Open Access

Green gas for grid as an eco-friendly alternative insulation gas to SF6: From the perspective of PD initiated by metallic particles under DC


Cite

[1] A. Beroual and A. Haddad, “Recent Advances in the Quest for a New Insulation Gas with a Low Impact on the Environment to Replace Sulfur Hexafluoride (SF6) gas in High-voltage Power Network Applications, Energies, vol. 10, no. 8, pp. 1216, 2017.10.3390/en10081216Search in Google Scholar

[2] M. G. Danikas and F. V. Topalis, “Partial Discharge Considerations in Gas Insulated Switchgear (GIS)”, Journal of Electrical Engineering, vol. 53, no. 9, pp. 281-284, 2000.Search in Google Scholar

[3] M. G. Danikas and F. V. Topalis, “[”, A, Haddad D, F, Warne Advances in high voltage engineering, 1st ed, United Kingdom: The Institution of Engineering Technology, pp. 37-73, 2004.Search in Google Scholar

[4] S. Xiao, X. Zhang, J. Tang, and S. Liu, “A Review on SF6Substitute Gases Research Status of CF3I Gases”, Energy Report vol, 4, pp. 486-496, 2018.10.1016/j.egyr.2018.07.006Search in Google Scholar

[5] S. Xiao, X. Zhang, J. Tang, and S. Liu, “[”, Intergovernmental Panel on Climate Change Guidelines fornational greenhouse gas inventories, 2006.Search in Google Scholar

[6] Y. Kieffel, F. Biquez, and P. Ponchon, “Alternative Gas to SF6 for use in High Voltage Switchgears: g3”, International Conference on Electricity Distribution, pp. 1-5, 2015.Search in Google Scholar

[7] H. Okubo and A. Beroual, “Recent Trend Future Perspectives in Electrical Insulation Techniques in Relation to Sulfur Hexafluoride (SF6) Substitutes for High Voltage Electric Power Equipment”, IEEE Electrical Insulation Magazine, vol. 27, no. 2, pp. 34-42, 2011.10.1109/MEI.2011.5739421Search in Google Scholar

[8] T. Rokunohe, Y. Yagihashi, F. Endo, and T. Oomori, “Fundamental Insulation Characteristics of air, N2, CO2, N2/O2”, Electrical Engineering in Japan, vol. 155, no. 3, pp. 9-17, 2006.10.1002/eej.20348Search in Google Scholar

[9] H. Goshima, H. Shinkai, and M. yashima, “Lightning Impulse Breakdown Characteristics of High-Pressure N2as an Alternative InsulationGas to SF6”, Gaseous Dielectrics IX, pp. 359-364, 2001.10.1007/978-1-4615-0583-9_50Search in Google Scholar

[10] L. Chen, P. Widger, M. S. Kamarudin, H. Griffiths, and A. Haddad, “CF3I Gas Mixtures: Breakdown Characteristics Potential for Electrical Insulation”, IEEE Transactions on Power Delivery 32, no, 2,, pp. 1089-1097, 2017.Search in Google Scholar

[11] X. Zhang, S. Xiao, J. Zhou, and J. Tang, “Experimental Analysis of the Feasibility of CF3I/CO2 Substituting SF6 asInsulation Medium using Needle-plate Electrodes”, IEEE Transactions on Dielectrics Electrical Insulation, vol. 21, no. 4, pp. 1895-1900, 2014.Search in Google Scholar

[12] A. Chachereau, M. Rabie, and C. M. Franck, “Electron Swarm Parameters of the Hydrofluoroolefine HFO1234ze”, Plasma Sources Science Technology, vol. 25, no. 4, pp. 045005, 2016.Search in Google Scholar

[13] “GE Grid Solutions SF6 Alternative For High Voltage Applications”, Available online: https://www.gegridsolutions.com/HVMVEquipment/catalog/g3/(accessed on December 2019).Search in Google Scholar

[14] Y. Kieffel, T. Irwin, P. Ponchon J. Owens, “Green Gas to Replace SF6 in Electrical Grids”, IEEE Power Energy Magazine, vol. 14, no. 2, pp. 32-39, 2016.10.1109/MPE.2016.2542645Search in Google Scholar

[15] G. M. Wang, W. H. Kim, G. S. Kil, S. W. Kim, and J. R. Jung, “Green Gas for a Grid as An Eco-Friendly Alternative Insulation Gas to SF6: From the Perspective of Partial Discharge Under AC”, Applied Science, vol. 9, no. 4, pp. 651, 2019.10.3390/app9040651Search in Google Scholar

[16] B. Zhang, N. Uzelac Y. Cao, “Fluoronitrile/CO2 Mixture as an Eco-friendly Alternative to SF6 for Medium Voltage Switchgears”, IEEE Transactions on Dielectrics Electrical Insulation, vol. 25, no. 4, pp. 1340-1350, 2018.Search in Google Scholar

[17] H. E. Nechmi a Beroual, A. Girodet, and P. Vinson, “Fluoronitriles /CO2 Gas Mixture as Promising Substitute to SF6 for Insulation in High Voltage Applications”, IEEE Transactions on Dielectrics Electrical Insulation, vol. 23, no. 5, pp. 2587-2593, 2016.Search in Google Scholar

[18] Institute of Electrical Electronics Engineers IEEE C37, 100, 1-IEEE standard of common requirements for high voltage power switchgear rated above 1000 V, 1st ed, USA: IEEE, 2007,.Search in Google Scholar

[19] 3MTM NovecTM 4710 Insulating Gas, pp. 1-4, 2017.Search in Google Scholar

[20] Y. Tu, Y. Cheng, C. Wang, X. Ai, F. Zhou, and G. Chen, “Insulation characteristics of Fluoronitrile/CO2 Gas Mixture under DC Electric Field”, IEEE Transactions on Dielectrics Electrical Insulation, vol. 25, no. 4, pp. 1324-1311, 2018.Search in Google Scholar

[21] Y. Kieffel, F. Biquez, D. Vigouroux, P. Ponchon, A. Schlernitzauer, R. Magous, G. Cros, and J. G. Owens, “Characteristics of g3 an Alternative to SF6”, International Conference & Exhibition on Electricity Distribution, pp. 54-57, 2017.10.1049/oap-cired.2017.0795Search in Google Scholar

[22] Y. Kieffel, A. Girodet, F. Biquez, P. Ponchon, J. Owens, M. Costello, M. Bulinski, R. V. San, and K. Werner, “SF6 Alternative Development for High Voltage Switchgears”, CIGRE 2014, pp. 305, 2014.10.1109/PESGM.2015.7286096Search in Google Scholar

[23] Y. Kieffel and F. Biquez, “SF6 Alternative Development for High Voltage Switchgears”, Electrical Insulation Conference, pp. 379-383, 2015.10.1109/ICACACT.2014.7223577Search in Google Scholar

[24] J. G. Owens, “Greenhouse Gas Emission Reductions through Use of a Sustainable Alternative to SF6”, Electrical Insulation Conference, pp. 535-538, 2016.10.1109/EIC.2016.7548658Search in Google Scholar

[25] W. Chang, F. Du, J. Bi, J. Shao, J. Peng, J. Liu, and H. Wang, “Development Process of Micropores Partial Discharge of Silicon Rubber in Prefabricated Cable Joint”, Journal of Electrical Engineering, vol. 69, no. 5, pp. 366-372, 2018.10.2478/jee-2018-0053Search in Google Scholar

[26] G. M.Wang, S. J. Kim, G. S. Kil, and S. W. Kim, “Optimization of Wavelet Thresholding for Partial Discharge Detection under HVDC”, IEEE Transactions on Dielectrics Electrical Insulation, vol. 24, no. 1, pp. 200-208, 2017.10.1109/TDEI.2016.005969Search in Google Scholar

[27] R. Sarathi, P. D. Singh, and M. G. Danikas, “Characterization of Partial Discharges in Transformer Oil Insulation under AC DC Voltage using Acoustic Emission Technique”, Journal of Electrical Engineering, vol. 58, no. 2, pp. 91-97, 2007.Search in Google Scholar

[28] G. M. Wang, G. S. Kil, H. K. Ji, and J. H. Lee, “Disturbance Elimination for Partial Discharge Detection in Spacer of Gas-Insulated Switchgears”, Energies, vol. 10, no. 11, pp. 1762, 2017.10.3390/en10111762Search in Google Scholar

[29] H. Ji, C. Li, Z. Pang, G. Ma, X. Cui, W. Zhao, and J. Wang, “Influence of Tip Corona of Free Particle on PD Patterns in GIS”, IEEE Transactions on Dielectrics Electrical Insulation, vol. 24, no. 1, pp. 259-267, 2017.10.1109/TDEI.2016.006071Search in Google Scholar

[30] U. Schichler,W. Koltunowicz, F. Endo, K. Feser, A. Giboulet, A. Girodet, H. Hama, B. Hampton, H. G. Kranz, J. Lopez-roldan, L. Lundgaard, S. Meijer, C. Neumann, S. Okabe, J. Pearson, R. Pietsch, U. Riechert, and S. Tenbohlen, “Risk Assessment on Defects in GIS based on PD Diagnosis”, IEEE Transactions on Dielectrics Electrical Insulation, vol. 20, no. 6, pp. 2165-2172, 2013.Search in Google Scholar

[31] B. Qi, C. Li, Z. Xing, and Z. Wei, “Particle Discharge Initiated by Free Moving Metallic Particles on GIS Insulation Surface: Severity Diagnosis Assessment”, IEEE Transactions on Dielectrics Electrical Insulation, vol. 21, no. 2, pp. 766-773, 2014.10.1109/TDEI.2013.003585Search in Google Scholar

[32] R. Sarathi and R. Umamaheswari, “Understanding the Partial Discharge Activity Generated due to Particle Movement in a Composite Insulation under AC Voltages”, International Journal of Electrical Power & Energy Systems, vol. 48, pp. 1-9, 2013.10.1016/j.ijepes.2012.11.017Search in Google Scholar

[33] International Electrotechnical Commission IEC 60270-High -Voltage Test Techniques-Partial Discharge Measurements, 3rd ed, Switzerland: IEC, 2000,.Search in Google Scholar

[34] G. M. Wang, H. E. Jo, S. J. Kim, S. W. Kim, and G. S. Kil, “Measurement Analysis of Partial Discharges in SF6 Gas under HVDC”, Measurement, vol. 91, pp. 351-359, 2016.10.1016/j.measurement.2016.05.033Search in Google Scholar

eISSN:
1339-309X
Language:
English
Publication timeframe:
6 times per year
Journal Subjects:
Engineering, Introductions and Overviews, other