Using the material point method to model chemical/mechanical coupling in the deformation of a silicon anode

The lithiation and delithiation of a silicon battery anode is modeled using the material point method (MPM). The main challenges in modeling this process using the MPM is to simulate stress dependent diffusion coupled with concentration dependent stress within a material that undergoes large deforma...

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Veröffentlicht in:Modelling and simulation in materials science and engineering 2017-06, Vol.25 (4), p.45005
Hauptverfasser: Gritton, Chris, Guilkey, James, Hooper, Justin, Bedrov, Dmitry, Kirby, Robert M, Berzins, Martin
Format: Artikel
Sprache:eng
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Zusammenfassung:The lithiation and delithiation of a silicon battery anode is modeled using the material point method (MPM). The main challenges in modeling this process using the MPM is to simulate stress dependent diffusion coupled with concentration dependent stress within a material that undergoes large deformations. MPM is chosen as the numerical method of choice because of its ability to handle large deformations. A method for modeling diffusion within MPM is described. A stress dependent model for diffusivity and three different constitutive models that fully couple the equations for stress with the equations for diffusion are considered. Verifications tests for the accuracy of the numerical implementations of the models and validation tests with experimental results show the accuracy of the approach. The application of the fully coupled stress diffusion model implemented in MPM is applied to modeling the lithiation and delithiation of silicon nanopillars.
ISSN:0965-0393
1361-651X
DOI:10.1088/1361-651X/aa6830