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RAIL-STRUCTURE INTERACTION ANALYSIS OF SLIDING SLAB TRACK ON BRIDGE

机译:桥上滑动平板轨道的钢-结构相互作用分析

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Continuous welded rail (CWR) on a bridge structure typically experiences a large amount of additional longitudinal axial forces due to longitudinal rail-structure (or track-bridge) interaction under temperature change and train vertical and traction/braking load effect. In order to reduce the additional axial forces, a special type of fastener, such as zero longitudinal restraint (ZLR) and reduced longitudinal restraint (RLR) or rail expansion joint (REJ) should be applied. Sliding slab track system is developed to reduce the effect of rail-structure interaction through the application of a low-frictional sliding layer between slab track and bridge structure. This study presents a track-bridge interaction analysis of the sliding slab track and compares them with conventional fixed slab track on bridges. Various types of span length and longitudinal profiles of bridges are considered in the analysis, which also include multiple continuous spans and extra-dosed bridges. The analysis found that the sliding slab track can reduce the additional axial forces of the continuous welded rail from 80% to 90%, and the difference is more significant for long and continuous span bridge. By the application of the sliding slab track, the use of any other special type of rail fasteners or REJ can be avoided. In addition, span length will not be restricted by the rail-structure interaction effect in planning the railway bridge layout. Continuous span bridge has been usually avoided for railway bridges, but it is preferred for the application of the sliding slab track because the interaction effect can mostly be removed. A continuous span bridge usually has an economical cross-section for the bridge girder, pier and foundation and better dynamic characteristics compared to simple span bridge, and its application eventually will reduce the construction cost of the railway infrastructure.
机译:桥梁结构上的连续焊接轨道(CWR)通常会在温度变化以及列车垂直和牵引/制动载荷作用下,由于纵向轨道结构(或轨道桥)相互作用而承受大量额外的纵向轴向力。为了减少额外的轴向力,应使用一种特殊类型的紧固件,例如零纵向约束(ZLR)和减小的纵向约束(RLR)或导轨膨胀节(REJ)。开发了滑动平板轨道系统,以通过在平板轨道和桥梁结构之间使用低摩擦滑动层来减少钢轨-结构相互作用的影响。这项研究提出了滑动平板轨道的轨道-桥梁相互作用分析,并将其与桥梁上常规的固定平板轨道进行比较。分析中考虑了各种类型的跨度和桥梁的纵向轮廓,其中还包括多个连续跨度和超剂量桥梁。分析发现,滑动平板轨道可以将连续焊接轨道的附加轴向力从80%降低到90%,对于大跨度和连续跨度的桥梁,这种差异更为明显。通过滑动平板轨道的使用,可以避免使用任何其他特殊类型的轨道紧固件或REJ。另外,在规划铁路桥梁布局时,跨度长度不会受到铁路结构相互作用的限制。对于铁路桥梁,通常避免使用连续跨度的桥梁,但是对于滑动平板轨道的应用,它是首选的,因为相互作用的影响大部分可以消除。与简单的跨度桥梁相比,连续跨度桥梁的梁,墩和基础通常具有经济的横截面,并且具有更好的动力特性,其应用最终将降低铁路基础设施的建设成本。

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