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Estimation of Battery State of Health Using Back Propagation Neural Network

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Estimation of Battery State of Health Using Back

Propagation Neural Network

CHANG Cheng;LIU Zheng-yu;HUANG Ye-wei;WEI De-qi;ZHANG Li

【期刊名称】《计算机辅助绘图设计与制造(英文版)》 【年(卷),期】2014(000)001

【摘要】100 pieces of 26650-type Lithium iron phosphate(LiFePO4) batteries cycled with a fixed charge and discharge rate are tested, and the influence of the battery internal resistance and the instantaneous voltage drop at the start of discharge on the state of health(SOH) is discussed. A back propagation(BP) neural network model using additional momentum is built up to estimate the state of health of Li-ion batteries. The additional 10 pieces are used to verify the feasibility of the proposed method. The results show that the neural network prediction model have a higher accuracy and can be embedded into battery management system(BMS) to estimate SOH of LiFePO4 Li-ion batteries.

【总页数】4页(60-63) 【关键词】

【作者】CHANG Cheng;LIU Zheng-yu;HUANG Ye-wei;WEI De-qi;ZHANG Li

【作者单位】ATECH Automotive Wuhu Co., Ltd, Wuhu 241009, China;School of Machinery and Automobile Engineering, Hefei

Estimation of Battery State of Health Using Back Propagation Neural Network

EstimationofBatteryStateofHealthUsingBackPropagationNeuralNetworkCHANGCheng;LIUZheng-yu;HUANGYe-wei;WEIDe-qi;ZHANGLi【期刊名称】《计算机辅助绘图设计与制造(英文版)》【年(卷),期】20
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