Modeling and Optimization of a Large-Load Magnetic Levitation Gravity Compensator

悬浮 磁悬浮 磁铁 电动悬架 控制理论(社会学) 刚度 流离失所(心理学) 物理 机械 机械工程 工程类 计算机科学 磁场 结构工程 磁能 磁化 控制(管理) 量子力学 人工智能 心理学 心理治疗师
作者
He Zhang,Yuexuan Lou,Lishan Zhou,Zhaoqi Kou,Junren Mu
出处
期刊:IEEE Transactions on Industrial Electronics [Institute of Electrical and Electronics Engineers]
卷期号:70 (5): 5055-5064 被引量:9
标识
DOI:10.1109/tie.2022.3183365
摘要

This article presents the modeling and optimization design of a large load magnetic levitation gravity compensator. The proposed magnetic levitation gravity compensator comprises three layers of 2-D permanent magnet (PM) arrays. The middle mover layer can generate a large passive levitation force to compensate for the gravity of large loads in some magnetic levitation systems, such as the measurement framework in lithography machines or large space optical equipment to be tested on the ground. To accurately predict the passive levitation force, an improved magnetic charge model is proposed, in which the actual working points of each PM are considered. The accuracy of the improved model is verified via 3-D finite-element simulation. Genetic algorithm is then adopted as the parameter optimization method to reduce the levitation force stiffness within the effective vertical displacement to the greatest extent possible. Compared with the levitation force performance without parameter optimization, the sensitivity of the levitation force with vertical displacement is significantly reduced. In addition, the mechanical structure is designed, and the mechanical strength is checked. Finally, a magnetic levitation gravity compensator prototype with a passive levitation force of 6200 N is manufactured and tested. The tested values of the levitation force match well with the analytical and simulation results. The tested levitation force stiffness within 4 mm is less than 50 N/mm and basically remains unchanged, which is a superior performance for magnetic levitation systems.
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