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A spatial coupling model to study dynamic performance of pantograph-catenary with vehicle-track excitation

机译:一种空间耦合模型,用于研究电视淋巴结网与车辆轨道励磁的动态性能

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In the high-speed railway industry, the pantograph-catenary system is responsible to provide continuous electric energy for the high-speed train. The pantograph-catenary system suffers multiple impacts from the complex work environment. The vehicle-track excitation is one of the normal disturbances to the pantograph-catenary interaction. Previous studies only consider the vertical effect of the vehicle-track vibration on the pantograph-catenary interaction. To address this deficiency, both of the pantograph-catenary and vehicle-track models are constructed in this paper. The validations of both models are verified by the experimental test and the world benchmark, respectively. The pantograph base follows the translations and rotations of the car-body caused by random rail irregularities. In combination with a spatial contact model between the contact wire and the pantograph strip, the spatial vibration of the carbody can be fully considered in the pantograph-catenary interaction. The statistical analysis, stochastic analysis and frequency analysis are performed to make sense of the effect of the random track irregularities on the pantograph-catenary interaction. The deviation of the contact point away from the strip centre caused by the carbody vibration is also analysed. The results show that the reliability of the pantograph-catenary system shows a continuous decrease in the degradation of rail quality. The carbody vibration may cause the de-wirement of the pantograph in extreme conditions. Finally, an application example is given to evaluate the dynamic performance of the pantograph-catenary system running on the China high-speed network with realistic rail irregularities.
机译:在高速铁路行业中,Pantograph-Cateary系统负责为高速列车提供连续的电能。 Pantograph-cateary系统从复杂的工作环境中遭受了多种影响。车辆轨道激发是对Pantograph延伸相互作用的正常干扰之一。以前的研究仅考虑车辆轨道振动对触摸扰乱型相互作用的垂直效果。为了解决这种缺陷,这篇论文中的两个受限介辐射和车辆轨道模型都构建。两种模型的验证分别由实验测试和世界基准验证。受电弓基部遵循随机导轨不规则引起的轿厢体的翻译和旋转。结合接触线和底粉条之间的空间接触模型,在触摸扰解仪 - 膨胀的相互作用中可以完全考虑车体的空间振动。进行统计分析,随机分析和频率分析,以使随机轨道不规则性对Pantograph延伸相互作用的影响感。还分析了由车身振动引起的带状中心的接触点的偏差。结果表明,电压仪膨胀系统的可靠性显示出轨道质量的降低的持续降低。在极端条件下,车身振动可能导致受电弓的脱模。最后,给出了一个应用例子来评估与现实铁路违规的中国高速网络上运行的Pantograph-Cateary系统的动态性能。

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