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Fast Charging-Minimum Degradation Optimal Control of Series-Connected Battery Modules with DC/DC Bypass Converters

机译:快速充电 - 具有DC / DC旁路转换器的串联电池模块的最佳充电最小劣化

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This paper presents a multi-objective fast charging-minimum degradation optimal control problem (OCP) for a Lithium-ion battery series-connected module with DC/DC bypass converters. Each cell in the module is modeled via coupled nonlinear electrochemical, thermal, and aging dynamics. Due to the multiscale temporal nature of the model, a surrogate model for the solvent diffusion aging dynamics is developed to mitigate prohibitive simulation time. The multiobjective OCP is formulated to find a trade-off policy between fast charging and degradation decay. For this purpose, the direct collocation approach is utilized to transcribe the OCP to a nonlinear programming (NLP) problem by parametrization of the system states, inputs, and charging times. The proposed OCP is formulated according to two different schemes: (i) same-charging-time (SCT) and (ii) different-charging-time (DCT). The former assumes simultaneous charging for all cells, whereas the latter determines different charging cell times. The performance of the proposed SCT and DCT schemes is validated on an illustrative case study of a battery module with two series-connected cells in the presence of initial state of charge imbalance.
机译:本文介绍了具有DC / DC旁路转换器的锂离子电池系列连接模块的多目标快速充电最小劣化最佳控制问题(OCP)。模块中的每个单元通过耦合的非线性电化学,热和老化动力学进行建模。由于模型的多尺寸时间性,开发了一种用于溶剂扩散老化动态的替代模型以减轻越平的模拟时间。 FullobimeIve OCP被制定为在快速充电和降级衰减之间找到权衡策略。为此目的,通过系统状态,输入和充电时间的参数化,利用直接搭配方法将OCP通过参数化将OCP转录到非线性编程(NLP)问题。根据两个不同的方案配制所提出的OCP:(i)相同充电时间(SCT)和(II)不同充电时间(DCT)。前者假设对所有细胞同时充电,而后者决定了不同的充电细胞时间。所提出的SCT和DCT方案的性能验证了在存在初始充电不平衡状态下具有两个串联电池的电池模块的说明性案例研究。

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