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Topological and network analysis of lithium ion battery components: the importance of pore space connectivity for cell operation

机译:锂离子电池组件的拓扑和网络分析:孔空间连通性对电池运行的重要性

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摘要

The structure of Lithium ion battery components, such as electrodes and separators, are comma* characterised in terms of their porosity and tortuosity. The ratio of these values gives the effective transport coefficient of Lithium ions in the electrolyte-filled pore spaces, which can be used to determine the ionic resistivity and corresponding voltage Losses. Here, we show that these microstructural characteristics are not sufficient. Analysis of tomographic data of commercial separators reveals that different polyolefin separators have similar porosity and through-plane tortuosity, which, in the homogenised picture of Lithium ion cell operation, would imply that these different separators exhibit similar performance. However, numerical diffusion simulations indicate that this is not the case. We demonstrate that the extent to which Lithium ion concentration gradients are induced or smoothed by the separator structure is Linked to pore space connectivity, a parameter that can be determined by topological or network based analysis of separators. These findings enable us to propose how to design separator microstructures that are safer and accommodate fast charge and discharge.
机译:锂离子电池组件(例如电极和隔板)的结构以其孔隙率和曲折度为逗号来表示。这些值的比率给出了锂离子在充满电解质的孔隙空间中的有效传输系数,该系数可用于确定离子电阻率和相应的电压损耗。在这里,我们表明这些微观结构特征是不够的。商业隔板的层析数据分析表明,不同的聚烯烃隔板具有相似的孔隙率和贯穿面的曲折度,在锂离子电池操作的均质化图片中,这意味着这些不同的隔板表现出相似的性能。但是,数值扩散模拟表明情况并非如此。我们证明了锂离子浓度梯度被分隔物结构诱导或平滑的程度与孔隙空间连通性有关,该参数可以通过分隔物的拓扑或基于网络的分析来确定。这些发现使我们能够提出如何设计更安全并适应快速充放电的隔板微结构。

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