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Título : A micromechanics-based variational phase-field model for fracture in geomaterials with brittle-tensile and compressive-ductile behavior
Autor: Alessi, Roberto
Samaniego Alvarado, Esteban Patricio
Degrande, Geert
Ulloa Vanegas, Jacinto Israel
Wambacq, Jef
Francois, Stijn
Correspondencia: Ulloa Vanegas, Jacinto Israel, jacintoisrael.ulloa@kuleuven.be
Palabras clave : Fracture
Mechanical engineering
Condensed matter physics
Variational formulation
Quasi brittle geomaterials
Non associative plasticity
Micromechanics
Gradient-damage phase-field models
Mechanics of materials
Frictional plasticity
Área de conocimiento FRASCATI amplio: 2. Ingeniería y Tecnología
Área de conocimiento FRASCATI detallado: 2.1.1 Ingeniería Civil
Área de conocimiento FRASCATI específico: 2.1 Ingeniería Civil
Área de conocimiento UNESCO amplio: 07 - Ingeniería, Industria y Construcción
ÁArea de conocimiento UNESCO detallado: 0715 - Mecánica y Metalurgia
Área de conocimiento UNESCO específico: 071 - Ingeniería y Profesiones Afines
Fecha de publicación : 2022
Volumen: Volumen 159
Fuente: Journal of the Mechanics and Physics of Solids
metadata.dc.identifier.doi: 10.1016/j.jmps.2021.104684
Tipo: ARTÍCULO
Abstract: 
This paper presents a framework for modeling failure in quasi-brittle geomaterials under different loading conditions. A micromechanics-based model is proposed in which the field variables are linked to physical mechanisms at the microcrack level: damage is related to the growth of microcracks, while plasticity is related to the frictional sliding of closed microcracks. Consequently, the hardening/softening functions and parameters entering the free energy follow from the definition of a single degradation function and the elastic material properties. The evolution of opening microcracks in tension leads to brittle behavior and mode I fracture, while the evolution of closed microcracks under frictional sliding in compression/shear leads to ductile behavior and mode II fracture. Frictional sliding is endowed with a non-associative law, a crucial aspect of the model that considers the effect of dilation and allows for realistic material responses with non-vanishing frictional energy dissipation. Despite the non-associative law, a variationally consistent formulation is presented using notions of energy balance and stability, following the energetic formulation for rate-independent systems. The material response of the model is first described, followed by the numerical implementation procedure and several benchmark finite element simulations. The results highlight the ability of the model to describe tensile, shear, and mixed-mode fracture, as well as responses with brittle-to-ductile transition. A key result is that, by virtue of the micromechanical arguments, realistic failure modes can be captured, without resorting to the usual heuristic modifications considered in the phase-field literature. The numerical results are thoroughly discussed with reference to previous numerical studies, experimental evidence, and analytical fracture criteria.
URI : http://dspace.ucuenca.edu.ec/handle/123456789/39528
https://api.elsevier.com/content/abstract/scopus_id/85119290335
URI Fuente: https://www.sciencedirect.com/journal/journal-of-the-mechanics-and-physics-of-solids/vol/159/suppl/C
ISSN : 0022-5096
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