Phase field theory for fracture at large strains including surface stresses

dc.contributor.author Jafarzadeh, Hossein
dc.contributor.author Farrahi, Gholam
dc.contributor.author Levitas, Valery
dc.contributor.author Javanbakht, Mahdi
dc.contributor.department Department of Aerospace Engineering
dc.contributor.department Ames National Laboratory
dc.contributor.department Mechanical Engineering
dc.contributor.department Ames Laboratory
dc.date 2020-12-08T21:01:47.000
dc.date.accessioned 2021-02-24T18:29:23Z
dc.date.available 2021-02-24T18:29:23Z
dc.date.copyright Wed Jan 01 00:00:00 UTC 2020
dc.date.issued 2020-01-01
dc.description.abstract <p>Phase field theory for fracture is developed at large strains with an emphasis on a correct introduction of surface stresses. This is achieved by multiplying the cohesion and gradient energies by the local ratio of the crack surface areas in the deformed and undeformed configurations and with the gradient energy in terms of the gradient of the order parameter in the reference configuration. This results in an expression for the surface stresses which is consistent with the sharp surface approach. Namely, the structural part of the Cauchy surface stress represents an isotropic biaxial tension, with the magnitude of a force per unit length equal to the surface energy. The surface stresses are a result of the geometric nonlinearities, even when strains are infinitesimal. They make multiple contributions to the Ginzburg-Landau equation for damage evolution, both in the deformed and undeformed configurations. Important connections between material parameters are obtained using an analytical solution for two separating surfaces, as well as an analysis of the stress-strain curves for homogeneous tension for different degradation and interpolation functions. A complete system of equations is presented in the undeformed and deformed configurations. All the phase field parameters are obtained utilizing the existing first principle simulations for the uniaxial tension of Si crystal in the [100] and [111] directions</p>
dc.description.comments <p>This is a pre-print of the article Jafarzadeh, Hossein, Gholam Hossein Farrahi, Valery I. Levitas, and Mahdi Javanbakht. "Phase field theory for fracture at large strains including surface stresses." <em>arXiv preprint arXiv:2011.13324</em> (2020). Posted with permission.</p>
dc.format.mimetype application/pdf
dc.identifier archive/lib.dr.iastate.edu/aere_pubs/174/
dc.identifier.articleid 1175
dc.identifier.contextkey 20481751
dc.identifier.s3bucket isulib-bepress-aws-west
dc.identifier.submissionpath aere_pubs/174
dc.identifier.uri https://dr.lib.iastate.edu/handle/20.500.12876/93027
dc.language.iso en
dc.source.bitstream archive/lib.dr.iastate.edu/aere_pubs/174/2020_LevitasValery_PhaseField.pdf|||Fri Jan 14 21:22:19 UTC 2022
dc.subject.disciplines Engineering Physics
dc.subject.disciplines Mechanics of Materials
dc.subject.disciplines Structures and Materials
dc.subject.keywords Phase field
dc.subject.keywords crack propagation
dc.subject.keywords surface tension
dc.subject.keywords surface energy
dc.subject.keywords large strains
dc.title Phase field theory for fracture at large strains including surface stresses
dc.type article
dc.type.genre article
dspace.entity.type Publication
relation.isAuthorOfPublication 850871e3-115a-428e-82cc-cbfafef5cf66
relation.isOrgUnitOfPublication 047b23ca-7bd7-4194-b084-c4181d33d95d
relation.isOrgUnitOfPublication 25913818-6714-4be5-89a6-f70c8facdf7e
relation.isOrgUnitOfPublication 6d38ab0f-8cc2-4ad3-90b1-67a60c5a6f59
File
Original bundle
Now showing 1 - 1 of 1
No Thumbnail Available
Name:
2020_LevitasValery_PhaseField.pdf
Size:
1.48 MB
Format:
Adobe Portable Document Format
Description:
Collections