SUN Xiaopeng,ZHANG Yuhua,BAO Jialiang,et al.Research on the influence of stray current from urban rail transit on the magnetic bias characteristics of substations along the line[J].Electric drive for locomotives,2023(4):107-116.
SUN Xiaopeng,ZHANG Yuhua,BAO Jialiang,et al.Research on the influence of stray current from urban rail transit on the magnetic bias characteristics of substations along the line[J].Electric drive for locomotives,2023(4):107-116. DOI: 10.13890/j.issn.1000-128X.2023.04.015.
Research on the influence of stray current from urban rail transit on the magnetic bias characteristics of substations along the line
In order to study the influence of stray current from urban rail transit systems in dynamic operation on the magnetic bias characteristics of substations along the line
simulation analysis was conducted in the current study
with a coupled simulation model of "rail transit system - substation AC power grid" established by CDEGS software based on a 220 kV substation in Shanghai and its nearby rail transit system
across a complete metro train running cycle of "starting-coasting-braking-stopping"
involving the potential and current variation rules of each structural level
the spatial distribution of stray current and the bias DC of the transformer neutral point. Comparison was then made between the simulation results and the field test data. Based on the results
in this simulation model
the rail potential is low only when the traction substation supplies power to trains
with little effect on the bias DC of the transformer neutral point; the rail potential greatly increases when power is supplied across sections for train braking
up to 25.424 V
and the bias DC of the transformer neutral point can reach 1.2 A; the total rail leakage current peaks
i.e. 21.647 A
after train operation for 105 s
while it is 17.908 A at 12 s after train starting; the highest proportion of inflow to the transformer neutral point is 3.473%. During a complete train running cycle
the rail potential in some rail sections alternates between positive and negative
which may cause bias DC reversing of the transformer neutral point.
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