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Estimation of composite load model parameters as a constrained nonlinear problem

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Języki publikacji
EN
Abstrakty
EN
This paper presents the results of application of sequential quadratic programming to the estimation of the unknown composite load model parameters. Traditionally applied estimation methods, such as nonlinear least squares or genetic algorithms, suffer from a number of issues. Genetic algorithms exhibit premature convergence and require high computational resources and nonlinear least squares method is very sensitive to the initial guess and can diverge easily. This paper provides a comparison of all three methods based on computer-generated signals serving as field measurements. Accuracy and precision are assessed as well as computational requirements.
Rocznik
Tom
Strony
33--42
Opis fizyczny
Bibliogr. 13 poz., rys., tab.
Twórcy
autor
  • Wrocław University of Technology, Department of Electrical Power Engineering, Wybrzeze Wyspiańskiego 27, 50-370 Wrocław, Poland,
Bibliografia
  • [1] VAN CUTSEM T., VOURNAS C., Voltage Stability of Electrical Power System, Kluwer Academic Publishers, 1998.
  • [2] KUNDUR P., Power System Stability and Control, McGraw-Hill, 1994.
  • [3] RIFAAT R.M., On Composite Load Modeling for Voltage Stability and Under Voltage Load Shedding, Power Engineering Society General Meeting, 2004, IEEE, June 2004, Vol. 2, pp. 1603-1610.
  • [4] JU P., WU F., SHAO Z.-Y., ZHANG X.-P., FU H.-J., ZHANG P.-F., HE N.-Q., HAN J.-D., Composite Load Models Based on Field Measurements and Their Application in Dynamic Analysis, Generation, Transmission and Distribution, IET, Sept. 2007, Vol. 1, No. 5, pp. 724-730.
  • [5] MA J., DONG Z.-Y., HE R.-M., HILL D.J., Measurement-based Load Modeling using Genetic Algorithms, IEEE Congress on Evolutionary Computation 2007. CEC 2007, Sept. 2007, 25-28, pp. 2909- 2916.
  • [6] WANG J.-C., CHIANG H.-D., CHANG C.-L., LIU A.-H., HUANG C.-H., HUANG C.-Y., Development of a frequency-dependent composite load model using the measurement approach, IEEE Transactions on Power Systems, Aug. 1994, Vol. 9, No. 3, pp. 1546-1556.
  • [7] WEN J.Y., JIANG L., WU Q.H., CHENG S.J., Power System Load Modeling by Learning Based on System Measurements, IEEE Transactions on Power Delivery, April 2003, Vol. 18, No. 2, pp. 364-371.
  • [8] NOCEDAL J., WRIGHT S. J., Numerical Optimization, 2nd Ed., Springer, 2006.
  • [9] FINARDI E.C., DA SILVA E.L., Solving the hydro unit commitment problem via dual decomposition and sequential quadratic programming, IEEE Transactions on Power Systems, May 2006, Vol. 21, No. 2, pp. 835-844.
  • [10] SIVASUBRAMANI S., SWARUP K.S., Sequential quadratic programming based differential evolution algorithm for optimal power flow problem, Generation, Transmission and Distribution, IET, Nov. 2011, Vol. 5, No. 11, pp. 1149, 1154.
  • [11] MILANOVIC J.V., YAMASHITA K., MARTINEZ VILLANUEVA S., DJOKIC S.Z., KORUNOVIC L.M., International Industry Practice on Power System Load Modeling, IEEE Transactions on Power Systems, Aug. 2013, Vol. 28, No. 3, pp. 3038-3046.
  • [12] BIGGS M.C., Constrained Minimization Using Recursive Quadratic Programming, Towards Global Optimization, North-Holland 1975, pp. 341-349.
  • [13] HOCK W., SCHITTKOWSKI K., Test Examples for Nonlinear Programming Codes, Lecture Notes in Economics and Mathematical Systems, Vol. 187, Springer, 1981.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-1417efda-b46e-4a49-be80-4c08baf35ed2
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