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Part of the book series: Lecture Notes in Electrical Engineering ((LNEE,volume 1016))

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Abstract

Lithium-ion battery is widely used as a power source in electric vehicles and battery energy storage systems due to its high energy density, long cycle life and low self-discharge rate. Meanwhile, the high inconsistency of lithium-ion battery pack has also attract attention. In this paper, introduce the balanced topology based on various energy storage electronic devices what advantages and disadvantages. The ideas and methods of selecting and improving the balanced topology under different circumstances are compared and analyzed. Finally, combined with the development needs of battery energy storage system in the future, propose the idea of improving the balanced topology.

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References

  1. Zhou, X., Fan, Z., Ma, Y., Gao, Z., Zhang, X.: Research review on energy storage technology in power grid. In: IEEE International Conference on Mechatronics and Automation (ICMA), pp. 155–161. IEEE, Changchun (2018)

    Google Scholar 

  2. Zhang, Y.L., Hong, Y., Choi, K.: Optimal energy-dissipation control for SOC based balancing in series connected Lithium-ion battery packs. Multimed. Tools Appl. 79(23–24), 15923–15944 (2018). https://doi.org/10.1007/s11042-018-6655-4

    Article  Google Scholar 

  3. Wang, L., Shan, E.: Active passive balance strategy of lithium battery pack based on dynamic double threshold. J. Electr. Mach. Control 26(1), 126–136 (2022). (in Chinese)

    Google Scholar 

  4. Shan, E., Wang, L.: Active passive balance strategy of high precision lithium battery based on double threshold. Electric Drive 51(11), 40–47 (2021). (in Chinese)

    Google Scholar 

  5. Ghaeminezhad, N., Ouyang, Q., Hu, X.S., Xu, G.T., Wang, Z.S.: Active cell equalization topologies analysis for battery packs: a systematic review. IEEE Trans. Power Electron. 36(8), 9119–9135 (2021)

    Article  Google Scholar 

  6. Shang, Y., Zhang, Q., Cui, N., Duan, B., Zhang, C.: An optimized mesh-structured switched-capacitor equalizer for lithium-ion battery strings. IEEE Trans. Trans. Electrif. 5(1), 252–261 (2019)

    Google Scholar 

  7. Yuanmao, Y., Cheng, K.W.E., Yeung, Y.P.B.: Zero-current switching switched-capacitor zero-voltage-gap automatic equalization system for series battery string. IEEE Trans. Power Electron. 27(7), 3234–3242 (2012)

    Google Scholar 

  8. Conway, T.: An isolated active balancing and monitoring system for lithium ion battery stacks utilizing a single transformer per cell. IEEE Trans. Power Electron. 36(4), 3727–3734 (2021)

    Article  Google Scholar 

  9. Liu, X.T., Sun, Y.F., He, Y., Zheng, X.X., Zeng, G.J., Zhang, J.F.: Battery equalization by fly-back transformers with inductance, capacitance and diode absorbing circuits. Energies 10(10), 1482 (2017)

    Article  Google Scholar 

  10. Li, Y., Xu, J., Mei, X., Wang, J.: A unitized multiwinding transformer-based equalization method for series-connected battery strings. IEEE Trans. Power Electron. 34(12), 11981–11989

    Google Scholar 

  11. Kim, T.H., Park, N.J., Kim, R.Y.: Low cost multiple zero voltage/zero current switching battery equalization circuit with single soft-switching resonant cell. In: IEEE Vehicle Power and Propulsion Conference, pp. 419–424. IEEE, Seoul (2012)

    Google Scholar 

  12. Li, K., Zong, X., Liu, Q.: Design of an active battery equalization circuit with DC-DC converter. In: 3rd Asia Energy and Electrical Engineering Symposium (AEEES), pp. 863–866. IEEE, Chengdu (2021)

    Google Scholar 

  13. Liu, Q., Gao, Y.: An equalization management systems for lithium-ion batteries in energy storage system. In: International Conference on Mechatronic Sciences, Electric Engineering and Computer (MEC), pp. 3355–3358. IEEE, Shenyang (2013)

    Google Scholar 

  14. Rui, L., Qiang, D., Wang, L.: Energy bus-based equalization scheme with bi-directional isolated Cuk equalizer for series connected battery strings. In: Proceedings of 2015 IEEE Applied Power Electronics Conference and Exposition, pp. IEEE, Charlotte (2015)

    Google Scholar 

  15. Van, C.N., Vinh, T.N., Ngo, M.D., Ahn, S.J.: Optimal SoC balancing control for lithium-ion battery cells connected in series. Energies 14(10), 2875 (2021)

    Google Scholar 

  16. Moghaddam, A.F., Bossche, A.V.D.: A battery equalization technique based on Ćuk converter balancing for lithium ion batteries. In: 8th International Conference on Modern Circuits and Systems Technologies (MOCAST), pp. 1–4. IEEE, Greece (2019)

    Google Scholar 

  17. Hsieh, Y.C., Moo, C.S., Tsai, I.S.: Dynamic charge equalization for series-connected batteries. In: IEEE International Conference on Industrial Technology, pp. 444–449. IEEE, Bangkok (2002)

    Google Scholar 

  18. Wang, Y.X., Zhong, H., He, H.: Bidirectional boost converter via adaptive sliding-mode control used for battery active equalization. In: IEEE Vehicle Power and Propulsion Conference (VPPC), pp. 1–5. IEEE, Hanoi (2019)

    Google Scholar 

  19. Uno, M., Kukita, A.: Single-switch voltage equalizer using multistacked buck–boost converters for partially shaded photovoltaic modules. IEEE Trans. Power Electron. 30(6), 3091–3105 (2015)

    Google Scholar 

  20. Dai, S., Liu, R., Li, Y., Shan, Z., Wei, Y.: Analysis of improved buck-boost converter based on graph Theory. In: IEEE 4th International Future Energy Electronics Conference, pp. 1–4. IEEE, Singapore (2019)

    Google Scholar 

  21. Wang, Y., Song, H., Xu, D.: Soft-switching bidirectional DC/DC converter with an LCLC resonant circuit. IEEE J. Emerg. Selected Top. Power Electron. 7(2), 851–864 (2019)

    Google Scholar 

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Acknowledgement

This work is supported by National Natural Science Foundation of China (41601399).

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Correspondence to Yu Qin .

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Tu, L., Qin, Y. (2023). Balancing Topology Research of Lithium-Ion Battery Pack. In: Sun, F., Yang, Q., Dahlquist, E., Xiong, R. (eds) The Proceedings of the 5th International Conference on Energy Storage and Intelligent Vehicles (ICEIV 2022). ICEIV 2022. Lecture Notes in Electrical Engineering, vol 1016. Springer, Singapore. https://doi.org/10.1007/978-981-99-1027-4_42

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  • DOI: https://doi.org/10.1007/978-981-99-1027-4_42

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  • Publisher Name: Springer, Singapore

  • Print ISBN: 978-981-99-1026-7

  • Online ISBN: 978-981-99-1027-4

  • eBook Packages: EngineeringEngineering (R0)

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