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基于在线参数辨识和ASR-UKF的锂离子电容SOC估计
引用本文:吕甜,张雪霞.基于在线参数辨识和ASR-UKF的锂离子电容SOC估计[J].电源技术,2021,45(1):27-30,55.
作者姓名:吕甜  张雪霞
作者单位:西南交通大学唐山研究生院,河北唐山063000;西南交通大学唐山研究生院,河北唐山063000
摘    要:以一种新型混合型超级电容器——锂离子电容为研究对象,针对其在混合动力机车应用中的SOC估计问题,建立锂离子电容的二阶等效电路模型,采用带遗忘因子的递推最小二乘法(FFRLS)和自适应平方根无迹卡尔曼滤波算法(ASR-UKF)交叉联合的方法对锂离子超级电容的荷电状态(SOC)进行估算.FFRLS可以对动态变化的模型参数进...

关 键 词:锂离子电容  在线参数辨识  联合算法  SOC估计

State of charge co-estimation of lithium-ion capacitor based on online parameter identification and ASR-UKF
LV Tian,ZHANG Xue-xia.State of charge co-estimation of lithium-ion capacitor based on online parameter identification and ASR-UKF[J].Chinese Journal of Power Sources,2021,45(1):27-30,55.
Authors:LV Tian  ZHANG Xue-xia
Affiliation:(Graduate School of Tangshan,Southwest Jiaotong University,Tangshan Hebei 063000,China)
Abstract:A new type of supercapacitor,lithium-ion capacitor(LIC),was used as the research object.Aiming at the state of charge(SOC)estimation problem of LIC in hybrid electric vehicle application,a second-order equivalent circuit model of lithium-ion capacitors was established.The forgetting factor recursive least-squares method(FFRLS)and adaptive square root unscented Kalman filter algorithm(ASR-UKF)co-estimation algorithm was used to estimate the LIC SOC.FFRLS could perform real-time and accurate online identification of dynamically changing model parameters.Based on the accurate model parameters,the ASR-UKF was used to update SOC,eliminating errors caused by unknown noise in the system.The square root of the covariance instead of the covariance matrix was used to perform the iterative operation to overcome the problem of filtering divergence,obtaining the optimal estimation value of SOC.The effectiveness of the proposed method was evaluated through experiments under hybrid pulse power characteristic conditions and simulation conditions in the laboratory environment.
Keywords:lithium-ion capacitor  online parameter identification  co-estimation algorithm  SOC estimation
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