INTEGRATION AND CONTROL OF A MULTI-TASK HYBRID INVERTER IN RENEWABLE ENERGY SYSTEMS, 95-102.

Sabri Mansouri, Slim Tnani, and Olivier Bachelier

References

  1. [1] Energy and water systems integration and management, https://www.edgewise.ubi.pt (accessed April 27, 2018).
  2. [2] S.K. Bhuyan, P.K. Hota, and B. Panda, Modeling, control and power management strategy of a grid connected hybrid energy system, International Journal of Electrical and Computer Engineering, 8, 2018, 1345–1356.
  3. [3] H. Rezk and A.M. Eltamaly, A comprehensive comparison of different MPPT techniques for photovoltaic systems, Solar Energy, 112, 2015, 1–11.
  4. [4] D. Verma, S. Nema, A.M. Shandilya, and S.K. Dash, Maximum power point tracking (MPPT) techniques: Recapitulation in solar photovoltaic systems, Renewable and Sustainable Energy Reviews, 54, 2016, 1018–1034.
  5. [5] M. Hafez, H. El-Eissawi, and N. Ayad, Harmonic enhancement in microgrid with applications on sensitive loads, International Journal of Electrical and Computer Engineering, 9, 2019, 826–834.
  6. [6] F. Bensmaine, S. Tnani, G. Champenois, O. Bachelier, and E. Mouni, Hybrid synchronous generator output voltage control with energy storage, IET Electric Power Applications, 12, 2018, 991–998.
  7. [7] S. Mansouri, S. Tnani, and O. Bachelier, A multi-function hybrid inverter for optimal performance in multi-source renew- able energy, IEEE 16th Int. Conf. on Industrial Informatics, Porto, Portugal, 2018, 1001–1005, 2018.
  8. [8] W. Li, G. Joos, and J. Belanger, Real-time simulation of a wind turbine generator coupled with a battery supercapacitor energy storage system, IEEE Transactions on Industrial Electronics, 57, 2010, 1137–1145.
  9. [9] Z. Cabrane, M. Ouassaid, and M. Maaroufi, Battery and supercapacitor for photovoltaic energy storage: a fuzzy logic management, IET Renewable Power Generation, 11, 2017, 1157–1165.
  10. [10] M.Y. Worku and M.A. Abido, Grid-connected PV array with supercapacitor energy storage system for fault ride through, IEEE Int. Conf. on Industrial Technology, Seville, Spain, 2015, 2901–2906.
  11. [11] Y. Cheng, Super capacitor applications for renewable energy generation and control in smart grids, IEEE International Symposium on Industrial Electronics, Gdansk, Poland, 2011, 1131–1136.
  12. [12] F. Bensmaine, S. Tnani, G. Champenois, O. Bachelier, and E. Mouni, LMI approach of state-feedback controller design for a STATCOM-supercapacitors energy storage system associated with a wind generation, Energy Conversion and Management, 96, 2015, 463–472.
  13. [13] F. Bensmaine, S. Tnani, G. Champenois, O. Bachelier, and E. Mouni, Modeling and control of a STATCOM-supercapacitors energy storage system associated with a wind generator, 23rd Int. Symp. on IEEE Industrial Electronics, Istanbul, Turkey, 2014, 156–161.
  14. [14] W. Jing, C.H. Lai, W.S. Wong, and M.D. Wong, A comprehensive study of battery-supercapacitor hybrid energy storage system for standalone PV power system in rural electrification, Applied Energy, 224, 2018, 340–356.
  15. [15] L. Tan, Q. Yang, W. Im, and W. Liu, Adaptive critic design based cooperative control for pulsed power loads accommodation in shipboard power system, IET Generation, Transmission and Distribution, 10, 2016, 2739–2747.
  16. [16] M. Chilali, P. Gahinet, and P. Apkarian, Robust pole placement in LMI regions, IEEE transactions on Automatic Control, 44, 1999, 2257–2270.
  17. [17] S. Manfredi and M. Pagano, On the use of ultracapacitor to support microgrid photovoltaic power system, Int. Conf. on Clean Electrical Power, Ischia, Italy, 2011, 491–497.
  18. [18] A. Aktas, K. Erhan, S. Ozdemir, and E. Ozdemir, Experimental investigation of a new smart energy management algorithm for a hybrid energy storage system in smart grid applications, Electric Power Systems Research, 144, 2017, 185–196.
  19. [19] H. Djeghloud and H. Benalla, Space vector pulse width modulation applied to the three-level voltage inverter, IEEE Transactions on Power Electronics, 19, 2004, 732–738.
  20. [20] J.H. Seo, C.H. Choi, and D.S. Hyun, A new simplified space-vector PWM method for three-level inverters, IEEE Transactions on Power Electronics, 16, 2001, 545–550.

Important Links:

Go Back