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Active thermal control for reliability improvement in photovoltaic single-phase T-type NPC inverters

  • Youngjong Ko (Department of Electrical Engineering and Industry 4.0 Convergence Bionics Engineering, Pukyong National University) ;
  • Taerim Ryu (Department of Smart ICT Convergence Engineering, Seoul National University of Science and Technology) ;
  • Ui‑Min Choi (Department of Smart ICT Convergence Engineering, Seoul National University of Science and Technology)
  • Received : 2022.11.11
  • Accepted : 2023.03.06
  • Published : 2023.05.20

Abstract

Single-phase T-type neutral point clamped (NPC) inverters have been extensively employed in small scale photovoltaic (PV) systems due to their outstanding power conversion efficiency. However, it is still necessary to further reduce PV energy costs to successfully replace fossil fuels. To do so, the reliability of inverters needs to be improved, which will result in both operation and maintenance cost reductions and the energy production improvement. On the other hand, the T-type NPC inverter suffers from unevenly distributed power losses among power semiconductor devices, which implies that the devices generating the highest losses are quickly aged and fail sooner than other devices. In this context, it is recommended to reduce the thermal stresses of the highest stressed devices. This work proposes a thermally compensated modulation strategy that enables thermal stress reduction. The capability of the proposed method for controlling power losses is theoretically analyzed, and its impact on lifetime is evaluated. Finally, the feasibility of the proposed method is experimentally validated.

Keywords

Acknowledgement

This study was supported by the Research Program funded by the SeoulTech (Seoul National University of Science and Technology).

References

  1. Blakers, A., Stocks, M., Lu, B., Cheng, C., Stocks, R.: Pathway to 100renewable electricity. IEEE J. Photovolt. 9(6), 1828-1833 (2019)  https://doi.org/10.1109/JPHOTOV.2019.2938882
  2. Blakers, A., Stocks, M., Lu, B., Cheng, C.: The observed cost of high penetration solar and wind electricity. Energy 233, 121150 (2021). https://www.sciencedirect.com/science/article/pii/S0360544221013980  1013980
  3. Choi, U.M., Ryu, T.: Comparative evaluation of efficiency and reliability of single-phase five-level npc inverters for photovoltaic systems. IEEE Access 9(120), 120638-120651 (2021)  https://doi.org/10.1109/ACCESS.2021.3108188
  4. Dhara, S., Hota, A., Jain, S., Agarwal, V.: A novel single-phase t-type pv inverter with improved dc utilization. In: 2018 IEEE International Conference on Power Electronics, Drives and Energy Systems (PEDES), pp. 1-5 (2018) 
  5. Schweizer, M., Friedli, T., Kolar, J.W.: Comparative evaluation of advanced three-phase three-level inverter/converter topologies against two-level systems. IEEE Trans. Industr. Electron. 60(12), 5515-5527 (2013)  https://doi.org/10.1109/TIE.2012.2233698
  6. Emon, A.I., Yuan, Z., Mirza, A.B., Deshpande, A., Hassan, M.U., Luo, F.: 1200 v/650 v/160 a sic+si igbt 3l hybrid t-type npc power module with enhanced emi shielding. IEEE Trans. Power Electron. 36(12), 13660-13673 (2021)  https://doi.org/10.1109/TPEL.2021.3089578
  7. Moore, L.M., Post, H.N.: Five years of operating experience at a large, utility-scale photovoltaic generating plant. Progr. Photovolt. Res. Appl. 16(3), 249-259 (2008)  https://doi.org/10.1002/pip.800
  8. Yang, S., Bryant, A., Mawby, P., Xiang, D., Ran, L., Tavner, P.: An industry-based survey of reliability in power electronic converters. IEEE Trans. Ind. Appl. 47(3), 1441-1451 (2011)  https://doi.org/10.1109/TIA.2011.2124436
  9. Baker, N., Liserre, M., Dupont, L., Avenas, Y.: Improved reliability of power modules: a review of online junction temperature measurement methods. IEEE Ind. Electron. Mag. 8(3), 17-27 (2014)  https://doi.org/10.1109/MIE.2014.2312427
  10. Song, Y., Wang, B.: Survey on reliability of power electronic systems. IEEE Trans. Power Electron. 28(1), 591-604 (2013)  https://doi.org/10.1109/TPEL.2012.2192503
  11. Celnikier, Y., Dupont, L., Herve, E., Coquery, G., Benabou, L.: Optimization of wire connections design for power electronics. In: Proceedings of the 22th European Symposium on the reliability of electron devices, failure physics and analysis. Microelectronics Reliability, vol. 51, no. 9, pp. 1892-1897 (2011). https://www.sciencedirect.com/science/article 
  12. Haumann, S., Rudzki, J., Osterwald, F., Becker, M., Eisele, R.: "Novel bonding and joining technology for power electronics - enabler for improved lifetime, reliability, cost and power density. Twenty-Eighth Annual IEEE Appl. Power Electron. Confer. Exposition (APEC) 2013, 622-626 (2013) 
  13. Lutz, J.: Packaging and reliability of power modules. In: CIPS 2014; 8th International Conference on Integrated Power Electronics Systems, pp. 1-8 (2014) 
  14. Wei, L., McGuire, J., Lukaszewski, R.A.: Analysis of pwm frequency control to improve the lifetime of pwm inverter. IEEE Trans. Ind. Appl. 47(2), 922-929 (2011)  https://doi.org/10.1109/TIA.2010.2103391
  15. Tan, P., Xu, T., Gao, F.: General coordinated active thermal control for parallel-connected inverters with switching frequency control. In: 2021 IEEE 1st International Power Electronics and Application Symposium (PEAS), pp. 1-6 (2021) 
  16. Wang, H., Khambadkone, A.M., Yu, X.: Control of parallel connected power converters for low voltage microgrid-part II: dynamic electrothermal modeling. IEEE Trans. Power Electron. 25(12), 2971-2980 (2010)  https://doi.org/10.1109/TPEL.2010.2087394
  17. Zhou, D., Blaabjerg, F., Lau, M., Tonnes, M.: Thermal behavior optimization in multi-mw wind power converter by reactive power circulation. IEEE Trans. Ind. Appl. 50(1), 433-440 (2014)  https://doi.org/10.1109/TIA.2013.2267511
  18. Ma, K., Blaabjerg, F.: Modulation methods for three-level neutralpoint-clamped inverter achieving stress redistribution under moderate modulation index. IEEE Trans. Power Electron. 31(1), 5-10 (2016)  https://doi.org/10.1109/TPEL.2015.2451158
  19. Ko, Y., Kuprat, J., Pugliese, S., Liserre, M.: Modulation strategies for thermal stress control of chb inverters. IEEE Trans. Power Electron. 37(3), 3515-3527 (2022)  https://doi.org/10.1109/TPEL.2021.3117917
  20. Wang, H., Liserre, M., Blaabjerg, F., de Place Rimmen, P., Jacobsen, J. B., Kvisgaard, T., Landkildehus J.: Transitioning to physics-of-failure as a reliability driver in power electronics. IEEE J. Emerg. Selected Topics Power Electron. 2(1), 97-114 (2014)  https://doi.org/10.1109/JESTPE.2013.2290282
  21. Bayerer, R., Herrmann, T., Licht, T., Lutz, J., Feller, M.: Model for power cycling lifetime of igbt modules - various factors influencing lifetime. In: 5th International Conference on Integrated Power Electronics Systems, pp. 1-6 (2008) 
  22. da Silva, T. L., Stein, F. G., Heerdt, J. A., de Novaes, Y. R.: Study of the 5L-T-Type NPC converter for photovoltaic application. In: 2015 IEEE 13th Brazilian Power Electronics Conference and 1st Southern Power Electronics Conference (COBEP/SPEC), pp. 1-6 (2015). https://doi.org/10.1109/COBEP.2015.7420203. 
  23. Sangwongwanich, A., Yang, Y., Sera, D., Blaabjerg, F.: Lifetime evaluation of grid-connected pv inverters considering panel degradation rates and installation sites. IEEE Trans. Power Electron. 33(2), 1225-1236 (2018)  https://doi.org/10.1109/TPEL.2017.2678169
  24. He, J., Sangwongwanich, A., Yang, Y., Iannuzzo, F.: Lifetime evaluation of three-level inverters for 1500-v photovoltaic systems. IEEE J. Emerg. Selected Topics Power Electron. 9(4), 4285-4298 (2021)  https://doi.org/10.1109/JESTPE.2020.3008246
  25. Choi, U.-M., Lee, J.-S.: Single-phase five-level it-type npc inverter with improved efficiency and reliability in photovoltaic systems. IEEE J. Emerg. Selected Topics Power Electron. 10(5), 5226-5239 (2021)  https://doi.org/10.1109/JESTPE.2021.3103252
  26. Miner, M.A.: Cumulative damage in fatigue. J. Appl. Mech. 12(3), A159-A164 (2021). https://doi.org/10.1115/1.4009458