A phase field model for hydraulic fracture: Drucker-Prager driving force and a hybrid coupling strategy
Y. Navidtehrani, C. Beteg\'on, J. Vallejos, E. Mart\'inez-Pa\~neda

TL;DR
This paper introduces a versatile phase field model for hydraulic fracture that incorporates a Drucker-Prager-based approach and a hybrid coupling strategy, enabling more accurate simulations of complex geomechanical phenomena in fractured materials.
Contribution
It presents a novel theoretical and computational framework that improves fluid-structure interaction modeling and extends to asymmetric fracture behaviors using Drucker-Prager decomposition.
Findings
Enhanced accuracy with hybrid coupling approach
Ability to simulate asymmetric tension-compression fracture behavior
Insights into permeability, cracking, and multiaxial conditions
Abstract
Recent years have seen a significant interest in using phase field approaches to model hydraulic fracture, so as to optimise a process that is key to industries such as petroleum engineering, mining and geothermal energy extraction. Here, we present a novel theoretical and computational phase field framework to simulate hydraulic fracture. The framework is general and versatile, in that it allows for improved treatments of the coupling between fluid flow and the phase field, and encompasses a universal description of the fracture driving force. Among others, this allows us to bring two innovations to the phase field hydraulic fracture community: (i) a new hybrid coupling approach to handle the fracture-fluid flow interplay, offering enhanced accuracy and flexibility; and (ii) a Drucker-Prager-based strain energy decomposition, extending the simulation of hydraulic fracture to materials…
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