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首页> 外文期刊>IEEE transactions on industrial informatics >Core Temperature Estimation for Self-Heating Automotive Lithium-Ion Batteries in Cold Climates
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Core Temperature Estimation for Self-Heating Automotive Lithium-Ion Batteries in Cold Climates

机译:寒冷气候自加热汽车锂离子电池的核心温度估计

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摘要

The onboard battery self-heaters are employed to improve the performance and lifetime of the automotive lithium-ion batteries under cold climates. The battery performance is determined by the core temperature which is significantly higher than the surface temperature during the fast self-heating, while only the surface temperature can be directly measured. By estimating the core temperature to monitor the self-heating condition, the heating time and the energy consumption can be improved. However, the high-frequency heating current and the time-variant battery impedance cannot be measured in real time by a low-sampling-rate battery management system, so that the regular core temperature estimation methods are not applicable during the self-heating. To solve the issues, an online core temperature estimation algorithm based on the lumped thermal-electrical model is developed for the onboard ac self-heater. By implementing an extended state observer to compensate for the effect of the parameter uncertainties, the core temperature can be accurately detected even with the unknown internal resistance and root mean square (RMS) heating current. The experimental validation of 18 650 lithium-ion batteries shows that the core temperature estimation error is within only 1.2 degrees C. As a result, the self-heating time and energy consumption can be reduced by 50%.
机译:车载电池自加热器用于提高寒冷气候下汽车锂离子电池的性能和寿命。电池性能由核心温度决定,该核心温度明显高于在快速自加热过程中的表面温度,而只能直接测量表面温度。通过估计核心温度来监测自加热条件,可以提高加热时间和能量消耗。然而,高频加热电流和时变电池阻抗不能通过低采样速率电池管理系统实时测量,因此在自加热过程中常规核心温度估计方法不适用。为了解决问题,为车载交流自加热器开发了基于集总电气模型的在线核心温度估计算法。通过实现扩展状态观察者来补偿参数不确定性的效果,即使具有未知的内阻和根均线(RMS)加热电流,也可以精确地检测核心温度。 18 650锂离子电池的实验验证表明,核心温度估计误差仅在1.2摄氏度内。结果,自加热时间和能量消耗可以减少50%。

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