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A multiphase-field approach to small strain crystal plasticity accounting for balance equations on singular surfaces

Prahs, Andreas and Schöller, Lukas and Schwab, Felix Konrad and Schneider, Daniel and Böhlke, Thomas and Nestler, Britta (2023) A multiphase-field approach to small strain crystal plasticity accounting for balance equations on singular surfaces. Computational Mechanics. Springer. doi: 10.1007/s00466-023-02389-6. ISSN 0178-7675.

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Official URL: https://dx.doi.org/10.1007/s00466-023-02389-6

Abstract

An implementation of the crystal plasticity theory in the context of the multiphase-field method provides a numerically efficient tracking of evolving grain boundaries, modeled as diffuse interfaces. In literature, several approaches exist for the implementation of the plastic material behavior within the diffuse interface, based on interpolation, homogenization, or the mechanical jump conditions. Among these, only the jump condition approach exhibits an intrinsic relationship to the sharp interface (SI) theory. Therefore, in the work at hand, the implementation of the crystal plasticity theory within the jump condition approach, referred to as phase-specific plastic fields approach (PSPFA), is discussed in detail. The PSPFA is compared to the interpolation approach, referred to as common plastic fields approach (CPFA), using three-dimensional benchmark simulations of a bicrystal set-up. The comparison reveals that the PSPFA and SI coincide convincingly regarding the accumulated plastic slip and the Mises stress. In contrast, a significant deviation of CPFA and SI is observed both quantitatively and qualitatively, not only within the diffuse interface region, but throughout the complete simulation domain. A variation of the interface width illustrates that this observation can be transferred to the normal components of the total strain, even for smaller interface widths. Consequently, a quantitative estimate of the plastic material behavior, which is crucial for the prediction of the dynamic behavior of grain boundaries, is only provided by the PSPFA. The application of the crystal plasticity in the context of PSPFA to more complex microstructures is illustrated with respect to a periodic honeycomb-structure and an octotuple.

Item URL in elib:https://elib.dlr.de/200426/
Document Type:Article
Additional Information:Worked on in the context of project "BlueSky" (2551034).
Title:A multiphase-field approach to small strain crystal plasticity accounting for balance equations on singular surfaces
Authors:
AuthorsInstitution or Email of AuthorsAuthor's ORCID iDORCID Put Code
Prahs, AndreasInstitut für Angewandte Materialien, Karlsruhe Institut für Technologiehttps://orcid.org/0000-0002-8112-9994UNSPECIFIED
Schöller, LukasInstitut für Angewandte Materialien, Karlsruhe Institut für TechnologieUNSPECIFIEDUNSPECIFIED
Schwab, Felix Konradfelix.schwab (at) dlr.dehttps://orcid.org/0000-0002-0401-0105149040958
Schneider, DanielInstitut für Angewandte Materialien, Karlsruhe Institut für TechnologieUNSPECIFIEDUNSPECIFIED
Böhlke, ThomasInstitut für Technische Mechanik, Karlsruhe Institut für TechnologieUNSPECIFIEDUNSPECIFIED
Nestler, BrittaInstitut für Angewandte Materialien, Karlsruhe Institut für TechnologieUNSPECIFIEDUNSPECIFIED
Date:4 October 2023
Journal or Publication Title:Computational Mechanics
Refereed publication:Yes
Open Access:Yes
Gold Open Access:No
In SCOPUS:Yes
In ISI Web of Science:Yes
DOI:10.1007/s00466-023-02389-6
Publisher:Springer
ISSN:0178-7675
Status:Published
Keywords:Crystal plasticity theory; Multiphase-field theory; Mechanical jump conditions
HGF - Research field:Energy
HGF - Program:Materials and Technologies for the Energy Transition
HGF - Program Themes:Electrochemical Energy Storage
DLR - Research area:Energy
DLR - Program:E VS - Combustion Systems
DLR - Research theme (Project):E - Materials for Electrochemical Energy Storage
Location: Ulm
Institutes and Institutions:Institute of Engineering Thermodynamics > Computational Electrochemistry
Deposited By: Schwab, Felix Konrad
Deposited On:19 Dec 2023 17:29
Last Modified:20 Dec 2023 12:23

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