C Conferentia Proceedings
SBMR-04-0011 Mecânica das Rochas em Petróleo

Numerical modeling of fracture containment in multi-layered formations using a cohesive zone model

Renato Escobar Gutierrez1; Eleazar C Mejia Sanchez1; Deane Roehl1; Celso Romanel2

1 Tecgraf, Pontificia Universidade Catolica, Rio de janeiro; 2 Pontificia Universidade Catolica, Rio de janeiro

doi:10.20906/CPS/SBMR-04-0011

Resumo

The oil and gas reserves of the conventional reservoirs have been diminishing and leading the petroleum industry to exploit reservoirs that were not economically feasible due their low permeability. The hydraulic fracturing treatment can transform an uneconomical field into a viable producer. However, the application of this treatment requires that environmental and technological challenges be overcome. One of these challenges is the determination of the fluid-driven vertical fracture extent. In cases such as cuttings re-injection and CO2 sequestration fractures must be contained mainly to the pay zone since fracture breakout into overlaying or underlying formations with water-bearing zone can lead to irreparable water damage to the formation. Numerical modelling of hydraulic fracturing can reduce uncertainties in the reservoir integrity. Parametric studies help define critical conditions and predict the most favorable scenarios. In this work, a fully coupled cohesive fracture model is used to simulate hydraulic fracturing processes considering the propagation of a vertical planar fluid-driven fracture for a transient analyses. This paper is focused on the pressure required for crack extension and on the resulting fracture geometry considering the injection procedure as a concentrated fluid flow. The influence of by the vertical variation in tectonic stress, the elastic stiffness and the critical stress intensity factor on the fracture behavior is investigated. A finite element model with coupled cohesive elements was used for the simulation of rock fracture. Symmetrical (no vertical variation in tectonic stress) and asymmetrical (vertical variation in tectonic stress) tri-layered formations were studied and compared to the analytical solutions proposed by Simonson (1977) and Fung (1987). According to these results, the predicted pore pressure for crack propagation exhibits good agreement with the analytical solutions. As expected, the mechanism of fracture containment has proven to be the vertical variation

Palavras-chave: Fracture Containment; hydraulic fracturing; coupled cohesive element; Petroleum geomechanics; fracture mechanics; Fracture Propagation

Como citar

Renato Escobar Gutierrez; Eleazar C Mejia Sanchez; Deane Roehl; Celso Romanel. “Numerical modeling of fracture containment in multi-layered formations using a cohesive zone model”. VII Simpósio Brasileiro de Mecânica das Rochas. SBMR2016. 2016. DOI: 10.20906/CPS/SBMR-04-0011