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CRTS II型板式无砟轨道界面力学性能及结构细节损伤研究

Study on interfacial mechanical properties and structural detail damage of CRTS II slab ballastless track.

作者信息

Song Anxiang, Yao Guowen, Guo Yuanchen, Zhang Gaofeng, Yu Xuanrui

机构信息

Department of Civil Engineering, Chongqing Three Gorges University, Wanzhou, Chongqing, 404100, China.

College of Materials Science and Engineering, Chongqing University, Chongqing, 400074, China.

出版信息

Sci Rep. 2024 Dec 28;14(1):31354. doi: 10.1038/s41598-024-82822-9.

DOI:10.1038/s41598-024-82822-9
PMID:39733100
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11682364/
Abstract

The CRTS (China Railway Track System) II slab ballastless track is widely utilized in high-speed railway construction owing to its excellent structural integrity. However, its interfacial performance deteriorates under high-temperature conditions, leading to significant damage in structural details. Furthermore, the evolution of its performance under these conditions has not been comprehensively studied. In this study, a bilinear cohesive damage model was developed using positive tensile and push-out model tests to describe the interfacial mechanical behavior of the track structure. A three-dimensional refined numerical simulation model of the CRTS II slab ballastless track was developed and validated using existing test data to analyze the distribution of structural damage and its evolution under varying temperature conditions. The results demonstrate that the proposed bilinear cohesive damage model effectively characterizes the interlayer damage evolution in the track structure. As the overall temperature increases, interlayer separation initiates at the wide-narrow joints and propagates from the slab ends toward the center. At a temperature rise of 60 °C, the interface becomes fully separated, and the vertical displacement of the wide-narrow joints and the track slab reaches 1.09 cm. The middle and end sections of the wide joints are particularly susceptible to compressive damage, with the top section being more sensitive to temperature changes. These results provide critical insights into the damage mechanisms and performance evolution of ballastless tracks under thermal loading, offering a foundation for improved design and maintenance strategies.

摘要

中国铁路轨道系统(CRTS)II型板式无砟轨道因其优异的结构整体性而在高速铁路建设中得到广泛应用。然而,其界面性能在高温条件下会恶化,导致结构细节出现严重损伤。此外,其在这些条件下的性能演变尚未得到全面研究。在本研究中,通过正向拉伸和推出模型试验建立了双线性内聚损伤模型,以描述轨道结构的界面力学行为。利用现有试验数据建立并验证了CRTS II型板式无砟轨道的三维精细数值模拟模型,以分析不同温度条件下结构损伤的分布及其演变。结果表明,所提出的双线性内聚损伤模型有效地表征了轨道结构中间层损伤的演变。随着整体温度升高,层间分离在宽-窄接缝处开始,并从板端向中心扩展。当温度升高60°C时,界面完全分离,宽-窄接缝和轨道板的垂直位移达到1.09厘米。宽接缝的中部和端部特别容易受到压缩损伤,顶部对温度变化更敏感。这些结果为深入了解无砟轨道在热荷载作用下的损伤机制和性能演变提供了关键见解,为改进设计和维护策略奠定了基础。

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