THE EFFECTS OF HYBRID SLIDING MODE LEARNING CONTROL AND FEEDFORWARD ANGLE DROOP CONTROLLER WITH HIGH DROOP GAIN IN HYBRID MICROGRID WITH LOAD UNCERTAINTY AND NONLINEARITY
DOI:
https://doi.org/10.59277/RRST-EE.2024.69.3.3Keywords:
Islanded operations, Angle droop, LCL filter, Hybrid sliding mode controller (HSMC), High droop gainAbstract
The present study proposes a feedforward angle droop strategy based on a discrete-time mathematical model for operation dispatchable distributed generation (DG) units connected directly or through voltage source converters (VSC) to the microgrid. These units should supply their local and common loads. Droop coefficients should be increased to improve power division between different DG units. Also, a time delay in systems’ state variables and controller input is a disruptive parameter for the control system's performance. These two parameters have negative effects on network stability. To ensure the stability of the closed-loop system, a predictive sliding mode controller can be used based on discrete-time systems. However, this strategy cannot reduce the chattering phenomenon. This paper discusses the effect of time delay and increases in droop angle coefficients on the whole system and how these impacts can be eliminated. So, a combination of integral sliding mode controller (ISMC), composite nonlinear feedback (CNF), and sliding mode learning control (SMC), which is called hybrid SMC, is used with an angle droop controller.
References
M. S. K. Niya, A. Kargar, and S. Y. Derakhshandeh, "Effects of an Angle Droop Controller on the Performance of Distributed Generation Units with Load Uncertainty and Nonlinearity," Journal of Power Electronics, vol. 17, no. 2, pp. 551-560, March 2017.
M. S. K. Niya, A.Kargar, and S.Y.Derakhshandeh, "EFFECTS OF ANGLE DROOP AND CONTROLLER TYPE IN HYBRID MICROGRID WITH LOAD UNCERTAINTY AND NONLINEARITY," Revue roumaine des sciences techniques, vol. 62, no. 4, To Be Published 2017.
V. I. Utkin, J. Guldner, and J. Shi, "Sliding Mode Control in Electromechanical Systems," Taylor & Francis, 1999. London, UK
J.-J. E. Slotine and W. Li, Applied nonlinear control (no. 1). prentice-Hall Englewood Cliffs, NJ, 1991.
A. Levant, "Universal single-input-single-output (SISO) sliding-mode controllers with finite-time convergence," IEEE transactions on Automatic Control, vol. 46, no. 9, pp. 1447-1451, 2001.
M. S. K. Niya, "THE EFFECTS OF ADAPTIVE REPETITIVE CONTROLLER AND FEEDFORWARD ANGLE DROOP CONTROLLER WITH HIGH DROOP GAIN IN HYBRID MICROGRID WITH LOAD UNCERTAINTY AND NONLINEARITY," REVUE ROUMAINE DES SCIENCES TECHNIQUES-SERIE ELECTROTECHNIQUE ET ENERGETIQUE, vol. 64, no. 2, pp. 149-155, 2019.
H. Du, X. Yu, M. Z. Chen, and S. Li, "Chattering-free discrete-time sliding mode control," Automatica, vol. 68, pp. 87-91, 2016.
X. Hao, X. Yang, T. Liu, L. Huang, and W. Chen, "A sliding-mode controller with multiresonant sliding surface for single-phase grid-connected VSI with an LCL filter," IEEE Transactions on Power Electronics, vol. 28, no. 5, pp. 2259-2268, 2013.
S. K. Gudey and R. Gupta, "Sliding-mode control in voltage source inverter-based higher-order circuits," International Journal of Electronics, vol. 102, no. 4, pp. 668-689, 2015.
X. Su, M. Han, J. M. Guerrero, and H. Sun, "Microgrid stability controller based on adaptive robust total SMC," Energies, vol. 8, no. 3, pp. 1784-1801, 2015.
Z. Chen, A. Luo, H. Wang, Y. Chen, M. Li, and Y. Huang, "Adaptive sliding-mode voltage control for inverter operating in islanded mode in microgrid," International Journal of Electrical Power & Energy Systems, vol. 66, pp. 133-143, 2015.
M. Delghavi, S. Shoja-Majidabad, and A. Yazdani, "Fractional-Order Sliding-Mode Control of Islanded Distributed Energy Resource Systems," IEEE Transactions on Sustainable Energy, 2016.
Y. Mi, Y. Fu, D. Li, C. Wang, P. C. Loh, and P. Wang, "The sliding mode load frequency control for hybrid power system based on disturbance observer," International Journal of Electrical Power & Energy Systems, vol. 74, pp. 446-452, 2016.
Q. Zhang, Y. Liu, Y. Zhao, and N. Wang, "A multi-mode operation control strategy for flexible microgrid based on sliding-mode direct voltage and hierarchical controls," ISA transactions, vol. 61, pp. 188-198, 2016.
P. Kundur, N. J. Balu, and M. G. Lauby, Power system stability and control. McGraw-hill New York, 1994.
D. Yan, S. Jianhui, and S. Yong, "A unified power controller for photovoltaic generators in microgrid," in Electric Utility Deregulation and Restructuring and Power Technologies (DRPT), 2011 4th International Conference on, 2011, pp. 1121-1125: IEEE.
G. Bartolini, A. Ferrara, E. Usai, and V. I. Utkin, "On multi-input chattering-free second-order sliding mode control," IEEE transactions on automatic control, vol. 45, no. 9, pp. 1711-1717, 2000.
W. Gao and J. C. Hung, "Variable structure control of nonlinear systems: a new approach," IEEE transactions on Industrial Electronics, vol. 40, no. 1, pp. 45-55, 1993.
K. Dharageshwari and C. Nayanatara, "Multiobjective optimal placement of multiple distributed generations in IEEE 33 bus radial system using simulated annealing," in Circuit, Power and Computing Technologies (ICCPCT), 2015 International Conference on, 2015, pp. 1-7: IEEE.
Downloads
Published
Issue
Section
License
Copyright (c) 2024 REVUE ROUMAINE DES SCIENCES TECHNIQUES — SÉRIE ÉLECTROTECHNIQUE ET ÉNERGÉTIQUE
This work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License.