AC Flashover Performance of 10 kV Rod-Plane Air-Gapped Arresters under Rain Conditions
Abstract
:1. Introduction
- Firstly, the test facilities, specimens and procedures are introduced, compared with the existing work, the rain flashover characteristics of the air gapped arresters are studied, whose structure and flashover process is more complicated than the air gaps and insulators in the existing papers.
- Secondly, the flashover characteristics of the test specimens are obtained and analyzed. The effects of rain intensity and conductivity on the flashover performance of the test species were studied. Compared with the existing studies, the effects of wind speed and direction have been studied.
- Finally, conclusions are made, and some suggestions have been made for the design and type selection of air gapped arresters.
2. Test Facilities, Specimens and Procedures
2.1. Test Facilities
2.2. Test Specimens
2.3. Test Procedures
3. Test Results and Analysis
3.1. Effects of Rain Conductivity
3.2. Effects of Rain Intensity
3.3. Effects of Wind
4. Conclusions
- (1)
- Under rain conditions, the air gap withstands most of the applied voltage and the flashover path develops through the water stream, air gap, and ZnO varistors. It is confirmed that, compared with insulators, no flashover happens on the surface of the insulation part.
- (2)
- As the rain intensity and conductivity changes, the rain flashover voltage may decrease up to 10%. Compared with rain intensity and conductivity, the influence of wind speed is much higher, the flashover voltage may increase up to 30%. When the air gap is in the windward direction, the flashover voltage becomes higher due to the wind effects. When the air gap is in the leeward direction, the flashover voltage of type 1 increases with the increasing of wind speed, while the flashover voltage reaches the smallest value when the wind speed is 4 m/s.
- (3)
- For the test specimens studied in this paper, the wind has a greater influence when the rod electrode is beyond the metal plane, while the flashover arcs may develop along the silicon rubber sheds and lead to aging and damage of the insulation part when the rod electrode is too near to the silicon rubber sheds. Thus, in order to obtain better rain flashover performance, it is suggested to use the rod structure of type 2 and enlarge the metal plane diameter to a proper extent that can be easily produced and maintained.
Author Contributions
Acknowledgments
Conflicts of Interest
References
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Lu, J.; Xie, P.; Hu, J.; Jiang, Z.; Fang, Z. AC Flashover Performance of 10 kV Rod-Plane Air-Gapped Arresters under Rain Conditions. Energies 2018, 11, 1563. https://doi.org/10.3390/en11061563
Lu J, Xie P, Hu J, Jiang Z, Fang Z. AC Flashover Performance of 10 kV Rod-Plane Air-Gapped Arresters under Rain Conditions. Energies. 2018; 11(6):1563. https://doi.org/10.3390/en11061563
Chicago/Turabian StyleLu, Jiazheng, Pengkang Xie, Jianping Hu, Zhenglong Jiang, and Zhen Fang. 2018. "AC Flashover Performance of 10 kV Rod-Plane Air-Gapped Arresters under Rain Conditions" Energies 11, no. 6: 1563. https://doi.org/10.3390/en11061563
APA StyleLu, J., Xie, P., Hu, J., Jiang, Z., & Fang, Z. (2018). AC Flashover Performance of 10 kV Rod-Plane Air-Gapped Arresters under Rain Conditions. Energies, 11(6), 1563. https://doi.org/10.3390/en11061563