Title :
Analysis of transmission line de-icing using 18kV, 40kHz excitation
Author :
Zhou YuSheng ; Chen PeiYao ; Hu Xin ; Shi FangYuan ; Yang Yi ; Gao XiaoGang
Author_Institution :
Coll. of Electr. Eng. & Inf., Changsha Univ. of Sci. & Technol., Changsha, China
Abstract :
Transmission line de-icing with 18kV, 40kHz high frequency and high voltage excitation based on skin effect of conductor and dielectric loss is presented to overcome the existing technical defect. It is suitable for high voltage power network and need not outages. It increase the frequency of de-icing current to strength the skin effect of transmission lines, thus causing the line unit resistance increased and the melting current decreased with same heating power. The structure of de-icing device and its Wiring diagram are analyzed briefly. A de-icing simulation calculation model is established according to 1000 kV ac ehv transmission lines, and simulation is solved by ANSYS finite element analysis software, then temperature field distribution of ice-coated transmission line with 80 minutes´ 18kV, 40kHz high frequency excitation shows that: the temperature of all ice-coated reaches 0 degrees. That is to say, all ice-coated is melted. The simulation results show that the method, transmission line de-icing with 18kV, 40kHz high frequency and high voltage excitation, has advantages of good feasibility, high efficiency and energy saving.
Keywords :
conductors (electric); dielectric losses; finite element analysis; heating; power transmission lines; temperature distribution; wiring; ANSYS finite element analysis software; conductor loss; deicing current frequency; deicing device; deicing simulation calculation model; dielectric loss; energy saving; frequency 40 kHz; heating power; high frequency high voltage excitation; high voltage power network; ice-coated transmission line deicing; melting current; skin effect; temperature field distribution; transmission line unit resistance; voltage 1000 kV; voltage 18 kV; wiring diagram; Conductors; Dielectric losses; Ice; Power transmission lines; Water heating; de-icing; device; high frequency and high voltage excitation; simulation; skin effect; transmission line;
Conference_Titel :
Advanced Power System Automation and Protection (APAP), 2011 International Conference on
Conference_Location :
Beijing
Print_ISBN :
978-1-4244-9622-8
DOI :
10.1109/APAP.2011.6180387