Publication | Closed Access
Multi-scale computation methods: Their applications in lithium-ion battery research and development
601
Citations
159
References
2016
Year
Numerical AnalysisEngineeringParadigm RevolutionMultiscale AnalysisRational DesignNumerical SimulationSystems EngineeringModeling And SimulationParallel ComputingLithium-ion Battery ResearchElectrical EngineeringLithium-ion BatteryLithium-ion BatteriesMulti-scale StudyComputer EngineeringEnergy StorageSolid-state BatteryMulti-scale Computation MethodsElectric BatteryEnergy ManagementLi-ion Battery MaterialsParallel ProgrammingBatteriesMultiscale Modeling
Based upon advances in theoretical algorithms, modeling and simulations, and computer technologies, the rational design of materials, cells, devices, and packs in the field of lithium-ion batteries is being realized incrementally and will at some point trigger a paradigm revolution by combining calculations and experiments linked by a big shared database, enabling accelerated development of the whole industrial chain. Theory and multi-scale modeling and simulation, as supplements to experimental efforts, can help greatly to close some of the current experimental and technological gaps, as well as predict path-independent properties and help to fundamentally understand path-independent performance in multiple spatial and temporal scales.
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