期刊文献+

直流输电线路下方建筑物附近离子流场的计算 被引量:9

Calculation of the Ionized Field Under DC Transmission Lines With Buildings Nearby
下载PDF
导出
摘要 直流输电线路下方建筑物附近电场分布复杂,基于Deutsch假设计算建筑物附近的离子流场在理论上会造成较大的误差,同时无法考虑风速的影响。基于上流有限元方法计算直流模拟试验线路下方房屋模型附近的离子流场,采用新型的迭代收敛控制技术,保证了迭代收敛过程的稳定性。计算结果与试验数据进行对比,得到了很好的验证。结果表明上流有限元方法适用于直流线路下方建筑物附近离子流场的计算。考虑风速的影响,计算建筑物附近离子流场,发现风速对建筑物附近合成场强以及离子流密度的影响很大,因此在计算直流输电线路下方建筑物附近电磁环境时,必须考虑风速对离子流场的影响。 The electric field around the building under DC transmission lines is so complex that the calculation method based on the Deutsch assumption which cannot consider the effect of the wind when solving the ionized field near the building would result in large errors theoretically.Based on the upstream finite element method(FEM),a new iterative controlling method was used to calculate the ionized field around the building model under a DC test line.The iteration was efficiently convergent,and the calculation result agreed well with the measured data,which indicates that the method based on the upstream FEM method is valid for solving the ionized field under DC transmission lines with buildings nearby.Taking the wind velocity into account,the ionized field of the test line was calculated,and it was found that the effect of the wind on the electric field around the building is remarkable,thus the effect should be considered when calculating the electromagnetic environment under DC transmission lines with buildings nearby.
出处 《中国电机工程学报》 EI CSCD 北大核心 2012年第4期193-198,1,共6页 Proceedings of the CSEE
基金 国家重点基础研究发展计划项目(973项目)(2011CB209404) 特高压工程技术(昆明 广州)国家工程实验室开放基金项目~~
关键词 直流输电线路 上流有限元法 建筑物 离子流场 风速 DC transmission lines upstream finite element method(FEM) building ionized field wind velocity
  • 相关文献

参考文献21

  • 1Sarma M P, Janischewskyj W. Corona loss characteristics of practical HVDC transmission lines, part I: unipolar lines[J]. IEEE Transactions on Power Apparatus and Systems, 1970, 89(5): 860-867.
  • 2Sarma M P, Janischewskyj W. Analysis of corona losseson DC transmission lines: I-tmipolar lines[J]. IEEE Transactions on Power Apparatus and Systems, 1969, 88(5): 718-731.
  • 3傅宾兰.高压直流输电线路地面合成场强与离子流密度的计算.中国电机工程学报,1987,7(5):57-63.
  • 4杨勇,陆家榆,雷银照.同塔双回高压直流线路地面合成电场的计算方法[J].中国电机工程学报,2008,28(6):32-36. 被引量:42
  • 5Li Wei, Zhang Bo, Zeng Rong, et al. Discussion on the Deutsch assumption in the calculation of ion-flow field under HVDC bipolar transmission lines[J]. IEEE Transactions on Power Delivery, 2010, 25(4): 2759-2767.
  • 6Janischewskyj W, Gela G. Finite element solution for electric fields of coronating DC transmission lines [J]. IEEE Transactions on Power Apparatus and Systems, 1979, 98(3): 1000-1012.
  • 7余世峰,阮江军,张宇,杜志叶,黄道春.直流离子流场的有限元迭代计算[J].高电压技术,2009,35(4):894-899. 被引量:20
  • 8张宇,魏远航,阮江军.高压直流单极离子流场的有限元迭代计算[J].中国电机工程学报,2006,26(23):158-162. 被引量:22
  • 9Takuma T, Ikeda T, Kawamoto T. Calculation of ion flow fields of HVDC transmission lines by the finite element method[J]. IEEE Transactions on Power Apparatus and Systems, 1981, 100(12): 4802-4810.
  • 10Takuma T, Kawamoto T. A very stable calculation method for ion flow field of HVDC transmission lines[J]. IEEE Transactions onPowerDelivery, 1987, 2(1): 189-198.

二级参考文献106

共引文献152

同被引文献163

引证文献9

二级引证文献102

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部