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首页> 外文期刊>Russian journal of electrochemistry >Computer simulation of operation of lithium-ion battery: Galvanostatics, central problem of theory, calculation of characteristics of thin active layers with low diffusion coefficients
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Computer simulation of operation of lithium-ion battery: Galvanostatics, central problem of theory, calculation of characteristics of thin active layers with low diffusion coefficients

机译:锂离子电池运行的计算机模拟:恒电流,理论中心问题,低扩散系数薄有源层特性的计算

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Computer simulation of lithium-ion battery operating in the galvanostatic discharge mode was performed. Special attention was paid to the complete mathematical description of the processes proceeding in the active layers of electrodes. The central problem of the theory of lithium-ion batteries is a possibility of analyzing two processes proceeding concurrently in space and time: the recovery or filling of active substance (intercalating agent) grains with lithium atoms and redistribution of electrode potentials over the active layer width, which is caused by the ohmic limitations. A new approach to the central problem is proposed. It is based on comparing the characteristic times of two main processes proceeding in the electrodes. Here, the diffusion coefficient of lithium atoms in the intercalating agent grains is of critical importance. Two ranges of diffusion coefficients (high and low diffusion coefficients) can be recognized. The merits and drawbacks of the electrodes exhibiting high and low diffusion coefficients are discussed. The calculations of the working parameters of the electrode (by the example of the anode) are performed for the active layers with low diffusion coefficients. The active layer thickness, complete discharge time, specific electric capacitance, and final potential at the active layer/interelectrode space interface are determined.
机译:进行了在恒电流放电模式下运行的锂离子电池的计算机仿真。特别注意在电极活性层中进行的过程的完整数学描述。锂离子电池理论的中心问题是有可能分析在空间和时间上同时进行的两个过程:用锂原子回收或填充活性物质(嵌入剂)晶粒以及在整个活性层宽度上重新分配电极电势,这是由欧姆限制引起的。提出了解决中心问题的新方法。它基于比较电极中进行的两个主要过程的特征时间。在此,锂原子在嵌入剂颗粒中的扩散系数至关重要。可以识别出两个范围的扩散系数(高和低扩散系数)。讨论了具有高和低扩散系数的电极的优缺点。对于具有低扩散系数的有源层,执行电极工作参数的计算(以阳极为例)。确定活性层的厚度,完全放电时间,比电容以及活性层/电极间空间界面处的最终电势。

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