西安交通大学电气工程学院,西安,710049
网络首发:2020-11-10,
纸质出版:2020
移动端阅览
宫明辉 1, 李凌峰 1, 乌江 1, 等. 变论域双模糊控制器在锂电池均衡策略仿真中的应用[J]. 西安交通大学学报, 2020,54(11):158-165.
Application of Variable Universe Double Fuzzy Controller in Simulation of Lithium Battery Equilibrium Strategy[J]. 2020, 54(11): 158-165.
宫明辉 1, 李凌峰 1, 乌江 1, 等. 变论域双模糊控制器在锂电池均衡策略仿真中的应用[J]. 西安交通大学学报, 2020,54(11):158-165. DOI: 10.7652/xjtuxb202011019.
Application of Variable Universe Double Fuzzy Controller in Simulation of Lithium Battery Equilibrium Strategy[J]. 2020, 54(11): 158-165. DOI: 10.7652/xjtuxb202011019.
针对固定阈值均衡策略和传统模糊均衡策略在电池组充放电末期易造成过压或欠压保护误动作而不能全程均衡
并且在电池间存在较大差异时均衡力度不足的问题
提出变论域双模糊控制器(VDF)均衡策略。以NCR18650B型三元锂电池充放电实验数据建立锂电池仿真模型
以单体锂电池的荷电状态(SOC)作为一级模糊控制器输入
将其输出与锂电池工作电流的乘积用于调节二级模糊控制器输出论域; 以单体锂电池SOC与电池组平均SOC的差及其变化率作为二级模糊控制器输入
其输出作为均衡电流; 以电池组内单体电池间SOC极差表征电池间的不一致性
以极差首次收敛至0.05确定均衡时间。Simulink仿真结果表明:VDF均衡策略可以有效降低电压保护误动作; 与传统模糊均衡策略相比
在恒流充放电工况和自定义动态应力测试工况下
VDF均衡策略均衡速度可以提高30%以上; 在电池间存在较大差异时
均衡结束后VDF均衡策略的一致性可以提高20%以上。
The fixed threshold equalization strategy and the traditional fuzzy equalization strategy usually result in overvoltage or undervoltage protection to malfunction at the end of the battery pack charge and discharge
and it is difficult to be fully balanced
because a large difference between the batteries makes the balance insufficient. A variable universe double fuzzy controller(VDF)equalization strategy is thus proposed. The lithium battery simulation model is established according to the experimental data of charged and discharged NCR18650B ternary lithium battery. The state of charge(SOC)of the single lithium battery is used as the input of the first-level fuzzy controller
and its output multiplied by the lithium battery working current value is used to adjust the output domain of the second-level fuzzy controller; the difference between the SOC of a single lithium battery and the average SOC of the battery pack and its rate of change are used as the input of the second-level fuzzy controller
and its output is used as the equalizing current; the extreme difference of SOC between the single cells in the battery pack represents the inconsistency
and the equilibrium time is determined by the first convergence of the extreme difference to 0.05. The simulation results from Simulink show that the VDF equalization strategy effectively reduces the voltage protection malfunction. With constant charge and discharge current and in custom dynamic stress test(DST)
VDF equalization strategy is compared with the traditional fuzzy equalization strategy
and the results show that the equalization rate increases by above 30%
and as a large difference exists between the batteries
the consistency increases by above 20% after the end of the equalization.
杨俊, 张希, 高一钊. 锂电池电化学传递函数模型建模及参数辨识 [J]. 电源技术, 2019, 43(7): 1132-1135.
YANG Jun, ZHANG Xi, GAO Yizhao. Modeling and parameter identification of electrochemical transfer function model for lithium battery [J]. Chinese Journal of Power Sources, 2019, 43(7): 1132-1135.
WANG Peiyao, ZHAO Bangchuan, BAI Jin, et al. Rationally designed three-dimensional porous NiCo2N@C reticular structure for high-performance Li-ion batteries [J]. Scripta Materialia, 2020, 186: 104-108.
续丹, 毛景禄, 王斌, 等. 分布式电池电源模块储能系统的荷电状态均衡控制 [J]. 西安交通大学学报, 2019, 53(10): 79-85.
XU Dan, MAO Jinglu, WANG Bin, et al. A balance control scheme of SOC for power module energy storage systems with distributed batteries [J]. Journal of Xi’an Jiaotong University, 2019, 53(10): 79-85.
刘倩怡, 徐顺刚, 许建平, 等. 一种基于推挽变换器的模块化电池均衡电路 [J]. 电工技术学报, 2018, 33(14): 3213-3221.
LIU Qianyi, XU Shungang, XU Jianping, et al. A modularized equalizer for series-connected batteries based on push-pull converter [J]. Transactions of China Electrotechnical Society, 2018, 33(14): 3213-3221.
QI Guoguang, LI Xiangjun, YANG Daiming. A control strategy for dynamic balancing of lithium iron phosphate battery based on the performance of cell voltage [C]∥Proceedings of the 2014 IEEE Conference and Expo Transportation Electrification Asia-Pacific(ITEC Asia-Pacific). Piscataway, NJ, USA: IEEE, 2014: 1-5.
YARLAGADDA S, HARTLEY T T, HUSAIN I. A battery management system using an active charge equalization technique based on a DC/DC converter topology [J]. IEEE Transactions on Industry Applications, 2013, 49(6): 2720-2729.
EINHORN M, ROESSLER W, FLEIG J. Improved performance of serially connected Li-ion batteries with active cell balancing in electric vehicles [J]. IEEE Transactions on Vehicular Technology, 2011, 60(6): 2448-2457.
刘征宇, 马亚东, 孙庆, 等. 基于动态模糊阈值的电池组均衡策略优化 [J]. 中国机械工程, 2017, 28(5): 624-629.
LIU Zhengyu, MA Yadong, SUN Qing, et al. Optimization of battery equalization strategies based on dynamic fuzzy threshold [J]. China Mechanical Engineering, 2017, 28(5): 624-629.
滕力, 李媛媛, 陈少棠, 等. 基于能量转换策略的锂电池组均衡技术研究 [J]. 电源技术, 2020, 44(1): 45-47.
TENG Li, LI Yuanyuan, CHEN Shaotang, et al. Research on lithium battery pack equalization technology based on energy conversion strategy [J]. Chinese Journal of Power Sources, 2020, 44(1): 45-47.
秦嘉琦, 冉峰, 徐浩, 等. 一种基于模糊控制的锂电池均衡系统的研究 [J]. 工业控制计算机, 2016, 29(7): 32-33.
QIN Jiaqi, RAN Feng, XU Hao, et al. A research on lithium battery balance system with fuzzy control [J]. Industrial Control Computer, 2016, 29(7): 32-33.
MEYER L, ICHALAL D, VIGNERON V. An unknown input extended Kalman filter for nonlinear stochastic systems [J]. European Journal of Control, 2020
赵希梅, 武文斌, 朱国昕. 基于扩展卡尔曼滤波器的高速永磁直线同步电机扰动前馈补偿 [J]. 电工技术学报, 2018, 33(7): 1516-1522.
ZHAO Ximei, WU Wenbin, ZHU Guoxin. Disturbance feed-forward compensation for high-speed permanent magnet linear synchronous motor based on extended Kalman filter [J]. Transactions of China Electrotechnical Society, 2018, 33(7): 1516-1522.
张振宇, 汪光森, 聂世雄, 等. 脉冲大倍率放电条件下磷酸铁锂电池荷电状态估计 [J]. 电工技术学报, 2019, 34(8): 1769-1779.
ZHANG Zhenyu, WANG Guangsen, NIE Shixiong, et al. State of charge estimation of LiFePO4 battery under the condition of high rate pulsed discharge [J]. Transactions of China Electrotechnical Society, 2019, 34(8): 1769-1779.
张志勇, 张刘铸, 黄彩霞, 等. 锂离子电池组模型参数的辨识 [J]. 电池, 2019, 49(1): 25-27.
ZHANG Zhiyong, ZHANG Liuzhu, HUANG Caixia, et al. Identification of model parameter for Li-ion battery pack [J]. Battery Bimonthly, 2019, 49(1): 25-27.
PIROOZ M, FATEH M M. Impedance fuzzy control of an active aircraft landing gear system [J]. International Journal of Dynamics and Control, 2019, 7(4): 1392-1403.
温正, 孙华克. MATLAB智能算法 [M]. 北京: 清华大学出版社, 2017: 198-200.
曾珂, 徐文立, 张乃尧. 特定Mamdani模糊系统的通用逼近性 [J]. 控制与决策, 2000, 15(4): 435-438.
ZENG Ke, XU Wenli, ZHANG Naiyao. Universal approximation of special Mamdani fuzzy systems [J]. Control and Decision, 2000, 15(4): 435-438.
GAO Hongliang, ZHAN Xisheng, YUAN Yiran, et al. Mitigation of low frequency oscillations in power systems based on Mamdani fuzzy inference [J]. Transactions of the Institute of Measurement and Control, 2019, 41(12): 3477-3489.
邱斌斌, 王智弘, 李程, 等. 电池组用荷电状态均衡充电模糊控制策略 [J]. 电源学报, 2015, 13(2): 113-120.
QIU Binbin, WANG Zhihong, LI Cheng, et al. Fuzzy control strategy for battery equalization charge based on state of charge [J]. Journal of Power Supply, 2015, 13(2): 113-120.
0
浏览量
4
下载量
3
CSCD
关联资源
相关文章
相关作者
相关机构
京公网安备11010802024621