有轨电车平交路口过渡段路面病害机理与对策
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1.同济大学道路与交通工程教育部重点实验室;2.上海城建市政工程(集团)有限公司

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Mechanism and countermeasures of distresses occurring in transition pavement at tram grade crossings
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    摘要:

    现代有轨电车平交路口段市政路面承受社会车辆和有轨电车两种荷载作用,在道路与钢轨过渡段路面区域受力特征复杂,病害频发,成为市政道路上的薄弱部位。为探究平交路口过渡段路面的病害机理,在现场病害调研的基础上,对病害类型进行了统计与分类,同时建立了路-轨过渡区三维有限元模型,考虑社会汽车和有轨电车双重荷载,分析了轨侧路面结构的力学响应。现场调研结果表明,过渡区病害主要分布在轨侧30cm范围,轨道附近路面沉降值大多分布在0~10mm范围,裂缝和轨道周边材料剥落是主要的病害类型。力学分析结果表明,路面结构的承载力和强度不足、路面结构变形不协调、路面沉降下车辆荷载的冲击作用,是造成路-轨过渡区发生破坏的重要内在机理。针对病害产生机理,提出在路面结构下方铺设高模量混凝土以及在道路与轨道之间增设过渡区材料的处治对策。

    Abstract:

    The road surface at tram grade crossings has borne combined loads of passing vehicles and tram. The load conditions and distresses of this area are complicated and varied, which becomes a relatively weak spot on municipal roads. In order to clarify the distress mechanism of this transition pavement at grade crossings, on the basis of field investigation, the statistics and classification of the distresses were carried out, and a 3D finite element model was established to analyze the mechanical response of the road-rail pavement structure, in which combined vehicle and tram loads had been conducted. The field investigation results show that the distresses in this transition area are mainly distributed within 30cm of the track side, and the settlement of pavement near the track is mostly distributed within 0-10mm. The numerical results show that the poor bearing capacity and strength and the disharmony deformation of pavement structure are the main reasons for the failure of the road-rail transition pavement. Focusing on the mechanism of the distress, the countermeasures of laying high modulus concrete under the pavement structure and adding transitional pavement materials between the road and the track are put forward.

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历史
  • 收稿日期:2022-04-21
  • 最后修改日期:2022-05-20
  • 录用日期:2022-05-21
  • 在线发布日期: 2023-06-21
  • 出版日期: