Magnetic Levitation Technology for Precision Motion Systems: A Review and Future Perspectives

Lei Zhou, Jingjie Wu
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引用次数: 5

Abstract

Precision motion systems are the core of a wide range of manufacturing equipment and scientific instruments, and their motion performance directly determines the quality and speed of the associated manufacturing or metrology processes. Magnetically levitated precision motion systems, where the moving target is supported by magnetic forces and without any mechanical contact, provide advantages of frictionless motion, vacuum compatibility, and contamination-free operation. These features endow the magnetic levitation technology with the capability to deliver excellent overall performance for precision positioning systems. Through decades of research and engineering efforts, significant advances have been made in the actuation, sensing, design, and control of magnetically levitated precision motion systems. This paper provides an introduction to the fundamentals of the feedback control, actuation, and sensing for the magnetic levitation technology, and provides a comprehensive literature review of various magnetically levitated precision positioning systems developed over the past three decades. The final part of this paper identifies several challenges in the design and control of today’s precision motion systems using magnetic levitation and provides an outlook on the possible directions for future research and development.
精密运动系统的磁悬浮技术:回顾与展望
精密运动系统是各种制造设备和科学仪器的核心,它们的运动性能直接决定了相关制造或计量过程的质量和速度。在磁悬浮精密运动系统中,运动目标由磁力支撑,没有任何机械接触,具有无摩擦运动、真空兼容和无污染操作的优点。这些特点使磁悬浮技术能够为精密定位系统提供卓越的整体性能。经过几十年的研究和工程努力,在磁悬浮精密运动系统的驱动、传感、设计和控制方面取得了重大进展。本文介绍了磁悬浮技术的反馈控制、驱动和传感的基本原理,并对近三十年来发展起来的各种磁悬浮精密定位系统进行了全面的文献综述。本文的最后一部分确定了当今使用磁悬浮的精密运动系统的设计和控制中的几个挑战,并对未来研究和发展的可能方向进行了展望。
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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