Analysis and solution of eddy current induced in rail for medium and low speed maglev transportation system

Ying Yang, Wenyue Zhang, Laisheng Tong, Qibiao Peng, Hua Luo, Ji Suo
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引用次数: 2

Abstract

Background: For medium and low speed maglev transportation system, the eddy current will be induced in rail, which is made of solid steel, while the train is running. The levitation force of electromagnets will be weakened by the magnetic field generated by eddy current in the rail, especially at the position of the forefront electromagnets. With the increase of train running speed, the eddy current effect will also increase, which will reach 30 % at 100 km/h, and which will directly affect the levitation stability of the train during high-speed running. Put it another way, it will limit the further improvement of the running speed of the medium and low speed maglev train. Aim: In order to solve the above problem, and compensate the levitation force reduced by the eddy current effect. Methods: The FEA method is used to obtain the magnetic field distribution and levitation force changing with the train speed. And taking the middle and low speed maglev trains and rails of Changsha Maglev Express as the research object, we have adopted two solutions, and the prototypes of airsprings and levitation magnets are manufactured and tested in the train. Results: The test result show that the currents of the windings at the front end of the two forefront electromagnets are reduced obviously. Conclusion: In this paper, the medium and low speed maglev train and rail used by Changsha Maglev Express are studied, the eddy current effect is analyzed, and two solutions are proposed. The results show that the solution methods can alleviate the eddy current effects to some extent.
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中低速磁浮系统轨内感应涡流分析及解决方法
背景:在中低速磁浮运输系统中,列车在运行过程中会在实心钢轨中产生涡流。电磁铁的悬浮力会受到轨道内涡流产生的磁场的削弱,尤其是在前沿电磁铁的位置。随着列车运行速度的提高,涡流效应也会增大,在100 km/h时涡流效应将达到30%,直接影响列车在高速运行时的悬浮稳定性。换句话说,这将限制中低速磁悬浮列车运行速度的进一步提高。目的:为了解决上述问题,补偿涡流效应所减少的悬浮力。方法:采用有限元分析方法,获得列车磁场分布和悬浮力随列车速度的变化规律。并以长沙磁悬浮快线的中低速磁浮列车和轨道为研究对象,采用了两种解决方案,制作了空气弹簧和悬浮磁体样机,并在列车上进行了试验。结果:测试结果表明,两个前沿电磁铁前端绕组的电流明显减小。结论:本文对长沙磁浮快线使用的中低速磁浮列车和轨道进行了研究,分析了涡流效应,并提出了两种解决方案。结果表明,解决方法能在一定程度上缓解涡流效应。
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