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Experimental set-up and efficiency evaluation of zero-field-cooled (ZFC) YBCO magnetic bearings

机译:零场冷(ZFC)YBCO电磁轴承的实验装置和效率评估

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摘要

This paper presents the conception, simulation and experimental evaluation of magnetic bearings based on NdFeB magnets and zero-field-cooled (ZFC) YBCO bulk superconductors to replace the bearings of a standard electric machine. Advanced research on HTS magnetic levitation has been carried out for the construction of large scale flywheels or for industry applications. However, those approaches used field-cooled (FC) superconductors, whereas the approach shown in this paper uses ZFC superconductors. Actually, as previously shown by the authors, ZFC implementation presents much less AC losses. The approach in our horizontal flywheel research follows the ZFC-maglev structure, where the linear track was closed into a circular one with the same diameter of the superconductor magnetic bearing. The conception and geometric placement of magnets and superconductors was designed to keep symmetry along the rotating axis and minimizing air gaps. A 3D finite element model was built for simulation and validation of the effectiveness of the solution. Experimental validation was then achieved measuring the balanced and unbalanced rotor lifting and guiding forces.
机译:本文介绍了基于NdFeB磁体和零场冷(ZFC)YBCO块状超导体代替标准电机轴承的电磁轴承的概念,仿真和实验评估。对于大型飞轮的制造或工业应用,已经进行了有关高温超导磁悬浮的高级研究。但是,这些方法使用的是场冷(FC)超导体,而本文显示的方法则使用ZFC超导体。实际上,正如作者先前所显示的,ZFC的实现所产生的交流损耗要少得多。我们在水平飞轮研究中采用的方法是ZFC-磁悬浮结构,其中线性轨道被封闭成一个直径与超导体磁性轴承相同的圆形轨道。磁体和超导体的概念和几何布局旨在保持沿旋转轴的对称性并最小化气隙。建立了一个3D有限元模型,用于仿真和验证解决方案的有效性。然后通过测量平衡的和不平衡的转子提升力和引导力实现了实验验证。

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