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A Systematic Identification of First to Second Life Shift-Point of Lithium-Ion Batteries

机译:锂离子电池第一至第二寿命转换点的系统识别

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Although the batteries used in electric vehicles usually have a vehicle lifetime of 8-10 years, after this period they may still have significant capacity left for alternative uses. The secondary use of hybrid/electric vehicle batteries increases the overall value and provides opportunities for the use in charging stations, renewable energy integration and grid energy management. The application life of a Lithium-ion traction battery can be split into first and second lives. The optimum point to switch the battery from first to second life is the shift-point of a Lithium ion battery. This paper proposes an approach to identify the shift-point by classifying the battery as a system with its own structural and behavioral properties. These are inter-related by the factors such as ageing, environment and costs. By structuring and analyzing these factors for automotive and stationary applications, the intention is to identify the optimum shift point of a traction battery during its lifetime. The analysis suggests that the cost factor gets the highest priority while the ageing and environment has the moderate and least priorities respectively.
机译:尽管电动汽车中使用的电池通常具有8-10年的使用寿命,但在此期间之后,它们可能仍有很大的容量可用于其他用途。混合动力/电动汽车电池的二次使用增加了总体价值,并为在充电站,可再生能源整合和电网能源管理中的使用提供了机会。锂离子动力电池的使用寿命可以分为第一寿命和第二寿命。将电池从第一寿命切换到第二寿​​命的最佳点是锂离子电池的转换点。本文提出了一种通过将电池分类为具有自身结构和行为特性的系统来识别换挡点的方法。这些因素是相互关联的,例如老化,环境和成本。通过对汽车和固定应用的这些因素进行结构和分析,目的是确定牵引电池在其使用寿命内的最佳换档点。分析表明,成本因素的优先级最高,而老化和环境的优先级分别为中度和最低。

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