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Model-Based End of Discharge Temperature Prediction for Lithium-Ion Batteries

机译:基于模型的锂离子电池放电温度预测结束

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Battery fast charging is one of the key techniques that affects the public acceptability and commercialization of electric vehicles. Temperature is the critical barrier for fast charging as at low temperatures an increased risk of lithium plating and at high temperatures safety concerns limits the charging rate. To facilitate a fast charging mechanism, preconditioning the battery and maintaining its temperature is vital. Battery temperature prediction before a fast charging event can help reducing the energy consumption for battery preconditioning. In this paper, we propose a method for battery end of discharge temperature prediction for fast charging purposes. Firstly, a Gaussian mixture data clustering is performed on battery load data characterisation, subsequently a Markov model is trained for load prediction, and finally a battery lumped parameter equivalent circuit and thermal model is developed and employed for end of discharge time and ultimately end of discharge temperature prediction. Cylindrical lithium-ion battery is selected to prove the concept and both simulations and experiments show the capabilities of the proposed method for temperature prediction of batteries under load profiles obtained from real-world drive cycles of electric vehicles.
机译:电池快速充电是影响电动车的市民的接受程度和商业化的关键技术之一。温度为快速充电如在低温下增加的镀锂的风险和在高温下的安全问题限制了充电率的临界屏障。为了方便快速充电装置,预处理电池,并保持它的温度是至关重要的。快速充电事件之前的电池温度的预测可帮助减少对电池预处理的能量消耗。在本文中,我们提出一种用于排出温度预测的电池端用于快速充电的目的的方法。首先,高斯混合数据聚类上电池负载数据表征进行的,随后在马尔可夫模型被训练为负载预测,最后一个电池集总参数等效电路和热模型的开发和用于放电时间结束,并最终结束放电的温度预测。圆筒形锂离子电池中选择,以证明概念和两个模拟和实验结果表明对于从下电动车辆的真实世界的驱动循环获得负载简档的电池温度的预测所提出的方法的能力。

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