Railway Transition Zones: Energy Evaluation of a Novel Transition Structure for Critical Loading Conditions.

IF 2.1 3区 工程技术 Q2 ENGINEERING, MECHANICAL
A Jain, A V Metrikine, M J M M Steenbergen, K N van Dalen
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Abstract

Railway transition zones (RTZs) are subjected to amplified degradation leading to high maintenance costs and reduced availability of tracks for operation. Over the years, several mitigation measures have been investigated to deal with the amplified degradation of these zones. However, to ensure the robustness of a design solution, it must be evaluated for critical conditions arising due to certain loading and track conditions. In this paper, the critical load conditions arising due to different velocities (sub-critical, critical and super-critical), the direction of the moving load, the combination of inertial effects and track imperfections (non-straight rail and hanging sleepers) and passage of multiple axles (using a comprehensive vehicle model) are investigated for an embankment-bridge transition. The results are then compared against the recently proposed design of a transition structure called SHIELD (Safe Hull Inspired Energy Limiting Design) to evaluate its performance under these critical conditions using various vehicle models and finite element models of the RTZs. It was found that the novel design of the transition structure effectively mitigates dynamic amplifications and results in smooth strain energy distribution across sub-critical, critical, and super-critical velocity regimes in both directions of movement implying that the expected operation-induced degradation will be as uniform as possible in longitudinal direction. Furthermore, even though this transition structure is designed to deal with initial track conditions (perfectly straight track), its superior performance is not confined to tracks in perfect condition; it also efficiently addresses adverse effects from track imperfections such as hanging sleepers and non-straight rail. In the end, this work demonstrates the robustness of the design solution for all the critical conditions under study.

铁路过渡区:关键负载条件下新型过渡结构的能量评估。
铁路过渡区(RTZs)受到严重退化的影响,导致维护成本高,轨道可用性降低。多年来,已经研究了若干缓解措施,以应对这些地区退化加剧的问题。然而,为了确保设计方案的鲁棒性,必须对由于某些负载和轨道条件而产生的临界条件进行评估。本文研究了不同速度(亚临界、临界和超临界)、移动荷载方向、惯性效应和轨道缺陷(非直轨和悬挂轨枕)的组合以及多轴通过(使用综合车辆模型)引起的路堤-桥梁过渡的临界荷载条件。然后将结果与最近提出的过渡结构设计SHIELD(安全船体启发能量限制设计)进行比较,使用各种车辆模型和RTZs的有限元模型来评估其在这些关键条件下的性能。研究发现,过渡结构的新设计有效地减轻了动态放大,并在运动方向上使亚临界、临界和超临界速度区应变能分布平滑,这意味着预期的操作引起的退化将在纵向上尽可能均匀。此外,尽管这种过渡结构设计用于处理初始轨道条件(完全笔直的轨道),但其优越的性能并不局限于完美状态的轨道;它还有效地解决了轨道缺陷的不利影响,如悬挂枕木和非直轨。最后,这项工作证明了设计方案对所研究的所有关键条件的鲁棒性。
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
Journal of Vibration Engineering & Technologies
Journal of Vibration Engineering & Technologies Physics and Astronomy-Acoustics and Ultrasonics
CiteScore
3.70
自引率
25.90%
发文量
348
期刊介绍: Journal of Vibration Engineering & Technologies provides a medium of communication among scientists and engineers engaged in research and development in the field of vibration engineering. It features original papers, in-depth reviews, experimental tests and results, design ideas and application papers of direct relevance to the industry. The journal promotes the objectives of the Vibration Institute of India for creating better awareness about the benefits of vibration analysis in assessing machinery health.
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