Constant Overpotential Fast Charging for Lithium-Ion Battery with Twin Delayed DDPG Algorithm

Xiaofeng Yang, Zhongbao Wei, Liang Du
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Abstract

Fast charging of lithium-ion battery (LIB) is an enabling technique for the popularity of electric vehicles (EVs). However, utmost pursuit of the charging rapidity can violate the physical limits of LIB, and induces irreversible degradation or even hazardous safety issues. Motivated by this, this paper proposes an electrochemical-aware constant overpotential fast charging strategy to mitigate the lithium plating in LIB during high-rate charging. In particular, an electrochemical model is built to keep awareness of the inner physical statues of LIB. Following this endeavour, a state-of-the-art twin delayed deep deterministic policy gradient (TD3) algorithm is exploited to determine the fast charging strategy, which can accelerate the charging while constrain the side reaction overpotential within a safe range. Results reveal that the proposed strategy outperforms the traditional constant-current-constant-voltage (CCCV) charging protocols in terms of the charging speed and lithium plating suppression.
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基于双延迟DDPG算法的锂离子电池恒过电位快速充电
锂离子电池(LIB)快速充电是电动汽车普及的使能技术。然而,一味追求充电速度会突破锂电池的物理极限,引发不可逆退化甚至危险的安全问题。为此,本文提出了一种电化学感知的恒过电位快速充电策略,以减轻锂电池在高速充电过程中的镀锂现象。特别是,建立了一个电化学模型,以保持对LIB内部物理状态的了解。在此基础上,利用最先进的双延迟深度确定性策略梯度(TD3)算法确定快速充电策略,在加速充电的同时将副反应过电位限制在安全范围内。结果表明,该策略在充电速度和抑制镀锂方面优于传统的恒流恒压充电协议。
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