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Online estimation of state of power for lithium-ion battery considering the battery aging

机译:考虑电池老化的在线估算锂离子电池的电量

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Precise Estimation of battery state of power (SoP) is crucial for designing the energy management strategy of power system in electric vehicles (EVs) and hybrid electric vehicles (HEVs). In this paper, a novel online model-based estimation algorithm of SoP is proposed for the lithium-ion battery considering the monotonicity of output power and the influence of battery state of health (SoH). Genetic algorithm (GA) is employed to identify the parameters of battery for this algorithm. The performance of the algorithm is experimentally validated by batteries of different aging states with UDDS (Urban Dynamometer Driving Schedule) profile. Based on the results, the rationality of the algorithm is analyzed and the relationship between SoP and SoH is investigated. It is noted that SoP has close relationship with the internal resistance during the aging of the battery.
机译:精确估算电源的电池状态(SoP)对于设计电动汽车(EV)和混合电动汽车(HEV)的电力系统能源管理策略至关重要。考虑到输出功率的单调性和电池健康状态(SoH)的影响,提出了一种基于在线模型的新型SoP在线估计算法。遗传算法(GA)用于识别该算法的电池参数。该算法的性能通过具有UDDS(城市测功机行驶时间表)配置文件的不同老化状态的电池进行了实验验证。在此基础上,分析了算法的合理性,并研究了SoP和SoH之间的关系。需要注意的是,SoP与电池老化期间的内部电阻密切相关。

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