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高压输电线路电热融冰技术 被引量:6

Electric Ice-Melting Technology of High Voltage Transmission Lines
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摘要 高压输电线路冰灾严重威胁电网的安全运行,覆冰线路的电热融冰是复杂的多物理场非线性过程,从理论上揭示覆冰导线的融冰机理,分析多种计算条件下LGJ-70/10和LGJ-400/65型导线雨凇覆冰的融冰时间,提出电热融冰技术领域中关系到融冰效率、线路安全以及节能所需考虑的最短融冰时间的重要参数,总结了覆冰厚度、覆冰温度、导线温度、环境温度以及对流载荷对最短融冰时间的影响,为高压输电线路的融冰技术应用和发展提供可靠的分析依据。 High voltage transmission line icing has a serious threat to the safe operation of power grids,electric ice melting is a complex multi-physics nonlinear process.This paper reveals the mechanism of ice melting in theory by full method,analyzes the ice melting time of LGJ-70/10 and LGJ-400/65 type wires under different boundary conditions,and proposes the important parameters of ice melting in shortest time which is related to the ice melting efficiency,the security of transmission lines and energy saving needed to consider in the field of electric melting technology,summarizes the influence of the ice thickness,ice temperature,the conductor temperature,environment temperature,and convection load on the shortest ice melting time,which will provide a reliable theoretic basis for ice melting technology of high voltage transmission lines.
作者 吕锡锋 何青
出处 《中国电力》 CSCD 北大核心 2014年第1期17-22,共6页 Electric Power
基金 中央高校基本科研业务费专项资金资助项目(11QX49)~~
关键词 高压 输电线 完全法 电热融冰 融冰时间 high voltage transmission line full method electric ice melting ice melting time
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  • 1韩军科,杨靖波,杨风利,何洪波.电网冰灾典型线路段覆冰倒塔分析[J].电网与清洁能源,2010,26(3):31-35. 被引量:14
  • 2张暕,何青,蓝澜,赵晓彤.高压输电线路热力融冰影响因素的分析[J].中南大学学报(自然科学版),2013,44(S1):449-455. 被引量:8
  • 3中国南方电网公司.电网防冰融冰技术及应用[M].北京:中国电力出版社,2010.
  • 4Farzaneh M.Atmosphere icing of power networks[M].Berlin, Germany: Springer, 2008.
  • 5Huneault M, Langheit C, Caron J, et al .Combined models for glaze ice accretion and de-icing of current-carrying electrical conductors[J].IEEE Transactions on Power Delivery, 2005, 20(2): 1611-1615.
  • 6Makkonen L, Stallabrass J R.Experiments on the cloud droplet collision efficiency of cylinders[J].Journal of Climate and Applied Meteorology, 1984, 26(10): 1406-1411.
  • 7Peter Z, Farzaneh M, Kiss L I.Assessment of the current intensity for preventing ice accretion on overhead conductors[J].IEEE Transactions on Power Delivery, 2007, 12(1): 565-574.
  • 8Makkonen L.Models for the growth of rime, glaze, icicles and wet snow on structures[J].Philosophical Transactions: Mathematical, Physical and Engineering Sciences, 2000, 358(1776): 2913-2939.
  • 9Kollar L E, Farzaneh M, Karev A R.Modeling droplet collision and coalescence in an icing wind tunnel and the influence of these processes on droplet size distribution[J].International Journal of Multiphase Flow, 2005, 31(1): 69-92.
  • 10Naterer G F.Coupled liquid film and solidified layer growth with impinging supercooled droplets and Joule heating[J].International Journal of Heat and Fluid Flow, 2003, 24(2): 223-235.

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