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SURROGATE MODEL ASSISTED LITHIUM-ION BATTERY CO-DESIGN FOR FAST CHARGING AND CYCLE LIFE PERFORMANCES

机译:代理模型辅助锂离子电池共同设计用于快速充电和循环寿命性能

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As one of the significant enablers of portable devices and electric vehicles, lithium-ion batteries are drawing much attention for their high energy density and low self-discharging rate. A major hindrance to their further development has been the "range anxiety", that fast-charging of Li-ion battery is not attainable without sacrificing battery life. In the past, much effort has been carried out to resolve such a problem by either improve the battery design or optimize the charging/discharging protocols, while limited work has been done to address the problem simultaneously, or through a control co-design framework, for a system-level optimum. The control co-design framework is ideal for lithium-ion batteries due to the strong coupling effects between battery design and control optimization. The integration of such coupling effects can lead to improved performances as compared with traditional sequential optimization approaches. However, the challenge of implementing such a co-design framework has been updating the dynamics efficiently for design variations. In this study, we optimize the charging time and cycle life of a lithium-ion battery as a control co-design problem. Specifically, the anode volume fraction and particle size, and the corresponding charging current profile are optimized for a minimum charging time with health-management considerations. The battery is modeled as a coupled electro-thermal-aging dynamical system. The design-dependent dynamics is parameterized thru a Gaussian Processes model, that has been trained with high-fidelity multiphysics simulation samples. A nested co-design approach was implemented using direct transcription, which achieves a better performance than the sequential design approach.
机译:作为便携式设备和电动车辆的重要推动器之一,锂离子电池借助于它们的高能量密度和低自放电速率。他们进一步发展的主要障碍是“范围焦虑”,即锂离子电池的快速充电不能牺牲电池寿命。在过去,已经通过改善电池设计或优化充电/放电协议来解决这种问题的大量努力,而有限的工作已经完成了同时解决问题,或通过控制共同设计框架解决问题,用于系统级最佳。控制协同设计框架是锂离子电池的理想选择,因为电池设计和控制优化之间的强耦合效应。与传统的连续优化方法相比,这种耦合效应的整合可以提高性能。然而,实现这种协同设计框架的挑战已经有效地更新动态以进行设计变化。在这项研究中,我们优化了锂离子电池的充电时间和循环寿命作为对照共同设计问题。具体地,阳极体积分数和粒度,以及相应的充电电流轮廓被优化用于具有健康管理注意事项的最小充电时间。电池被建模为耦合电热 - 衰老动力系统。设计依赖性动态通过高斯过程模型参数化,该模型已被高保真多发性仿真样本培训。使用直接转录实现嵌套的共设计方法,该方法实现比顺序设计方法更好的性能。

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