Three Dimensional Grain Boundary Modeling in Polycrystalline Plasticity

dc.contributor.author Yalçınkaya, Tuncay
dc.contributor.author Özdemir, İzzet
dc.contributor.author Fırat, Ali Osman
dc.coverage.doi 10.1063/1.5035076
dc.date.accessioned 2020-01-14T07:20:27Z
dc.date.available 2020-01-14T07:20:27Z
dc.date.issued 2018
dc.description 21st International ESAFORM Conference on Material Forming, ESAFORM 2018; Palermo; Italy; 23 April 2018 through 25 April 2018 en_US
dc.description.abstract At grain scale, polycrystalline materials develop heterogeneous plastic deformation fields, localizations and stress concentrations due to variation of grain orientations, geometries and defects. Development of inter-granular stresses due to misorientation are crucial for a range of grain boundary (GB) related failure mechanisms, such as stress corrosion cracking (SCC) and fatigue cracking. Local crystal plasticity finite element modelling of polycrystalline metals at micron scale results in stress jumps at the grain boundaries. Moreover, the concepts such as the transmission of dislocations between grains and strength of the grain boundaries are not included in the modelling. The higher order strain gradient crystal plasticity modelling approaches offer the possibility of defining grain boundary conditions. However, these conditions are mostly not dependent on misorientation of grains and can define only extreme cases. For a proper definition of grain boundary behavior in plasticity, a model for grain boundary behavior should be incorporated into the plasticity framework. In this context, a particular grain boundary model ([l]) is incorporated into a strain gradient crystal plasticity framework ([2]). In a 3-D setting, both bulk and grain boundary models are implemented as user-defined elements in Abaqus. The strain gradient crystal plasticity model works in the bulk elements and considers displacements and plastic slips as degree of freedoms. Interface elements model the plastic slip behavior, yet they do not possess any kind of mechanical cohesive behavior. The physical aspects of grain boundaries and the performance of the model are addressed through numerical examples. en_US
dc.identifier.doi 10.1063/1.5035076
dc.identifier.doi 10.1063/1.5035076 en_US
dc.identifier.issn 0094-243X
dc.identifier.scopus 2-s2.0-85047331708
dc.identifier.uri https://doi.org/10.1063/1.5035076
dc.identifier.uri https://hdl.handle.net/11147/7576
dc.language.iso en en_US
dc.publisher American Institute of Physics en_US
dc.relation.ispartof AIP Conference Proceedings en_US
dc.rights info:eu-repo/semantics/openAccess en_US
dc.subject Polycrystalline materials en_US
dc.subject Grain boundary en_US
dc.subject Stress corrosion cracking en_US
dc.subject Plasticity en_US
dc.title Three Dimensional Grain Boundary Modeling in Polycrystalline Plasticity en_US
dc.type Conference Object en_US
dspace.entity.type Publication
gdc.author.id 0000-0003-0211-2316
gdc.author.id 0000-0003-0211-2316 en_US
gdc.author.institutional Özdemir, İzzet
gdc.bip.impulseclass C5
gdc.bip.influenceclass C5
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gdc.coar.access open access
gdc.coar.type text::conference output
gdc.collaboration.industrial false
gdc.description.department İzmir Institute of Technology. Civil Engineering en_US
gdc.description.publicationcategory Konferans Öğesi - Uluslararası - Kurum Öğretim Elemanı en_US
gdc.description.scopusquality Q4
gdc.description.volume 1960 en_US
gdc.description.wosquality N/A
gdc.identifier.openalex W2800441454
gdc.identifier.wos WOS:000432776900275
gdc.index.type WoS
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gdc.oaire.impulse 1.0
gdc.oaire.influence 2.6654234E-9
gdc.oaire.isgreen true
gdc.oaire.keywords Plasticity
gdc.oaire.keywords Polycrystalline materials
gdc.oaire.keywords Grain boundary
gdc.oaire.keywords Stress corrosion cracking
gdc.oaire.popularity 3.1381335E-9
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gdc.oaire.sciencefields 0203 mechanical engineering
gdc.oaire.sciencefields 02 engineering and technology
gdc.oaire.sciencefields 0101 mathematics
gdc.oaire.sciencefields 01 natural sciences
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gdc.opencitations.count 2
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gdc.plumx.mendeley 7
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gdc.scopus.citedcount 2
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