Effects of periodic structures on friction-induced vibrations in catenary-pantograph systems

IF 6.1 1区 工程技术 Q1 ENGINEERING, MECHANICAL Tribology International Pub Date : 2024-11-20 DOI:10.1016/j.triboint.2024.110406
Yuki Amano , Shigeyuki Kobayashi , Yoshitaka Yamashita , Hirotoshi Uji , Hiroshi Yabuno
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Abstract

Friction-induced vibration in catenary-pantograph systems is a well-known instability phenomenon that has not been sufficiently investigated. This instability accelerates the wear of contact wires and requires a train driver to confirm safety, which leads to train delays. Therefore, it is important to elucidate the instability mechanisms and establish countermeasures. To address this issue, we conducted experiments using a real pantograph and a test facility that can simulate sliding conditions by rotating a rigid disk. These experiments characterized the instability reported in actual rail operations. Furthermore, numerical investigations found that the experimental results could be explained by assuming Coulomb friction for an experimentally validated pantograph model. However, this previous study did not examine the effects of the periodic catenary structures or propose countermeasures for their instability contribution. In this study, experiments and simulations based on actual equipment were conducted to investigate the effects of periodic structures. The simulations integrated a finite element method-based catenary model with a flexible multibody dynamics-based pantograph model. The experimental and numerical investigations clarified that the instability is caused by the asymmetry of the stiffness matrix due to Coulomb friction, and that standing waves formed in the contact wires between hangers significantly affect stability. Furthermore, the results suggested that these waves could be the basis of countermeasures for preventing instability. These results can contribute to the design of catenaries and pantographs with improved stability.
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周期性结构对导线架--风车系统摩擦引起的振动的影响
导线架--寻呼机系统中的摩擦引起的振动是一种众所周知的不稳定现象,但尚未得到充分研究。这种不稳定性会加速接触线的磨损,需要列车司机确认安全,从而导致列车延误。因此,阐明不稳定机制并制定对策非常重要。为解决这一问题,我们使用真实的受电弓和可通过旋转刚性圆盘模拟滑动条件的测试设备进行了实验。这些实验描述了实际轨道运行中的不稳定性。此外,数值研究发现,实验结果可以通过假设库仑摩擦力来解释实验验证的受电弓模型。然而,之前的研究并未考察周期性受电弓结构的影响,也未针对其造成的不稳定性提出对策。本研究基于实际设备进行了实验和模拟,以研究周期性结构的影响。模拟集成了基于有限元法的导管架模型和基于柔性多体动力学的受电弓模型。实验和数值研究明确了不稳定性是由库仑摩擦导致的刚度矩阵不对称引起的,并且悬挂器之间的接触线形成的驻波会显著影响稳定性。此外,研究结果表明,这些驻波可以作为防止失稳对策的基础。这些结果有助于设计具有更好稳定性的导管和受电弓。
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来源期刊
Tribology International
Tribology International 工程技术-工程:机械
CiteScore
10.10
自引率
16.10%
发文量
627
审稿时长
35 days
期刊介绍: Tribology is the science of rubbing surfaces and contributes to every facet of our everyday life, from live cell friction to engine lubrication and seismology. As such tribology is truly multidisciplinary and this extraordinary breadth of scientific interest is reflected in the scope of Tribology International. Tribology International seeks to publish original research papers of the highest scientific quality to provide an archival resource for scientists from all backgrounds. Written contributions are invited reporting experimental and modelling studies both in established areas of tribology and emerging fields. Scientific topics include the physics or chemistry of tribo-surfaces, bio-tribology, surface engineering and materials, contact mechanics, nano-tribology, lubricants and hydrodynamic lubrication.
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