用于高精度激光实时加工
宏微观机械手的实时控制系统在实现高精度和同步性能方面普遍面临时延挑战,因为宏微观子系统总是存在显著差异,主要体现在机械惯性上。本文以宏微观系统为例,介绍了一种自行设计的基于 PC 的实时控制器,该控制器用于激光实时处理。本文基于高效的模糊模型预测和特殊的数据压缩/扩展算法,提出了一种适用于该案例的动态时延补偿方法。与传统的静态补偿相比,这种方法考虑到了实际的时延波动,能够自适应地调整补偿器,而不是将补偿器固定为常数。实验结果表明,采用动态补偿后,由时间延迟引起的过程误差从 1.059 mm 减小到 0.001 mm,同步质量甚至优于静态补偿(误差为 0.014 mm)。此外,所提出的方法在计算上进行了优化,实时内核的额外负载仅在总计算性能容量的 3% 范围内波动。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
7.40
自引率
5.60%
发文量
177
审稿时长
46 days
期刊介绍: Precision Engineering - Journal of the International Societies for Precision Engineering and Nanotechnology is devoted to the multidisciplinary study and practice of high accuracy engineering, metrology, and manufacturing. The journal takes an integrated approach to all subjects related to research, design, manufacture, performance validation, and application of high precision machines, instruments, and components, including fundamental and applied research and development in manufacturing processes, fabrication technology, and advanced measurement science. The scope includes precision-engineered systems and supporting metrology over the full range of length scales, from atom-based nanotechnology and advanced lithographic technology to large-scale systems, including optical and radio telescopes and macrometrology.
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