通过电磁并联阻尼器设计和测试用于 HTS 磁悬浮系统的非接触式阻尼器

IF 1.3 3区 物理与天体物理 Q4 PHYSICS, APPLIED Physica C-superconductivity and Its Applications Pub Date : 2024-08-22 DOI:10.1016/j.physc.2024.1354554
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引用次数: 0

摘要

高温超导(HTS)磁悬浮系统具有诸多优势,有望成为未来的高速交通工具。然而,由于超导体的低阻尼动态特性,该系统很容易受到外部干扰的影响,这给其实施带来了巨大挑战。为了增强 HTS 磁悬浮系统的减振效果,一种采用电磁分流阻尼(EMSD)和负阻力的非接触式阻尼器被纳入 HTS 磁悬浮系统。本研究阐明了 EMSD 和负阻力的原理,并建立了描述配备 EMSD 的 HTS 磁悬浮模型行为的控制方程。随后,通过有限元法(FEM)分析了不同条件下的 EMSD 耦合系数。最后,设计并制造了一个专用振动试验台,以验证所建议的减振器的有效性。结果表明,所提出的减振器与负阻力相结合,能够有效抑制 HTS 磁悬浮系统的振动。与没有减振器的原始系统相比,测试模型的最大加速度可降低 86%。这项工作可为未来的实际应用提供有价值的指导。
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Design and test of a contactless damper for HTS maglev systems via electromagnetic shunt dampers

High-temperature superconducting (HTS) maglev system is promising to become the future high-speed transport due to its numerous advantages. However, the low-damping dynamic characteristics of superconductors make the system vulnerable to external disturbances, which present a significant challenge to its implementation. To enhance the vibration attenuation effect of the HTS maglev system, a non-contact damper that employs electromagnetic shunt damping (EMSD) and negative resistance is incorporated into the HTS maglev system. This study elucidates the principles of EMSD and negative resistance, and establishes the governing equations to describe the behavior of the HTS maglev model equipped with EMSD. Subsequently, the EMSD coupling coefficients are analysed via the finite element method (FEM) under varying conditions. Finally, a dedicated vibration test rig is designed and fabricated to validate the effectiveness of the proposed damper. The results demonstrate that the proposed damper, in combination with negative resistance, is capable of effectively suppressing vibration in HTS maglev systems. The maximum acceleration of the test model can be reduced by 86% compared with the original system without the damper. This work may provide valuable guidance for future practical implementations.

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来源期刊
CiteScore
2.70
自引率
11.80%
发文量
102
审稿时长
66 days
期刊介绍: Physica C (Superconductivity and its Applications) publishes peer-reviewed papers on novel developments in the field of superconductivity. Topics include discovery of new superconducting materials and elucidation of their mechanisms, physics of vortex matter, enhancement of critical properties of superconductors, identification of novel properties and processing methods that improve their performance and promote new routes to applications of superconductivity. The main goal of the journal is to publish: 1. Papers that substantially increase the understanding of the fundamental aspects and mechanisms of superconductivity and vortex matter through theoretical and experimental methods. 2. Papers that report on novel physical properties and processing of materials that substantially enhance their critical performance. 3. Papers that promote new or improved routes to applications of superconductivity and/or superconducting materials, and proof-of-concept novel proto-type superconducting devices. The editors of the journal will select papers that are well written and based on thorough research that provide truly novel insights.
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