Study on the sliding mechanism of slopes along railways in loess regions of China under the coupling effect of extreme rainfall and train vibration

IF 4.9 2区 工程技术 Q1 ENGINEERING, CIVIL
Kai Han , Jiading Wang , Peng Xiao , Dengfei Zhang , Bo Cui , Tao Xiao
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引用次数: 0

Abstract

This study aims to investigate the sliding mechanism of slopes along railways in loess regions under the coupling effect of extreme rainfall and train vibration. Using the Baotou–Xi’an railway as a case study, a physical model of slopes along railways was developed to account for the impacts of dry-wet cycles, extreme rainfall, and train vibration. The experiments revealed that during the dry-wet cycle phase, the pore fractal dimension of the slope soil decreases from 2.95 to 2.81, indicating an increase in macropores, which enhances water transport efficiency in the soil. Following extreme rainfall, the pore water pressure and moisture content data of the soil approach peak levels, suggesting increased soil saturation and weakened stability. Subsequent vibration loading results in highly saturated soil, as evidenced by fluctuations in volumetric moisture content (from 48 % to 50.7 %) and pore water pressure (from 1.6 to 1.8 Kpa). Train vibration contributes to crack formation and expansion, while water infiltration establishes a pore-crack-seepage network. This network, combined with rainfall and train vibrations, destabilizes the soil structure and triggers landslides in loess regions along railways. The continuous application of vibration load further expands the sliding range. Meanwhile, an equation was derived to determine the sliding distance in relation to the number of vibratory loads applied. The sliding mechanism of slopes along railways under the combined influence of rainfall and train vibration has been preliminarily verified through micro, meso, and macroscopic perspectives.
极端降雨与列车振动耦合作用下中国黄土地区铁路沿线边坡滑动机制研究
本研究旨在探讨极端降雨与列车振动耦合作用下黄土地区铁路沿线边坡的滑动机理。以包西铁路为例,建立了考虑干湿循环、极端降雨和列车振动影响的铁路沿线边坡物理模型。试验结果表明,在干湿循环阶段,边坡土的孔隙分形维数由2.95降至2.81,表明大孔隙增加,提高了土壤中的水分输送效率。极端降雨后,土壤孔隙水压力和含水率接近峰值,表明土壤饱和度增加,稳定性减弱。随后的振动加载导致土壤高度饱和,这可以从体积含水率(从48%到50.7%)和孔隙水压力(从1.6到1.8 Kpa)的波动中得到证明。列车振动促进裂纹的形成和扩展,而水的入渗则形成孔-裂纹-渗流网络。这一网络与降雨和列车振动相结合,破坏了土壤结构,引发了铁路沿线黄土地区的滑坡。振动载荷的持续施加进一步扩大了滑动范围。同时,导出了滑动距离与振动载荷数量的关系式。从细观、细观和宏观三个角度初步验证了降雨和列车振动共同作用下铁路沿线边坡的滑动机理。
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来源期刊
Transportation Geotechnics
Transportation Geotechnics Social Sciences-Transportation
CiteScore
8.10
自引率
11.30%
发文量
194
审稿时长
51 days
期刊介绍: Transportation Geotechnics is a journal dedicated to publishing high-quality, theoretical, and applied papers that cover all facets of geotechnics for transportation infrastructure such as roads, highways, railways, underground railways, airfields, and waterways. The journal places a special emphasis on case studies that present original work relevant to the sustainable construction of transportation infrastructure. The scope of topics it addresses includes the geotechnical properties of geomaterials for sustainable and rational design and construction, the behavior of compacted and stabilized geomaterials, the use of geosynthetics and reinforcement in constructed layers and interlayers, ground improvement and slope stability for transportation infrastructures, compaction technology and management, maintenance technology, the impact of climate, embankments for highways and high-speed trains, transition zones, dredging, underwater geotechnics for infrastructure purposes, and the modeling of multi-layered structures and supporting ground under dynamic and repeated loads.
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