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Discrete element modelling of two-layered ballast in a box test

机译:盒式试验中双层压载的离散元素建模

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It has been recently reported that ballast comprising differently graded layers helps to reduce track settlement. The main goal of this paper is to provide micro mechanical insight about how the differently layered ballasts reduce the settlement by employing DEM and thus propose an optimum design for two-layered ballast. The DEM simulations provide sufficient evidence that the two-layered ballast works by preventing particles from moving laterally through interlocking of the particles at the interface of the different layers in a similar way to geogrid. By plotting the lateral force acting on the side boundary as a function of the distance to the base, it is found that the walls in the region of 60-180 mm above the base always support the largest lateral forces and therefore this region might be the best location for an interface layer. However, considering the weak improvement in performance by increasing the thickness of the layer of scaled (small) ballast from 100 to 200 mm, it is suggested that it is best to use the sample comprising 100 mm scaled ballast on top of 200 mm standard ballast as the most cost effective solution.
机译:最近据报道,包含不同分级层的镇流器有助于减少轨道沉降。本文的主要目标是提供微机械洞察,了解不同分层镇流器如何通过采用DEM来减少沉降,从而提出两个层叠镇流器的最佳设计。 DEM仿真提供了足够的证据,即通过防止颗粒在不同层的界面以与地质格栅的类似方式互锁的颗粒通过互锁,通过防止颗粒横向移动。通过绘制作用在侧边界上的横向力作为距底座的函数,发现该区域在底座上方60-180mm的壁始终支持最大的横向力,因此该区域可能是接口层的最佳位置。然而,考虑到性能的弱化改善通过将缩放(小)镇流器层的厚度从100〜200mm增加,建议最好使用包含100mm标准镇流器顶部的包含100mm缩放镇流器的样品作为最具成本效益的解决方案。

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