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Structure and control design of levitation electromagnet for electromagnetic suspension medium-speed maglev train

机译:电磁悬架中速Maglev火车悬浮电磁铁的结构与控制设计

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摘要

Electromagnetic suspension is considered as a widely-used type of maglev train systems. It has been successfully used recently in Changsha Maglev Express (CME), China. Great research interests and engineering efforts have been focused on increasing the operation speed of such an environment-friendly low-speed maglev type to 200 km/h in order to meet the requirement of inter-city transportation, which has not been realized yet. However, at a higher speed, there is a considerable levitation force drop at the front of vehicles due to the pronounced eddy current effect. The electromagnet modules are more likely to saturate. An optimized electromagnet design is required for the medium-speed maglev train to achieve better levitation capability, weaker vibration, and more comfortable ride. Based on the actual parameters and operation data of CME, this paper uses the three-dimensional finite element analysis method to fully analyze the occurrence of magnetic saturation and its adverse effects. A novel structure design of electromagnet module coping with the problem of magnetic saturation is proposed to improve the levitation performance. The study also puts forward a three-controller system on the electromagnet module at the front of the vehicles which can effectively ease the imbalance of levitation forces.
机译:电磁悬架被认为是广泛使用的Maglev火车系统类型。它最近在长沙Maglev Express(CME)最近成功使用。伟大的研究兴趣和工程努力一直专注于增加这种环保低速Maglev类型的操作速度,以满足城市间交通的要求,尚未实现。然而,在更高的速度下,由于明显的涡流效果,车辆前部在车辆前面存在相当大的悬浮力下降。电磁模块更可能饱和。中速Maglev火车需要优化的电磁铁设计,以实现更好的悬浮能力,较弱的振动和更舒适的骑行。基于CME的实际参数和操作数据,本文采用三维有限元分析方法全面分析磁饱和度的发生及其不利影响。提出了一种新的电磁模块与磁饱和问题的结构设计,以提高悬浮性能。该研究还在车辆前部的电磁模块上提出了一个三个控制器系统,可以有效地缓解悬浮力的不平衡。

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