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A material force method for inelastic fracture mechanics
Authors:TD Nguyen  S Govindjee  H Gao
Institution:a Division of Mechanics and Computation, Department of Mechanical Engineering, Stanford University, Stanford, CA 94305, USA
b Structural Engineering, Mechanics and Materials, Department of Civil and Environmental Engineering, Berkeley, CA 94720, USA
c Science-Based Materials Modeling Department, Sandia National Laboratories, P.O. Box 0969, Livermore, CA 94551, USA
d Department of Theory of Mesoscopic Phenomena, Max-Planck Institute for Metals Research, Heisenbergstrasse 1, D-70569 Stuttgart, Germany
Abstract:A material force method is proposed for evaluating the energy release rate and work rate of dissipation for fracture in inelastic materials. The inelastic material response is characterized by an internal variable model with an explicitly defined free energy density and dissipation potential. Expressions for the global material and dissipation forces are obtained from a global balance of energy-momentum that incorporates dissipation from inelastic material behavior. It is shown that in the special case of steady-state growth, the global dissipation force equals the work rate of dissipation, and the global material force and J-integral methods are equivalent. For implementation in finite element computations, an equivalent domain expression of the global material force is developed from the weak form of the energy-momentum balance. The method is applied to model problems of cohesive fracture in a remote K-field for viscoelasticity and elastoplasticity. The viscoelastic problem is used to compare various element discretizations in combination with different schemes for computing strain gradients. For the elastoplastic problem, the effects of cohesive and bulk properties on the plastic dissipation are examined using calculations of the global dissipation force.
Keywords:Material force  J-integral  Cohesive fracture  Viscoelastic fracture  Ductile fracture
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