Trade-off between energy density and fast-charge capability of lithium-ion batteries: A model-based design study of cells with thick electrodes

IF 2.9 Q2 ELECTROCHEMISTRY
Michael Quarti, Andreas Bayer, Wolfgang G. Bessler
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引用次数: 3

Abstract

Lithium-ion batteries exhibit a well-known trade-off between energy and power, which is problematic for electric vehicles which require both high energy during discharge (high driving range) and high power during charge (fast-charge capability). We use two commercial lithium-ion cells (high-energy [HE] and high-power) to parameterize and validate physicochemical pseudo-two-dimensional models. In a systematic virtual design study, we vary electrode thicknesses, cell temperature, and the type of charging protocol. We are able to show that low anode potentials during charge, inducing lithium plating and cell aging, can be effectively avoided either by using high temperatures or by using a constant-current/constant-potential/constant-voltage charge protocol which includes a constant anode potential phase. We introduce and quantify a specific charging power as the ratio of discharged energy (at slow discharge) and required charging time (at a fast charge). This value is shown to exhibit a distinct optimum with respect to electrode thickness. At 35°C, the optimum was achieved using an HE electrode design, yielding 23.8 Wh/(min L) volumetric charging power at 15.2 min charging time (10% to 80% state of charge) and 517 Wh/L discharge energy density. By analyzing the various overpotential contributions, we were able to show that electrolyte transport losses are dominantly responsible for the insufficient charge and discharge performance of cells with very thick electrodes.

Abstract Image

锂离子电池能量密度与快速充电能力之间的权衡:厚电极电池基于模型的设计研究
锂离子电池表现出众所周知的能量和功率之间的权衡,这对于电动汽车来说是一个问题,因为电动汽车在放电时需要高能量(高行驶里程),充电时需要高功率(快速充电能力)。我们使用两个商用锂离子电池(高能[HE]和大功率)来参数化和验证物理化学伪二维模型。在系统的虚拟设计研究中,我们改变了电极厚度、电池温度和充电协议的类型。我们能够证明,在充电过程中,通过使用高温或使用恒流/恒电位/恒压充电协议(其中包括恒定的阳极电位相位),可以有效地避免低阳极电位,从而诱发锂镀层和电池老化。我们引入并量化了一个特定的充电功率,即放电能量(慢放电)与所需充电时间(快充电)的比值。该值与电极厚度有明显的最优关系。在35°C下,采用HE电极设计获得了最佳效果,在15.2 min充电时间(10%至80%充电状态)下产生23.8 Wh/(min L)的体积充电功率和517 Wh/L的放电能量密度。通过分析各种过电位贡献,我们能够表明电解质传输损失是导致极厚电极电池充放电性能不足的主要原因。
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来源期刊
CiteScore
3.80
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审稿时长
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