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首页> 外文期刊>Journal of power sources >Accessing the current limits in lithium ion batteries: Analysis of propensity for unexpected power loss as a function of depth of discharge, temperature and pulse duration
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Accessing the current limits in lithium ion batteries: Analysis of propensity for unexpected power loss as a function of depth of discharge, temperature and pulse duration

机译:访问锂离子电池的电流限制:分析出意外功率损耗的倾向,作为放电深度,温度和脉冲持续时间的函数

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摘要

The maximum extractable power from lithium-ion batteries is a crucial performance metric both in terms of safety assessment and to plan prudent corrective action to avoid sudden power loss/shutdown. However, precise estimation of state of power remains a challenge because of the highly non-linear behaviour of batteries that are further aggravated at extremities of temperature as well as battery state of charge. To address this issue, we present the current limit estimate (CLE), which is determined using a robust electrochemical-thermal reduced order model, as a function of the pulse duration, depth of discharge, pre-set voltage cut-off and importantly the temperature. The CLE calculated from the model is experimentally validated using commercial mobile phone cells. With cell temperatures varying from 0 ?C to 65 ?C and full range of depths of discharge, the model gives a prediction accuracy of more than 98%. The model is computationally efficient and compact enough to be implemented on battery management systems for on-board, real time state of power estimation. Further, key insights on what limits power capability of a battery are drawn through an analysis of contributions of different kinetic and transport processes to the cell resistance as a function of temperature and depth of discharge.
机译:在安全评估方面,锂离子电池的最大可提取功率是一种至关重要的度量,并规划谨慎的纠正措施,以避免突然的功率损耗/关闭。然而,由于在温度的四肢和电池充电状态下进一步加剧的电池的高度非线性行为,精确地估计功率状态仍然是一个挑战。为了解决这个问题,我们介绍了当前限制估计(CLE),该估计值(CLE)是使用鲁棒电化学 - 热减少订单模型确定的,作为脉冲持续时间,放电深度,预设电压切断的函数,重要的是温度。从模型计算的CLE通过商业移动电话单元进行实验验证。通过从0Ω·c到65℃和全部放电深度的细胞温度,该模型提供了超过98%的预测精度。该模型是在计算上高效且紧凑的紧凑,以便在车载管理系统上实现,实时功率估计状态。此外,通过分析不同动力学和输送过程的贡献,对电池的功率能力的关键见解,作为温度和放电深度的函数,通过对电池电阻的不同动力学和运输过程的贡献。

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