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Optimising lithium-ion cell design for plug-in hybrid and battery electric vehicles

机译:优化插电式混合动力和电池电动汽车的锂离子电池设计

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Increased driving range and enhanced fast charging capabilities are two immediate goals of transport electrification. However, these are of competing nature, leading to increased energy and power demand respectively from the on-board battery pack. By fine-tuning the number of layers versus active electrode material of a lithium ion pouch cell, tailored designs targeting either of these goals can be obtained. Achieving this trade-off through iterative empirical testing of layer choices is expensive and often produces sub-optimal designs. This paper presents a model-based methodology for determining the optimal number of layers, maximising usable energy whilst satisfying specific acceleration and fast charging targets. The proposed methodology accounts for the critical need to avoid lithium plating during fast charging and searches for the optimal layer configuration considering a range of thermal conditions. A numerical implementation of a cell model using a hybrid finite volume-spectral scheme is presented, wherein the model equations are suitably reformulated to directly accept power inputs, facilitating rapid and accurate searching of the layer design space. Electrode materials exhibiting high solid phase diffusion rates are highlighted as being equally as important for extended range as the development of new materials with higher inherent capacity. The proposed methodology is demonstrated for the common module design of a battery pack in a plug-in hybrid vehicle, thereby illustrating how the cost of derivative vehicle models can be reduced. To facilitate model based layer optimisation, the open-source toolbox, BOLD (Battery Optimal Layer Design) is provided.
机译:增加的行驶里程和增强的快速充电能力是交通运输电气化的两个近期目标。然而,这些具有竞争性,导致车载电池组的能量和功率需求分别增加。通过对锂离子袋式电池的层数与有源电极材料进行微调,可以获得针对这些目标之一的定制设计。通过层选择的迭代经验测试来实现这种折衷是昂贵的,并且常常产生次优的设计。本文提出了一种基于模型的方法,用于确定最佳层数,最大化可用能量,同时满足特定的加速度和快速充电目标。所提出的方法解决了在快速充电期间避免锂电镀的关键需求,并考虑了一系列热条件,寻求了最佳的层配置。提出了使用混合有限体积光谱方案的单元模型的数值实现,其中将模型方程式适当地重新构造为直接接受功率输入,从而有助于快速,准确地搜索层设计空间。电极材料具有较高的固相扩散速率,与开发具有更高固有容量的新材料一样,对于扩大范围同样重要。所提出的方法论被证明用于插电式混合动力汽车中电池组的通用模块设计,从而说明了如何降低衍生车辆模型的成本。为了促进基于模型的层优化,提供了开源工具箱BOLD(电池最佳层设计)。

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