Invariant Based Transversely-Isotropic Material and Failure Model for Fiber-Reinforced Polymers

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OriginalspracheEnglisch
Seiten (von - bis)25-50
Seitenumfang25
FachzeitschriftComputers, Materials and Continua
Jahrgang16
Ausgabenummer1
PublikationsstatusVeröffentlicht - 2010

Abstract

In this article, a constitutive formulation of a transversely-isotropic material and failure model for fiber-reinforced polymers is presented comprising pre-failure material nonlinearities, a novel invariant based quadratic failure criterion (IQC) as well as post failure material softening. The failure surface of the IQ criterion is assumed to take the influence of triaxiality on fracture into account. Further, a distinction between fiber failure and inter-fiber failure is conducted. Material softening is governed by a fracture energy formulation and the introduction of an internal length. The constitutive model is implemented into a programming user interface of the commercial finite element program Abaqus. As results, different laminate lay-ups are modelled and exposed to different stress states in an FE analysis. The obtained failure surfaces and stress strain curves for each laminate lay-up are compared to experimental data. As further applications of the material model presented, a curved composite beam, showing delamination, and a 0̊/90̊/0̊-rod, showing the characteristic damage state in the 90̊layer, are simulated and compared to tests.

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Invariant Based Transversely-Isotropic Material and Failure Model for Fiber-Reinforced Polymers. / Vogler, M.; Ernst, G.; Rolfes, R.
in: Computers, Materials and Continua, Jahrgang 16, Nr. 1, 2010, S. 25-50.

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

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abstract = "In this article, a constitutive formulation of a transversely-isotropic material and failure model for fiber-reinforced polymers is presented comprising pre-failure material nonlinearities, a novel invariant based quadratic failure criterion (IQC) as well as post failure material softening. The failure surface of the IQ criterion is assumed to take the influence of triaxiality on fracture into account. Further, a distinction between fiber failure and inter-fiber failure is conducted. Material softening is governed by a fracture energy formulation and the introduction of an internal length. The constitutive model is implemented into a programming user interface of the commercial finite element program Abaqus. As results, different laminate lay-ups are modelled and exposed to different stress states in an FE analysis. The obtained failure surfaces and stress strain curves for each laminate lay-up are compared to experimental data. As further applications of the material model presented, a curved composite beam, showing delamination, and a 0̊/90̊/0̊-rod, showing the characteristic damage state in the 90̊layer, are simulated and compared to tests.",
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T1 - Invariant Based Transversely-Isotropic Material and Failure Model for Fiber-Reinforced Polymers

AU - Vogler, M.

AU - Ernst, G.

AU - Rolfes, R.

PY - 2010

Y1 - 2010

N2 - In this article, a constitutive formulation of a transversely-isotropic material and failure model for fiber-reinforced polymers is presented comprising pre-failure material nonlinearities, a novel invariant based quadratic failure criterion (IQC) as well as post failure material softening. The failure surface of the IQ criterion is assumed to take the influence of triaxiality on fracture into account. Further, a distinction between fiber failure and inter-fiber failure is conducted. Material softening is governed by a fracture energy formulation and the introduction of an internal length. The constitutive model is implemented into a programming user interface of the commercial finite element program Abaqus. As results, different laminate lay-ups are modelled and exposed to different stress states in an FE analysis. The obtained failure surfaces and stress strain curves for each laminate lay-up are compared to experimental data. As further applications of the material model presented, a curved composite beam, showing delamination, and a 0̊/90̊/0̊-rod, showing the characteristic damage state in the 90̊layer, are simulated and compared to tests.

AB - In this article, a constitutive formulation of a transversely-isotropic material and failure model for fiber-reinforced polymers is presented comprising pre-failure material nonlinearities, a novel invariant based quadratic failure criterion (IQC) as well as post failure material softening. The failure surface of the IQ criterion is assumed to take the influence of triaxiality on fracture into account. Further, a distinction between fiber failure and inter-fiber failure is conducted. Material softening is governed by a fracture energy formulation and the introduction of an internal length. The constitutive model is implemented into a programming user interface of the commercial finite element program Abaqus. As results, different laminate lay-ups are modelled and exposed to different stress states in an FE analysis. The obtained failure surfaces and stress strain curves for each laminate lay-up are compared to experimental data. As further applications of the material model presented, a curved composite beam, showing delamination, and a 0̊/90̊/0̊-rod, showing the characteristic damage state in the 90̊layer, are simulated and compared to tests.

KW - Failure

KW - Fracture energy

KW - Shear nonlinearities

KW - Transverse isotropy

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