Nonlinear resonance behavior for HTS pinning maglev system with electromagnetic compensation based on multi-scale method and experimental analysis

IF 8.9 1区 工程技术 Q1 ENGINEERING, MECHANICAL
Chong Lv , Zigang Deng , Yuxuan Lu , Zhentao Ding
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引用次数: 0

Abstract

In high-speed applications, high-temperature superconducting (HTS) magnetic levitation (maglev) trains face the problem of levitation force attenuation caused by eddy current losses in HTS bulks. The representative solution relies on the electromagnetic compensation subsystem (EMCS), but the interaction between the EMCS and permanent magnet guideway (PMG) exhibits nonlinear behaviors. The relationship is further superimposed with the hysteresis characteristics of HTS bulks, resulting in more complex nonlinear low-frequency vibrations. Due to the weak stiffness of the HTS maglev systems, sensitive spectra are easily excited when subjected to external disturbances, leading to resonance and endangering the safety and stability of train operation. In view of this, this paper focuses on exploring the nonlinear resonance behavior of the HTS-EMCS hybrid system. Firstly, the vertical dynamic equation of the hybrid system is constructed based on experimental results. Secondly, the analytical solutions of nonlinear equations are solved using the multi-scale method. Next, the nonlinear behavior of the system under different resonance conditions is analyzed through spectrum and phase trajectory analysis. Finally, vibration tests are conducted under different resonance forms to verify the conclusions. The study elucidates the nonlinear resonance laws of HTS-EMCS, and the results indicate that EMCS can effectively improve the damping and natural frequency of the original system. This helps to enhance system stability and avoid low-frequency resonance. This research provides a reference for the design, analysis, and application of HTS maglev equipped with the EMCS.
基于多尺度法和实验分析的电磁补偿HTS钉钉磁悬浮系统非线性共振行为
在高速应用中,高温超导磁悬浮列车面临着高温超导体涡流损耗引起的悬浮力衰减问题。代表性的解决方案依赖于电磁补偿子系统,但电磁补偿子系统与永磁导轨之间的相互作用表现出非线性行为。这种关系进一步与高温超导体的滞回特性叠加,导致更复杂的非线性低频振动。由于高温超导磁悬浮系统的刚度较弱,当受到外界干扰时,敏感谱容易被激发,导致共振,危及列车运行的安全稳定。鉴于此,本文重点研究了HTS-EMCS混合系统的非线性共振行为。首先,根据实验结果建立了混合动力系统的垂直动力学方程;其次,采用多尺度法求解非线性方程的解析解。其次,通过谱和相轨迹分析,分析了系统在不同谐振条件下的非线性行为。最后进行了不同共振形式下的振动试验,验证了结论。研究阐明了HTS-EMCS的非线性共振规律,结果表明EMCS可以有效地改善原系统的阻尼和固有频率。这有助于提高系统稳定性,避免低频共振。本研究为搭载电磁控制系统的高温超导磁悬浮列车的设计、分析和应用提供了参考。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Mechanical Systems and Signal Processing
Mechanical Systems and Signal Processing 工程技术-工程:机械
CiteScore
14.80
自引率
13.10%
发文量
1183
审稿时长
5.4 months
期刊介绍: Journal Name: Mechanical Systems and Signal Processing (MSSP) Interdisciplinary Focus: Mechanical, Aerospace, and Civil Engineering Purpose:Reporting scientific advancements of the highest quality Arising from new techniques in sensing, instrumentation, signal processing, modelling, and control of dynamic systems
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