• CN:11-2187/TH
  • ISSN:0577-6686

机械工程学报 ›› 2025, Vol. 61 ›› Issue (14): 261-272.doi: 10.3901/JME.2025.14.261

• 运载工程 • 上一篇    

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基于傅里叶级数方法的超导电动磁浮半解析电磁模型及刚度特性分析

黄欢1, 李海涛1, 祝翰林2, 程言行1, 邓自刚1, 郑珺1   

  1. 1. 西南交通大学轨道交通运载系统全国重点实验室 成都 610031;
    2. 西南交通大学电气工程学院 成都 610031
  • 收稿日期:2024-06-27 修回日期:2025-01-20 发布日期:2025-08-25
  • 作者简介:黄欢,女,1992年出生,博士研究生。主要研究方向为超导电动磁浮动态运行特性分析。E-mail:h_huang@my.swjtu.edu.cn;郑珺(通信作者),女,1980年出生,博士,副教授,博士研究生导师。主要研究方向为超导磁悬浮理论与应用。E-mail:jzheng@swjtu.edu.cn
  • 基金资助:
    国家自然科学基金(52375132)和四川省科技厅(2022JDTD0011)资助项目。

Semi-analytical Electromagnetic Model and Stiffness Characteristics of Superconducting Electrodynamic Suspension Based on the Fourier Series Method

HUANG Huan1, LI Haitao1, ZHU Hanlin2, CHENG Yanxing1, DENG Zigang1, ZHENG Jun1   

  1. 1. State Key Laboratory of Rail Transit Vehicle System, Southwest Jiaotong University, Chengdu 610031;
    2. School of Electrical Engineering, Southwest Jiaotong University, Chengdu 610031
  • Received:2024-06-27 Revised:2025-01-20 Published:2025-08-25

摘要: 超导电动磁浮具有悬浮间隙大、自稳定等优势,是目前唯一实现时速600 km载人运行的地面运载工具,更是高速轨道交通的重要发展方向之一。模型采用超导电动磁浮MLX01悬浮架的基本结构,基于傅里叶级数法建立车载跑道形线圈的空间磁场分布半解析模型,在该模型基础上,计算悬浮架的电磁性能及刚度特性。该模型建立在三维坐标系下,在跑道形磁体外区域采用标量磁位拉普拉斯方程,并利用区域之间的边界条件得到谐波系数;采用数值计算得到车载磁体空间磁场分布;随后,结合动态电路模型及能量法,计算车辆在不同运行条件下的时域电磁力,通过与有限元和试验结果相比较,验证了该模型的准确性。最后,分析超导电动磁浮的单个悬浮架的电磁力及其刚度特性;探究速度和位置对横、垂向及旋转刚度的影响规律,分析变化趋势的原因并给出拟合表达式。该半解析模型充分考虑车载超导磁体的包含厚度和宽度的跑道形结构及悬浮架之间的极距,表达悬浮架多个车载磁体的空间磁场分布;该模型和分析方法可用于含跑道形线圈的直线电机等系统的电磁分析,刚度拟合表达式可用于超导电动磁浮车辆动力学性能分析,为车辆紧固件和支撑的机械结构设计提供参考。

关键词: 超导电动磁浮, 傅里叶级数, 跑道形磁体, 时域电磁力, 刚度特性

Abstract: The superconducting electrodynamic suspension(EDS) has a large levitation gap and self-stability, and is currently the only rail transit to achieve a speed of 600 km/h for manned operation. It is one of the important development directions for high-speed rail transport. A semi-analytical model based on the Fourier series method is established to calculate the spatial magnetic field of onboard racetrack magnets of the EDS train. Firstly, based on this semi-analytical model, the electromagnetic properties and stiffness performance of the bogie of the EDS system are simulated. The model is established in a 3-D coordinate. The Laplace equation is established in the outer region of the racetrack-shaped magnets, with the scalar magnetic potential as the solution variable. The boundary conditions between the regions are used to obtain the harmonic coefficients. The partial differential equation is solved to obtain the spatial magnetic field using numerical methods. Secondly, the electromagnetic forces at different operation conditions are solved by combining the dynamic circuit model and the energy method. This model is verified through the comparison of the published experiment and finite element analysis results. Finally, the electromagnetic force and stiffness characteristics of the suspension bogie are analyzed in detail at different operation velocities, lateral offset, vertical offset, and rotation angles. The fitting expressions obtained included the aforementioned factors. The semi-analytical model in this article takes account of the racetrack-shaped structure of the onboard superconducting magnets containing thickness and width. It also takes into account the pole distance between the suspension bogie. The magnetic field of the four onboard magnets on one side of the bogie can be expressed exactly. The model and analysis method in this article can be used for the electromagnetic analysis of systems such as linear motors containing racetrack-shaped coils. Most important, the fitting equation of the stiffness can be used for the analysis of the dynamics of the EDS train. It provided the reference for the mechanical structural design of the vehicle fasteners and supports.

Key words: superconducting electrodynamic suspension, fourier series method, racetrack magnet, transient electromagnetic force, stiffness characteristic

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