Evaluation Model for the Scope of DC Interference Generated by Stray Currents in Light Rail Systems
Abstract
:1. Introduction
2. Mathematical Model
2.1. Research Background and an Overview of the Model
2.2. Earth Potential Generated by the Point Current Source
2.3. Surface Potential Gradient Near the Running Rail under the Stray Current Leakage
3. Exemplary Calculations
3.1. Calculation Parameters
3.2. Surface Potential Gradient under the Bilateral Power Supply
3.3. Impact Factors of the Surface Potential Gradient (Taking the Transition Resistance as an Example)
3.4. Dynamic Surface Potential Gradient Considering Locomotive Operation Modes
4. DC Interference Scope
5. Summary and Conclusions
Author Contributions
Acknowledgments
Conflicts of Interest
Nomenclature
h | Depth of the current source | ρ1, ρ2, …, ρn | Soil resistivity in different soil layers |
h1, h2, …, hn | Thickness of different soil layers | H1, H2, …, Hn | Distance from different interface to the ground surface |
I | Leakage current from a single current source | Rg | Transition resistance between running rail and earth |
Rs | Rail longitudinal resistance | RR | Longitudinal resistance of the buried metallic pipeline |
ρ | Soil resistivity | I0 | Total traction current |
L | Distance of the traction interval | L1 | Distance from the locomotive to the substation |
grad(x,y) | Surface potential gradient generated by a single current source | V(x,y) | Surface potential generated by a single current source |
IA0 | Traction current obtained from substation A | IB0 | Traction current obtained from substation B |
US | Traction substation voltage | r | Resistance of catenary |
P | Power of locomotive in light rail systems | Δt | Time interval in exemplary calculation |
U(x,t) | Rail potential in operation time t | ileak(x,t) | Leakage current in operation time t |
V(x,y)t | Surface potential in operation time t | grad(x,y)t | Surface potential gradient in operation time t |
M | Molar mass of the metal | n | Valency |
F | Faraday constant | t | Corrosion time |
i | Current flowing out of the anode metal |
Appendix A
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Parameter | Value and Unit |
---|---|
Locomotive position | 1.2 km |
Interval length | 3 km |
Traction current (Static situation) | 2000 A |
Rail longitudinal resistance | 0.026 Ω/km |
Rail-to-Earth transition resistance | 15 Ω·km |
Longitudinal resistance of the buried pipeline | 0.02 Ω/km |
Soil resistivity | 37.74 Ω·m |
Catenary resistance | 0.026 Ω/km |
Traction substation voltage | 1500 V |
Time interval Δt | 0.1 S |
Traction interval | Rail-to-earth Transition Resistance (Ω/km) | Rail Longitudinal Resistance (Ω·km) | Soil Resistivity (Ω·m) |
---|---|---|---|
Interval I | 4.783 | 0.038 | 37.74 |
Interval II | 2.896 | 0.056 | 22.35 |
Interval III | 4.630 | 0.035 | 70.16 |
Interval IV | 3.085 | 0.043 | 54.29 |
Traction Interval | MSE of Rail-to-Earth Transition Resistance | MSE of Rail Longitudinal Resistance | MSE of Soil Resistivity |
---|---|---|---|
Interval I | 0.0165 | 9.1254 × 10−7 | 0.8780 |
Interval II | 0.0031 | 5.7154 × 10−8 | 0.4572 |
Interval III | 0.0028 | 3.2377 × 10−7 | 0.1163 |
Interval IV | 0.0047 | 1.0861 × 10−5 | 0.2960 |
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Wang, C.; Li, W.; Wang, Y.; Xu, S.; Li, K. Evaluation Model for the Scope of DC Interference Generated by Stray Currents in Light Rail Systems. Energies 2019, 12, 746. https://doi.org/10.3390/en12040746
Wang C, Li W, Wang Y, Xu S, Li K. Evaluation Model for the Scope of DC Interference Generated by Stray Currents in Light Rail Systems. Energies. 2019; 12(4):746. https://doi.org/10.3390/en12040746
Chicago/Turabian StyleWang, Chengtao, Wei Li, Yuqiao Wang, Shaoyi Xu, and Kunpeng Li. 2019. "Evaluation Model for the Scope of DC Interference Generated by Stray Currents in Light Rail Systems" Energies 12, no. 4: 746. https://doi.org/10.3390/en12040746
APA StyleWang, C., Li, W., Wang, Y., Xu, S., & Li, K. (2019). Evaluation Model for the Scope of DC Interference Generated by Stray Currents in Light Rail Systems. Energies, 12(4), 746. https://doi.org/10.3390/en12040746