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dc.contributor.authorGjerden, Knut Skogstrandnb_NO
dc.date.accessioned2014-12-19T13:18:08Z
dc.date.available2014-12-19T13:18:08Z
dc.date.created2013-04-16nb_NO
dc.date.issued2013nb_NO
dc.identifier616406nb_NO
dc.identifier.isbn978-82-471-4261-5 (printed version)nb_NO
dc.identifier.isbn978-82-471-4262-2 (electronic version)nb_NO
dc.identifier.urihttp://hdl.handle.net/11250/246858
dc.description.abstractThe process of materials fracture is not yet understood across all levels. This thesis contains detailed description on a model of in-plane fracture along with results obtained using this model. The results from the model are in very good agreement with experimental observations, both with respect to the static scaling of the front (morphology) and a dynamic study of the underlying processes. This is quite remarkable, considering our model is quasistatic, meaning that the dynamics are time independent. Using this model, I have found two scaling regimes which corresponds to the two different regimes found experimentally for in-plane fracture. This is the first model to successfully reproduce these two scaling regimes, allowing us to clearly state the important processes in this constrained form of fracture. Only the geometry is constrained, any material obeying the quite general assumptions in the model should contain the same processes and fracture in the same way. The results indicate that a percolation process is controlling the fracture on small scales. At larger scales, the elastic material properties leads to a stress concentration which eventually constrains damage formation to the immediate area near the fracture front. In the large scale regime I have measured a roughness exponent of large = 0.39 ± 0.04 . In the small scale regime, I show data consistent with and present evidence based on several different analyses for a roughness exponent of small = 2/3.nb_NO
dc.languageengnb_NO
dc.publisherNorges teknisk-naturvitenskapelige universitet, Fakultet for naturvitenskap og teknologi, Institutt for fysikknb_NO
dc.relation.ispartofseriesDoktoravhandlinger ved NTNU, 1503-8181; 2013:81nb_NO
dc.relation.haspartGjerden, Knut S.; Stormo, Arne; Hansen, Alex. A model for stable interfacial crack growth. IUPAP C20 CONFERENCE ON COMPUTATIONAL PHYSICS (CCP 2011): 012039, 2012. <a href='http://dx.doi.org/10.1088/1742-6596/402/1/012039'>10.1088/1742-6596/402/1/012039</a>.nb_NO
dc.relation.haspartStormo, Arne; Gjerden, Knut Skogstrand; Hansen, Alex. Onset of localization in heterogeneous interfacial failure. Physical Review E. Statistical, Nonlinear, and Soft Matter Physics. (ISSN 1539-3755). 86(2): 025101, 2012. <a href='http://dx.doi.org/10.1103/PhysRevE.86.025101'>10.1103/PhysRevE.86.025101</a>.nb_NO
dc.relation.haspartGjerden, Knut S. Making the case of GPUs in courses on computational physics. .nb_NO
dc.relation.haspartGjerden, Knut S; Stormo, Arne; Hansen, Alex. Universality classes in constrained crack growth. .nb_NO
dc.relation.haspartGjerden, Knut S; Stormo, Arne; Hansen, Alex. Local dynamics of a randomly pinned crack front: A numerical study. .nb_NO
dc.relation.haspartGjerden, Knut S; Stormo, Arne. On the universality classes and scaling exponents found in interfacial brittle fracture. .nb_NO
dc.titleRole of the quenched disorder in fracture front propagationnb_NO
dc.typeDoctoral thesisnb_NO
dc.contributor.departmentNorges teknisk-naturvitenskapelige universitet, Fakultet for naturvitenskap og teknologi, Institutt for fysikknb_NO
dc.description.degreePhD i fysikknb_NO
dc.description.degreePhD in Physicsen_GB


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