超导电动悬挂系统动态特性分析的进展:建模、实验和优化

IF 5.6 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC
Huan Huang , Haitao Li , Tim Coombs , Hanlin Zhu , Yougang Sun , Guobin Lin , Junqi Xu , Jun Zheng
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引用次数: 0

摘要

超导电动悬挂系统(EDS)具有众多优势,包括悬挂间隙大、升阻比高以及对轨道不规则性的要求较低。超导材料的最新进展进一步提高了这一技术的可行性,因此多家研究机构正在积极开发和改进这一高速铁路技术。超导 EDS 通过地面空磁线圈和车载超导磁体之间的相互作用,形成一个机电耦合系统,从而实现被动悬挂和制导。因此,机电耦合建模和等效实验方法对于评估和优化该系统至关重要。本文回顾了超导 EDS 的动态特性分析研究,重点关注建模和实验方法。首先,文章回顾了超导 EDS 的发展历史以及超导材料的进步所带来的新机遇。其次,它讨论了悬浮系统的各种建模方法,强调了它们的优点和局限性。第三,介绍等效实验方法及其各自的应用场景。然后,它回顾了与动态性能和机电耦合研究有关的重要结论和可能的优化方法。此外,文章还介绍了滑动窗口法,以提高车辆动力学建模的计算效率。本文深入探讨了超导 EDS 研究的现状和未来方向,为研究人员和工程师提供了有价值的参考。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Advancements in dynamic characteristics analysis of superconducting electrodynamic suspension systems: Modeling, experiment, and optimization

Superconducting electrodynamic suspension (EDS) presents numerous advantages, including large suspension gaps, high lift-to-drag ratios, and lower requirements for track irregularities. Recent advancements in superconducting materials have further enhanced the feasibility of this technology, and hence multiple research institutions are actively developing and improving this high-speed rail technology. Superconducting EDS achieves passive suspension and guidance by the interaction between ground null-flux coils and onboard superconducting magnets, forming an electromechanical coupled system. Thus, electromechanical coupling modeling and equivalent experimental methods are essential in evaluating and optimizing this system. This article reviews the research on dynamic characteristics analysis of superconducting EDS, focusing on modeling and experimental methods. Firstly, it revisits the development history of superconducting EDS and the new opportunities brought by advancements in superconducting materials. Secondly, it discusses various modeling approaches for the suspension system, emphasizing their benefits and limitations. Thirdly, it describes equivalent experimental methods and their respective application scenarios. Then, it reviews important conclusions and possible optimization methods related to dynamic performance and electromechanical coupling research. Additionally, the sliding window method is introduced to improve computational efficiency in vehicle dynamics modeling. This article provides insights into the current state and future directions of superconducting EDS research, serving as a valuable reference for researchers and engineers.

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