Simultaneously Coupled Mechanical-Electrochemical-Thermal Simulation of Lithium-Ion Cells
Understanding the combined electrochemical-thermal and mechanical response of a system has a variety of applications, for example, structural failure from electrochemical fatigue and the potential induced changes of material properties. For lithium-ion batteries, there is an added concern over the s...
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Veröffentlicht in: | ECS transactions 2016-07, Vol.72 (24), p.9-19 |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | Understanding the combined electrochemical-thermal and mechanical response of a system has a variety of applications, for example, structural failure from electrochemical fatigue and the potential induced changes of material properties. For lithium-ion batteries, there is an added concern over the safety of the system in the event of mechanical failure of the cell components. In this work, we present a generic multi-scale simultaneously coupled mechanical-electrochemical-thermal model to examine the interaction between mechanical failure and electrochemical-thermal responses. We treat the battery cell as a homogeneous material while locally we explicitly solve for the mechanical response of individual components using a homogenization model and the electrochemical-thermal responses using an electrochemical model for the battery. A benchmark problem is established to demonstrate the proposed modeling framework. The model shows the capability to capture the gradual evolution of cell electrochemical-thermal responses, and predicts the variation of those responses under different short-circuit conditions. |
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ISSN: | 1938-5862 1938-6737 1938-6737 |
DOI: | 10.1149/07224.0009ecst |