基于桥接电路的锂离子电池健康估计方法研究

Research on Health Estimation Method of Lithium-ion Battery Based on Bridging Circuits

  • 摘要: 随着锂离子电池的广泛使用,对其健康状态的快速诊断备受关注。针对传统阻抗诊断方法无法在线诊断电池组中电池单体健康状态的问题,提出基于桥接电路的锂离子电池健康估计方法。利用桥接电路的对称性和平衡性,同时激励两个电池串上的电池单体,简化系统的同时解决了传统方法中激励设备耐压要求严苛、易受负载干扰等难题。基于参考电池的交流电压响应实现了对桥接电路中的电池单体内阻和激励电流分流的估算,并通过仿真和试验验证了其有效性。为提升健康状态的估计精度,采用弛豫时间分布方法解耦电池内部极化反应,筛选出相应的特征频点。试验表明,该特征频点在电池级联后仍保持稳定,且电力电子变流器对特征频点下的激励分流几乎无影响。基于桥接电路在不同充电速率下进行了试验验证,结果证实了所提方法的有效性,根据高频段下极化内阻的内阻增长量实现了对电池组中电池单体健康状态的准确在线估算。

     

    Abstract: The widespread use of lithium-ion batteries has sparked interest in swiftly assessing their state of health. Aiming at the problem that traditional impedance diagnostic methods cannot diagnose the state of health of battery cells in a battery pack online, a health estimation method for lithium-ion batteries based on bridging circuits is proposed. The symmetry and balance of the bridging circuit stimulate the battery cells on two strings simultaneously, simplifying the system and solving the harsh voltage resistance requirements of the excitation equipment, which are easily interfered with by the load in the traditional method. Based on the AC voltage response of the reference battery, the estimation of the internal resistance of the battery cells and the excitation current shunt in the bridging circuit is realized, and its validity is verified by simulation and experiment. To enhance the accuracy of the state of health estimation, the relaxation time distribution method is used to decouple the internal polarization response of the battery, and the corresponding characteristic frequency points are screened out. Experiments show that the characteristic frequency points are not changed after the battery is cascaded into a group, and the power electronic converter minimally impacts the excitation shunt at the characteristic frequency point. Experimental validation is conducted at different charging rates using the bridge circuit, and the results confirm the effectiveness of the proposed method, which enables accurate online estimation of the state of health of individual cells in a battery pack based on the growth of the internal resistance of polarization in the high-frequency band.

     

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