A phase-field method for modeling cracks with frictional contact

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We introduce a phase-field method for continuous modeling of cracks with frictional contacts. Compared with standard discrete methods for frictional contacts, the phase-field method has two attractive features: (i) it can represent arbitrary crack geometry without an explicit function or basis enrichment, and (ii) it does not require an algorithm for imposing contact constraints. The first feature, which is common in phase-field models of fracture, is attained by regularizing a sharp interface geometry using a surface density functional. The second feature, which is a unique advantage for contact problems, is achieved by a new approach that calculates the stress tensor in the regularized interface region depending on the contact condition of the interface. Particularly, under a slip condition, this approach updates stress components in the slip direction using a standard contact constitutive law, while making other stress components compatible with stress in the bulk region to ensure nonpenetrating deformation in other directions. We verify the proposed phase-field method using stationary interface problems simulated by discrete methods in the literature. Subsequently, by allowing the phase field to evolve according to brittle fracture theory, we demonstrate the proposed method's capability for modeling crack growth with frictional contact.
Publisher
Wiley
Issue Date
2020-02
Language
English
Article Type
Article
Citation

International Journal for Numerical Methods in Engineering, v.121, no.4, pp.740 - 762

ISSN
0029-5981
DOI
10.1002/nme.6242
URI
http://hdl.handle.net/10203/291931
Appears in Collection
CE-Journal Papers(저널논문)
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