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A comprehensive review of battery modeling and state estimation approaches for advanced battery management systems

机译:用于高级电池管理系统电池建模和国家估算方法的全面综述

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With the rapid development of new energy electric vehicles and smart grids, the demand for batteries is increasing. The battery management system (BMS) plays a crucial role in the battery-powered energy storage system. This paper presents a systematic review of the most commonly used battery modeling and state estimation approaches for BMSs. The models include the physics-based electrochemical models, the integral and fractional order equivalent circuit models, and data-driven models. The state estimation approaches are analyzed from the perspectives of remaining capacity and energy estimation, power capability prediction, lifespan and health prognoses, and other crucial indexes in BMS. This present paper, through the analysis of literature, includes almost all states in the BMS. The estimation approaches of state-of-charge (SOC), state-of-energy (SOE), state-of-power (SOP), state-of-function (SOF), state-of-health (SOH), remaining useful life (RUL), remaining discharge time (RDT), state-of-balance (SOB), and state-of-temperature (SOT) are reviewed and discussed in a systematical way. Moreover, the challenges and outlooks of the research on future battery management are disclosed, in the hope of providing some inspirations to the development and design of the next-generation BMSs.
机译:随着新能源电动汽车和智能电网的快速发展,对电池的需求正在增加。电池管理系统(BMS)在电池供电的能量存储系统中起着至关重要的作用。本文提出了对BMSS最常用的电池建模和状态估算方法的系统审查。该模型包括基于物理学的电化学模型,积分和分数顺序等效电路模型和数据驱动模型。从剩余容量和能量估计,功率预测,寿命和健康预后的视角和BMS中的其他至关重要指标分析了国家估计方法。本文通过文献分析,包括BMS中的几乎所有国家。充电状态(SOC),能源状态(SOE),权力状态(SOP),函数状态(SOF),剩余状态(SOH),剩余状态(SOF),剩余状态的估算方法有用的寿命(RUL),剩余放电时间(RDT),余额状态(SOB)和温度状态(SOT)以系统的方式审查和讨论。此外,披露了对未来电池管理研究的挑战和前景,希望为下一代BMSS的开发和设计提供一些启示。

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