摘要
The computational simulation of the manufacturing process of lithium-ion battery composite electrodes based on mechanistic models allows capturing the influence of manufacturing parameters on electrode properties.However,ensuring that these properties match with experimental data is typically computationally expensive.In this work,we tackled this costly procedure by proposing a functional data-driven framework,aiming first to retrieve the early numerical values calculated from a molecular dynamics simulation to predict if the observable being calculated is prone to match with our range of experimental values,and in a second step,recover additional values of the ongoing simulation to predict its final result.We demonstrated this approach in the context of the calculation of electrode slurries viscosities.We report that for various electrode chemistries,the expected mechanistic simulation results can be obtained 11 times faster with respect to the complete simulations,while being accurate with a R^(2)_(score) equals to 0.96.
基金
The authors acknowledge the European Union’s Horizon 2020 research and innovation program for the funding support through the European Research Council (grant agreement 772873,“ARTISTIC” project: ARTISTIC-ERC.M.D.and A.A.F.acknowledge the ALISTORE European Research Institute for funding support.A.A.F.acknowledges the Institut Universitaire de France for the support.A.A.F.and F.C.acknowledges the European Union’s Horizon 2020 research,and innovation program under grant agreement no.957189 (BIG MAP).