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电力电缆的零序电流保护方案 被引量:5

Zero Sequence Current Protection for Power Cable
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摘要 电力电缆的零序阻抗随零序电流的大小而改变,如果采用恒定值的零序阻抗来进行零序电流保护的整定,容易导致保护的不正确动作。由于电缆线路的零序阻抗是零序电流的函数,提出了基于迭代算法的零序电流保护的方案。利用经验公式来确定零序阻抗初始迭代值;采用最小二乘法对阻抗一电流曲线进行拟合求取零序阻抗;利用修正后的零序阻抗再次计算短路电流,直至前后 2次计算出的接地电流的误差满足迭代精度要求。按照在线计算的零序阻抗值进行零序电流保护的整定,使得保护的特性适应于当前的电流值。保护的整定完全由装置自动完成,对当前系统的运行方式具有较好的自适应性。 The zero sequence impedance of the cable changes with the zero sequence current as the zero sequence current flows inthe ground and the sheathing simultaneously. If the constant zero sequence impedance is used to set the current, me zero sequence current protection can not operate correctly. Considering the zero sequence impedance of the cable to be the function of the current, the adaptive zero sequence current protection is proposed based on lteratlve algorithm. the initial value is obtained according to the empirical formula. The zero sequence impedance is solved through the fitting of the impedance-current curve by the least square method. The setting value of the protection is finished automatically by the protection device and adapts well the present operation mode of the power system.
出处 《电力系统自动化》 EI CSCD 北大核心 2006年第8期61-64,69,共5页 Automation of Electric Power Systems
关键词 电力电缆 零序阻抗 零序电流保护 power cable zero sequence impedance zero sequence current protection
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  • 1张哲,陈德树.递推滤波算法中非周期分量处理方法的探讨[J].电力系统自动化,1994,18(1):16-20. 被引量:4
  • 2董新洲,葛耀中.一种使用两端电气量的高压输电线路故障测距算法[J].电力系统自动化,1995,19(8):47-53. 被引量:80
  • 3陈德树.计算机继电保护原理与技术[M].华中理工大学,1991..
  • 4WILLEN D W A, HANSEN F, RASMUSSEN C N et al. Test Results of Full-scale HTS Cable Models and Plans for a 36 kV,2 kA (rms) Utility Demonstration. IEEE Trans on Applied Superconductivity, 2001, 11(1): 1-4.
  • 5WILLIS J O. Superconducting Transmission Cables. IEEE Power Engineering Review, 2000, 20(8): 10-14.
  • 6ROSERVEAR R D. Power Cables in 21st Century Energy Development. IEEE Power Engineering Review, 2000, 20(9):8-10.
  • 7STOVALL J P, DEMKO J A, FISHER P W et al. Installation and Operation of the Southwire 30-meter High-temperature Superconducting Power Cable. IEEE Trans on Applied Superconductivity, 2001, 11 (1):2467-2472.
  • 8HARA T, OKANIWA K, ICHIYANGI N et al. Feasibility Study of Compact High-temperature Superconducting Cables.IEEE Trans on Power Delivery, 1992, 7(4): 1745-1753.
  • 9BOTTURA L, ROSSO C, BRESCHI M. A General Model for Thermal, Hydraulic and Electric Analysis of Superconducting Cables. Cryogenics, 2000, 40: 617-626.
  • 10ISHIYAMA A, SASAKI M, SUSA T et al. Transient Stability of AC Multi-strand Superconducting Cables. Physica C, 1998,310(1-4): 345-350.

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