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Layout Optimization of Rail Expansion Joint on Long-Span Cable-Stayed Bridge for High-Speed Railway

机译:高速铁路长跨度斜拉桥铁路膨胀接头布局优化

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Continuous welded rail (CWR) has been widely applied to the Chinese high-speed railways. It is interesting to reduce the effect of rail longitudinal force on the long-span cable-stayed bridges. Taking the pile-soil interaction into account, the finite element model of CWR on the long-span cable-stayed bridge is established based on the bridge-track interaction theory. The rail longitudinal force can be reduced and the track stability can be improved significantly by installing Rail Expansion Joint (REJ). The layout scheme of REJ plays a controlling role on designing CWR on bridges. Results show that the unidirectional REJ should be laid on both ends of the long-span cable-stayed bridge. Switch rails of REJ are set up on the main beam, stock rails are laid on the simply supported beams and crossing over beam joints, and several-meter long small resistance fasteners need to be laid on the sides of stock rails to reduce the fixed pier longitudinal force near the main beam. The range of REJ laid on cable-stayed bridge is mainly determined by temperature, rail breaking, and seismic condition; the bending and braking loads have little influence on it. Multiple field tests are carried out to prove the validity of the numerical model and the design methodology.
机译:连续焊接导轨(CWR)已广泛应用于中国高速铁路。有趣的是减少铁路纵向力对长跨度轴承座桥梁的影响。考虑到桩土相互作用,基于桥接轨道相互作用理论建立了长跨度斜拉桥CWR的有限元模型。通过安装轨道膨胀接头(REJ),可以减小轨道纵向力并且可以显着提高轨道稳定性。 Rej的布局方案在桥梁上设计CWR的控制作用。结果表明,单向REJ应放置在长跨度斜拉桥的两端。 Rej的开关轨设置在主束上,储存轨道铺设在简单的支撑梁上,并在梁接头上穿过,并且需要在储存轨道的侧面上铺设几米长的小电阻紧固件,以减少固定码头主梁附近的纵向力。铺设斜拉桥上的REJ范围主要由温度,轨断裂和地震条件决定;弯曲和制动载荷对其影响很小。进行多场测试以证明数值模型的有效性和设计方法。

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