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Strain-injection and crack-path field techniques for 3D crack-propagation modelling in quasi-brittle materials

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dc.contributor.author Dias, I. M. pt_BR
dc.contributor.author Oliver, J. pt_BR
dc.contributor.author Lloberas-Valls, O. pt_BR
dc.date.accessioned 2019-10-31T10:45:51Z pt_BR
dc.date.accessioned 2019-12-05T10:23:26Z
dc.date.available 2019-10-31T10:45:51Z pt_BR
dc.date.available 2019-12-05T10:23:26Z
dc.date.issued 2018-07 pt_BR
dc.identifier.citation https://doi.org/10.1007/s10704-018-0293-8 pt_BR
dc.identifier.uri https://repositorio.lnec.pt/jspui/handle/123456789/1012005
dc.description.abstract This paper presents a finite element approach for modelling three-dimensional crack propagation in quasi-brittle materials, based on the strain injection and the crack-path field techniques. These numerical techniques were already tested and validated by static and dynamic simulations in 2D classical benchmarks and, also, for modelling tensile crack propagation in real concrete structures, like concrete gravity dams. The main advantages of the methodology are the low computational cost and the independence of the results on the size and orientation of the finite element mesh. These advantages were highlighted in previous works by the authors and motivate the present extension to 3D cases. The proposed methodology is implemented in the finite element framework using continuum constitutive models equipped with strain softening and consists, essentially, in injecting the elements candidate to capture the cracks with some goal oriented strain modes for improving the performance of the injected elements for simulating propagating displacement discontinuities. The goal-oriented strain modes are introduced by resorting to mixed formulations and to the Continuum Strong Discontinuity Approach (CSDA), while the crack position inside the finite elements is retrieved by resorting to the crack-path field technique. Representative numerical simulations in 3D benchmarks show that the advantages of the methodology already pointed out in 2D are kept in 3D scenarios. pt_BR
dc.language.iso eng pt_BR
dc.publisher Springer pt_BR
dc.rights restrictedAccess pt_BR
dc.subject Computational material failure pt_BR
dc.subject Strong discontinuities pt_BR
dc.subject Crack-path field pt_BR
dc.subject Mixed formulations pt_BR
dc.subject Strain injection pt_BR
dc.subject Strain localization pt_BR
dc.subject Crack propagation pt_BR
dc.title Strain-injection and crack-path field techniques for 3D crack-propagation modelling in quasi-brittle materials pt_BR
dc.type workingPaper pt_BR
dc.description.pages 67–87pp pt_BR
dc.description.volume Volume 212, Issue 1 pt_BR
dc.description.sector DBB/NMMR pt_BR
dc.description.magazine International Journal of Fracture pt_BR
dc.contributor.peer-reviewed SIM pt_BR
dc.contributor.academicresearchers SIM pt_BR
dc.contributor.arquivo NAO pt_BR


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