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A Time-Varying Log-linear Model for Predicting the Resistance of Lithium-ion Batteries

机译:用于预测锂离子电池电阻的时变逻辑线性模型

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The resistance offers insight into the efficiency and power capability of Lithium-ion (Li-ion) batteries. That is, it can describe the performance of the batteries. However, as with other performance parameters of Li-ion batteries, the resistance is dependent on the operating conditions and the age of the battery. Traditionally, to capture these dependencies, Li-ion cells are aged at different conditions by applying synthetic mission profiles, which are periodically stopped to measure the resistance at standard conditions. Even though accurate information about the resistance behaviour are obtained, the measurements are time-consuming. Therefore, we extract the resistance directly from a dynamic real-life profile. The extracted resistance is modelled as function of the state-of-charge (SOC). The parameters of the model are allowed to vary over time to account for increase in the resistance as the battery ages. In order to capture the variation in time of the parameters of the log-linear model are assumed to follow a vector auto-regressive (VAR) model. The estimated VAR is used to predict the long term behaviour of the expected internal resistance. The prediction of the long term behaviour will enable the calculation of the remaining useful life of the battery, allowing for the inclusion of future battery usage through the SOC.
机译:电阻提供了锂离子(锂离子)电池的效率和功率能力的洞察。也就是说,它可以描述电池的性能。然而,与锂离子电池的其他性能参数一样,电阻取决于电池的操作条件和年龄。传统上,为了捕获这些依赖性,通过施加合成任务曲线,锂离子电池在不同的条件下老化,这是周期性地停止以测量标准条件下的电阻。尽管获得了有关电阻行为的准确信息,但测量值是耗时的。因此,我们直接从动态现实生活型材中提取阻力。提取的电阻被建模为函数的充电状态(SOC)。允许模型的参数随着时间而变化,以考虑电池时代的电阻增加。为了捕获日志线性模型的参数的时间变化,假设遵循向量自动回归(var)模型。估计的VAR用于预测预期内阻的长期行为。长期行为的预测将能够计算电池的剩余使用寿命,允许将未来的电池用途包含通过SOC。

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