Modeling dynamic crack branching in unsaturated porous media through multi-phase micro-periporomechanics
Hossein Pashazad, Xiaoyu Song

TL;DR
This paper introduces a coupled micro-periporomechanics model incorporating micro-rotation to simulate dynamic crack branching in unsaturated porous media, validated through numerical experiments under various loading conditions.
Contribution
It extends existing models by integrating micro-rotation effects within a Cosserat continuum framework for better crack behavior prediction.
Findings
Model effectively captures crack branching phenomena.
Transition from single to multiple crack branches analyzed.
Numerical results validate model robustness and accuracy.
Abstract
Dynamic crack branching in unsaturated porous media holds significant relevance in various fields, including geotechnical engineering, geosciences, and petroleum engineering. This article presents a numerical investigation into dynamic crack branching in unsaturated porous media using a recently developed coupled micro-periporomechanics paradigm. This paradigm extends the periporomechanics model by incorporating the micro-rotation of the solid skeleton. Within this framework, each material point is equipped with three degrees of freedom: displacement, micro-rotation, and fluid pressure. Consistent with the Cosserat continuum theory, a length scale associated with the micro-rotation of material points is inherently integrated into the model. This study encompasses several key aspects: (1) Validation of the coupled micro-periporomechanics paradigm for effectively modeling crack branching…
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Taxonomy
TopicsDam Engineering and Safety · Rock Mechanics and Modeling · Numerical methods in engineering
