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An Algorithmic Safety VEST For Li-ion Batteries During Fast Charging

机译:快速充电期间锂离子电池的算法安全背心

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Fast charging of lithium-ion batteries is crucial to increase desirability for consumers and hence accelerate the adoption of electric vehicles. A major barrier to shorter charge times is the accelerated aging of the battery at higher charging rates, which can be driven by lithium plating, increased solid electrolyte interphase growth due to elevated temperatures, and particle cracking due to mechanical stress. Lithium plating depends on the overpotential of the negative electrode, and mechanical stress depends on the concentration gradient, both of which cannot be measured directly. Techniques based on physics-based models of the battery and optimal control algorithms have been developed to this end. While these methods show promise in reducing degradation, their optimization algorithms’ complexity can limit their implementation. In this paper, we present a method based on the constant current constant voltage (CC-CV) charging scheme, called CC-CVησT (VEST). The new approach is simpler to implement and can be used with any model to impose varying levels of constraints on variables pertinent to degradation, such as plating potential and mechanical stress. We demonstrate the new CC-CVησT charging using an electrochemical model with mechanical and thermal effects included. Furthermore, we discuss how uncertainties can be accounted for by considering safety margins for the plating and stress constraints.
机译:锂离子电池的快速充电至关重要,以提高消费者的可取性,因此加速了电动汽车的采用。更短的充电时间的主要屏障是在较高的充电速率下加速电池的老化,这可以通过锂电镀驱动,由于升高的温度,由于机械应力引起的颗粒裂化增加。镀锂取决于负极的过电位,机械应力取决于浓度梯度,两者不能直接测量。基于基于物理的电池和最佳控制算法的技术已经开发至此。虽然这些方法在降低劣化方面表明了承诺,但它们的优化算法的复杂性可以限制它们的实现。在本文中,我们介绍了一种基于恒流恒压(CC-CV)充电方案的方法,称为CC-CVHΣT(背心)。新方法更简单地实现,并且可以与任何模型一起使用,以对诸如电镀电位和机械应力的劣化产生不同的变量限制。我们展示了使用具有机械和热效应的电化学模型的新的CC-CVησt充电。此外,我们讨论如何通过考虑电镀和压力限制的安全利润来算作不确定性。

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