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Online State-of-Health Assessment for Battery Management Systems

机译:电池管理系统的在线健康状况评估

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Battery-powered embedded systems have known a rapid evolution in recent years, as nickel–metal hydride (Ni–MH) battery technology has enabled important reductions in size and proportional increases in total capacity over the older nickel–cadmium (Ni–Cd) and lead–acid battery types. This paper addresses the problem of state-of-health (SoH) estimation and prediction for use in resource-constrained Ni–MH-battery-powered embedded systems. We propose a novel SoH prediction methodology, presenting both a theoretical analysis of the estimation algorithm and the detailed description of hardware and software implementation. Two versions of estimation algorithms are proposed, along with the analysis of their performances in terms of prediction accuracy and required processing power, as the SoH prediction is designed to run online, being part of an embedded battery management system.
机译:电池供电的嵌入式系统近年来发展迅速,因为镍-金属氢化物(Ni-MH)电池技术已使尺寸大大减小,总容量与旧的镍-镉(Ni-Cd)相比呈比例增加。铅酸电池类型。本文解决了在资源受限的镍氢电池供电嵌入式系统中使用的健康状态(SoH)估计和预测问题。我们提出了一种新颖的SoH预测方法,同时提出了估计算法的理论分析以及对硬件和软件实现的详细描述。由于SoH预测被设计为在线运行,是嵌入式电池管理系统的一部分,因此提出了两种版本的估计算法,并根据预测精度和所需的处理能力对它们的性能进行了分析。

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