首页> 外文期刊>Latin American Journal of Solids and Structures >Dynamic Response Analysis of Geogrid Reinforced Embankment Supported by CFG Pile Structure During a High-Speed Train Operation
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Dynamic Response Analysis of Geogrid Reinforced Embankment Supported by CFG Pile Structure During a High-Speed Train Operation

机译:CFG桩结构支撑的土工格栅加筋路堤高速列车运行动态响应分析

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Abstract The performance of railroad structure has a tremendous influence on the safety and stable operation of high-speed trains. Strong vibrations and the degradation rate of the track are the main factors affecting the transport safety of a railroad built over a weak soil. Geogrid reinforced embankment supported by pile structure is a new efficient construction technique used to ensure the stability and enhance the performance of the railroad system; but only a few studies are oriented to its behavior under train operation. This paper investigates the dynamic response of geogrid reinforced embankment supported by cement fly-ash gravel pile structure during a high-speed train operation. The establishment of a realistic simulation model for railroad subjected to a moving train load, is an important first step towards the reliable design of geogrid reinforced embankment supported by pile structure. Thus, a 3D nonlinear FEM has been established to simulate the instrumented Harbin-Dalian railway test section. Each train carriage was modeled as a transient dynamic load through a user-defined Dload subroutine. The developed model was successfully validated by the dynamic response recorded from the field test section. The improvement of the railroad structure by the CFG piles and geogrids contributed significantly to the reduction of the vibration in the structure, which attenuates 1.2 times faster with the structure depth, even under overload conditions. Moreover, the phenomenon of resonance observed when the train reaches speeds of 100 and 260 km/h were annihilated. The analysis of the stress distribution within the embankment revealed that a dynamic arch is formed in the embankment at 2 m from the ground. The stress onto the pile was 16 times greater than that acted on the soil and the tensile stress developed in the geogrid was high at the piles edge below. In addition, the coupling effect of geogrid with various tensile strengths and the piles with different strength grades indicated that the combination of a high-strength pile and geogrid significantly reduces the displacement gap due to the variation of train speed. As a result, the vibrations of the track were almost constant during the train operation; thus, ensuring comfort to passengers and reducing the risk of derailment.
机译:摘要铁路结构的性能对高速列车的安全性和稳定运行有着巨大的影响。强烈的振动和铁轨的退化率是影响在弱土上修建的铁路运输安全的主要因素。桩结构支撑的土工格栅加筋路堤是一种新的高效施工技术,用于确保铁路系统的稳定性和增强其性能。但是只有很少的研究针对火车运行下的行为。本文研究了高速列车运行过程中水泥粉煤灰碎石桩结构支撑的土工格栅加筋路堤的动力响应。建立列车在动载下的真实仿真模型,是桩结构支撑土工格栅加筋路堤可靠设计的重要第一步。因此,已经建立了3D非线性有限元法来模拟哈尔滨至大连的铁路测试段。每个火车车厢都通过用户定义的Dload子例程建模为瞬时动态负载。通过现场测试部分记录的动态响应成功验证了开发的模型。 CFG桩和土工格栅对铁路结构的改善极大地降低了结构中的振动,即使在过载条件下,振动也随着结构深度的衰减快了1.2倍。而且,消除了当火车达到100和260 km / h的速度时观察到的共振现象。对路堤内应力分布的分析表明,在距地面2 m的路堤中形成了动力拱。桩上的应力比作用在土壤上的应力大16倍,土工格栅中产生的拉应力在下方的桩缘处较高。另外,具有不同抗拉强度的土工格栅与具有不同强度等级的桩的耦合效应表明,高强度桩与土工格栅的结合可显着减小列车速度的变化而引起的位移间隙。结果,在火车运行过程中,轨道的振动几乎恒定。因此,确保了乘客的舒适度并降低了出轨的风险。

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