纵向连续无碴板轨道多跨简支梁桥轨桥相互作用综合整体研究

IF 2.2 4区 工程技术 Q2 ENGINEERING, CIVIL Structural Engineering and Mechanics Pub Date : 2021-01-01 DOI:10.12989/SEM.2021.78.2.163
Miao Su, Yiyun Yang, R. Pan
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引用次数: 6

摘要

在现代铁路中,轨桥相互作用已成为桥梁和轨道设计的重要组成部分。纵向连续板式轨道(LCST),即中国铁路轨道系统ⅱ型(CRTSⅱ)板式轨道,是一种独特的无砟板式轨道,具有复杂的受力机制。因此,本文对多跨简支梁桥与桥面混凝土之间的轨桥相互作用进行了全面的研究。具体而言,我们开发了一个集成的有限元模型来研究lst桥梁系统在温度变化、交通荷载和制动力作用下的整体相互作用效应。研究了该地区轨道和桥梁的变形规律、纵向力和界面剪应力的分布。结果表明:在不同荷载作用下,钢轨附加应力减小,钢轨在连续两层结构过渡后的变形更加平滑。然而,桥梁温差的影响是显著的,不可忽视的,因为这种作用可以像交通荷载一样使桥梁弯曲。温度的均匀变化使混凝土轨道结构产生拉应力,进而产生裂缝。此外,还讨论了滑动层摩擦系数和界面结合特性对lst性能的影响。本工作中提出的系统研究可能对理解LCSTbridge系统的整体力学行为有一些潜在的影响。
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A comprehensively overall track-bridge interaction study on multi-span simply supported beam bridges with longitudinal continuous ballastless slab track
Track-bridge interaction has become an essential part in the design of bridges and rails in terms of modern railways. As a unique ballastless slab track, the longitudinal continuous slab track (LCST) or referred to as the China railway track system Type-II (CRTS II) slab track, demonstrates a complex force mechanism. Therefore, a comprehensive track-bridge interaction study between multi-span simply supported beam bridges and the LCST is presented in this work. In specific, we have developed an integrated finite element model to investigate the overall interaction effects of the LCST-bridge system subjected to the actions of temperature changes, traffic loads, and braking forces. In that place, the deformation patterns of the track and bridge, and the distributions of longitudinal forces and the interfacial shear stress are studied. Our results show that the additional rail stress has been reduced under various loads and the rail's deformation has become much smoother after the transition of the two continuous structural layers of the LCST. However, the influence of the temperature difference of bridges is significant and cannot be ignored as this action can bend the bridge like the traffic load. The uniform temperature change causes the tensile stress of the concrete track structure and further induce cracks in them. Additionally, the influences of the friction coefficient of the sliding layer and the interfacial bond characteristics on the LCST's performance are discussed. The systematic study presented in this work may have some potential impacts on the understanding of the overall mechanical behavior of the LCSTbridge system.
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来源期刊
Structural Engineering and Mechanics
Structural Engineering and Mechanics 工程技术-工程:机械
CiteScore
3.80
自引率
18.20%
发文量
0
审稿时长
11 months
期刊介绍: The STRUCTURAL ENGINEERING AND MECHANICS, An International Journal, aims at: providing a major publication channel for structural engineering, wider distribution at more affordable subscription rates; faster reviewing and publication for manuscripts submitted; and a broad scope for wider participation. The main subject of the Journal is structural engineering concerned with aspects of mechanics. Areas covered by the Journal include: - Structural Mechanics - Design of Civil, Building and Mechanical Structures - Structural Optimization and Controls - Structural Safety and Reliability - New Structural Materials and Applications - Effects of Wind, Earthquake and Wave Loadings on Structures - Fluid-Structure and Soil-Structure Interactions - AI Application and Expert Systems in Structural Engineering. Submission of papers from practicing engineers is particularly encouraged.
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