Calculation and analysis of drainage board temperature for tension clamp
DOI:
https://doi.org/10.54097/hset.v23i.3126Keywords:
tension clamp, drainage board, heat transfer, ambient temperature, wind speed, currentAbstract
Tension clamp, as an important fitting on transmission line, plays a key role in connecting conductor and transmitting mechanical load. Since the power grid is in operation, the overheating phenomenon of tension clamp drainage board caused by poor connection quality of contact fittings has become increasingly prominent, and has become a serious accident threatening normal operation of transmission lines. In this paper temperature calculation model of drainage board was established, and the temperature was calculated, and influence of wind speed, ambient temperature, current and type on drainage board temperature was studied. The results show that drainage board temperature decreases as wind speed raises, and drainage board temperature increases as ambient temperature and current increase. Drainage board temperature of different types of tension clamp is different. The drainage board with larger size usually has lower temperature.
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References
Zhou X, Yi J, Song R, et al. An overview of power transmission systems in China[J]. Energy, 2010, 35(11): 4302-4312.
Wang Y, Zhou M, Zhang F, et al. Chinese grid investment based on transmission and distribution tariff policy: An optimal coordination between capacity and demand[J]. Energy, 2021, 219(21): 119589.
Huang D, Ruan J. Recent Developments of UHV DC Transmission Research in China[J]. Clinical Science, 2008: 535-540.
Chen W H, Cheng Y D, Li P Z, et al. The mathematical model of the reliability of aerospace electric connector[J]. Chinese Journal of Aeronautics, 1997, 6(1): 93-95
Sung I H, Kim J W, Noh H J, et al. Effect of displacement and humidity on contact resistance of copper electrical contacts[J]. Tribology International, 2016, 95(1): 256-261.
Sun X B, Wang H W, Wang F. Reliability assessment for a certain type of electrical conductor based on accelerated degradation data[J]. Journal of Naval Aeronautical and Astronautical University, 2014, 7(5): 67-71.
Lalonde S, Guibault R, Langlois S. Numerical analysis of ACSR conductor-clamp systems undergoing wind-induced cyclic loads[J]. IEEE Transactions on Power Delivery, 2017: 1518-1526.
Ye Z, Pang K, Y Du, et al. Simulation Analysis of the Tensile Mechanical Properties of a Hydraulic Strain Clamp-Conductor System[J]. Advances in Materials Science and Engineering, 2020(41): 1-19.
Mikhail V M, Sergey D. Numerical modelling of contact heat transfer problem with work hardened rough surfaces[J]. International Journal of Heat and Mass Transfer, 2015, 90(1): 72-80.
Morgan V T. The current distribution, resistance and internal inductance of linear power system conductors-a review of explicit equations[J]. IEEE Trans. Power Delivery, 2013, 28: 1252-1262.
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