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Modifications of the soft switching system resistant to disturbances in control systems of voltage sources inverters Cover

Modifications of the soft switching system resistant to disturbances in control systems of voltage sources inverters

Open Access
|May 2020

References

  1. [1] Feix G., Dieckerhoff S., Allmeling J., Schonberger J., Simple Methods to Calculate IGBT and Diode Conduction and Switching Losses, 13th European Conference on Power Electronics and Applications, EPE ‘09, Barcelona, Spain, 8–10 September 2009, 1–8.
  2. [2] Drofenik U., Kolar J.W., A General Scheme for Calculating Switching – and Conduction-Losses of Power Semiconductors in Numerical Circuit Simulations of Power Electronic Systems, 5th International Power Electronics Conference, IPEC-Niigata, Japan, 2005.
  3. [3] Maswood A.I., A switching loss study in SPWM igbt inverter, 2nd IEEE International Conference on Power and Energy, PECon 08, Johor Baharu, Malaysia, 1–3 December 2008, 609–613.10.1109/PECON.2008.4762548
  4. [4] Rajapakse A.D., Gole A.M., Wilson P.L., Approximate Loss Formulae for Estimation of IGBT Switching Losses through EMTP-type Simulations, International Conference on Power Systems Transients, IPST’05, Paper No. 184, Canada, 19–23 June 2005, 1–6.
  5. [5] Hiraki E., Tanaka T., Nakaoka M., Zero-Voltage and Zero-Current Soft - Switching PWM Inverter, 36th Power Electronics Specialists Conference PESC ‘05, Recife, Brazil, 12–16 June 2005,798–803.10.1109/EPE.2005.219661
  6. [6] Martinez B., Li R., Ma K., Xu D., Hard Switching and Soft Switching Inverters Efficiency Evaluation, International Conference on Electrical Machines and Systems ICEMS 2008, Wuhan, China, 17–20 October 2008, 1752–1757.
  7. [7] Amini M.R., Farzanehfard H., Three-Phase Soft-Switching Inverter With Minimum Components, IEEE Transactions on Industrial Electronics, vol. 58, June 2011, Iss. 6, 2258–2264.10.1109/TIE.2010.2064280
  8. [8] Khalilian M., Farzanehfard H., Adib E., A novel quasi-resonant three-phase soft-switching inverter, 3rd Power Electronics and Drive Systems Technology, PEDSTC, 2012, 471–476.10.1109/PEDSTC.2012.6183376
  9. [9] Liu Y., Wu W., Blaabjerg F., Chung H.S., A modified two-level three-phase quasi-soft-switching inverter, Twenty-Ninth Annual IEEE Applied Power Electronics Conference and Exposition, APEC, 2014, 261–267.10.1109/APEC.2014.6803319
  10. [10] Panda B., Bagarty D.P., Behera S., Soft-switching dc-ac Converters: A brief literature review, Int. Journal of Engineering Science and Technology, vol. 2, 2010, 7004–7020.
  11. [11] Wu W., Geng P., Chen J., Ye Y., A Novel Three-Phase Quasi-Soft-Switching DC/AC Inverter, IEEE International Symposium on Power Electronics for Distributed Generation Systems, PEDG, Hefei, China, 16–18 June 2010, 477–480.10.1109/PEDG.2010.5545836
  12. [12] Hiraki E., Tanaka T., Nakaoka M., Zero-Voltage and Zero-Current Soft Switching PWM Inverter, 36th Power Electronics Specialists Conference PESC ‘05, Recife, Brazil, 12–16 June 2005, 798–803.10.1109/EPE.2005.219661
  13. [13] Chandhaket S., Yoshida M., Eiji H., Nakamura M., Konishi Y., Nakaoka M., Multi-functional Digitally-Controlled Bidirectional Interactive Three-phase Soft-Switching PWM Converter with Resonant Snubbers, IEEE 32nd Annual Power Electronics Specialists Conference, PESC, vol. 2,Vancouver, Canada 2001, 589–593.
  14. [14] Chao K.H., Liaw C.M., Three-phase soft-switching inverter for induction motor drives Iyomori-Three, IEE Proceedings – Electric Power Appl., vol. 148, Jan 2001, 8–20.10.1049/ip-epa:20010123
  15. [15] Galea C., New topology of three phase soft switching inverter using a dual auxiliary circuit, 15th European Conference on Power Electronics and Appl., EPE 2013, 1–9.10.1109/EPE.2013.6631812
  16. [16] Karyś S., Power loss comparison for the ARCP resonant inverter regard to control method, Przegląd Elektrotechniczny, 84, nr 11, 2008, 64–68.
  17. [17] Li Y., Lee F.C., Boroyevich D., A Three-Phase Soft-Transition Inverter with a Novel Control Strategy for Zero-Current and Near Zero-Voltage Switching, IEEE Transactions on Power Electronics, vol. 16, Sep 2001, 710–723.10.1109/63.949504
  18. [18] Martinez B., Li R., Ma K., Xu D., Hard Switching and Soft Switching Inverters Efficiency Evaluation, International Conference on Electrical Machines and Systems, ICEMS, Wuhan, China, 17–20 October 2008, 1752–1757.
  19. [19] Keir A. S., Soft switched Tyree-phase inwerter with staggered re sonant revovery system, Patent US5576943, US 1996.
  20. [20] Karyś S., Three-Phase Soft-Switching Inverter with Coupled Inductors, Experimental Results, Bulletin of the Polish Academy of Sciences – Technical Sciences, 59, Zeszyt 4, Warsaw, Grudzień 2011, 535–540.10.2478/v10175-011-0065-3
  21. [21] Zhang H., Chu E., Liu X., Wang Q., Hou L.,, Resonance electrode type three phase soft switch inverter circuit, Patent CN101478258 (A), China 2010.
  22. [22] Sun P., Lai J., Qian H., Yu W., Smith C., Bates J., High Efficiency Three-Phase Soft-Switching Inverter for Electric Vehicle Drives, IEEE Vehicle Power and Propulsion Conference, VPPC ‘09, Dearborn, USA, 7–10 Sept. 2009, 761–766.
  23. [23] Mazgaj W., Rozegnał B., Szular Z., Sposób łagodnego przełączania tranzystorów trójfazowego, dwupoziomowego falownika napięcia oraz układ łagodnego przełączania tranzystorów trójfazowego, dwupoziomowego falownika napięcia, Polish patent PAT.226065, 2016.
  24. [24] Mazgaj W., Rozegnał B., Szular Z., Trójfazowy dwupoziomowy falownik napięcia z łagodnym przełączaniem tranzystorów odpornym na zakłócenia sterowania, Przegląd Elektrotechniczny, R. 92, NR 3/2016, 148–153.10.15199/48.2016.03.36
  25. [25] Mazgaj W., Rozegnał B., Szular Z., A novel soft switching system for three-phase voltage source inverter, Czasopismo Techniczne, 2-E/2016, 3–15.
  26. [26] Mazgaj W., Rozegnał B., Szular Z., Sposób łagodnego przełączania tranzystorów trójfazowego, dwupoziomowego falownika napięcia oraz układ łagodnego przełączania tranzystorów trójfazowego, dwupoziomowego falownika napięcia, Polish additional patent application P. 415597, 2016.
  27. [27] Mazgaj W., Rozegnał. B, Szular Z., Sposób łagodnego przełączania tranzystorów trójfazowego, dwupoziomowego falownika napięcia oraz układ łagodnego przełączania tranzystorów trójfazowego, dwupoziomowego falownika napięcia, Polish additional patent application P. 418673, 2016.
DOI: https://doi.org/10.4467/2353737XCT.18.152.9100 | Journal eISSN: 2353-737X | Journal ISSN: 0011-4561
Language: English
Page range: 141 - 155
Submitted on: Sep 24, 2018
Published on: May 21, 2020
Published by: Cracow University of Technology
In partnership with: Paradigm Publishing Services
Publication frequency: 1 issue per year

© 2020 Bartosz Rozegnał, Zbigniew Szular, Witold Mazgaj, published by Cracow University of Technology
This work is licensed under the Creative Commons Attribution-ShareAlike 4.0 License.