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Laboratory investigation of the Ski-style fastening system's performance under heavy haul freight railroad loads

机译:重载货运铁路载荷下滑雪式紧固系统性能的实验室研究

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Throughout the international railway community, there are many different designs of elastic fastening systems that have been developed to meet a variety of design specifications and performance expectations. Historically, in North America, the most common types of fastening systems used for concrete crossties are the Safelok I or e-clip systems. In recent years railroads have begun implementing the Skl-style (W) fastening system with concrete crossties in existing and new heavy haul freight railroad mainlines. The magnitude of lateral force applied to the Skl-style fastening systein is important information for both design and application purposes. Despite this importance, the lateral force applied to the Skl-style fastening system in a heavy haul freight railroad environment has never been quantified to date. To better understand how the Skl-style system performs under the magnitude of lateral loads observed on heavy haul freight railroads, research was conducted by the Rail Transportation and Engineering Center (Rai1TEC) at the University of Illinois at Urbana-Champaign (UIUC). The focus of this paper is on laboratory characterization of the lateral load path through the Skl-style fastening system using novel instrumentation techniques that are subjected to heavy haul freight railroad loading conditions. The investigation of fastening system performance included an evaluation of lateral load distribution through the track superstructure, and a single fastening system. Laboratory experimentation concluded that lateral wheel load is primarily distributed to three crossties, the relationship between lateral wheel load and lateral force resisted by field side angled guide plate is non-linear, and that the design of the Skl-style fastening system allows lateral force to be transferred into the crosstie below the worst case concrete compressive fatigue strength. The observations from this study will assist the rail industry in improving fastening system design and developing mechanistic track structure design method. (C) 2017 Elsevier Ltd. All rights reserved.
机译:在整个国际铁路社区中,已经开发出许多不同的弹性紧固系统设计,以满足各种设计规范和性能要求。历史上,在北美,用于混凝土枕木的紧固系统最常见的类型是Safelok I或e-clip系统。近年来,铁路已经开始在现有和新的重载货运铁路干线上实施具有混凝土交叉点的Skl式(W)紧固系统。对于设计和应用目的,施加于Skl型紧固半胱氨酸的侧向力的大小都是重要的信息。尽管具有这种重要性,但迄今为止,尚未量化在重载货运铁路环境中施加于Skl型紧固系统的侧向力。为了更好地了解Skl型系统在重载货运铁路上观察到的横向载荷大小下的性能,由伊利诺伊大学香槟分校(UIUC)的铁路运输和工程中心(Rai1TEC)进行了研究。本文的重点是通过使用新型仪表技术的Skl型扣紧系统对侧向载荷路径进行实验室表征,该技术可在重载货运铁路载荷条件下使用。紧固系统性能的研究包括评估通过轨道上部结构的横向载荷分布和单个紧固系统。实验室实验得出的结论是,侧向车轮载荷主要分布在三个交叉点上,侧向车轮载荷与场侧倾斜导板抵抗的侧向力之间的关系是非线性的,并且Skl型紧固系统的设计允许侧向力在最坏情况下的混凝土抗压疲劳强度以下被转移到交叉结中。这项研究的观察结果将有助于铁路行业改善紧固系统设计并开发机械轨道结构设计方法。 (C)2017 Elsevier Ltd.保留所有权利。

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