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首页> 外文期刊>Journal of power sources >Development of an innovative workflow to optimize the fast-charge capability of lithium-ion battery cells
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Development of an innovative workflow to optimize the fast-charge capability of lithium-ion battery cells

机译:开发创新的工作流程,以优化锂离子电池单元的快速充电能力

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摘要

State-of-the-art design criteria for electrodes in lithium-ion battery cells focus mostly on an increase of the energy density. Optimizing the fast-charge capability of a cell, especially with respect to lithium-plating, contradicts to these conventional design criteria and are therefore often neglected. This study presents an innovative workflow to resolve this conflict. An extensive electrode and cell characterization with respect to porosity and coating thickness is carried out to determine the corresponding electrode inner resistance, which limits the fast-charge capability of a cell. An empirical model is derived from these results, where the parameters are fitted with measurements. This model is used to determine the optimal porosity and coating thickness for a graphite-anode to obtain the lowest ionic resistance for a given volumetric capacity and thus, the lowest risk of lithium-plating. If the fast-charge capability is one of the design criteria, then it is necessary to determine the optimum porosity and coating thickness as explained in this study. Otherwise, high coating thicknesses or low porosities can lead to unnecessary high ionic resistance in the case of non-optimized settings. The innovative workflow of this study can be used as a guideline to determine the optimal parameter setting of an anode design.
机译:锂离子电池单元中电极的最先进的设计标准主要关注能量密度的增加。优化电池的快速充电能力,特别是相对于锂电镀,与这些传统的设计标准相矛盾,因此通常被忽略。本研究提出了一个创新的工作流程来解决这一冲突。对孔隙率和涂层厚度进行了广泛的电极和细胞表征以确定相应的电极内阻,这限制了电池的快速充电能力。经验模型来自这些结果,其中参数配有测量。该模型用于确定石墨阳极的最佳孔隙率和涂层厚度,以获得给定体积容量的最低离子电阻,从而获得锂电镀的最低风险。如果快速充电能力是设计标准之一,则需要确定本研究中所述的最佳孔隙率和涂层厚度。否则,在非优化设置的情况下,高涂层厚度或低孔孔可能导致不必要的高离子电阻。本研究的创新工作流程可用作确定阳极设计的最佳参数设置的指导。

著录项

  • 来源
    《Journal of power sources》 |2021年第15期|230469.1-230469.13|共13页
  • 作者单位

    BMW Grp Battery Cell Competence Ctr D-80788 Munich Germany|TU Braunschweig Inst Particle Technol D-38104 Braunschweig Germany;

    BMW Grp Battery Cell Competence Ctr D-80788 Munich Germany|TU Braunschweig Inst Particle Technol D-38104 Braunschweig Germany;

    BMW Grp Battery Cell Competence Ctr D-80788 Munich Germany;

    BMW Grp Battery Cell Competence Ctr D-80788 Munich Germany|TU Braunschweig Inst Particle Technol D-38104 Braunschweig Germany;

    BMW Grp Battery Cell Competence Ctr D-80788 Munich Germany;

    TU Braunschweig Inst Particle Technol D-38104 Braunschweig Germany|TU Braunschweig Battery LabFactory Braunschweig D-38106 Braunschweig Germany;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Lithium-ion cell; Fast-charging; Lithium-plating; Electrode design; Anode; Ionic resistance;

    机译:锂离子电池;快速充电;锂电镀;电极设计;阳极;离子抗性;

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