Impact Assessment of Asphalt Concrete in Geogrid-Reinforced-Pile-Supported Embankment During High-Speed Train Traffic

Ishola Valere Loic Chango, Goubi Cyriaque Assogba, M. Yan, Ling Xianzhang, J. G. Mitobaba
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Abstract

Railroad structural behaviour is a significant factor for safety and comfort during high-speed train operation. Intending to improve railway performance, increase its bearing capacity, and reduce vibrations induced by train passage, asphalt concrete has become a material to be integrated into railway construction. Despite several studies evaluating asphalt concrete effect on the railway mechanical behaviour, its impact assessment remains poorly understood. This study investigates the impact of asphalt concrete material in the geogrid-reinforced-pile-supported embankment structure subjected to high-speed train moving. A 3D nonlinear finite element model was developed to simulate Harbin (Dalian (China) instrumented railroad test section accurately. The high-speed train moving load was modelled as a transitory dynamic load via a user-defined subroutine 3D load in which the track irregularity is incorporated. The established model was effectively validated by the vibration acceleration and stress measured in the field test section. The asphalt concrete viscoelasticity behaviour was incorporated into the 3D geogrid-reinforced-pile-supported embankment finite element model through the Prony series to characterise its mechanical response better. The impact of asphalt concrete material in maintaining a low and constant structural vibration, regardless of train weight level, moving speed variations, and weather conditions were investigated, analysed and discussed.
高速列车行驶时土工格栅桩支撑路堤沥青混凝土的影响评价
铁路结构性能是影响高速列车运行安全性和舒适性的重要因素。为了改善铁路的性能,提高其承载能力,减少列车通行引起的振动,沥青混凝土已成为铁路建设中不可或缺的材料。尽管有一些研究评估沥青混凝土对铁路力学行为的影响,但其影响评估仍然知之甚少。本文研究了高速列车行驶时,沥青混凝土材料对土工格栅桩支路堤结构的影响。建立了哈尔滨(大连)铁路仪器仪表试验段的三维非线性有限元模型。通过用户自定义的考虑轨道不平顺性的三维载荷子程序,将高速列车运行载荷建模为瞬时动态载荷。通过现场试验段的振动加速度和应力实测,验证了所建立的模型的有效性。通过proony系列将沥青混凝土粘弹性特性纳入三维土工格栅桩支路堤有限元模型,以更好地表征其力学响应。在不考虑列车重量水平、移动速度变化和天气条件的情况下,沥青混凝土材料对保持低而恒定的结构振动的影响进行了调查、分析和讨论。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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