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首页> 外文期刊>Energies >Accurate and Efficient Estimation of Lithium-Ion Battery State of Charge with Alternate Adaptive Extended Kalman Filter and Ampere-Hour Counting Methods
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Accurate and Efficient Estimation of Lithium-Ion Battery State of Charge with Alternate Adaptive Extended Kalman Filter and Ampere-Hour Counting Methods

机译:备用自适应扩展卡尔曼滤波器和安培小时计数方法准确,高效地估算锂离子电池的充电状态

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State of charge (SOC) estimation is a key issue in battery management systems. The challenge lies in balancing the trade-off between accuracy and computation cost. To this end, we propose an alternate method by combining the ampere-hour integral (AHI) method which has low computation cost, and the adaptive extended Kalman filter (AEKF) method, which has high accuracy. The technical viability of this alternate method is verified on a LiMnO 2 -LiNiO 2 battery module with a nominal capacity of 130 Ah under the New European Driving Cycle (NEDC) condition. Drifts in current and voltage measurement are considered. The experimental results show that the absolute SOC error using the AHI method monotonously increases from 0% to 7.2% with the computation time of 10 s while the calculation time is obtained on a ThinkPad E450 PC with an Intel Core i7-5500U CPU @2.40 GHz and 16.0 GB RAM. The absolute SOC error of the AEKF method maintains within 3.5% with the computation time of 49 s. Therefore, the alternate method almost maintains the same SOC accuracy compared to the AEKF method which reduces the maximum absolute SOC error by 50% compared to the AHI method. Therefore, the alternate method almost has the same computation time compared with the AHI method which reduces the computation time by nearly 75% compared to the AEKF method.
机译:充电状态(SOC)估计是电池管理系统中的关键问题。挑战在于在精度和计算成本之间进行权衡。为此,我们提出了一种替代方法,将计算成本低的安培小时积分(AHI)方法和具有高精度的自适应扩展卡尔曼滤波器(AEKF)方法相结合。在新欧洲行驶周期(NEDC)条件下,在标称容量为130 Ah的LiMnO 2 -LiNiO 2电池模块上验证了该替代方法的技术可行性。考虑电流和电压测量中的漂移。实验结果表明,使用AHI方法的绝对SOC误差在10 s的计算时间内从0%单调增加到7.2%,而在配备Intel Core i7-5500U CPU @ 2.40 GHz的ThinkPad E450 PC上获得了计算时间和16.0 GB RAM。 AEKF方法的绝对SOC误差在49 s的计算时间内保持在3.5%以内。因此,与AEKF方法相比,替代方法几乎保持了相同的SOC精度,与AHI方法相比,该方法将最大绝对SOC误差降低了50%。因此,与AHI方法相比,替代方法几乎具有相同的计算时间,与AEKF方法相比,该方法将计算时间减少了近75%。

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