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Interior-point-method-based switching angle computation for selective harmonic elimination in high-frequency cascaded H-bridge multilevel inverters

  • Gen Long (School of Electrical and Electricity, Huazhong University of Science and Technology) ;
  • Xiang-Long Wu (School of Electrical and Electricity, Huazhong University of Science and Technology) ;
  • Heng-Yang Liu (School of Electrical and Electricity, Huazhong University of Science and Technology) ;
  • Hang-Chuan Lou (School of Electrical and Electricity, Huazhong University of Science and Technology) ;
  • Bo-Han Shen (School of Mechanical and Electrical Engineering, Wuhan Institute of Technology) ;
  • Chen Yan (School of Electrical and Electricity, Huazhong University of Science and Technology) ;
  • Wu-Bin Kong (School of Electrical and Electricity, Huazhong University of Science and Technology)
  • 투고 : 2023.09.18
  • 심사 : 2024.02.28
  • 발행 : 2024.08.20

초록

To transmit high power very-low-frequency signals with low harmonic content, the high-frequency cascaded H-bridge multilevel inverter (HF-MLI) usually has large number of levels and uses the selective harmonic elimination (SHE) technique for modulation. However, when the number of levels exceeds 25, the conventional SHE switching angle computation methods have a problem since the computed switching angles tend to be located at 0 and π/2, which makes the harmonic suppression effect worse. To realize a good harmonic suppression effect for HF-MLIs with a large number of levels, an interior-point-method-based switching angle computation method is proposed in this paper. With the aid of the interior point method (IPM), the constraints of switching angles are combined with the harmonic function in the objective function through a penalty function. The iteration is divided into the inner loop and the outer loop. The switching angles are computed in the inner loop and the weight of the penalty function is updated in the outer loop. The penalty function can keep the switching angles away from constraints. When compared with conventional methods, the proposed method has a higher accuracy, a shorter execution time and better harmonic suppression effect when computing the switching angles of MLIs with more than 25 levels. The harmonics from 9 to 19th-order of the proposed method are suppressed to less than 0.1%, which is experimentally verified on a single-phase 49-level HF-MLI.

키워드

참고문헌

  1. He D. J., Chen H. T., Zhou L. J.: Study on the multiple tuning for VLF umbrella antenna. In: 2022 International Applied Computational Electromagnetics Society Symposium (ACES-China), 1-3 (2022).
  2. Quan, Y., Xie, H., Li, H.K., Zhang, X.Y.: Effects of tuning mode on radiation performance of VLF umbrella transmitting antenna. J. Phys. Conf. Ser. 2290(1), 012077 (2022)
  3. Duncan, L.: Fifty one years of TACAMO. CCA Signal Mag. 72(4), 10-17 (2013)
  4. Leon, J.I., Vazquez, S., Franquelo, L.G.: Multilevel converters: Control and modulation techniques for their operation and industrial applications. Proc. IEEE 105(11), 2066-2081 (2017) https://doi.org/10.1109/JPROC.2017.2726583
  5. Kundu, S., Burman, A.D., Giri, S.K.: Comparative study between different optimisation techniques for finding precise switching angle for SHE-PWM of three-phase seven-level cascaded H-bridge inverter. IET Power Electron. 11(3), 600-609 (2018) https://doi.org/10.1049/iet-pel.2017.0530
  6. Kumar, S.S., Iruthayarajan, M.W., Sivakumar, T.: Evolutionary algorithm based selective harmonic elimination for three-phase cascaded H-bridge multilevel inverters with optimized input sources. J. Power Electron. 20(5), 1172-1183 (2020) https://doi.org/10.1007/s43236-020-00112-9
  7. Liu, Z. H., Guan, B., Yan, X.: Analysis and comparison of characteristics of half-wave symmetric three-level SHEPWM based on different numerical solutions. In: 2021 24th International Conference on Electrical Machines and Systems, 756-761 (2021)
  8. Tang, T. H., Han, J. G., Tan, X. Y.: Selective harmonic elimination for a cascade multilevel inverter. In: 2006 IEEE International Symposium on Industrial Electronics, 977-981 (2006)
  9. Fei, W.M., Du, X.L., Wu, B.: A generalized half-wave symmetry SHE-PWM formulation for multilevel voltage inverters. IEEE Trans. Ind. Elec. Magazine. 57(9), 3030-3038 (2010) https://doi.org/10.1109/TIE.2009.2037647
  10. Buccellay, C., Cecatiy, C., Cimoroni, M. G.: Investigation about numerical methods for selective harmonics elimination in cascaded multilevel inverters. In: 2012 Electrical Systems for Aircraft, Railway and Ship Propulsion, 1-6 (2012)
  11. Yang, K. H., Lu, D. Y., Kuang, X. Q.: Harmonic elimination for multilevel converters with unequal DC levels by using the polynomial homotopy continuation algorithm. In: 2016 35th Chinese Control Conference, 9969-9973 (2016)
  12. Yang, K.H., Feng, M., Wang, Y.B.: Real-time switching angle computation for selective harmonic control. IEEE Trans. Ind. Elec. Mag. 34(8), 8201-8212 (2019)
  13. Chen, N., Liu, Y.K., Gao, L.H.: Real-time calculation of full-cycle asymmetrical SHEPWM using step modulation newton algorithm. IEEE J. Emerg. Select. Top. Power Electron. 11(6), 5833-5841 (2023) https://doi.org/10.1109/JESTPE.2023.3315305
  14. Ozpineci, B., Tolbert, L. M., Chiasson, J. N.: Harmonic optimization of multilevel converters using genetic algorithms. In: 2004 IEEE 35th Annual Power Electronics Specialists Conference, 3911-3916 (2004)
  15. Kaviani, A. K., Fathi, S. H., Farokhnia, N.: PSO, an effective tool for harmonics elimination and optimization in multi-level inverters. In: 2009 4th IEEE Conference on Industrial Electronics and Applications, 2902-2907 (2009)
  16. Etesami, M.H., Farokhnia, N., Fathi, S.H.: Colonial competitive algorithm development toward harmonic minimization in multilevel inverters. IEEE Trans. Ind. Informat. 11(2), 459-466 (2015)
  17. Kavousi, A., Vahidi, B., Salehi, R.: Application of the bee algorithm for selective harmonic elimination strategy in multilevel inverters. IEEE Trans. Power Electron. 27(4), 1689-1696 (2012) https://doi.org/10.1109/TPEL.2011.2166124
  18. Vikhar, P. A.: Evolutionary algorithms: a critical review and its future prospects. In: 2016 International Conference on Global Trends in Signal Processing, Information Computing and Communication (ICGTSPICC), 261-265 (2016)
  19. Memon, M.A., Siddique, M.D., Mekhilef, S.: Asynchronous particle swarm optimization-genetic algorithm (APSO-GA) based selective harmonic elimination in a cascaded H-bridge multilevel inverter. IEEE Trans. Ind. Elec 69(2), 1477-1487 (2022) https://doi.org/10.1109/TIE.2021.3060645
  20. Shang, F. B., Zhang Y. C., Wang R. Z.: Optimization modulation method of seven-level SHEPWM inverter based on TSA-PSO. In: 2023 3rd International Conference on Electrical Engineering and Mechatronics Technology (ICEEMT), 207-211 (2023)
  21. Tu, J. Y., Liu, H. Y., Kong W. B.: Selective harmonic elimination control for cascaded digital power amplifier. In: 2020 IEEE 1st China International Youth Conference on Electrical Engineering, 1-6 (2020)
  22. Boyd, S., Vandenberghe, L.: Convex optimization. Cambridge University Press, Cambridge (2004)
  23. Leggate, D., Kerkman, R.J.: Pulse-based dead-time compensator for PWM voltage inverters. IEEE Trans. Ind. Elec. Magazine. 44(2), 191-197 (1997) https://doi.org/10.1109/41.564157