Closed-loop optimization of fast-charging protocols for batteries with machine learning
发表时间:2020-12-28     阅读次数:     字体:【


摘要

Simultaneously optimizing many design parameters in time-consuming experiments causes bottlenecks in a broad range of scientific and engineering disciplines. One such example is process and control optimization for lithium-ion batteries during materials selection, cell manufacturing and operation. A typical objective is to maximize battery lifetime; however, conducting even a single experiment to evaluate lifetime can take months to years. Furthermore, both large parameter spaces and high sampling variability necessitate a large number of experiments. Hence, the key challenge is to reduce both the number and the duration of the experiments required. Here we develop and demonstrate a machine learning methodology to efficiently optimize a parameter space specifying the current and voltage profiles of six-step, ten-minute fast-charging protocols for maximizing battery cycle life, which can alleviate range anxiety for electric-vehicle users. We combine two key elements to reduce the optimization cost: an early-prediction model, which reduces the time per experiment by predicting the final cycle life using data from the first few cycles, and a Bayesian optimization algorithm, which reduces the number of experiments by balancing exploration and exploitation to efficiently probe the parameter space of charging protocols. Using this methodology, we rapidly identify high-cycle-life charging protocols among 224 candidates in 16 days (compared with over 500 days using exhaustive search without early prediction), and subsequently validate the accuracy and efficiency of our optimization approach. Our closed-loop methodology automatically incorporates feedback from past experiments to inform future decisions and can be generalized to other applications in battery design and, more broadly, other scientific domains that involve time-intensive experiments and multi-dimensional design spaces.


部分图片:



图1 Results of validation experiment. a, Discharge capacity versus cycle number for all batteries in the validation experiment. b, Comparison of early-predicted cycle lives from validation to closed-loop estimates, averaged on a protocol basis. c, Observed versus early-predicted cycle life for the validationexperiment. d, Final cycle lives from validation, sorted by CLO ranking. e, Ablation study of various optimization approaches using the protocols and data in the validation set (Methods).

图2 Schematic of our CLO system.

引文信息

Peter M. Attia,Aditya Grover,Norman Jin,Kristen A. Severson,Todor M. Markov,Yang-Hung Liao,Michael H. Chen,Bryan Cheong,Nicholas Perkins,Zi Yang,Patrick K. Herring,Muratahan Aykol,Stephen J. Harris,Richard D. Braatz,Stefano Ermon,William C. Chueh. Closed-loop optimization of fast-charging protocols for batteries with machine learning[J]. Nature: International weekly journal of science,2020,578(7795). (下载链接)

其他相关论文

1. Shuangqi Li,Hongwen He,Jianwei Li. Big data driven lithium-ion battery modeling method based on SDAE-ELM algorithm and data pre-processing technology[J]. Applied Energy,2019,242.(下载链接



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