A non-intrusive global/local approach applied to phase-field modeling of brittle fracture

Abstract This paper aims at investigating the adoption of non-intrusive global/local approaches while modeling fracture by means of the phase-field framework. A successful extension of the non-intrusive global/local approach to this setting would pave the way for a wide adoption of phase-field model...

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Main Authors: Tymofiy Gerasimov, Nima Noii, Olivier Allix, Laura De Lorenzis
Format: Article
Language:English
Published: SpringerOpen 2018-05-01
Series:Advanced Modeling and Simulation in Engineering Sciences
Subjects:
Online Access:http://link.springer.com/article/10.1186/s40323-018-0105-8
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spelling doaj-e27e9ae8125d461aa5caa5abb2c7f37a2020-11-25T02:04:36ZengSpringerOpenAdvanced Modeling and Simulation in Engineering Sciences2213-74672018-05-015113010.1186/s40323-018-0105-8A non-intrusive global/local approach applied to phase-field modeling of brittle fractureTymofiy Gerasimov0Nima Noii1Olivier Allix2Laura De Lorenzis3Institute of Applied Mechanics, Technische Universität BraunschweigInstitute of Applied Mechanics, Technische Universität BraunschweigLMT-Cachan, ENS CachanInstitute of Applied Mechanics, Technische Universität BraunschweigAbstract This paper aims at investigating the adoption of non-intrusive global/local approaches while modeling fracture by means of the phase-field framework. A successful extension of the non-intrusive global/local approach to this setting would pave the way for a wide adoption of phase-field modeling of fracture, already well established in the research community, within legacy codes for industrial applications. Due to the extreme difference in stiffness between the global counterpart of the zone to be analized locally and its actual response when undergoing extensive cracking, the main foreseen issues are robustness, accuracy and efficiency of the fixed point iterative algorithm which is at the core of the method. These issues are tackled in this paper. We investigate the convergence performance when using the native global/local algorithm and show that the obtained results are identical to the reference phase-field solution. We also equip the global/local solution update procedure with relaxation/acceleration techniques such as Aitken’s $$\Delta ^2$$ Δ2 -method, the Symmetric Rank One and Broyden’s methods and show that the iterative convergence can be improved significantly. Results indicate that Aitken’s $$\Delta ^2$$ Δ2 -method is probably the most convenient choice for the implementation of the approach within legacy codes, as this method needs only tools already available for the so-called sub-modeling approach, a strategy routinely used in industrial contexts.http://link.springer.com/article/10.1186/s40323-018-0105-8Brittle fracturePhase-field approachGlobal/local formulationNon-intrusive computationsRelaxation techniquesConvergence acceleration
collection DOAJ
language English
format Article
sources DOAJ
author Tymofiy Gerasimov
Nima Noii
Olivier Allix
Laura De Lorenzis
spellingShingle Tymofiy Gerasimov
Nima Noii
Olivier Allix
Laura De Lorenzis
A non-intrusive global/local approach applied to phase-field modeling of brittle fracture
Advanced Modeling and Simulation in Engineering Sciences
Brittle fracture
Phase-field approach
Global/local formulation
Non-intrusive computations
Relaxation techniques
Convergence acceleration
author_facet Tymofiy Gerasimov
Nima Noii
Olivier Allix
Laura De Lorenzis
author_sort Tymofiy Gerasimov
title A non-intrusive global/local approach applied to phase-field modeling of brittle fracture
title_short A non-intrusive global/local approach applied to phase-field modeling of brittle fracture
title_full A non-intrusive global/local approach applied to phase-field modeling of brittle fracture
title_fullStr A non-intrusive global/local approach applied to phase-field modeling of brittle fracture
title_full_unstemmed A non-intrusive global/local approach applied to phase-field modeling of brittle fracture
title_sort non-intrusive global/local approach applied to phase-field modeling of brittle fracture
publisher SpringerOpen
series Advanced Modeling and Simulation in Engineering Sciences
issn 2213-7467
publishDate 2018-05-01
description Abstract This paper aims at investigating the adoption of non-intrusive global/local approaches while modeling fracture by means of the phase-field framework. A successful extension of the non-intrusive global/local approach to this setting would pave the way for a wide adoption of phase-field modeling of fracture, already well established in the research community, within legacy codes for industrial applications. Due to the extreme difference in stiffness between the global counterpart of the zone to be analized locally and its actual response when undergoing extensive cracking, the main foreseen issues are robustness, accuracy and efficiency of the fixed point iterative algorithm which is at the core of the method. These issues are tackled in this paper. We investigate the convergence performance when using the native global/local algorithm and show that the obtained results are identical to the reference phase-field solution. We also equip the global/local solution update procedure with relaxation/acceleration techniques such as Aitken’s $$\Delta ^2$$ Δ2 -method, the Symmetric Rank One and Broyden’s methods and show that the iterative convergence can be improved significantly. Results indicate that Aitken’s $$\Delta ^2$$ Δ2 -method is probably the most convenient choice for the implementation of the approach within legacy codes, as this method needs only tools already available for the so-called sub-modeling approach, a strategy routinely used in industrial contexts.
topic Brittle fracture
Phase-field approach
Global/local formulation
Non-intrusive computations
Relaxation techniques
Convergence acceleration
url http://link.springer.com/article/10.1186/s40323-018-0105-8
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