Phase field modeling of dynamic brittle fracture at finite strains

Fracture is the total or partial separation of an initially intact body through the propagation of one or several cracks. Computational methods for fracture mechanics are becoming increasingly important in dealing with the nucleation and propagation of these cracks. One method is the phase field app...

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Bibliographic Details
Main Author: Omatuku, Emmanuel Ngongo
Other Authors: Skatulla, Sebastian
Format: Master Thesis
Language:English
Published: Faculty of Engineering and the Built Environment 2019
Subjects:
Online Access:http://hdl.handle.net/11427/30172
https://open.uct.ac.za/bitstream/11427/30172/6/thesis_ebe_2019_omatuku_emmanuel_ngongo.pdf
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spelling ftunivcapetownir:oai:localhost:11427/30172 2023-05-15T13:42:14+02:00 Phase field modeling of dynamic brittle fracture at finite strains Omatuku, Emmanuel Ngongo Skatulla, Sebastian 2019 application/pdf http://hdl.handle.net/11427/30172 https://open.uct.ac.za/bitstream/11427/30172/6/thesis_ebe_2019_omatuku_emmanuel_ngongo.pdf eng eng Faculty of Engineering and the Built Environment Department of Civil Engineering http://hdl.handle.net/11427/30172 https://open.uct.ac.za/bitstream/11427/30172/6/thesis_ebe_2019_omatuku_emmanuel_ngongo.pdf Engineering Master Thesis Masters MSc 2019 ftunivcapetownir 2022-09-13T05:47:03Z Fracture is the total or partial separation of an initially intact body through the propagation of one or several cracks. Computational methods for fracture mechanics are becoming increasingly important in dealing with the nucleation and propagation of these cracks. One method is the phase field approach, which approximates sharp crack discontinuities with a continuous scalar field, the so-called phase field. The latter represents the smooth transition between the intact and broken material phases. The evolution of the phase field due to external loads describes the fracture process. An original length scale is used to govern the diffusive approximation of sharp cracks. This method further employs a degradation function to account for the loss of the material stiffness during fracture by linking the phase field to the body’s bulk energy. To prevent the development of unrealistic crack patterns and interpenetration of crack faces under compression, this study uses the anisotropic split of the bulk energy, as proposed by Amor et al. [5], to model the different fracture behavior in tension, shear and compression. This research is part of a larger project aimed at the modeling of Antarctic sea ice dynamics. One aspect of this project is the modeling of the gradual break-up of the consolidated ice during spring. As a first step, this study reviews a phase field model used for dynamic brittle fracture at finite strains. Subsequently, this model is implemented into the in-house finite element software SESKA to solve the benchmark tension and shear tests on a single-edge notched block. The implementation adopts the so-called monolithic scheme, which computes the displacement and phase field solutions simultaneously, with a Newmark time integration scheme. The results of the solved problems demonstrate the capabilities of the implemented dynamic phase field model to capture the nucleation and propagation of cracks. They further confirm that the choice of length-scale and mesh size influences the solutions. In this ... Master Thesis Antarc* Antarctic Sea ice University of Cape Town: OpenUCT Antarctic
institution Open Polar
collection University of Cape Town: OpenUCT
op_collection_id ftunivcapetownir
language English
topic Engineering
spellingShingle Engineering
Omatuku, Emmanuel Ngongo
Phase field modeling of dynamic brittle fracture at finite strains
topic_facet Engineering
description Fracture is the total or partial separation of an initially intact body through the propagation of one or several cracks. Computational methods for fracture mechanics are becoming increasingly important in dealing with the nucleation and propagation of these cracks. One method is the phase field approach, which approximates sharp crack discontinuities with a continuous scalar field, the so-called phase field. The latter represents the smooth transition between the intact and broken material phases. The evolution of the phase field due to external loads describes the fracture process. An original length scale is used to govern the diffusive approximation of sharp cracks. This method further employs a degradation function to account for the loss of the material stiffness during fracture by linking the phase field to the body’s bulk energy. To prevent the development of unrealistic crack patterns and interpenetration of crack faces under compression, this study uses the anisotropic split of the bulk energy, as proposed by Amor et al. [5], to model the different fracture behavior in tension, shear and compression. This research is part of a larger project aimed at the modeling of Antarctic sea ice dynamics. One aspect of this project is the modeling of the gradual break-up of the consolidated ice during spring. As a first step, this study reviews a phase field model used for dynamic brittle fracture at finite strains. Subsequently, this model is implemented into the in-house finite element software SESKA to solve the benchmark tension and shear tests on a single-edge notched block. The implementation adopts the so-called monolithic scheme, which computes the displacement and phase field solutions simultaneously, with a Newmark time integration scheme. The results of the solved problems demonstrate the capabilities of the implemented dynamic phase field model to capture the nucleation and propagation of cracks. They further confirm that the choice of length-scale and mesh size influences the solutions. In this ...
author2 Skatulla, Sebastian
format Master Thesis
author Omatuku, Emmanuel Ngongo
author_facet Omatuku, Emmanuel Ngongo
author_sort Omatuku, Emmanuel Ngongo
title Phase field modeling of dynamic brittle fracture at finite strains
title_short Phase field modeling of dynamic brittle fracture at finite strains
title_full Phase field modeling of dynamic brittle fracture at finite strains
title_fullStr Phase field modeling of dynamic brittle fracture at finite strains
title_full_unstemmed Phase field modeling of dynamic brittle fracture at finite strains
title_sort phase field modeling of dynamic brittle fracture at finite strains
publisher Faculty of Engineering and the Built Environment
publishDate 2019
url http://hdl.handle.net/11427/30172
https://open.uct.ac.za/bitstream/11427/30172/6/thesis_ebe_2019_omatuku_emmanuel_ngongo.pdf
geographic Antarctic
geographic_facet Antarctic
genre Antarc*
Antarctic
Sea ice
genre_facet Antarc*
Antarctic
Sea ice
op_relation http://hdl.handle.net/11427/30172
https://open.uct.ac.za/bitstream/11427/30172/6/thesis_ebe_2019_omatuku_emmanuel_ngongo.pdf
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