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Research Article

Wind Markov models and reliability control in wind energy conversion systems

Pages 8971-8984 | Received 16 Oct 2021, Accepted 24 Feb 2022, Published online: 02 Oct 2022

References

  • Baili, H. 2015. “Optimization of Hybrid Stochastic Differential Systems in Communications Networks.” Nonlinear Analysis: Hybrid Systems 17 (3): 25–43.
  • Baili, H. 2016a. “Chaos Propagation in Games of Control for Energy-Efficient Wireless Communications.” International Game Theory Review 18 (4): 1650012.
  • Baili, H. 2016b. “Online Reliability Prediction of Energy Systems with Wind Generation”. In Proceedings of the IEEE International Midwest Symposium on Circuits and Systems, Abu Dhabi, United Arab Emirates, October 16–19.
  • Baili, H. 2017. “Propagation of Chaos in Power Control Games for Energy-Efficient Wireless Networks”. In Proceedings of the International Conference on Quality in Research: International Symposium on Electrical and Computer Engineering, Nusa Dua, Indonesia, July 24–27.
  • Baili, H. 2018. “Stochastic Analysis and Control for Reliability Improvement of Sustainable Energy Systems”. In Proceedings of the IEEE International Conference on Compatibility, Power Electronics and Power Engineering, Doha, Qatar, April 10–12.
  • Baili, H. 2020. “Wind Power Forecasting and Reliability Stochastic Control in Wind Energy Conversion Systems”. In Proceedings of the Industrial & Systems Engineering Conference, Makkah, Saudi Arabia, April 9–12.
  • Bianchi, F. D., H. D. Battista, and R. J. Mantz. 2007. Wind Turbine Control Systems: Principles, Modelling, and Gain Scheduling Design. London: Springer.
  • Billinton, R., and R. N. Allan. 1996. Reliability Evaluation of Power Systems. 2nd ed. New York: Springer.
  • Calderaro, V., V. Galdi, A. Piccolo, and P. Siano. 2007. “Design and Implementation of a Fuzzy Controller for Wind Generators Performance Optimisation”. In Proceedings of the European Conference on Power Electronics and Applications, Aalborg, Denmark, September 2–5.
  • Galdi, V., A. Piccolo, and P. Siano. 2008. “Designing An Adaptive Fuzzy Controller for Maximum Wind Energy Extraction.” IEEE Transactions on Energy Conversion 23 (2): 559–569.
  • Geng, H., and G. Yang. 2010. “Output Power Control for Variable-Speed Variable-Pitch Wind Generation Systems.” IEEE Transactions on Energy Conversion 25 (2): 494–503.
  • Iyasere, E., D. M. Dawson, J. R. Wagner, M. Salah, and E. Tatlicioglu. 2009. “Nonlinear Robust Control to Maximize Energy Capture in a Variable Speed Wind Turbine Using an Induction Generator”. In Proceedings of the IEEE International Conference on Systems, Man and Cybernetics, San Antonio, United States, October 11–14.
  • Janssens, N. A., G. Lambin, and N. Bragard. 2007. “Active Power Control Strategies of DFIG Wind Turbines”. In Proceedings of IEEE Lausanne Power Tech, Lausanne, Switzerland, July 1–5.
  • Johnson, K. E., L. Y. Pao, M. J. Balas, and L. J. Fingersh. 2006. “Control of Variable-Speed Wind Turbines: Standard and Adaptive Techniques for Maximizing Energy Capture.” IEEE Control Systems Magazine 26 (3): 70–81.
  • Krylov, N. V. 1995. Introduction to the Theory of Diffusion Processes. United States of America: American Mathematical Society.
  • Kulasiri, D., and W. Verwoerd. 2002. Stochastic Dynamics. Modelling Solute Transport in Porous Media. 1st ed. Amsterdam, The Netherlands: Elsevier Science B.V..
  • Li, D., and C. Chen. 2004. “Decoupled Control of Speed and Reactive Power of Doubly-Fed Induction Generator”. In Proceedings of the International Conference on Power System Technology, Singapore, November 21–24.
  • Ma, L., S. Luan, C. Jiang, H. Liu, and Y. Zhang. 2009. “A Review on the Forecasting of Wind Speed and Generated Power.” Renewable and Sustainable Energy Reviews 13 (4): 915–920.
  • Malinga, B., J. E. Sneckenberger, and A. Feliachi. 2003. “Modeling and Control of a Wind Turbine as a Distributed Resource”. In Proceedings of the Southeastern Symposium on System Theory, Morgantown, United States, March 16–18.
  • Prats, M. A. M., J. M. Carrasco, E. Galvan, J. A. Sanchez, L. G. Franquelo, and C. Batista. 2000. “Improving Transition between Power Optimization and Power Limitation of Variable Speed, Variable Pitch Wind Turbines Using Fuzzy Control Techniques”. In Proceedings of the Annual Conference of the IEEE Industrial Electronics Society, Nagoya, Japan, October 22–28.
  • Sumathi, S., L. A. Kumar, and P. Surekha. 2015. Solar PV and Wind Energy Conversion Systems. 1st ed. Switzerland: Springer.
  • Tang, C. Y., Y. Guo, and J. N. Jiang. 2010. “Nonlinear Dual-Mode Control of Variable-Speed Wind Turbines with Doubly Fed Induction Generators.” IEEE Transactions on Control Systems Technology19 (4): 744–756.
  • Thomas, P. H. 1945. Electric Power From the Wind. Washington, DC: Federal Power Commission.
  • Tiwari, R., and N. R. Babu. 2016. “Recent Developments of Control Strategies for Wind Energy Conversion Systems.” Renewable and Sustainable Energy Reviews 66 (C): 268–285.
  • Tiwari, R., and N. R. Babu. 2017. “Comparative Analysis of Pitch Angle Controller Strategies for PMSG Based Wind Energy Conversion System.” International Journal of Intelligent Systems and Applications9 (5): 62–73.
  • Zhang, J., M. Cheng, Z. Chen, and X. Fu. 2008. “Pitch Angle Control for Variable Speed Wind Turbines”. In Proceedings of the International Conference on Electric Utility Deregulation and Restructuring and Power Technologies, Nanjing, China, April 6–9.

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