广东工业大学学报 ›› 2020, Vol. 37 ›› Issue (06): 78-84.doi: 10.12052/gdutxb.200035

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基于STM32和BQ76940的电池管理系统设计

林靖雄, 李振鹏, 叶远茂   

  1. 广东工业大学 自动化学院,广东 广州 510006
  • 收稿日期:2020-03-02 出版日期:2020-11-02 发布日期:2020-11-21
  • 通信作者: 叶远茂(1984-),男,教授,主要研究方向为电力电子和电池管理,E-mail:eeyeym@gdut.edu.cn E-mail:eeyeym@gdut.edu.cn
  • 作者简介:林靖雄(1996-),男,硕士研究生,主要研究方向为电池管理技术
  • 基金资助:
    国家自然科学基金资助项目(51907033);广东省自然科学基金资助项目(2017A030313316)

Design of Battery Management System Based on STM32 and BQ76940

Lin Jing-xiong, Li Zhen-peng, Ye Yuan-mao   

  1. School of Automation, Guangdong University of Technology, Guangzhou 510006, China
  • Received:2020-03-02 Online:2020-11-02 Published:2020-11-21

摘要: 利用STM32单片机设计了一种电池管理系统,实现15节串联锂电池的有效管理。采用BQ76940电池监控芯片设计检测单元,并基于开关电容的电力、电子、电路设计主动均衡单元。系统还利用安时积分法和开路电压法估算电池的荷电状态(State of Charge,SOC),以及利用电池等效模型和通过参数辨识的方法实现在线检测电池的内阻增大性失效故障。介绍了该电池管理系统软硬件的设计方法,并对电池管理系统中的检测单元、均衡单元和内阻辨识进行了测试。实验结果表明:该电池管理系统能够采集电池的电压、电流和温度,能对电压不一致的单体电池进行均衡,并且有效辨识出电池的内阻,具有采样精度高、均衡效果好和能在线检测电池内阻等优点。

关键词: 电池管理系统, 主动均衡, STM32, BQ76940

Abstract: A battery management system (BMS) is designed to manage 15 lithium battery cells by using STM32 microcomputer. Firstly, a battery monitoring chip BQ76940 is used to design measurement unit, a switched-capacitor-based circuit is used to design active equalization unit. Then, the SOC of battery is estimated by the current integration method and open-circuit voltage method, while the internal resistance augmentation failure of battery is detected on-line by battery equivalent model and parameter identification method. The design of both hardware and software of the BMS is introduced in detail. And experimental results for measurement unit, equalization unit and internal resistance identification are provided. The results show that the battery management system can collect the voltage, current and temperature of the battery, balance the single battery with different voltage, and effectively identify the internal resistance of the battery, and it has the advantages of high measurement accuracy, well equalization performance and online detection of the internal resistance for batteries.

Key words: battery management system, active equalization, STM32, BQ76940

中图分类号: 

  • TM911
[1] 卢兰光, 李建秋, 华剑锋, 等. 电动汽车锂离子电池管理系统的关键技术[J]. 科技导报, 2016, 34(6): 39-51.
LU L G, LI J Q, HUA J F, et al. A review on the key issues of the lithium-ion battery management [J]. Science & Technology Review, 2016, 34(6): 39-51.
[2] 朱灿, 林豪慧, 向林芳. 新能源汽车领域研究进展及前沿动态:基于Citespace Ⅲ知识图谱分析[J]. 广东工业大学学报, 2020, 37(2): 45-52.
ZHU C, LIN H H, XIANG L F. Research process and forward trends of new energy vehicles based on the knowledge map analysis of Citespace Ⅲ [J]. Journal of Guangdong University of Technology, 2020, 37(2): 45-52.
[3] 李波, 张永生, 唐小晴. 电池组一致性影响因素分析[J]. 电池, 2019, 49(4): 312-315.
LI B, ZHANG Y S, TANG X Q. Analysis of factors affecting for battery pack consistency [J]. Battery Bimonthly, 2019, 49(4): 312-315.
[4] CHENG K W E, DIVAKAR B P, WU H J, et al. Battery-management system (BMS) and SOC development for electrical vehicles [J]. IEEE Transactions on Vehicular Technology, 2011, 60(1): 76-88.
[5] 周荔丹, 蔡东鹏, 姚钢, 等. 电池管理系统关键技术综述[J]. 电池, 2019, 49(4): 338-341.
ZHOU L D, CAI D P, YAO G, et al. Summation of key technology of battery management system [J]. Battery Bimonthly, 2019, 49(4): 338-341.
[6] 张国庆, 马莉, 张海燕. HEV电池的产热行为及电池热管理技术[J]. 广东工业大学学报, 2008, 25(1): 1-4.
ZHANG G Q, MA L, ZHANG H Y. Heat generation behavior of HEV battery and its thermal management technology [J]. Journal of Guangdong University of Technology, 2008, 25(1): 1-4.
[7] 周俊赵, 张向文. 动力电池状态参数监测系统的设计与实现[J]. 电测与仪表, 2014, 51(16): 112-116.
ZHOU J Z, ZHANG X W. Design and realization of the parameter monitoring system for the power battery state [J]. Electrical Measurement & Instrumentation, 2014, 51(16): 112-116.
[8] 党晓圆, 汪纪锋, 马冬梅. 动力电池管理系统数据采集模块设计[J]. 电源技术, 2017, 41(8): 1179-1182.
DANG X Y, WANG J F, MA D M. Design of data acquisition module for power battery management system [J]. Chinese Journal of Power Sources, 2017, 41(8): 1179-1182.
[9] 李唐娟, 田俊成, 金晶龙. 多串锂离子电池管理系统[J]. 电源技术, 2019, 43(1): 81-83.
LI T J, TIAN J C, JIN J L. Management system of multi string Li-ion battery [J]. Chinese Journal of Power Sources, 2019, 43(1): 81-83.
[10] 谢冬雪, 唐祯安, 蔡泓, 等. 基于STM32和LTC6804的电池管理系统设计[J]. 仪表技术与传感器, 2018(10): 63-67.
XIE D X, TANG Z A, CAI H, et al. Design of battery management system based on STM32 and LTC6804 [J]. Instrument Technique and Sensor, 2018(10): 63-67.
[11] KIM C H, KIM M Y, MOON G W. A modularized charge equalizer using a battery monitoring IC for series-connected Li-ion battery strings in electric vehicles [J]. IEEE Transactions on Power Electronics, 2013, 28(8): 3779-3787.
[12] 罗军, 牛哲荟, 田刚领, 等. 储能电池组的均衡性研究[J]. 电池, 2019, 49(5): 410-413.
LUO J, NIU Z H, TIAN G L, et al. Equalization research of energy storage battery pack [J]. Battery Bimonthly, 2019, 49(5): 410-413.
[13] 李演明, 陈忠会, 杨晓冰, 等. 一种用于低速电动汽车的锂电池管理系统研究[J]. 电力电子技术, 2018, 52(12): 61-64.
LI Y M, CHEN Z H, YANG X B, et al. Research on a lithium battery management system for low speed electric vehicles [J]. Power Electronics, 2018, 52(12): 61-64.
[14] YE Y M, CHENG K W E, FONG Y C, et al. Topology, modeling, and design of switched-capacitor-based cell balancing systems and their balancing exploration [J]. IEEE Transactions on Power Electronics, 2017, 32(6): 4444-4454.
[15] 戴海峰, 魏学哲, 孙泽昌, 等. 电动汽车用锂离子动力电池电感主动均衡系统[J]. 同济大学学报(自然科学版), 2013, 41(10): 1547-1553.
DAI H F, WEI X Z, SUN Z C, et al. Inductance-based active balancing of lithium-ion batteries for EV applications [J]. Journal of Tongji University (Natural Science), 2013, 41(10): 1547-1553.
[16] LEE K M, CHUNG Y C, SUNG C H, et al. Active cell balancing of Li-ion batteries using LC series resonant circuit [J]. IEEE Transactions on Industrial Electronics, 2015, 62(9): 5491-5501.
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