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A computational methodology for simulating quasi-brittle fracture problems

A computational methodology for simulating quasi-brittle fracture problems

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dc.contributor.author Kumchol Yun
dc.contributor.author Zhenqing Wang
dc.contributor.author Mengzhou Chang
dc.contributor.author Jingbiao Liu
dc.contributor.author Tae-Jong Kim
dc.contributor.author Nam-Jin Son
dc.contributor.author Kyongsu Ji
dc.contributor.author Sakaya Ronald
dc.date.accessioned 2021-01-10T11:55:56Z
dc.date.available 2021-01-10T11:55:56Z
dc.date.issued 2019
dc.identifier.issn 00457949
dc.identifier.uri https://combine.alvar.ug/handle/1/49305
dc.description.abstract Abstract The paper focuses on an efficient and simple methodologies for simulating the three dimensional (3D) quasi-brittle fracture problems. Strain-softening is performed on the elements by a developed anisotropic continuum damage model that has more effective capability in crack path prediction and is easily available in standard finite elements. In the present damage model, the damaged stiffness tensor is constructed to form a crack surface, and the energy dissipation in the damaged element is only allowed in the direction perpendicular to the crack plane. Crack surface is divided into crack lines and crack triangles based on the first introduced crack surface discretization, and the application scope of local tracking algorithm is extended from two dimension to 3D. The present tracking algorithm not only guarantees the continuity and stability of the predicted crack path by solving the topological problems but also has low computational cost, keeping the advantages of local tracking. The method does not identify the crack plane within each element, but it couples well with smeared crack method by identifying all the elements through which the crack surface passes. The high efficiency and stability of the present approach are verified by resolving several 3D benchmark problems in failure analysis.
dc.description.sponsorship National Natural Science Foundation of China
dc.description.sponsorship National Natural Science Foundation of China
dc.publisher Elsevier BV
dc.relation.ispartof Computers & Structures
dc.title A computational methodology for simulating quasi-brittle fracture problems
dc.type journal article
dc.identifier.doi 10.1016/j.compstruc.2019.02.003
dc.identifier.mag 2913866358
dc.identifier.lens 116-881-405-198-342
dc.identifier.volume 215
dc.identifier.spage 65
dc.identifier.epage 79
dc.subject.lens-fields Physics
dc.subject.lens-fields Mathematical analysis
dc.subject.lens-fields Dissipation
dc.subject.lens-fields Finite element method
dc.subject.lens-fields Stiffness matrix
dc.subject.lens-fields Perpendicular
dc.subject.lens-fields Brittle fracture
dc.subject.lens-fields Crack plane
dc.subject.lens-fields Discretization
dc.subject.lens-fields Anisotropy


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