直流牵引电气化系统杂散电流、轨地电位及变电站负接地分析

Kinh D. Pham, E. P., Ralph, Thomas, W. Stinger, Elcon
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引用次数: 44

摘要

在本文的第一部分中,我们研究了轨道对地电阻均匀分布的理想条件下的杂散电流模型,并推导了轨道段内的轨道对地电位和杂散电流的关系。然后,我们将模型扩展到包括轨道附近的埋藏金属结构,使用场论计算由于轨道电流流动而产生的电位梯度,并表明穿越这些梯度的交叉或并联地下结构所经历的电位差可能导致杂散电流腐蚀。并结合非均匀接地电阻、非均匀土壤电阻率等实际情况,讨论了这些模型的局限性。在第二部分中,我们将研究轨道绝缘发生意外击穿时的杂散电流模型。轨道绝缘击穿点可以用球面接地电极模型和等电位线来近似表示杂散电流的流动。对变电所负母线、变电所交流地垫和电力中性点的公共接地进行了考察和讨论。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Analysis of stray current, track-to-earth potentials and substation negative grounding in DC traction electrification system
In the first part of the paper, we look at a stray current model under the ideal conditions with uniformly distributed track-to-earth resistances and develop the track-to-earth potentials and stray current relationships within a segment of track. We then expand the model to include buried metallic structures in the vicinity of the track using field theory to calculate the potential gradients generated due to flow of rail current and show that a potential difference experienced by a crossing or paralleling underground structure that traverses these gradients could cause stray current corrosion. We discuss the limitations of these models with the actual conditions such as nonuniform back-to-earth resistances, nonuniform soil resistivities. In the second part, we look at the stray current model when there are inadvertent breakdowns in the track insulation. The points of rail insulation breakdown may be approximated using the spherical ground electrode model and equipotential lines to illustrate the flow of stray current. Common grounding of the substation negative bus, substation AC ground mat and electric utility neutral are examined and discussed.
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