TRANSMISSION SYSTEM FOR SERIES-SHUNT COMPENSATED NETWORK USING MATLAB/SIMULINK
Abstract
This paper presents an analysis of the effects of shunt and series line compensation levels on the transmission line voltage profile, transferred power and transmission losses for different static load models. For this purpose, a simple model is developed to calculate the series and/or shunt compensated transmission line load voltage. Principle of superposition of modal transformation matrices for calculating relaying discriminants was used. Consequently, different shunt and series compensation levels are used with several voltage sensitive load models for two different line models. It is observed that the compensation level is significantly affected by the voltage sensitivities of loads. Moreover, the voltage level of the transmission is an important issue for the selection of the shunt and series capacitor sizes when load voltage dependency is used.
Keywords: series compensation transmission system, metal oxide varistor, relaying discriminants.
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REFERENCES
.Xiao Z., and Christian R. P, 2012. Flexible AC Transmission Systems: Modelling and Control, 2nd Edition, Springer, Feb, ISBN 978-3-642-28240-9 (Print) 978-3-642-28241-6 (Online), http://link.springer.com/book/10.1007%2F978-3-642-28241-6.
. Edris A., Adapa R., Baker M.H. and Wood R.R., 1997. Proposed Terms and Definitions for Flexible AC Transmission System (FACTS).
. Abdelaziz A.Y. Mostafa Y.G., Ibrahim A.M., Mansour M.M., Talaat H.E., 2003. A neural network based approach for protection of series compensated transmission lines, Proceedings of the Ninth International Middle-East Power Systems Conference MEPCON’ Menofia University, Egypt, December, pp. 405– 411.
. Bachmann B., Novosel D., Hart D and Saha M.M., 1996. Application of artificial networks for series compensated line protection, in: Intelligent Systems Applications to Power Systems, Proceedings of ISAP ’96 International Conference, January, pp. 68– 73.
. Johns A.T., 1980. New ultra-high-speed directional comparison technique for the protection of EHV transmission lines, Proc. IEE 127 (July (4 Pt C)) 228–239.
.Crossley P.A., McLaren P.G., 1983. Distance protection based on travelling waves, IEEE Trans. PAS-102 (September (9)) 2971–2983.
. Wedepohl L.M., 1963. Application of matrix methods to the solution of travelling-wave phenomena in poly-phase system, Proc. IEE 110 (December (12)) 2200–2212.
. Mansour M.M.S., 1984. A travelling-wave relay featuring fault classification and phase selection, Ph.D Thesis, University of Manitoba, Winnipeg, Canada.
. Swift G.W., 1979. The spectra of fault induced transients, IEEE Trans. Power Apparatus Syst. PAS-98 (May/June (3)) 940– 947.
. Dommel H.M., 1969. Digital computer solution of electromagnetic transients in single and multi-phase networks, IEEE Trans. PAS-88 (April) 388–399.
. Chamia M., and Liberman S. 1978. Ultra high speed relay for EHV/UHV transmission lines-development design and application, IEEE Trans. PAS-96 (November/December (6) 2104–2116.
. IEEE Tutorial Course, Computer Relaying, 40-50, Course Text 79EH014-7PWR, 1979 (Chapter 5).
. Mansour M.M., and Swift G.W., 1985. Multi-microprocessor-based traveling wave relay, in: Third IEE International Conference on Developments in Power System Protection, London, UK, 17–19 April, pp. 91–95.
. Ibrahim A.M., 2003. An intelligent adaptive distance protection for power networks, M.Sc. Thesis, Ain Shams University, Cairo.
. Hingoraani N. G 2000. Understanding FACTS: Concept and Technology of Flexible AC Transmission Systems: New York, IEEE Press.
. Moore R.K., 1960. Travelling-Wave Engineering, Mc-Graw-Hill, New York.
. Xiao-Ping Zhang, 2006. Christian Rehtanz, Bikash Pal, Flexible AC Transmission Systems: Modelling and Control, Springer, March. ISBN 978-3-540-30606-1. http://link.springer.com/book/10.1007%2F3-540-30607-2
. Schweitzer E.O. and Flechsig A.J. 1977. An efficient distance algorithm for digital computer relaying Mexico City, Mexico, July 17–22, in: IEEE PES Summer Meeting.
. Song Y.H., Johns A.T. and Xuan Q.Y., 1996. Artificial network-based protection scheme for controllable series-compensated transmission lines, IEE Proc. Generation Transm. Distrib. 143 (November (6)) 535–540.
. Caudill M. and Butler C., 1992. Understanding Networks, vol. I: Basic Networks. The MIT Press, London, England.
. Mansour M.M. and Swift G.W., 1986. Design and testing of a Multimicroprocessor- based traveling wave relay, IEEE Paper, Winter Meeting, 115-0.
. Narain G. Hingorani, and Laszlo Gyugyi, 1999. Understanding FACTS: Concepts, Fault Analysis and Technology of Flexible AC Transmission Systems, Wiley-IEEE Press, December, ISBN, 978-0-7803-3455-7.
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