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dc.contributor.authorBasoglu, Muhammed Fatih
dc.contributor.authorZerin, Zihni
dc.contributor.authorKefal, Adnan
dc.contributor.authorOterkus, Erkan
dc.date.accessioned2020-06-21T12:27:07Z
dc.date.available2020-06-21T12:27:07Z
dc.date.issued2019
dc.identifier.issn0927-0256
dc.identifier.issn1879-0801
dc.identifier.urihttps://doi.org/10.1016/j.commatsci.2019.02.032
dc.identifier.urihttps://hdl.handle.net/20.500.12712/10873
dc.description28th International Workshop on Computational Mechanics of Materials (IWCMM) -- SEP 10-12, 2018 -- Univ Strathclyde, Technol & Innovat Ctr, Glasgow, SCOTLANDen_US
dc.descriptionBasoglu, Muhammed Fatih/0000-0002-6994-8225; Kefal, Adnan/0000-0002-4139-999X; Zerin, Zihni/0000-0001-7906-8136en_US
dc.descriptionWOS: 000464128700004en_US
dc.description.abstractThe critical effect of micro level defects should be examined at macro level to better understand the fracture behaviors of engineering materials. This study investigates the branching and deflecting behavior of a macro (main) crack in presence of multiple number of micro-cracks at the vicinity of the crack tip. For this purpose, a non-local continuum theory, known as Peridynamics (PD), is utilized based on the original set of bond-based PD equations. The main advantage of using PD is its characteristic superiorities on the modelling of dynamical fracture. Various example problems with inclined-linear and/or curvilinear micro-crack clusters are solved through the implementation of different numerical models to better understand the micro-crack toughening mechanisms. After validating the PD implementation with a benchmark case, several combinations of multiple micro-cracks with various locations are considered. To capture complex forms of crack branches, the positions of micro-cracks are designated to follow an encircling and spreading patterns at the vicinity of the main-crack tip. Hence, more internal energy is dissipated through the generation of new crack surfaces such that the main-crack deflects along a more twisting path. It has been observed that depending on the amount of dissipated energy, the propagation speed of main-crack alters. Also, it has been demonstrated that encircling potential crack propagation regions with micro-cracks provides an augmented toughness to the brittle materials. Overall, the efficiency and robustness of the PD theory are revealed for simulating crack propagation in brittle materials.en_US
dc.language.isoengen_US
dc.publisherElsevier Science Bven_US
dc.relation.isversionof10.1016/j.commatsci.2019.02.032en_US
dc.rightsinfo:eu-repo/semantics/openAccessen_US
dc.subjectPeridynamicsen_US
dc.subjectMicro cracksen_US
dc.subjectInteractions of cracksen_US
dc.subjectMaterial toughnessen_US
dc.subjectCrack propagationen_US
dc.subjectCrack curving and branchingen_US
dc.titleA computational model of peridynamic theory for deflecting behavior of crack propagation with micro-cracksen_US
dc.typeconferenceObjecten_US
dc.contributor.departmentOMÜen_US
dc.identifier.volume162en_US
dc.identifier.startpage33en_US
dc.identifier.endpage46en_US
dc.relation.journalComputational Materials Scienceen_US
dc.relation.publicationcategoryKonferans Öğesi - Uluslararası - Kurum Öğretim Elemanıen_US


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