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首页> 外文期刊>Industrial Electronics, IEEE Transactions on >Temperature-Compensated Model for Lithium-Ion Polymer Batteries With Extended Kalman Filter State-of-Charge Estimation for an Implantable Charger
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Temperature-Compensated Model for Lithium-Ion Polymer Batteries With Extended Kalman Filter State-of-Charge Estimation for an Implantable Charger

机译:扩展的卡尔曼滤波器荷电状态估计的可植入充电器锂离子聚合物电池的温度补偿模型

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摘要

As implantable devices become more sophisticated and their extended functionalities impact their energy requirements, they not only rely on charging for the extra energy but also become ever more sensitive to battery deep discharge or overcharge. Accurate state-of-charge (SOC) estimation plays a fundamental role in ensuring the operation safety of implantable medical devices. Temperature variation can impact the battery model parameters and directly affect the accuracy of SOC estimation. This study investigates a temperature-compensated model for lithiumion polymer batteries that incorporates an extended Kalman filter method to estimate the state of the dynamic nonlinear system and its parameters, from 37 °C to 40 °C at intervals of 1 °C. Both simulation and experimental results indicate that the estimation error can be effectively limited to within ±3%. Through the accurate SOC estimation, the conventional constant current to constant voltage charging strategy is guided in order to reduce the charging time and increase the charging capacity.
机译:随着植入式设备变得越来越复杂,其扩展功能影响其能量需求,它们不仅依靠充电来获取额外的能量,而且对电池深度放电或过充电也越来越敏感。准确的荷电状态(SOC)估算在确保可植入医疗设备的操作安全中起着根本作用。温度变化会影响电池模型参数,并直接影响SOC估算的准确性。这项研究研究了一种锂离子聚合物电池的温度补偿模型,该模型采用扩展的卡尔曼滤波方法来估计动态非线性系统的状态及其参数,以1°C的间隔从37°C到40°C。仿真和实验结果均表明,估计误差可以有效地限制在±3%以内。通过准确的SOC估算,可以指导常规的恒流至恒压充电策略,以减少充电时间并增加充电容量。

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