轨道交通电分段电弧影响因素及其相关性分析

Influencing Factors of Electrical Sectioning Arcs in Rail Transit and Their Correlation Analysis

  • 摘要:
    目的 轨道交通电分段电弧的频繁发生会直接影响弓网系统的受流质量。对此,有必要对动车组不同运行速度、锚段关节式电分段的结构形式及其两侧接触线的电压差同电分段电弧相关电气参数进行相关性分析,进而探明动车组在驶离电分段时电弧的产生机理及影响因素。
    方法 通过对Cassie-Marry串联电弧模型进行拓展,建立了适用于描述锚段关节式电分段的电弧模型。该模型考虑了动车组驶出电分段时受电弓弓头与接触线间的动态变化过程。基于既有研究的试验结果,验证了该模型的有效性。此外,利用相关仿真试验平台,进一步分析了动车组的不同运行条件对电分段电弧电气特性参数的影响及其相关关系。
    结果及结论 动车组在驶离电分段时产生的正向稳态燃弧电压随列车运行速度、电分段两侧接触线电压差的增大而增大,呈显著正相关关系;而弓网正向燃弧电流峰值却随之逐渐减小,呈显著负相关关系。此外,不同锚段关节式电分段对弓网电弧产生的影响主要是由接触线非工作支与水平面的夹角不同而导致的。其夹角越大,正向稳态燃弧电压就越大,而燃弧电流峰值就越小。因此,可通过减小动车组驶离电分段时的运行速度及接触线电压差,或优化电分段的机械结构来减小电弧对弓网接触线的烧蚀。

     

    Abstract:
    Objective The frequent occurrence of electric arcs in the electrical sections of rail transit directly affects the current collection quality of the pantograph-catenary system. Therefore, it is necessary to analyze the correlation between the arc-related electrical parameters and the factors such as the operating speed of electric multiple units (EMU), the structural type of overlap-type electrical sections, and the voltage difference between the contact lines on the section both sides. The arc generation mechanism and influencing factors as the EMU exits the electrical section are further clarified.
    Method An arc model suitable for overlap-type electrical sections is established by extending the Cassie–Mayr series arc model. The model considers the dynamic interaction between the pantograph head and the contact line as the EMU exits the electrical section, and its effectiveness is validated based on experimental data from previous studies. In addition, a simulation platform is used to further analyze the impacts of different EMU operating conditions on the electrical characteristic parameters of electrical section arcing and their correlations.
    Result & Conclusion The positive steady-state arcing voltage generated as the EMU exits the electrical section increases with the rise of train speed and the voltage difference on the section both sides, showing a significant positive correlation. By contrast, the peak value of the pantograph-catenary positive arcing current decreases gradually, exhibiting a significant negative correlation. Moreover, the influence of different overlap-type electrical sections on pantograph-catenary arcing is mainly caused by the angle between the non-working contact wire and the horizontal plane. A larger angle corresponds to a higher positive steady-state arcing voltage and a lower peak arcing current. Therefore, the ablation of the pantograph-catenary contact wire caused by arcing can be mitigated by reducing the EMU exiting speed and the voltage difference between the contact lines on the section both sides, or by optimizing the mechanical structure of the electrical section.

     

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