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Optimized charging of lithium-ion battery for electric vehicles: Adaptive multistage constant current-constant voltage charging strategy

机译:电动汽车锂离子电池的优化充电:自适应多级恒流-恒压充电策略

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This paper proposes an adaptive multistage constant current-constant voltage (MCCCV) strategy for charging electric vehicles in different situations. First, a high-fidelity thermoelectric-aging coupling model based on a resistor-capacitor pair electrical model, a thermal network model, and a semi-empirical aging model is constructed. Second, an adaptive MCCCV charging strategy involving optimization of the charging current using particle swarm optimization is developed. It can satisfy the preference of users for reducing the charging time or the battery degradation. Finally, three charging strategies based on the Pareto boundary curve of the battery charging time-state of health are developed: a fast-charging strategy for motorway driving, a minimum-aging charging strategy for family use, and a balanced charging strategy for daily use. Additionally, according to the Pareto boundary, the effects of key factors on the optimization of the charging strategy are analyzed and compared. The results show that the balanced charging strategy is 3.60% better than the 0.5C constant current-constant voltage (CCCV) charging strategy recommended by the battery manufacturer with regard to aging loss. Moreover, the charging time is reduced by 37%. Compared with the traditional CCCV charging strategy, the proposed adaptive MCCCV charging strategy has good application prospects with regard to both the charging time and the battery degradation. (C) 2019 Elsevier Ltd. All rights reserved.
机译:本文提出了一种自适应多级恒流-恒压(MCCCV)策略,用于在不同情况下为电动汽车充电。首先,构建了基于电阻-电容对电模型,热网络模型和半经验老化模型的高保真热电-老化耦合模型。其次,开发了一种自适应MCCCV充电策略,该策略涉及使用粒子群优化对充电电流进行优化。它可以满足用户减少充电时间或电池退化的偏好。最后,根据健康状况电池充电时间状态的帕累托边界曲线,开发了三种充电策略:高速公路驾驶的快速充电策略,家庭使用的最低年龄充电策略以及日常使用的平衡充电策略。此外,根据帕累托边界,分析并比较了关键因素对充电策略优化的影响。结果表明,就老化损耗而言,平衡充电策略比电池制造商推荐的0.5C恒定电流-恒定电压(CCCV)充电策略好3.60%。此外,充电时间减少了37%。与传统的CCCV充电策略相比,本文提出的自适应MCCCV充电策略在充电时间和电池老化方面都具有良好的应用前景。 (C)2019 Elsevier Ltd.保留所有权利。

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