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Dec. 2020
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Liwei Shao, Lei Dong, Lulu Ling. Optimal Output Power Control of Switched Reluctance Generator at a Constant Speed[J]. JOURNAL OF BEIJING INSTITUTE OF TECHNOLOGY, 2020, 29(4): 435-444. doi: 10.15918/j.jbit1004-0579.20075
Citation: Liwei Shao, Lei Dong, Lulu Ling. Optimal Output Power Control of Switched Reluctance Generator at a Constant Speed[J].JOURNAL OF BEIJING INSTITUTE OF TECHNOLOGY, 2020, 29(4): 435-444.doi:10.15918/j.jbit1004-0579.20075

Optimal Output Power Control of Switched Reluctance Generator at a Constant Speed

doi:10.15918/j.jbit1004-0579.20075
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  • Corresponding author:Ph. D. E-mail:slw_bob@163.com
  • Received Date:2020-07-05
  • Publish Date:2020-12-30
  • In order to control the output power of a switched reluctance generator(SRG) at a constant speed, the output power of SRG is theoretically analyzed by using freewheeling control. First, through a theoretical analysis, a finite element simulation and an experiment, it was verified that the output power of SRG cannot be improved by using freewheeling control with a single pulse control method(SPCM). Then, the maximum output power can be obtained by optimizing the turn off angles of SPCM at a constant speed, and at the same time, the formula of the optimal turn-off angle was presented, which meets the criterion for the output power maximization. Finally, numerical simulation and experimental results demonstrated the validity of the theoretical analysis.
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  • [1]
    Cardenas R, Pena R, Perez M, et al. Control of a switched reluctance generator for variable-speed wind energy applications [J]. IEEE Transactions on Energy Conversion, 2005, 20(4): 781−789.
    [2]
    Ding W, Liang D. A fast analytical model for an integrated switched reluctance starter/generator [J]. IEEE Transactions on Energy Conversion, 2010, 25(4): 948−956.
    [3]
    Vujii V P, Alasan M P. Simple sensorless control for high-speed operation of switched reluctance generator [J]. IEEE Transactions on Energy Conversion, 2016, 31(4): 1325−1335.
    [4]
    Radun A V. High-power density switched reluctance motor drive for aerospace applications [J]. IEEE Transactions on Industry Applications, 1992, 28(1): 113−119.
    [5]
    Tursini M, Villani M, Fabri G, et al. A switched-reluctance motor for aerospace application: Design, analysis and results [J]. Electric Power Systems Research, 2017, 142(1): 74−83.
    [6]
    Raminosoa T, Blunier B, Fodorean D, et al. Design and optimization of a switched reluctance motor driving a compressor for a PEM fuel-cell system for automotive applications [J]. IEEE Transactions on Industrial Electronics, 2010, 57(9): 2988−2997.
    [7]
    Madhavan R, Fernandes B G. Performance improvement in the axial flux-segmented rotor-switched reluctance motor [J]. IEEE Transactions on Energy Conversion, 2014, 29(3): 641−651.
    [8]
    Ding W, Hu Y, Wu L. Analysis and development of novel three-phase hybrid magnetic paths switched reluctance motors using modular and segmental structures for EV applications [J]. IEEE/ASME Transactions on Mechatronics, 2015, 20(5): 2437−2451.
    [9]
    dos Santos F L M, Anthonis J, Naclerio F, et al. Multiphysics NVH modeling: Simulation of a switched reluctance motor for an electric vehicle [J]. IEEE Transactions on Industrial Electronics, 2014, 61(1): 469−476.
    [10]
    Tarcio A S Barros, Pedro J S Neto, Paulo S N Filho, et al. Approach for performance optimization of switched reluctance generator in variable-speed wind generation system [J]. Renewable Energy, 2016, 97(11): 114−128.
    [11]
    Yahia H, Liouane N, Dhifaoui R. Differential evolution method-based output power optimisation of switched reluctance generator for wind turbine applications [J]. IET Renewable Power Generation, 2014.
    [12]
    Hasanien H M, Muyeen S M. Speed control of grid-connected switched reluctance generator driven by variable speed wind turbine using adaptive neural network controller [J]. Electric Power Systems Research, 2012, 84(1): 206−213.
    [13]
    Sozer Y, Torrey D A. Closed loop control of excitation parameters for high speed switched-reluctance generators [J]. IEEE Transactions on Power Electronics, 2004, 19(2): 355−362.
    [14]
    Mademlis C, Kioskeridis I. Optimizing performance in current-controlled switched reluctance generators [J]. IEEE Transactions on Energy Conversion, 2005, 20(3): 556−565.
    [15]
    Kioskeridis I, Mademlis C. Optimal efficiency control of switched reluctance generators [J]. IEEE Transactions on Power Electronics, 2006, 21(4): 1062−1071.
    [16]
    Yu S Y, Zhang F G, Ahn J W. Efficiency of switched reluctance generator according to current shape below rated speed[C]// International Conference on Electrical Machines & Systems, IEEE, 2013. (in Chinese)
    [17]
    Yu Siyang, Zhang Fengge, Lee Dong-Hee, et al. High efficiency operation of a switched reluctance generator over a wide speed range [J]. Journal of Power Electronics A Publications of the Korean Institute of Power Electronics, 2015, 15: 123-130.
    [18]
    Narla S, Sozer Y, Husain I. Switched reluctance generator controls for optimal power generation and battery charging [J]. IEEE Transactions on Industry Applications, 2012, 48(5): 1452−1459.
    [19]
    Sikder C, Husain I, Sozer Y. Switched reluctance generator control for optimal power generation with current regulation [J]. IEEE Transactions on Industry Applications, 2014, 50(1): 307−316.
    [20]
    Dixon S, Fahimi B. Enhancement of output electric power in switched reluctance generators[C]// IEEE International Electric Machines & Drives Conference, IEEE, 2003(2): 849-856.
    [21]
    Kosmatin K, Miljavec D, Voncina D. Increasing efficiency of the switched reluctance generator at low-speed operation[C]// International Conference on Compatibility & Power Electronics, IEEE 2013: 197-203.
    [22]
    Nasirian V, Kaboli S, Davoudi A. Output power maximization and optimal symmetric freewheeling excitation for switched reluctance generators [J]. IEEE Transactions on Industry Applications, 2012, 49(3): 1−10.
    [23]
    Ling L L, Dong L, Liao X. Comparison of two control methods of switched reluctance generator[C]//12th IEEE Conference on Industrial Electronics and Applications (ICIEA), 2017: 792-796.
    [24]
    Hu K, Wang J, Lin T, et al. A switched-reluctance generator with interleaved interface DC-DC converter [J]. IEEE Transactions on Energy Conversion, 2015, 30(1): 273−284.
    [25]
    Wang W, Wang Q N, Zeng X H, et al. Parameter matching of induction motor for electric vehicle based on orthogonal design[C]// International Conference on Mechatronics & Automation, IEEE, 2009.(in Chinese)
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