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首页> 外文期刊>Energies >Using CPE Function to Size Capacitor Storage for Electric Vehicles and Quantifying Battery Degradation during Different Driving Cycles
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Using CPE Function to Size Capacitor Storage for Electric Vehicles and Quantifying Battery Degradation during Different Driving Cycles

机译:使用CPE功能确定电动汽车的电容器容量并量化不同行驶周期下的电池退化

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Range anxiety and battery cycle life are two major factors which restrict the development of electric vehicles. Battery degradation can be reduced by adding supercapacitors to create a Hybrid Energy Storage System. This paper proposes a systematic approach to configure the hybrid energy storage system and quantifies the battery degradation for electric vehicles when using supercapacitors. A continuous power-energy function is proposed to establish supercapacitor size based on national household travel survey statistics. By analyzing continuous driving action in standard driving cycles and special driving phases (start up and acceleration), the supercapacitor size is calculated to provide a compromise between the capacitor size and battery degradation. Estimating the battery degradation after 10 years, the battery capacity loss value decreases 17.55% and 21.6%, respectively, under the urban dynamometer driving schedule and the US06. Furthermore, the battery lifespan of the continuous power-energy configured system is prolonged 28.62% and 31.39%, respectively, compared with the battery alone system.
机译:范围焦虑和电池循环寿命是限制电动汽车发展的两个主要因素。通过添加超级电容器来创建混合储能系统,可以减少电池退化。本文提出了一种系统的方法来配置混合储能系统,并量化使用超级电容器时电动汽车的电池退化。提出了一种连续的电能功能,根据全国家庭出行调查统计数据确定超级电容器的尺寸。通过分析在标准驾驶周期和特殊驾驶阶段(启动和加速)中的连续驾驶行为,可以计算出超级电容器的尺寸,以在电容器尺寸和电池性能之间取得折中。估算10年后的电池退化,在城市测功机行驶时间表和US06下,电池容量损失值分别降低了17.55%和21.6%。此外,与单独使用电池的系统相比,连续电能配置系统的电池寿命分别延长了28.62%和31.39%。

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