Simulation of the maglev suspension dynamic characteristics during movement, acceleration and deceleration

Irina V. Martirosian, S. Pokrovskii, M. Osipov, A. Starikovskii, I. Rudnev
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Abstract

Background: When developing high-speed transport systems based on the magnetic levitation phenomenon, it is necessary to take into account a huge number of factors that affect the characteristics and stability of this type systems. One of the simplest and most convenient methods for achieving these goals is numerical simulation. Aim: simulation of the dynamic characteristics of a magnetic suspension based on a high-temperature superconductor during movement, acceleration and deceleration. Methods: numerical analysis of the magnetic levitation system was performed by the finite element method in the Comsol Multiphysics engineering simulation software. Results: during straight motion, lateral vibrations do not exceed 15 %, and the suspension speed and mass increase does not have a significant effect on the vibrations amplitude. In the case of vertical oscillations, the platform mass and speed increase leads to an increase in the vibration resistance of the system. With an increase in the turning radius of the track, the maximum possible speed of entering the turn without detaching the suspension from the magnetic track increases non-linearly. Conclusion: The developed numerical model makes it possible to predict the dynamic characteristics of levitation transport and can be applied to systems of various scales.
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磁悬浮悬架运动、加减速过程动力学特性仿真
背景:在开发基于磁悬浮现象的高速运输系统时,需要考虑影响这类系统特性和稳定性的众多因素。实现这些目标的最简单和最方便的方法之一是数值模拟。目的:模拟高温超导体磁悬浮在运动、加速和减速过程中的动态特性。方法:在Comsol Multiphysics工程仿真软件中采用有限元法对磁悬浮系统进行数值分析。结果:直线运动时,横向振动不超过15%,悬架速度和质量增加对振动幅值的影响不显著。在垂直振动情况下,平台质量和速度的增加导致系统抗振能力的增加。随着轨道转弯半径的增加,在不从磁性轨道上分离悬架的情况下进入转弯的最大可能速度呈非线性增加。结论:所建立的数值模型能够较好地预测悬浮输运的动力学特性,可应用于不同尺度的系统。
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