Christopher Wett, Jörg Lampe, Jan Haß, Thomas Seeger, Bugra Turan
{"title":"On the State of Usability for Lithium–Ion Batteries","authors":"Christopher Wett, Jörg Lampe, Jan Haß, Thomas Seeger, Bugra Turan","doi":"10.3390/batteries10020057","DOIUrl":null,"url":null,"abstract":"Lithium–ion batteries are well established as traction batteries for electric vehicles. This has led to a growing market for second-life batteries that can be used in applications like home energy storage systems. Moreover, the recyclability and safe handling of aged or damaged cells and packs has become more important. While there are several indicators, like state of health (SOH), state of power (SOP), or state of safety (SOS), which describe the state of a battery before its defined end of life (EOL), there is no consistent classification methodology by which to describe the usability of a cell or pack after its EOL is reached. The proposed state of usability (SOU) provides a new indicator that accounts for the usability for second life, recyclability, and possible required safety handling of a lithium–ion battery after its first intended life cycle. This work presents a decision tree method, which in turn leads to five discrete usability levels enabling a fast and rough determination of the SOU for practical use. Further, a calculation methodology for reasonable continuous regions of the SOU is proposed. Both methods are based on a literature-based rating of all of the relevant defect and aging mechanisms displayed in a risk matrix. Finally, some experimental methods that can be used for SOU determination are proposed. The developed methodology and the hands-on approach using a decision tree are well-suited for real world application in recycling companies and battery test laboratories.","PeriodicalId":502356,"journal":{"name":"Batteries","volume":"2 2","pages":""},"PeriodicalIF":0.0000,"publicationDate":"2024-02-04","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Batteries","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/10.3390/batteries10020057","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
引用次数: 0
Abstract
Lithium–ion batteries are well established as traction batteries for electric vehicles. This has led to a growing market for second-life batteries that can be used in applications like home energy storage systems. Moreover, the recyclability and safe handling of aged or damaged cells and packs has become more important. While there are several indicators, like state of health (SOH), state of power (SOP), or state of safety (SOS), which describe the state of a battery before its defined end of life (EOL), there is no consistent classification methodology by which to describe the usability of a cell or pack after its EOL is reached. The proposed state of usability (SOU) provides a new indicator that accounts for the usability for second life, recyclability, and possible required safety handling of a lithium–ion battery after its first intended life cycle. This work presents a decision tree method, which in turn leads to five discrete usability levels enabling a fast and rough determination of the SOU for practical use. Further, a calculation methodology for reasonable continuous regions of the SOU is proposed. Both methods are based on a literature-based rating of all of the relevant defect and aging mechanisms displayed in a risk matrix. Finally, some experimental methods that can be used for SOU determination are proposed. The developed methodology and the hands-on approach using a decision tree are well-suited for real world application in recycling companies and battery test laboratories.
锂离子电池作为电动汽车的牵引电池已得到广泛认可。因此,可用于家庭储能系统等应用的二次寿命电池市场不断增长。此外,老化或损坏电池和电池组的可回收性和安全处理也变得越来越重要。虽然有一些指标,如健康状态(SOH)、电量状态(SOP)或安全状态(SOS),可以描述电池在规定的寿命终止(EOL)前的状态,但目前还没有一致的分类方法来描述电池或电池组在达到寿命终止后的可用性。建议的可用性状态(SOU)提供了一个新的指标,它考虑了锂离子电池在第一个预定寿命周期之后的第二次寿命可用性、可回收性以及可能需要的安全处理。这项工作提出了一种决策树方法,进而得出五个离散的可用性等级,从而能够快速、粗略地确定 SOU 的实际用途。此外,还提出了合理连续区域 SOU 的计算方法。这两种方法都是基于风险矩阵中显示的所有相关缺陷和老化机制的文献评级。最后,还提出了一些可用于确定 SOU 的实验方法。所开发的方法和使用决策树的实践方法非常适合回收公司和电池测试实验室的实际应用。