Design and implementation of 12-pulse melting ice control and protection system based on DSP

被引:0
|
作者
Chang F. [1 ]
Jing W. [1 ]
Cui X. [2 ]
Chen J. [3 ]
Zhang Y. [1 ]
机构
[1] School of Electronics and Information Engineering, Liaoning University of Science and Technology, Anshan
[2] Computing Center of Anshan Normal College, Anshan
[3] Liaoning Rongxin Xingye Electric Power Technology Co. Ltd, Anshan
关键词
12 pulsating rectification; DC melting ice device; No load boost test;
D O I
10.19783/j.cnki.pspc.190197
中图分类号
学科分类号
摘要
This paper designs a control and protection system of 12-pulse DC ice-melting device based on DSP. The system adopts constant current control strategy to ensure stable ice-melting current output, and in the event of failure to ensure the safety of equipment and substation equipment. Three-phase transmission line defrosting switch and ground line defrosting simulation models are established. No-load booster test is needed before the ground line melts ice. To prevent the ground wire insulation strength is insufficient, so that the ground wire of the access device and the adjacent ground wire gap may be broken, resulting in ground fault damage converter station equipment. The simulation model is established by using the ground wire ice melting parameters of Niuzhai converter station, and the simulation analysis is carried out on the no-load booster test of the ground wire. The results show that the ground fault is caused when the ground wire is broken, the voltage deviation protection can act quickly, ensuring the safety of the ice melting device and the substation equipment. The voltage deviation protection proposed in this paper has been verified in the DC ice-melting equipment of Niuzhai converter station. © 2020, Power System Protection and Control Press. All right reserved.
引用
收藏
页码:126 / 134
页数:8
相关论文
共 23 条
  • [1] Tan Y., Fang Z., Research on voltage regulation rectification based DC de-icing method and its device for distribution lines, Power System Protection and Control, 39, 10, pp. 126-129, (2011)
  • [2] Fikke S.M., Kristjansson J.E., Nygaard B.E.K., Modern meteorology and atmospheric icing, (2008)
  • [3] Pan J., Yang Y., Yu Y., DC melting ice device protection configuration, Guizhou Electric Power Technology, 2, pp. 21-23, (2011)
  • [4] Jourden S., De-icer installation at Lévis substation on hydro Québec's high voltage system, Southern Power System Technology, 3, 1, pp. 1-6, (2009)
  • [5] Jing H., Nian X., Luo W., Research on a flexible HVDC converter station with ice melting function, Proceedings of the CSEE, 32, 19, pp. 65-73, (2012)
  • [6] Jing H., Nian X., Fan R., Et al., Control and switchover strategy of full-controlled ice-melting DC power for ice-covered power lines, Automation of Electric Power Systems, 36, 13, pp. 86-91, (2012)
  • [7] Cheng G., Kang Y., Impact of DC deicer installation upon power system operation, Southern Power System Technology, 8, 5, pp. 47-50, (2014)
  • [8] Lu J., Zhang Y., Realization of de-icing device based on 12-pulse rectification for 500 kV transmission line, High Voltage Engineering, 38, 11, pp. 3041-3047, (2012)
  • [9] Zhang Z., Zhou Y., 12 pulsating parallel rectifier based on 6RA80 rectifier and its application, China High-Tech Enterprises, 17, pp. 44-45, (2016)
  • [10] Liu K., Li M., Multiphase rectification technology, Marine Electric & Electronic Technology, 25, 3, pp. 26-29, (2005)