首页> 外文期刊>Soil Dynamics and Earthquake Engineering >Long-term prediction of track geometry degradation in high-speed vehicle-ballastless track system due to differential subgrade settlement
【24h】

Long-term prediction of track geometry degradation in high-speed vehicle-ballastless track system due to differential subgrade settlement

机译:由于路基差异沉降而导致的高速无-轨道系统中轨道几何形状退化的长期预测

获取原文
获取原文并翻译 | 示例
           

摘要

To predict long-term track degradation of ballastless track due to evolution of differential subgrade settlement in high-speed railway, an iterative approach is put forward. A detailed vehicle–track coupled dynamic model taking account of track weight and local contact loss between track and subgrade is employed to obtain the short-term behavior of the system in terms of wheel–rail interaction, vehicle acceleration and interlaminar forces of track structures. The calculated track–subgrade dynamic stresses induced by a high-speed vehicle are imported into an empirical power model for long-term subgrade settlement. The profile of the subgrade settlement is updated by a self-adaptive passing number of vehicles governed by a settlement threshold, and the dynamic responses of the coupled system are re-calculated consequently. On this basis, a demonstration case is carried out aiming at a typical Chinese high-speed vehicle–double-block ballastless track system with an initial subgrade settlement described by the cosine wave. The attained results reveal the high resistance of deformation on high-speed rail subgrade, together with the significant influence of the initial differential subgrade settlement on track geometrical evolution, in particular, the initial condition with severe unsupported areas between track and subgrade. The abnormal dynamic responses inflicted by the differential settlement are gradually alleviated during the long-term operation.
机译:为了预测高速铁路中由于路基沉降差异而导致的无ball轨道的长期轨道退化,提出了一种迭代方法。考虑轮轨重量和轨道与路基之间的局部接触损失,采用详细的车轨耦合动力学模型来获得系统在轮轨相互作用,车辆加速度和轨道结构层间力方面的短期行为。计算出的由高速车辆引起的路基动态应力被输入到经验功率模型中,以进行长期路基沉降。路基沉降的轮廓通过由沉降阈值控制的车辆的自适应通过次数来更新,因此重新计算了耦合系统的动力响应。在此基础上,针对典型的中国高速车辆双块无ball轨道系统,以余弦波描述的初始路基沉降为例进行了演示。所得结果表明,高铁路基具有较高的抗变形能力,同时初始差分路基沉降对轨道几何演化,特别是轨道与路基之间无支撑区域严重的初始条件也具有重大影响。在长期运行过程中,差异沉降引起的异常动力响应逐渐得到缓解。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号