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A Simultaneous Multiscale and Multiphysics Model and Numerical Implementation of a Core-Shell Model for Lithium-Ion Full-Cell Batteries
50
Citations
56
References
2019
Year
Numerical AnalysisEngineeringMultiscale MechanicsMechanical EngineeringContinuum ScaleMultiscale PhenomenonMultiphysics ModelNumerical SimulationModeling And SimulationMulti-physics ModellingCore-shell ModelSimultaneous MultiscaleMaterials ScienceElectrical EngineeringBattery Electrode MaterialsLithium-ion BatteryLithium-ion BatteriesEnergy StorageSolid-state BatteryElectrochemistryCoupled ElectrochemistryElectric BatteryLi-ion Battery MaterialsBattery ConfigurationElectrochemical Energy StorageBatteriesMultiscale Modeling
The increasing significance on the development of high-performance lithium-ion (Li-ion) batteries is calling for new battery materials, theoretical models, and simulation tools. Lithiation-induced deformation in electrodes calls attention to study the multiphysics coupling between mechanics and electrochemistry. In this paper, a simultaneous multiscale and multiphysics model to study the coupled electrochemistry and mechanics in the continuum battery cell level and the microscale particle level was developed and implemented in comsolmultiphysics. In the continuum scale, the porous electrode theory and the classical mechanics model were applied. In the microscale, the specific particle structure has been incorporated into the model. This model was demonstrated to study the effects of mechanical constraints, charging rate, and silicon/C ratio, on the electrochemical performance. This model provides a powerful tool to perform simultaneous multiscale and multiphysics design on Li-ion batteries, from the particle level to full-cell level.
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