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Simulation of pipeline random response to stray currents effects produced by D.C. traction system


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[1] Bortels L., Dorochenko A., Van den Bossche B., Weyns G., Deconinck J., Three-Dimensional Boundary Element Method and Finite Element Method Simulations Applied to Stray Current Interference Problems, A Unique Coupling Mechanism That Takes the Best of Both Methods, Corrosion, Vol. 63, No. 6, June 2007, 561–576.10.5006/1.3278407Search in Google Scholar

[2] Brichau F., Deconinck J., A Numerical Model for Cathodic Protection of Buried Pipes. Corrosion, Vol. 50, No. 1, January 1994, 39–49.10.5006/1.3293492Search in Google Scholar

[3] Charalambous C.A., Cotton I., Aylott P., A Simulation Tool to Predict the Impact of Soil Topologies on Coupling Between a Light Rail System and Buried Third-Party Infrastructure, IEEE Trans. Veh. Technol., Vol. 57, No. 3, 2008, 1404–1416.10.1109/TVT.2007.909312Search in Google Scholar

[4] Czarnywojtek P., Machczyński W., Computer simulation of responses of earth-return circuits to the a.c. and DC external excitation, European Trans. on Electrical Power, ETEP Vol. 13, No. 3, May/June 2003, 173–184.10.1002/etep.4450130306Search in Google Scholar

[5] Hill R.J., Brillante S., Leonard P.J., Railway track transmission line parameters from finite element field modeling: Shunt admittance, Proc. IEE Elect. Power Applicat., Vol. 146, No. 6, 1999, 647–660.10.1049/ip-epa:19990649Search in Google Scholar

[6] Hill R.J., Brillante S., Leonard P.J., Railway track transmission line parameters from finite element field modeling: Series impedance, Proc. IEE Elect. Power Applicat., Vol. 147, No. 3, 2000, 227–238.10.1049/ip-epa:20000373Search in Google Scholar

[7] Lucca G., Estimating stray currents interference from DC traction lines on buried pipelines by means a Monte Carlo algorithm, Electrical Engineering, DOI 10.1007/s00202-015-0333-6, published online: 05 April 2015.Search in Google Scholar

[8] Machczyński W., Budnik K., Szymenderski J., Assessment of D.C traction stray currents effects on nearby pipelines, The International Journal for Computation and Mathematics in Electrical and Electronic Engineering, vol. 35, iss 4, 2016, 1468–1477.10.1108/COMPEL-12-2015-0477Search in Google Scholar

[9] Machczyński W., Czarnywojtek P., Computer simulation of a protection of underground conductors against stray currents, 16th International Corrosion Congress, September 19 – 24, 2005, Beijing, China, paper 21-03, 1–8.Search in Google Scholar

[10] Machczyński W., Simulation model for drainage protection of earth–return circuits laid in stray currents area, Electrical Engineering, Vol. 84, No 3, July 2002, 165–172.10.1007/s00202-002-0119-5Search in Google Scholar

[11] Machczyński, W., Currents and potentials in earth return circuits exposed to alternating current electric railways, Proc. IEE, Part B, Vol. 129, 5, 1982, 279–288.10.1049/ip-b.1982.0040Search in Google Scholar

[12] Mariscotti A., Pozzobon P., Determination of the electrical parameters of railway traction lines: Calculation, measurements and reference data, IEEE Trans. on Power Delivery, Vol. 19, No. 4, 2004, 1538–1546.10.1109/TPWRD.2004.835285Search in Google Scholar

[13] Metwally I.A., Al-Mandhari H.M.,Nadir Z., Gastli A., Boundary element simulation of DC stray currents in oil industry due to cathodic protection interference, European Trans. on Electrical Power, Vol. 17, Sept./Oct. 2007, 486–499.10.1002/etep.140Search in Google Scholar

[14] Ogunsola A., Mariscotti A., Electromagnetic Compatibility in Railways, Analysis and management, Springer – Verlag, Berlin Heidelberg 2013.10.1007/978-3-642-30281-7Search in Google Scholar

[15] Ogunsola A., Mariscotti A., Sandrolini L., Estimation of stray current from a dc-electrified railway and impressed potential on a buried pipe, IEEE Trans. on Power Delivery, Vol. 27, No. 4, 2012, 2238–2246.10.1109/TPWRD.2012.2211623Search in Google Scholar

[16] Sunde E.D., Earth conduction effects in transmission system, New York, Dover 1968.Search in Google Scholar