期刊文献+

影响多层交流超导电缆电流分布不可忽略的因素-邻近效应 被引量:5

原文传递
导出
摘要 零电阻是超导体的本征特性之一.人们在努力寻求超导材料零电阻特性带来的有利效益时,也要研究其可能导致的一些对我们不利的影响.在由高温超导材料制作的多层交流超导电缆中,由于超导体的零电阻特性而导致邻近效应异常强烈.这种强烈的邻近效应会使电缆中的电流分布变得严重不均匀,对电缆的性能产生负面影响.在这篇文章里,我们将报道多层交流超导电缆中强邻近效应现象及其对电缆层电流分布的影响.也许可以把超导体产生的这种非常强的邻近效应称作"超强邻近效应".认识这一现象也会对涉及交变电流的其他超导应用提供有益的启示.
出处 《中国科学:技术科学》 EI CSCD 北大核心 2010年第7期786-793,共8页 Scientia Sinica(Technologica)
基金 国家高技术研究发展计划("863"计划)(批准号:2002AA306154 2004AA306110 2005AA306120) 北京市重大科技项目(批准号:H020420010790 H020420010210)资助项目
  • 相关文献

参考文献27

  • 1Terman F E. Radio Engineers' Handbook. Columbus: McGraw-Hill, 1943.
  • 2Dowell P L. Effects of eddy currents in transformer windings. Proceedings IEEE, 1966, 113:1387--1394.
  • 3Ferkal K, Poloujadoff M, Dorison E. Proximity effect and eddy current losses in insulated cables. IEEE Trans Power Delivery, 1996, 11: 1171--1178.
  • 4Klontz K W. Skin and proximity effects in multi-layer transformer windings of finite thickness. In: Conference Record of the 1995 IEEE. IAS: IEEE, 1995.1:851--858.
  • 5Howe G O. The high-frequency resistance of multiply-stranded insulated wire. Proc Royal Society London, 1917, 93:468--492.
  • 6Urling A M, Niemela V A, Skutt G R, et al. Characterizing high-frequency effects in transformer windings----A guide to several significant articles. APEC, 1989, 89:373--385.
  • 7Evetts J, Cahn R W, Bever M B. Concise Encyclopedia of Magnetic & Superconducting Materials. Pergamon Press, 1992.
  • 8Petersen T W, Goldfarb R B. Effect of mechanical deformation on Nb-Ti filament proximity-effect coupling at the edges of SSC cables. IEEE Trans Magn, 1991, 27:1809--1810.
  • 9Polak M, Krempasky L, Majoros M, et al. Anomalous magnetization behaviour in fine filamentary NbTi superconducting wires. IEEE Trans Appl Supercon, 1993, 3:150--153.
  • 10Black R M. The History of Electric Wires and Cables. London: Peter Pergrinus, 1983.

二级参考文献23

  • 1林良真.我国超导技术研究进展及展望[J].电工技术学报,2005,20(1):1-7. 被引量:56
  • 2[1]Tominaka T, Okamura M, Katayama T. Analytical field calculation of helical dipole magnets for RHIC. Proceedings of the 1997 Particle Accelerator Conference, 1997, 3 437~3 439
  • 3[2]Lee Ji-kwang, Cha Gueesoo. Magnetization loss calculation in superconducting power transmission cable Cryogenics, 2001, 41: 157~161
  • 4[3]Kruger S. Loss and inductance investigation in a 4-layer superconducting prototype cable conductor. IEEE Trans. AS, 1999, 9(2): 833~836
  • 5[3]Masuda T,Yumura H,Watanabe M,et al.High-temperature superconducting cable technology and development trends.SEI Technical Review,2005,(59):7 ~ 13.
  • 6[4]Lin Y B,Gao Z Y,Ning Z,et al.Development and testing of 10.5 kV/1.5 kA HTS power cable.Proceedings of ICEC 20,Beijing,2004,London:Elsevier,649 ~ 652.
  • 7[5]Fan Y F,Gong L H,Xu X D,et al.Test results and analysis of cryogenic system for cooling HTS cables and the next stage plan.Proceedings of ICEC 20,Beijing,2004,London:Elsevier,71 ~ 74.
  • 8[6]Balachandran U.Recent advances in development of high Tc superconductors for electric power applications.ISTEC Journal,1998,11(1):35 ~42.
  • 9[7]Hassenzahl W V.Applications of superconductivity to electric power systems.IEEE Power Engineering Review,2000,20 (5):4 ~ 7.
  • 10[8]Sato K,Isojima S,Watanabe M,et al.The lastest development of high Tc superconducting cable.Proceedings of ICEC 19,Grenoble,2002,225 ~ 232.

共引文献55

同被引文献64

引证文献5

二级引证文献27

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