자속-자화 전류 곡선과 전압-철손 전류 곡선을 이용한 측정용 철심 변류기의 보상 알고리즘 개발

Development of a Compensating Algorithm for an Iron-cored Measurement CT using Flux-magnetizing Current Curves and Voltage-core Loss Current Curves

  • 발행 : 2009.10.01

초록

This paper describes the design, evaluation and implementation of a compensating algorithm for an iron-cored measurement current transformer (CT) that removes the effects of the hysteresis characteristics of the iron-core. The exciting current resulting from the hysteresis characteristics of the core causes an error of the CT. The proposed algorithm decomposes the exciting current into the core loss current and the magnetizing current and each of them is estimated. The core loss current is calculated from the secondary voltage and the voltage-core loss current curve. The core flux linkage is calculated and then inserted into the flux-magnetizing current curve to estimate the magnetizing current. The exciting current at every sampling interval is obtained by summing the core loss and magnetizing currents and then added to the measured current to obtain the correct secondary current. The voltage-core loss current curve and flux-magnetizing current curves, which are different from the conventional curves, are derived in this paper. The performance of the proposed algorithm is validated under various conditions using EMTP generated data. The experimental test results of an iron-core type electronic CT, which consists of the iron-core and the compensation board, are also included. The results indicate that the proposed algorithm can improve the accuracy of the measurement CT significantly, and thus reduce the size and the cost of the CT.

키워드

참고문헌

  1. S. H. Horowitz, and A. G. Phadke, Power system Relaying, Research Studies Press Ltd, 1992
  2. D. Slomovitz, 'Electronic system for increasing the accuracy of in-service instrument-current transformers,' IEEE Trans. Instrumentation and measurement, Vol. 52, No, 2, pp. 408-410, April 2003 https://doi.org/10.1109/TIM.2003.810718
  3. N. Locci, and C. Muscas, 'A digital compensation method for improving current transformer accuracy,' IEEE Trans. Power Delivery, Vol. 15, No.4, pp. 1104-1109, October 2000 https://doi.org/10.1109/61.891489
  4. N, Locci, and C. Muscas, 'Hysteresis and eddy currents compensation in current transformer,' IEEE Trans. Power Delivery, Vol. 16, No.2, pp, 154-159, April 2001 https://doi.org/10.1109/61.915475
  5. G. R. Slemon, Electric Machines and Drives, Addison-wesley publishing company, INC, 1992
  6. Y. C. Kang, J. K. Park, S. H. Kang, A. T. Johns, and R. K. Aggarwal, 'An algorithm for compensating secondary currents of current transformers,' IEEE Trans, Power Delivery, Vol. 12, No.1, pp. 116-124, January 1997 https://doi.org/10.1109/61.568231
  7. S. N. Talukdar, and J. R. Bailey, 'Hysteresis Model for System Studies' IEEE Transactions on Power Apparatus and Systems, Vol. PAS-95, July/August 1976, pp. 1429-1434
  8. International standard IEC 60044-8, 'instrument transformers part 8: Electronic current transformers,' IEC Std., July 2002