DOI QR코드

DOI QR Code

Multiobjective design optimization of transformers for battery cell balancing converters considering bidirectional power flow

  • Tae‑Yeong Im (Department of Electrical, Electronic and Computer Engineering, University of Ulsan) ;
  • Nguyen‑Anh Nguyen (Department of Electrical, Electronic and Computer Engineering, University of Ulsan) ;
  • Sung‑Jin Choi (Department of Electrical, Electronic and Computer Engineering, University of Ulsan)
  • 투고 : 2023.07.26
  • 심사 : 2023.09.20
  • 발행 : 2023.12.20

초록

Owing to an increase in the demand for bidirectional applications such as battery energy storage systems (BESS), isolated bidirectional converters have become more popular. However, conventional transformer design methods such as the area product and core geometrical coefficient methods, consider only one operating point. Thus, these do not always guarantee high efficiency if there are any changes in the operation point of the converter. Accordingly, this paper proposes a multiobjective optimized transformer design algorithm that considers the overall energy loss of the bidirectional operation of the converter. The proposed algorithm adopts a nondominated sorting genetic algorithm-II (NSGA-II) effective core cross-sectional area and turn ratios as main variables. A 20W prototype converter with a transformer for 20-series lithium-ion cell balancing purposes has been built for verification. The results show that the proposed algorithm dissipates lower power loss during the charge and discharge mode of operations with a smaller volume than the conventional method.

키워드

과제정보

This work was supported by the Technology Development Program (S3327193) funded by the Ministry of SMEs and Startups (MSS, Korea.) and "Regional Innovation Strategy (RIS)" through the National Research Foundation of Korea (NRF) funded by the Ministry of Education (MOE) (2021RIS-003).

참고문헌

  1. Tran, V.T., Islam, M.R., Muttaqi, K.M., Sutanto, D.: An efficient energy management approach for a solar-powered EV battery charging facility to support distribution grids. IEEE Trans. Ind. Appl. 55(6), 6517-6526 (2019) https://doi.org/10.1109/TIA.2019.2940923
  2. Boulanger, A.G., Chu, A.C., Maxx, S., Waltz, D.L.: Vehicle electrification: status and issues. Proc. IEEE 99(6), 1116-1138 (2011) https://doi.org/10.1109/JPROC.2011.2112750
  3. Sabillon Antunez, C., Franco, J.F., Rider, M.J., Romero, R.: A new methodology for the optimal charging coordination of electric vehicles considering vehicle-to-grid technology. IEEE Trans. Sustain Energy. 7(2), 596-607 (2016) https://doi.org/10.1109/TSTE.2015.2505502
  4. Fan, H., Li, H.: High-frequency transformer isolated bidirectional DC-DC converter modules with high efficiency over wide load range for 20 kVA solid-state transformer. IEEE Trans. Power Electron. 26(12), 3599-3608 (2011) https://doi.org/10.1109/TPEL.2011.2160652
  5. Mohan, N., Undeland, T.M., Robbins, W.P.: Power Electronics: Converters, Applications, and Design, 3rd edn. John Wiley and Sons (2002)
  6. Erickson, R.W., Maksimovic, D.: Fundamentals of Power Electronics. Kluwer, Norwell (2001)
  7. Nijende, H., Frohleke, N., Bocker, J.: Optimized size design of integrated magnetic components using area product approach. 2005 European Conference on Power Electronics and Applications, Dresden, Germany, 10, (2005)
  8. Wu, H.H., Gilchrist, A., Sealy, K.D., Bronson, D.: A high efficiency 5 kW inductive charger for EVS using dual side control. IEEE Trans. Ind. Inf. 8(3), 585-595 (2012) https://doi.org/10.1109/TII.2012.2192283
  9. Ta, L.A.D., Dao, N.D., Lee, D.-C.: High-efficiency hybrid LLC resonant converter for on-board chargers of plug-in electric vehicles. IEEE Trans. Power Electron. 35(8), 8324-8334 (2020) https://doi.org/10.1109/TPEL.2020.2968084
  10. Zhao, B., Song, Q., Liu, W., Sun, Y.: A synthetic discrete design methodology of high-frequency isolated bidirectional DC/DC converter for grid-connected battery energy storage system using advanced components. IEEE Trans. Ind. Electron. 61(10), 5402-5410 (2014) https://doi.org/10.1109/TIE.2014.2304915
  11. Kim, H.-S., Ryu, M.-H., Baek, J.-W., Jung, J.-H.: High-efficiency isolated bidirectional AC-DC converter for a DC distribution system. IEEE Trans. Power Electron. 28(4), 1642-1654 (2013) https://doi.org/10.1109/TPEL.2012.2213347
  12. Wai, R.-J., Duan, R.-Y.: High-efficiency bidirectional converter for power sources with great voltage diversity. IEEE Trans. Power Electron. 22(5), 1986-1996 (2007)
  13. La, P.-H., Choi, S.-J.: Direct cell-to-cell equalizer for series battery string using switch-matrix single-capacitor equalizer and optimal pairing algorithm. IEEE Trans. Power Electron. 37(7), 8625-8639 (2022) https://doi.org/10.1109/TPEL.2022.3147842
  14. Nguyen, N.A., La, P.H., Choi, S.J.: Coordinated operation algorithm of pack-chargers and cell-equalizers for SOC adjustment in second-life batteries. J. Power Electron 22, 105-115 (2022) https://doi.org/10.1007/s43236-021-00342-5
  15. McLyman, C.W.T.: Transformer and Inductor Design Handbook, 4th edn. CRC Press (2011)
  16. De Nardo, A., Di Capua, G., Femia, N.: Transformer design for isolated switching converters based on geometric form factors of magnetic cores. IEEE Trans. Ind. Electron. 60(6), 2158-2166 (2013) https://doi.org/10.1109/TIE.2012.2193853
  17. Deb, K., Pratap, A., Agarwal, S., Meyarivan, T.: A fast and elitist multiobjective genetic algorithm: NSGA-II. IEEE Trans. Evol. Comput.Evol. Comput. 6(2), 182-197 (2002) https://doi.org/10.1109/4235.996017
  18. Venkatachalam, K., Sullivan, C.R., Abdallah, T., Tacca, H.: Accurate prediction of ferrite core loss with nonsinusoidal waveforms using only Steinmetz parameters. Proc. IEEE Workshop Comput. Power Electron. 2, 36-41 (2002)
  19. Allmeling, J., Hammer, W., Schonberger, J.: Transient simulation of magnetic circuits using the permeance-capacitance analogy. 2012 IEEE 13th Workshop on Control and Modeling for Power Electronics (COMPEL), 1-6, (2012)
  20. Luo, M., Dujic, D., Allmeling, J.: Modeling frequency independent hysteresis effects of ferrite core materials using permeance-capacitance analogy for system-level circuit simulations. IEEE Trans. Power Electron. 33(12), 10055-10070 (2018) https://doi.org/10.1109/TPEL.2018.2809704