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Development of Optimal Fast-Charging Strategies Using a Validated Battery Model

机译:使用经过验证的电池模型开发最佳快速充电策略

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摘要

The ability to fast-charge Lithium-Ion batteries is a key requirement for the success of electric vehicles. One main problem when fast-charging Lithium-Ion batteries is Lithiumplating. There, the Lithium-Ions are not intercalated into the anode but are deposited on its surface. This leads not only to safety issues, but also reduces the capacity of the battery by reducing the amount of cyclable Lithium. While in experimental half cells the onset of Lithium-plating can be well correlated with the Anode potential crossing a value of 0 V [1,2], in commercial cells the Anode potential cannot be measured. Thus, extensive aging experiments are required to determine the optimal charging current profiles for a given battery cell, which charge the cell fast but do not cause Lithium-plating. As these profiles vary strongly with temperature and State-of-Charge (SOC), the effort for doing such an investigation is extremely high and not practicable. Instead, we present an approach, where the Anode potential of a commercial cell is predicted by a physical battery model. The model contains sub-models for both anode and cathode and covers all relevant loss processes. It is shown to be valid in the whole operational range of the cell and thus delivers a valid estimate for the anode potential. Using this model, we investigate for the given cell under which conditions Lithium-plating will start to occur. It will be further shown, how from these results charging current profiles can be derived, which charge the battery as fast as possible while still avoiding Lithium-plating.
机译:快速充电锂离子电池的能力是电动汽车成功的关键要求。快速充电锂离子电池时的主要问题之一是镀锂。在那里,锂离子没有插入阳极中,而是沉积在其表面上。这不仅会导致安全问题,还会通过减少可循环锂的使用量来降低电池容量。虽然在实验性半电池中,镀锂的发生与阳极电位越过0 V [1,2]可以很好地相关,但在商用电池中,无法测量阳极电位。因此,需要进行大量的老化实验来确定给定电池单元的最佳充电电流曲线,该曲线可快速为电池单元充电,但不会引起锂电镀。由于这些曲线随温度和荷电状态(SOC)的不同而有很大差异,因此进行此类研究的工作量非常大,不切实际。取而代之的是,我们提出一种方法,其中商用电池的阳极电势由物理电池模型预测。该模型包含阳极和阴极的子模型,并涵盖所有相关的损耗过程。它在电池的整个工作范围内均有效,因此可提供对阳极电势的有效估计。使用该模型,我们研究了在给定的电池上将开始发生镀锂的条件。将进一步显示,如何从这些结果中得出充电电流曲线,该曲线在不避免锂电镀的情况下尽可能快地对电池充电。

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  • 来源
  • 会议地点 Strasbourg(FR)
  • 作者单位

    Batemo GmbH, Haid-und-Neu-Strasse 7, Karlsruhe, D-76131 Germany;

    Batemo GmbH, Haid-und-Neu-Strasse 7, Karlsruhe, D-76131 Germany;

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  • 原文格式 PDF
  • 正文语种 eng
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  • 入库时间 2022-08-26 14:32:36

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