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Micromechanical modelling of mechanochemical processes in heterogeneous materials. / Poluektov, M.; Freidin, A. B.; Figiel.

In: Modelling and Simulation in Materials Science and Engineering, Vol. 27, No. 8, 084005, 09.09.2019.

Research output: Contribution to journalArticlepeer-review

Harvard

Poluektov, M, Freidin, AB & Figiel 2019, 'Micromechanical modelling of mechanochemical processes in heterogeneous materials', Modelling and Simulation in Materials Science and Engineering, vol. 27, no. 8, 084005. https://doi.org/10.1088/1361-651X/ab3b3a

APA

Poluektov, M., Freidin, A. B., & Figiel (2019). Micromechanical modelling of mechanochemical processes in heterogeneous materials. Modelling and Simulation in Materials Science and Engineering, 27(8), [084005]. https://doi.org/10.1088/1361-651X/ab3b3a

Vancouver

Poluektov M, Freidin AB, Figiel. Micromechanical modelling of mechanochemical processes in heterogeneous materials. Modelling and Simulation in Materials Science and Engineering. 2019 Sep 9;27(8). 084005. https://doi.org/10.1088/1361-651X/ab3b3a

Author

Poluektov, M. ; Freidin, A. B. ; Figiel. / Micromechanical modelling of mechanochemical processes in heterogeneous materials. In: Modelling and Simulation in Materials Science and Engineering. 2019 ; Vol. 27, No. 8.

BibTeX

@article{a49122faf3284647b7eb348b7c39f756,
title = "Micromechanical modelling of mechanochemical processes in heterogeneous materials",
abstract = "There is a range of practical problems where advanced engineering heterogeneous materials undergo chemical transformations. The primary example of such system is energy storage materials, in particular anodes of Li-ion batteries containing active Si particles. The exploitation of such anodes involves extreme volumetric expansion of the active particles during the chemical reaction. The expansion is causing mechanical stress, which, in turn, influences the kinetics of chemical reactions even up to their arrest. A particular reaction between Si and Li is localised, as well as a number of other reactions, such as oxidation or precipitate formation. The model presented in this paper accounts for the kinetics of the reactions in a collection of particles inside a matrix material. The microstructure is modelled using the multiscale mean-field (MF) framework based on the incremental Mori-Tanaka (IMT) method. This is the first application of a multiscale MF technique to modelling reaction front kinetics in particles and linking the intra-particle kinetics with the response of the matrix. A number of physical effects arising from the influence of the deformation mechanisms of the matrix on the kinetics of the intra-particle reactions is investigated. Furthermore, the applicability of the proposed model and the IMT homogenisation scheme is studied by comparison to the full-field simulations in the cases of small and finite strains.",
keywords = "chemical affinity tensor, chemo-mechanical processes, Mori-Tanaka model, nonlinear viscoelastic material, silicon lithiation",
author = "M. Poluektov and Freidin, {A. B.} and Figiel",
note = "Publisher Copyright: {\textcopyright} 2019 IOP Publishing Ltd. Copyright: Copyright 2020 Elsevier B.V., All rights reserved.",
year = "2019",
month = sep,
day = "9",
doi = "10.1088/1361-651X/ab3b3a",
language = "English",
volume = "27",
journal = "Modelling and Simulation in Materials Science and Engineering",
issn = "0965-0393",
publisher = "IOP Publishing Ltd.",
number = "8",

}

RIS

TY - JOUR

T1 - Micromechanical modelling of mechanochemical processes in heterogeneous materials

AU - Poluektov, M.

AU - Freidin, A. B.

AU - Figiel,

N1 - Publisher Copyright: © 2019 IOP Publishing Ltd. Copyright: Copyright 2020 Elsevier B.V., All rights reserved.

PY - 2019/9/9

Y1 - 2019/9/9

N2 - There is a range of practical problems where advanced engineering heterogeneous materials undergo chemical transformations. The primary example of such system is energy storage materials, in particular anodes of Li-ion batteries containing active Si particles. The exploitation of such anodes involves extreme volumetric expansion of the active particles during the chemical reaction. The expansion is causing mechanical stress, which, in turn, influences the kinetics of chemical reactions even up to their arrest. A particular reaction between Si and Li is localised, as well as a number of other reactions, such as oxidation or precipitate formation. The model presented in this paper accounts for the kinetics of the reactions in a collection of particles inside a matrix material. The microstructure is modelled using the multiscale mean-field (MF) framework based on the incremental Mori-Tanaka (IMT) method. This is the first application of a multiscale MF technique to modelling reaction front kinetics in particles and linking the intra-particle kinetics with the response of the matrix. A number of physical effects arising from the influence of the deformation mechanisms of the matrix on the kinetics of the intra-particle reactions is investigated. Furthermore, the applicability of the proposed model and the IMT homogenisation scheme is studied by comparison to the full-field simulations in the cases of small and finite strains.

AB - There is a range of practical problems where advanced engineering heterogeneous materials undergo chemical transformations. The primary example of such system is energy storage materials, in particular anodes of Li-ion batteries containing active Si particles. The exploitation of such anodes involves extreme volumetric expansion of the active particles during the chemical reaction. The expansion is causing mechanical stress, which, in turn, influences the kinetics of chemical reactions even up to their arrest. A particular reaction between Si and Li is localised, as well as a number of other reactions, such as oxidation or precipitate formation. The model presented in this paper accounts for the kinetics of the reactions in a collection of particles inside a matrix material. The microstructure is modelled using the multiscale mean-field (MF) framework based on the incremental Mori-Tanaka (IMT) method. This is the first application of a multiscale MF technique to modelling reaction front kinetics in particles and linking the intra-particle kinetics with the response of the matrix. A number of physical effects arising from the influence of the deformation mechanisms of the matrix on the kinetics of the intra-particle reactions is investigated. Furthermore, the applicability of the proposed model and the IMT homogenisation scheme is studied by comparison to the full-field simulations in the cases of small and finite strains.

KW - chemical affinity tensor

KW - chemo-mechanical processes

KW - Mori-Tanaka model

KW - nonlinear viscoelastic material

KW - silicon lithiation

UR - http://www.scopus.com/inward/record.url?scp=85081553809&partnerID=8YFLogxK

U2 - 10.1088/1361-651X/ab3b3a

DO - 10.1088/1361-651X/ab3b3a

M3 - Article

AN - SCOPUS:85081553809

VL - 27

JO - Modelling and Simulation in Materials Science and Engineering

JF - Modelling and Simulation in Materials Science and Engineering

SN - 0965-0393

IS - 8

M1 - 084005

ER -

ID: 71556854