Lateral-vertical coupled nonlinear vibration characteristics of HTS maglev based on multiscale method and experimental test

IF 8.9 1区 工程技术 Q1 ENGINEERING, MECHANICAL
Haitao Li , Shan Wang , Sheng Liu , Zigang Deng , Junqi Xu
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引用次数: 0

Abstract

High-temperature superconducting (HTS) maglev systems provide inherently stable, non-contact levitation and low energy consumption, making them attractive for high-speed transportation applications. However, the nonlinear dependence of levitation and guidance forces with lateral and vertical displacements leads to pronounced lateral-vertical coupling effects. These coupled vibrations, especially under external perturbations, can activate a broad range of resonant frequencies, thereby potentially affecting ride stability and operational safety. In this study, the nonlinear lateral-vertical coupled vibration responses of an HTS maglev system are investigated through integrated theoretical analysis, numerical simulations, and experimental validation. A coupled levitation/guidance force model is established via numerical simulations, quasi-static measurements, and dynamic experiments. The multiscale method is applied to derive analytical solutions for the coupled dynamics, under free vibration, lateral primary resonance, and forced vibration at critical frequencies. Theoretical analysis and numerical simulations reveal that lateral disturbances not only induce significant vertical responses but also excite a rich spectrum of resonant modes, including sum and difference frequencies between the lateral and vertical natural frequencies. These phenomena are confirmed by dedicated forced vibration experiments over a wide frequency range. Comparisons demonstrate strong agreement between theoretical predictions, simulations, and experimental data. Importantly, the study identifies specific frequency regions where the external excitation matches the sum or difference of the system’s natural frequencies, which are critical for system stability and result in substantial amplification of coupled vibration amplitudes. The combined theoretical and experimental framework based on the multiscale method enables accurate prediction of the nonlinear lateral-vertical coupled dynamics in HTS maglev systems and clearly identifies the critical frequency regions that need to be avoided in design and operation. These findings are of great significance for ensuring the stability and safety of HTS maglev systems at high speeds and are essential for maintaining overall system reliability.
基于多尺度法和实验测试的高温超导磁悬浮横向-纵向耦合非线性振动特性
高温超导(HTS)磁悬浮系统具有固有的稳定性,非接触式悬浮和低能耗,使其在高速运输应用中具有吸引力。然而,悬浮力和导向力与侧向和垂直位移的非线性关系导致了明显的侧向-垂直耦合效应。这些耦合振动,特别是在外部扰动下,可以激活大范围的谐振频率,从而潜在地影响驾驶稳定性和操作安全性。本文采用理论分析、数值模拟和实验验证相结合的方法,研究了高速超导磁悬浮系统的非线性横向-纵向耦合振动响应。通过数值模拟、准静态测量和动态实验,建立了悬浮/导向耦合模型。应用多尺度方法推导了临界频率下自由振动、横向主共振和强迫振动耦合动力学的解析解。理论分析和数值模拟表明,横向扰动不仅引起显著的垂直响应,而且激发了丰富的共振模式谱,包括横向和垂直固有频率之间的和频和差频。这些现象在较宽的频率范围内通过专门的强迫振动实验得到证实。比较表明理论预测、模拟和实验数据之间的一致性很强。重要的是,该研究确定了特定的频率区域,其中外部激励与系统固有频率的和或差相匹配,这对系统稳定性至关重要,并导致耦合振动幅值的大幅放大。基于多尺度方法的理论与实验相结合的框架,能够准确预测高温超导磁悬浮系统的非线性横垂耦合动力学,明确识别设计和运行中需要避免的临界频率区域。这些研究结果对于确保高速超导磁悬浮系统的稳定性和安全性具有重要意义,对于保持系统的整体可靠性至关重要。
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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