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Micromechanics-based investigation of fouled ballast using large-scale triaxial tests and discrete element modeling

机译:基于微力学的结垢镇流器的大规模三轴试验和离散元建模研究

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摘要

Railway ballast comprises unbounded discrete grains that are often used to form a load-bearing platform for tracks. Ballast degradation as trains pass over the tracks and infiltration of external fines including slurried (pumped) fine subgrade soils are two of the main reasons for ballast fouling. Fouling causes tracks to settle and also reduces the load-bearing capacity, which is associated with a reduction in internal friction and increased lateral spreading of the ballast layer. This paper presents a study of mobilized friction angle, volumetric behavior, and associated evolutions of contact and fabric anisotropy of fouled ballast subjected to monotonic triaxial loading using a series of large-scale triaxial tests and discrete element modeling. Monotonically loaded and drained triaxial tests were carried out on ballast with levels of clay fouling that varied from 10 to 50% void contamination index (VCI) subjected to three confining pressures of 10, 30, and 60 kPa. The results showed that an increase in the level of fouling decreased the mobilized friction angle and increased the ballast dilation. The discrete element method (DEM) was used to study the mobilized friction angle and fabric anisotropy of fresh and fouled ballast by simulating actual large-scale triaxial tests. Irregular shaped grains of ballast were simulated by clumping bonded circular balls with appropriate sizes and positions together. Ballast fouling was approximately simulated in DEM by adding 1-mm particles into the pore spaces of the fresh ballast. The predicted mobilized friction angles and volumetric changes obtained from the DEM simulations agreed well with those measured in the laboratory, indicating that the peak friction angle of fouled ballast and dilation decreased as the degree of fouling increased. The DEM simulations provided an insight into the distribution of contact force chains, contact orientations, and evolution of fabric anisotropy of fresh and fouled ballast that could not be captured in the laboratory. These observations are important for a better understanding of the load-deformation behavior of fouled ballast from the perspective of micromechanics.
机译:铁路道ball包含无限制的离散颗粒,通常用于形成轨道的承重平台。火车经过铁轨时道ast的降解和外部细粒的渗透,包括浆化的(抽出的)细碎的路基土壤,是道ball积垢的两个主要原因。结垢导致轨道沉降,并且还降低了承载能力,这与内部摩擦的减小和压载层的横向扩展增加有关。本文通过一系列大型三轴试验和离散单元建模,研究了单调三轴载荷下结垢道ast的动员摩擦角,体积行为以及接触和织物各向异性的相关演变。在压舱物上进行单调加载和排水的三轴试验,粘土结垢的水平在10、30和60 kPa的三种围压下在10%至5​​0%的空隙污染指数(VCI)之间变化。结果表明,结垢程度的增加减小了动摩擦角并增加了压载物的膨胀。通过模拟实际的大规模三轴试验,采用离散元法(DEM)研究了新鲜和结垢道ast的动员摩擦角和织物各向异性。通过将具有适当尺寸和位置的粘结圆形球团聚在一起,模拟了镇流器的不规则形状的颗粒。通过将1 mm的颗粒添加到新鲜压载物的孔隙中,可以在DEM中近似模拟压载物结垢。从DEM模拟获得的预测动员摩擦角和体积变化与实验室测得的吻合度很好,表明随着结垢程度的增加,结垢的镇流器和膨胀的峰值摩擦角减小。 DEM模拟提供了接触力链的分布,接触方向以及新鲜和结垢的压载物在实验室中无法捕获的织物各向异性的演变的信息。这些观察对于从微观力学的角度更好地了解结垢的压载物的载荷-变形行为是重要的。

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