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Modeling of the cranking and charging processes of conventional valve regulated lead acid (VRLA) batteries in micro-hybrid applications

机译:微混合动力应用中常规阀控铅酸(VRLA)电池的起动和充电过程建模

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The cranking and charging processes of a VRLA battery during stop-start cycling in micro-hybrid applications were simulated by one dimensional mathematical modeling, to study the formation and distribution of lead sulfate across the cell and analyze the resulting effect on battery aging. The battery focused on in this study represents a conventional VRLA battery without any carbon additives in the electrodes or carbon-based electrodes. The modeling results were validated against experimental data and used to analyze the "sulfation" of negative electrodes - the common failure mode of lead acid batteries under high-rate partial state of charge (HRPSoC) cycling. The analyses were based on two aging mechanisms proposed in previous studies and the predictions showed consistency with the previous teardown observations that the sulfate formed at the negative interface is more difficult to be converted back than anywhere else in the electrodes. The impact of cranking pulses during stop-start cycling on current density and the corresponding sulfate layer production was estimated. The effects of some critical design parameters on sulfate formation, distribution and aging over cycling were investigated, which provided guidelines for developing models and designing of VRLA batteries in micro-hybrid applications.
机译:通过一维数学模型模拟了微混合动力应用中VRLA电池在启停循环过程中的启动和充电过程,研究了硫酸铅在电池中的形成和分布,并分析了其对电池老化的影响。本研究重点研究的电池代表了传统的VRLA电池,电极或碳基电极中没有任何碳添加剂。建模结果已针对实验数据进行了验证,并用于分析负极的“硫酸盐化”-铅酸电池在高速率部分荷电状态(HRPSoC)循环下的常见故障模式。该分析基于先前研究中提出的两种老化机制,并且预测结果与先前的拆解观察结果一致,即在负极界面上形成的硫酸盐比在电极中的其他位置处更难转化回去。估算了启停循环过程中的起动脉冲对电流密度和相应硫酸盐层产量的影响。研究了一些关键设计参数对循环过程中硫酸盐形成,分布和老化的影响,这为微混合动力应用中VRLA电池的开发模型和设计提供了指导。

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