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Geomechanical assessment of an inert steel slag aggregate as an alternative ballast material for heavy haul rail tracks

机译:惰性钢渣骨料的地质力学评价作为重型铁路轨道的替代镇流材料

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The geomechanical behaviour of railway ballast is a key aspect in the performance of ballasted tracks, mainly under increased axle loads and/or train speeds. Recently, and driven by the circular economy paradigm, some researchers have evaluated the use of alternative ballast materials as replacement for traditional natural crushed rocks. This work presents a comparison between the geomechanical behaviour of a granite aggregate and the one of an electrical arc furnace steel slag aggregate, with the trade designation of 'Inert Steel Aggregate for Construction' (ISAC). Both materials were designed for heavy haul railway track applications and showed similar particle size distribution (PSD) curves established by the standard gradation AREMA N. 24. Laboratory tests were performed on scaled down ballast specimens to evaluate both the macro-structural behaviour under cyclic loading triaxial tests (long-term permanent deformation and resilient modulus under various stress paths) and the micro-structural behaviour (particle breakage in cyclic loading and single-particle crushing strength). With a view to analise the structural response of the railway track and to compare the influence of the two aggregates, numerical simulations by FEM are presented, using static loading and non-linear elastic material models for both the ballast and the sub-ballast layers. The models were calibrated on basis of laboratory test results, to obtain the elastic vertical displacement on the rail top level and the stress distribution on the track foundation layers. The results suggest that the use of steel slag aggregate as ballast material is promising. When compared with the granite aggregate, the ISAC demonstrated to have a higher crushing strength of its particles; a greater tendency to stabilize the permanent deformation (PD); a lower particle breakage after PD tests; and a higher resilient modulus. The results of the numerical modeling showed that the rail presented less maximum elastic vertical displacements (approximately 3% on average) and that the foundation soils underwent less maximum vertical stresses (approximately 4% for a 32.5 t/axle loading and 9% for a 40 t/axle loading), in the model with ISAC in the ballast layer. (C) 2021 Elsevier Ltd. All rights reserved.
机译:铁路镇流器的地质力学行为是镇流轨道性能的关键方面,主要是在增加的轴载和/或火车速度下。最近,并由循环经济范式驱动,一些研究人员已经评估了使用替代镇流器材料作为传统的自然碎石的替代品。该工作介绍了花岗岩骨料的地质力学行为与电弧炉钢渣聚集体之一之间的比较,具有“惰性钢结构的建筑”(ISAC)的商品指定。两种材料都设计用于重载铁路轨道应用,并显示出由标准灰度Arema N确定的类似粒度分布(PSD)曲线。24.对缩小的镇压镇流器标本进行实验室测试,以评估循环载荷下的宏观结构行为三轴试验(在各种应力​​路径下的长期永久变形和弹性模量)和微结构行为(循环负载下的颗粒破碎和单颗粒破碎强度)。为了分析铁路轨道的结构响应并比较两个聚集体的影响,使用镇流器和子镇流器层的静电负载和非线性弹性材料模型来呈现由有限元的数值模拟。该模型在实验室测试结果的基础上校准,以获得轨道顶级的弹性垂直位移和轨道基层上的应力分布。结果表明,使用钢渣聚集体作为镇流器材料是有前途的。与花岗岩骨料相比,ISAC证明其颗粒的碎裂强度较高;稳定永久变形(Pd)的趋势更大; PD试验后的颗粒断裂较低;和更高的弹性模量。数值建模的结果表明,轨道呈现较少的最大弹性垂直位移(平均约3%),并且基础土壤的最大垂直应力(约4%为32.5 T /轴载荷,40% T /轴装载),在镇流器层中的ISAC模型中。 (c)2021 elestvier有限公司保留所有权利。

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