| تعداد نشریات | 31 |
| تعداد شمارهها | 834 |
| تعداد مقالات | 8,015 |
| تعداد مشاهده مقاله | 14,853,143 |
| تعداد دریافت فایل اصل مقاله | 9,586,960 |
An Adaptive Control Method Based on Interval Fuzzy Sliding Mode for Direct Matrix Converters | ||
| International Journal of Industrial Electronics Control and Optimization | ||
| مقاله 6، دوره 3، شماره 2، مرداد 2020، صفحه 159-171 اصل مقاله (1.13 M) | ||
| نوع مقاله: Research Articles | ||
| شناسه دیجیتال (DOI): 10.22111/ieco.2019.30815.1191 | ||
| نویسندگان | ||
| Mehdi Bekrani* 1؛ Mojtaba Heydari2؛ Seyedeh Tahereh Behrooz1 | ||
| 1Faculty of Electrical and Computer Engineering, Qom University of Technology, Qom, Iran | ||
| 2Qom University of Technology | ||
| چکیده | ||
| In this paper, a new adaptive control method is proposed for direct matrix converters. The proposed method uses interval type-2 fuzzy logic integrated with sliding mode control. Employing the sliding mode control in matrix converters leads to an efficient choice of switching combinations and a reliable reference tracking. The main problem of the sliding mode control is the chattering phenomenon that degrades the controller performance through injecting high-frequency variations in the controller variables. The proposed method incorporates the interval type-2 fuzzy with the sliding mode control to mitigate the chattering problem. The sliding mode switch surface can be adjusted adaptively according to the system state and the proposed fuzzy compensation based on the Lyapunov stability theorem, so that the control system has the characteristics of low chattering effect and appropriate operation quality. Comprehensive evaluations of the waveforms are conducted for the new matrix converter through various simulations. Simulation results verify the effectiveness of the proposed adaptive control method for matrix converter in various conditions, and its superiority in chattering suppression in comparison to the conventional sliding mode control and the boundary layer method. | ||
| کلیدواژهها | ||
| Type-2 fuzzy logic؛ Sliding mode control؛ Matrix converter؛ Chattering suppression | ||
| مراجع | ||
|
[1] X. Li, M. Su, Y. Sun, H. Dan, and W. Xiong, “Modulation strategy based on mathematical construction for matrix converter extending the input reactive power range,” IEEE Trans. Power Elec., Vol. 29, No. 2, pp. 654-664, Feb. 2014. [2] P. Cardenas, R. Pena, G. Tobar, J. Clare, P. Wheeler, and G. Asher, “Stability analysis of a wind energy conversion system based on a doubly fed induction generator fed by a matrix converter,” IEEE Trans. Ind. Electron, Vol. 56, No. 10, pp. 4194–4206, Oct. 2009. [3] J. Monteiro, J. F. Silva, S. F. Pinto, and J. Palma, “Matrix converter based unified power-flow controllers: Advanced direct power control method,” IEEE Trans. Power Del., Vol. 26, No. 1, pp. 420–430, Jan. 2011. [4] R. Vargas, U. Ammann, B. Hudoffsky, J. Rodriguez, and P.Wheeler, “Predictive torque control of an induction machine fed by a matrix converter with reactive input power control,” IEEE Trans. Power Electron., Vol. 25, No. 6, pp. 1426–1438, June 2010. [5] Ch. Xia, Y. Yan, P. Song, and T. Shi, “Voltage disturbance rejection for matrix converter-based PMSM drive system using internal model control,” IEEE Trans. Ind. Electron. Vol. 59, No. 1, pp. 361 – 372, Jan. 2012. [6] P. W. Wheeler, J. Rodrïguez, J. C. Clare, L. Empringham, and A.Weinstein, “Matrix converters: A technology review,” IEEE Trans. Ind. Electron., Vol. 49, No. 2, pp. 276–288, Apr. 2002. [7] O. Simon, J. Mahlein, M. N. Muenzer, and M. Bruckmann, “Modern solutions for industrial matrix-converter applications,” IEEE Trans. Ind. Electron., Vol. 49, No. 2, pp. 401–406, Apr. 2002. [8] A. Alesina and M. Venturini, “Solid-state power conversion: a Fourier analysis approach to generalized transformer synthesis,” IEEE Trans. Circuits Syst., Vol. 28, No. 4, pp. 319–330, Apr. 1981. [9] A. Alesina and M. Venturini, “Analysis and design of optimum amplitude nine-switch direct AC–AC converters,” IEEE Trans. Power Electron., Vol. 4, No. 1, pp. 101–112, Jan. 1989. [10] T. D. Nguyen and H. H. Lee, "Development of a three-to- five-phase indirect matrix converter with carrier-based PWM based on space-vector modulation analysis," IEEE Trans. Ind. Electron., Vol. 63, No. 1, pp. 13-24, Jan. 2016. [11] L. Zhang, C. Watthanasarn, and W. Shepherd, "Control of AC-AC matrix converters for unbalanced and/or distorted supply voltage," IEEE Power Electronics Specialists Conference, Vol. 2, pp. 1108-1113, Feb. 2001. [12] D. Casadei, G. Serra, A. Tani, and L. Zarri, “Matrix converter modulation strategies: A new general approach based on space-vector representation of the switch state,” IEEE Trans. Ind. Electron., Vol. 49, No. 2, pp. 370– 381, Apr. 2002. [13] L. Huber and D. Borojevic, “Space vector modulated three phase to three-phase matrix converter with input power factor correction,” IEEE Trans. Industry Applications, Vol. 31, No. 6, pp. 1234–1246, Nov./Dec. 1995. [14] Z. Xu, “An indirect space-vector modulated three-phase AC-DC matrix converter for hybrid electric vehicles,” Energy Procedia, Vol. 75, pp. 1968-1974, Aug. 2015. [15] A. Shabanpour, S. Gholami, and A. R. Seifi. “Comparative studies of different switching patterns for direct and indirect space vector modulated matrix converter,” Advances in power Electronics, Hindawi Publishing Corporation, Vol.2012, pp. 1-8, 2012. [16] A. Schuster, “A matrix converter without reactive clamp elements for an induction motor drive system,” IEEE Power Electronics Specialists Conference, Vol. 1, pp. 714–720, May 1998. [17] J. Monteiro, J. F. Silva, S. F. Pinto, and J. Palma, “Linear and sliding-mode control design for matrix converter-based unified power flow controllers,” IEEE Trans. Power Electron., Vol. 29, No. 7, pp. 3357-3367, July 2014. [18] M. Vijayagopal, P. Zanchetta, L. Empringham, L. de Lillo, L. Tarisciotti, and P. Wheeler, "Control of a Direct Matrix Converter with Modulated Model Predictive Control," IEEE Trans. Industry Applications, Vol. 53 , No. 3 , pp. 2342 – 2349, May 2017. [19] S. Vazquez, J. Rodriguez, M. Rivera, L. G. Franquelo, and M. Norambuena, "Model Predictive Control for Power Converters and Drives: Advances and Trends," IEEE Trans. Industrial Electronics, Vol. 64, No. 2, pp. 935 – 947, Feb. 2017. [20] F. Gavil ́an, S. Toledo, M. Rivera, D. Caballero, E. Maqueda, and R. Gregor, "Predictive Current Control Strategy for a Direct Matrix Converter with Modulated Switching Pattern," IEEE International Conference on Automation/XXIII Congress of the Chilean Association of Automatic Control, 2018. [21] S. Pinto, and J. Silva, "Sliding mode direct control of matrix converters," IET Electric Power Applications, Vol. 1, No. 3, pp. 439-448, June 2007. [22] J. Rodriguez, P. Cortes, R. Kennel, M. P. Kazrnierkowski, “Model Predictive Control - A Simple and Powerful Method to Control Power Converters,” IEEE International Power Electronics and Motion Control Conference, pp. 41- 49, May 2009. [23] R. Sedaghati, and M. R. Shakarami, "A new sliding mode- based power sharing control method for multiple energy sources in the microgrid under different conditions," International Journal of Industrial Electronics, Control and Optimization, Vol. 2, No. 1, pp. 25-38, Jan. 2019. [24] Y. Sun, X. Li, M. Su, H. Wang, H. Dan, and W. Xiong. “Indirect matrix converter-based topology and modulation schemes for enhancing input reactive power capability,” IEEE Trans. Power. Electron., Vol. 30, No. 9, pp. 4669- 4681, Sep. 2015. [25] W. Gao, and J. Hung, “Variable structure control of nonlinear systems: a new approach,” IEEE Trans. Indust. Electron., Vol. 40, No. 1, pp. 45–54, Feb. 1993. [26] S. Haghighatnia, H. Toosian Shandiz, and A. Alfi, "Conformable fractional order sliding mode control for a class of fractional order chaotic systems," International Journal of Industrial Electronics, Control and Optimization, Vol. 2, No. 3, pp. 177-188, July 2019. [27] L. Hoon and V. I. Utkin, "Chattering suppression methods in sliding mode control systems," Annual reviews in control, Vol. 31, No. 2, pp. 179-188, Dec. 2007. [28] M. Van, H. J. Kang, and Y. S. Suh, "Second order sliding mode based output feedback tracking control for uncertain robot manipulators," International Journal of Advanced Robotic Systems, Vol. 10, No. 1, pp. 1-9, 2013. [29] M. Van, H. J. Kang, and K. S. Shin, "Backstepping quasi- continuous high-order sliding mode control for a T-S fuzzy system with an application for a two-link robot control," Proceeding of the institution of Mechanical Engineers, Part C: Journal of Mechanical Engineering, Vol. 228, No. 6, pp. 1488-1500, 2014. [30] C. E. Castaneda, A. G. Loukianov, E. N. Sanchez, and B. Castillo-Toledo, "Discrete-time neural sliding-mode block control for a DC motor with controlled flux," IEEE Trans. Industrial Electronics, Vol. 59, No. 2, pp. 1194-1207, Feb. 2012. [31] S. Wen, M. Z. Q. Chen, Z. Zeng, T. Huang, and C. Li, "Adaptive neural-fuzzy sliding-mode fault-tolerant control for uncertain nonlinear systems," IEEE Trans. Systems, Man, and Cybernetics: Systems, Vol. 47, No. 8, pp. 2268- 2278, Aug. 2017. [32] J. Zhang, Y. Lin, and G. Feng, "Analysis and synthesis of memory-based fuzzy sliding mode controllers," IEEE Trans. Cybernetics, Vol. 45, No. 12, pp. 2880-2889, Dec. 2015. [33] T. H. Ho and K. K. Ahn, "Speed control of a hydraulic pressure coupling drive using an adaptive fuzzy sliding- mode control," IEEE/ASME Trans. Mechatronics, Vol. 17, No. 5, pp. 976-986, Oct. 2012. [34] Q. Gao, G. Feng, Z. Xi, Y. Wang, and J. Qiu, “Robust control of T–S fuzzy time-delay systems via a new sliding- mode control scheme,” IEEE Trans. Fuzzy Systems, Vol. 22, No. 2, pp. 459–465, 2014. [35] H. Li, J. Wang, L. Wu, H. K. Lam, Y. Gao, "Optimal guaranteed cost sliding mode control of interval type-2 fuzzy time-delay systems," IEEE Trans. Fuzzy Systems, Vol. 26, No. 1, pp. 246-257, Feb. 2018. [36] L. Chen, M. Liu, X. Huang, Sh. Fu, and J. Qiu, "Adaptive fuzzy sliding mode control for network-based nonlinear systems with actuator failures," IEEE Trans. Fuzzy Systems, Vol. 26, No. 3, pp. 1311 – 1323, June 2018. [37] S. Y. Chen, H. H. Chiang, T. Sh. Liu, Ch. H. Chang, "Precision motion control of permanent magnet linear synchronous motors using adaptive fuzzy fractional- order sliding-mode control," IEEE/ASME Trans. Mechatronics, Vol. 24, No. 2, pp. 741 – 752, Apr. 2019. [38] Kh. Akbari, B. Rezaie, and S. Khari, "Designing full-order sliding mode controller based on ANFIS approximator for uncertain nonlinear chaotic systems," International Journal of Industrial Electronics, Control and Optimization, Vol. 2, No. 1, pp. 39-46, Jan. 2019. [39] M. Van, "An enhanced robust fault tolerant control based on an adaptive fuzzy PID-nonsingular fast terminal sliding mode control for uncertain nonlinear systems," IEEE/ASME Trans. Mechatronics, Vol. 23, No. 3, pp. 1362 – 1371, June 2018. [40] H. Li, J. Wang, H. Du, and H. R. Karimi, "Adaptive sliding mode control for Takagi–Sugeno fuzzy systems and its applications," IEEE Trans. Fuzzy Systems, Vol. 26 , No. 2 , pp. 531-542, Apr. 2018. [41] J. Liu, H. Li, and Y. Deng, "Torque ripple minimization of PMSM based on robust ILC via adaptive sliding mode control," IEEE Trans. Power Electronics, Vol. 33, No. 4, pp. 3655 – 3671, Apr. 2018. [42] J. Zhang and W. X. Zheng, “Design of adaptive sliding mode controllers for linear systems via output feedback,” IEEE Trans. Ind. Electron., Vol. 61, No. 7, pp. 3553–3562, July 2014. [43] J. J. Slotine and S.S. Sastry, “Tracking control of nonlinear systems using sliding surfaces with application to robot manipulator,” International Journal of Control, Vol. 38, No. 2, pp. 465–492, June 1983. [44] D. Mondal, A. Chakrabarti, and A. Sengupta, Power system small signal stability analysis and control, Academic Press, 2014. [45] Ch. Y. Liang and Sh. W. Tan, "A new approach to chattering reduction in the sliding mode controls," Int. Conf. on Innovative Computing, Information and Control, pp. 334-337, Sep. 2007. [46] J. M. Mendel, Uncertain rule-based fuzzy logic systems: introduction and new directions, Upper Saddle River, NJ: Prentice-Hall, 2001. [47] V. Vlatkovic, D. Borojevic, and F.C. Lee, “Input filter design for power factor correction circuits,” IEEE Trans. Power Electron., Vol. 11, No. 1, pp. 199–205, Jan. 1996. [48] A. V. Oppenheim, A. S. Willsky, and H. Nawab, Signals and Systems, 2nd Ed., Prentice Hall, 1997. | ||
|
آمار تعداد مشاهده مقاله: 667 تعداد دریافت فایل اصل مقاله: 518 |
||