Multiscale simulation of fracture of braided composites via repetitive unit cells

dc.contributor
Universitat Politècnica de Catalunya. Institut de Tècniques Energètiques
dc.contributor.author
Šmilauer, V.
dc.contributor.author
Hoover, Christian G.
dc.contributor.author
Bažant, Zdeněk Pavel
dc.contributor.author
Caner, Ferhun Cem
dc.contributor.author
Waas, Anthony M
dc.contributor.author
Shahwan, Khaled W.
dc.date.issued
2011-04
dc.identifier
Šmilauer, V. [et al.]. Multiscale simulation of fracture of braided composites via repetitive unit cells. "Engineering fracture mechanics", Abril 2011, vol. 78, núm. 6, p. 901-918.
dc.identifier
0013-7944
dc.identifier
https://hdl.handle.net/2117/13154
dc.identifier
10.1016/j.engfracmech.2010.10.013
dc.description.abstract
Two-dimensional triaxially braided composites (2DTBCs) are attractive in crashworthiness design because their fracture can dissipate a significantly larger amount of impact energy than other light-weight materials. This paper aims at predicting the fracture energy, Gf, and the effective length of the fracture process zone, cf, of 2DTBC composites. Since the fracture parameters are best manifested in the scaling properties and are the main parameters in the size effect law, the nominal strengths of three geometrically similar notched beams of three different sizes are simulated in a 3D finite element framework. The simulations are run for three different bias tow angles: 30º, 45º and 60º. Continuum beam elements in front of the notch are replaced with repetitive unit cells (RUCs), which represent the 2DTBC’s mesostructure, and are located in the region of potential cracking. Multiscale simulations, incorporating damage mechanics, are used to predict the pre- and post-peak response from three-point bending tests. Nominal stresses are calculated from the predicted peak loads and used to fit the size effect law. The dimensionless energy release rate function g(a) is determined from the J-integral. The values of Gf and cf are then determined using g(a) and the size effect law. With some exceptions, the results in general match well with the results of size effect experiments, and particularly the strong size effect observed in the tests.
dc.description.abstract
Peer Reviewed
dc.description.abstract
Postprint (published version)
dc.format
18 p.
dc.format
application/pdf
dc.language
eng
dc.rights
Restricted access - publisher's policy
dc.subject
Àrees temàtiques de la UPC::Enginyeria dels materials::Assaig de materials::Assaig de fractura
dc.subject
Polymeric composites -- Fracture
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Finite element analysis
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Fracture mechanics
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Automobiles -- Crashworthiness
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Polímers -- Propietats mecàniques
dc.subject
Mecànica de la fractura
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Elements finits -- Anàlisi
dc.title
Multiscale simulation of fracture of braided composites via repetitive unit cells
dc.type
Article


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