Hardware implementation of an algorithm based on kalman filtrer for monitoring low capacity Li-ion batteries

Ines Baccouche, S. Jemmali, B. Manai, Rania Chaibi, Najoua Essoukri Ben Amara
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引用次数: 7

Abstract

In this paper, we introduce an algorithm based on an adaptive Kalman filter algorithm for estimating the state of charge of low capacity Li-ion batteries. Using the first order model with a static characterization, good results have been reached and the algorithm converges even with random initial SoC values and has represented no cumulative error drawbacks. This algorithm has been validated, simulated and implemented on a hardware platform based on a microcontroller for an online SoC estimation for multimedia application.
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基于卡尔曼滤波的小容量锂离子电池监测算法的硬件实现
本文介绍了一种基于自适应卡尔曼滤波算法的小容量锂离子电池充电状态估计算法。使用静态表征的一阶模型,取得了良好的结果,即使初始SoC值是随机的,算法也能收敛,并且没有累积误差的缺点。该算法已在基于微控制器的硬件平台上进行了验证、仿真和实现,用于多媒体应用的在线SoC估计。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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