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Comparative performance study of electric vehicle batteries repurposed for electricity grid energy arbitrage

机译:用于电网能源套利电网电池电动电池的比较绩效研究

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摘要

Electric vehicle (EV) batteries can provide extended value beyond EV service if they are repurposed for a "second life" in electricity grid applications. However, because batteries from different EV makes and models vary significantly by size, shape, chemistry, and thermal management, there is uncertainty regarding their relative performance in second-life applications. This experimental study evaluates seven different EV batteries in their original modules and/or packs, featuring four unique positive active materials, two negative active materials, three cell formats, and four thermal management designs. Each battery is subjected to deep-discharge cycling at 4 h, 2 h, and 1 h constant-power rates to emulate performance in electricity grid energy arbitrage. Test results are evaluated based on six battery performance metrics in three key performance categories, including two energy metrics (usable energy capacity and charge-discharge energy efficiency), one volume metric (energy density), and three thermal metrics (average temperature rise, peak temperature rise, and cycle time). Significant differences in performance arise from the variety of chemistries and thermal management systems tested, dominating any influence from battery state of health. Chevrolet Volt and EnerDel batteries (both from hybrid EVs using NMC chemistry) give the best usable energy capacity (= 94%) and energy efficiency (= 97%), while Tesla Model S batteries (from long-range EVs using NCA chemistry) give the lowest usable energy capacity (= 84%) and energy efficiency (= 89%). However, the ModelS batteries give roughly double the energy density (half the physical footprint) of the Volt and EnerDel batteries. The Volt battery experiences no more than 2 degrees C of warming even during a 1 h discharge, thanks to its active (forced) liquid thermal management and high energy efficiency. This contrasts with the Leaf and Lishen batteries, which use passive (natural convection) thermal management and consequently experience over 17 degrees C of warming during a 1 h discharge, and then require over 4 h of standby time to cool down by less than 10 degrees C. Novel analytical techniques are applied to the experimental results to rank the tested EV batteries in the three aforementioned performance categories to illustrate their relative commercial performance expectation in second-life energy arbitrage. This new performance ranking system can be employed by industry in conjunction with economic models to select the most appropriate used EV batteries for specific energy storage applications.
机译:电动汽车(EV)的电池可提供超越EV服务扩展的价值,如果他们再用作电网应用的“第二人生”。然而,由于来自不同的EV品牌和型号的电池通过大小,形状,化学和热管理显著变化,有关于第二生活中的应用它们的相对表现的不确定性。本实验研究评估了它们原来的模块和/或包装七个不同的电动车电池,具有四个独特的正极活性物质,两个负活性材料,三种胞格式,以及四个热管理设计。每个电池在4小时,2小时,和1个小时恒功率速率经受深度放电循环以在电网能量套利仿真性能。测试结果是基于在三个关键性能类别6个电池的性能指标,其中包括两个能量度量(可用能量容量和充电 - 放电能量效率),一个体积度量(能量密度),和三个热指标(平均温度上升,峰值评价温度上升,周期时间)。在性能显著差异从各种化学物质和测试的热管理系统的出现,从主导健康电池状态的任何影响。雪佛兰Volt和的EnerDel电池(均来自使用NMC化学混合电动汽车)得到最好的可用能量容量(大于= 94%)和能量效率(大于= 97%),而特斯拉S型电池(来自远距离电动汽车使用NCA化学)给出最低可用能量容量(大于= 84%)和能量效率(大于= 89%)。然而,该机型的电池就给大约一倍伏特和EnerDel公司的电池的能量密度(物理足迹的一半)。伏特电池经历不超过2℃的1个小时放电期间甚至升温的,由于它的活性(强制)液体的热管理和能量效率高。与此相反,叶和力神电池,其使用无源(自然对流)热管理,并因此经历超过17℃的1个小时放电期间升温,然后需要在待机时间4小时通过小于10度的降温C.新颖的分析技术被应用到的实验结果进行排名在上述三个性能类别的测试EV电池以示出第二寿命能量套利它们的相对商业性能的期望。这种新的成绩排名系统可以通过行业可以采用经济模型相结合来选择特定的储能应用最合适的二手电动车电池。

著录项

  • 来源
    《Applied Energy 》 |2021年第15期| 116637.1-116637.20| 共20页
  • 作者单位

    Dalhousie Univ Dept Mech Engn Renewable Energy Storage Lab POB 15000 Halifax NS B3H 4R2 Canada;

    Dalhousie Univ Dept Mech Engn Renewable Energy Storage Lab POB 15000 Halifax NS B3H 4R2 Canada;

    Dalhousie Univ Dept Mech Engn Renewable Energy Storage Lab POB 15000 Halifax NS B3H 4R2 Canada;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Electric vehicle; Lithium-ion; Battery; Second life; Grid; Thermal;

    机译:电动车;锂离子;电池;第二寿命;电网;热;

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