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Discussion on Charging Control Strategy for Power Battery at Low Temperatures

机译:低温电池充电控制策略探讨

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In the case of electric vehicles, due to the charging current limitation of lithium battery at low temperatures (below -20°C), it has been proposed to heat the battery pack up to a suitable temperature range before charging through a liquid-heating plate with PTC. However, at a low state of charge (SOC), there is a question which one could take the place of battery pack to supply power for PTC when heating. So that off-board charger (OFC) has been considered to supply power for PTC in this article. In order to control the current charging into the battery pack as less as possible at low temperatures, three control schemes of battery management system (BMS) are proposed and compared. Scheme 1: BMS controls the value of charging current request close to the working current of PTC. Scheme 2: BMS controls the value of charging voltage request to reach a state of relative balance. Scheme 3: BMS disconnects the pack from the charger and keeps the connection between PTC and charger. The functions of the three schemes above have been verified by simulation tests and vehicle tests. The results showed: the first two schemes can supply the power for PTC successfully. However, the third one can't keep PTC working properly due to a power-down fault judged by OFC. As a result, by comparison, Scheme 2 (the voltage control scheme) can more effectively control the current charging into the battery pack as less as possible.
机译:在电动车辆的情况下,由于在低温下的锂电池(低于-20°C)的电流限制,已经提出在通过液加热板充电之前将电池组加热至合适的温度范围用PTC。然而,在低电平的充电状态(SOC)中,存在一个问题,该问题可以在加热时将电池组替代电池组供电。因此,已被视为外汇充电器(OFC)在本文中已被视为为PTC提供电源。为了在低温下控制电池组的电流充电,提出并比较了三个电池管理系统(BMS)的控制方案。方案1:BMS控制接近PTC工作电流的充电电流请求的值。方案2:BMS控制充电电压请求的值以达到相对平衡状态。方案3:BMS断开充电器的包装并保持PTC和充电器之间的连接。上述三种方案的功能已通过模拟测试和车辆测试验证。结果显示:前两种方案可以成功为PTC提供电力。然而,由于OFC判断的断电故障,第三个不能使PTC正常工作。结果,通过比较,方案2(电压控制方案)可以更有效地控制电池组的电流充值,尽可能少。

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