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Modeling of kinetic behavior of the lead dioxide electrode in a lead-acid battery by means of electrochemical impedance spectroscopy

机译:铅酸电池中二氧化铅电极动力学行为的电化学阻抗谱建模

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In this paper a mathematical model for the electrochemical impedance of a positive electrode in the lead-acid battery was developed. The mechanisms of the electrode processes involved in the batteries were obtained from the literature. Having selected the rate-controlling step as well as the fast reversible (equilibrated) and irreversible steps, we embarked on the formulation of I-V behavior using Butler-Volmer and Fick's law for charge and mass transfer process, respectively. The equivalent circuit consists of resistors, capacitors and mass transfer elements. Each electrical element expresses physico-chemical parameters such as diffusion coefficient, concentration, rate constant, etc. So, impedance plots can be used to determine the effects of each parameter on the performance of the cells. The simulation model also shows that the state-of-charge (SOC) plays an important role in the Nyquist plot of the positive electrode. Model results are compared with experimental results for cell potential and different SOC.
机译:本文建立了铅酸蓄电池正极电化学阻抗的数学模型。从文献中获得了涉及电池的电极过程的机理。选择了速率控制步骤以及快速可逆(平衡)和不可逆步骤后,我们分别使用巴特勒-沃尔默和菲克定律对电荷和传质过程进行了I-V行为的表述。等效电路由电阻器,电容器和传质元件组成。每个电子元件都表示理化参数,例如扩散系数,浓度,速率常数等。因此,可以使用阻抗图来确定每个参数对电池性能的影响。仿真模型还表明,充电状态(SOC)在正极的奈奎斯特图中起着重要的作用。将模型结果与电池电势和不同SOC的实验结果进行比较。

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