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An Extended Differential Flatness Approach for the Health-Conscious Nonlinear Model Predictive Control of Lithium-Ion Batteries

机译:健康意识的锂离子电池非线性模型预测控制的扩展差分平坦度方法

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This brief paper examines the problem of optimizing lithium-ion battery management online, in a health-conscious manner. This is a computationally intensive problem. Previous work by the authors addresses this challenge by exploiting the differential flatness of Fick’s law of diffusion to improve computational efficiency, but is limited by the fact that the dynamics of a full battery cell are not differentially flat, even when the individual battery electrode dynamics are. The brief paper addresses this challenge by extending the application of differential flatness to a full single particle model. In particular, we use the conservation of charge to express the flat output trajectory of one electrode as an affine function of the other electrode’s flat output trajectory. In this way, we enforce differential flatness for the full battery model. This makes it possible to express the battery charge/discharge trajectory in terms of one flat output trajectory. We optimize this trajectory using a pseudospectral method. This reduces the computational cost of the optimization by about a factor of 5 compared with pseudospectral optimization alone. In addition, the robustness of the nonlinear model predictive control strategy is demonstrated in simulation by adding state-of-health parameter uncertainties.
机译:这篇简短的文章以健康意识的方式研究了在线优化锂离子电池管理的问题。这是一个计算量大的问题。作者先前的工作是通过利用菲克扩散定律的差分平坦度来提高计算效率来解决这一挑战的,但由于整个电池单元的动力学不是差分平坦,即使单个电池电极的动力学是平坦的,这一事实也受到了限制。 。这篇简短的论文通过将差分平坦度的应用扩展到完整的单粒子模型来应对这一挑战。特别是,我们使用电荷守恒表示一个电极的平坦输出轨迹作为另一电极的平坦输出轨迹的仿射函数。通过这种方式,我们对整个电池模型强制执行差分平坦度。这使得可以根据一个平坦的输出轨迹来表达电池的充电/放电轨迹。我们使用伪谱方法优化了该轨迹。与单独的伪谱优化相比,这将优化的计算成本降低了大约5倍。另外,通过添加健康状态参数不确定性,在仿真中证明了非线性模型预测控制策略的鲁棒性。

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