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We have built empirical relationships from our observations and also used a classical micromechanical model for brittle failure.
This study develops a coupled elastoplastic damage model for brittle rocks within the framework of irreversible thermodynamics.
A moving mesh finite element method is studied for the numerical solution of a phase-field model for brittle fracture.
The prediction model for brittle materials shall be revised based on material properties and more removal forms.
Development of brittle fracture and the associated macroscopic behaviour of rock specimens in laboratory tests are simulated using a local degradation model for brittle fracture in heterogeneous rocks.
A temperature-dependent fracture toughness model for brittle coating/ductile substrate systems under indentation is proposed based on microcrack formation theory.
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The objective of this paper is to develop a constitutive model for damageable brittle and quasi-brittle materials.
In this paper we propose a new material point model for the brittle failure which incorporates a statistical failure criterion.
Shear band localization is investigated by a strain-gradient-enhanced damage model for quasi-brittle geomaterials.
A damage model for quasi-brittle materials embedded into the two dimensional C1 continuity triangular finite element formulation based on the strain gradient continuum theory is considered.
A multi-scale Finite Element Microstructure MEshfree (FEMME) fracture model for quasi-brittle materials with complex microstructures is applied to simulate thermo-mechanical damage in a plasma-sprayed thermal barrier coating system.
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