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  4. Simultaneous initiation and growth of multiple radial hydraulic fractures from a horizontal wellbore
 
research article

Simultaneous initiation and growth of multiple radial hydraulic fractures from a horizontal wellbore

Lecampion, Brice  
•
Desroches, Jean
2015
Journal of the Mechanics and Physics of Solids

Multi-stage fracturing is the current preferred method of completion of horizontal wells in unconventional hydrocarbon reservoirs. Its core component consists in simultaneously initiating and propagating an array of hydraulic fractures. We develop a numerical model for the initiation and growth of an array of parallel radial hydraulic fractures. The solution accounts for fracture growth, coupling between elastic deformation and fluid flow in the fractures, elastic stress interactions between fractures and fluid flow in the wellbore. We also take into account the presence of a local pressure drop (function of the entering flow rate) at the connection between the well and the fracture, i.e., a choke-like effect due to current well completion practices, also referred to as entry friction. The partitioning of the fluid into the different fractures at any given time is part of the solution and is a critical indicator of simultaneous (balanced fluid partitioning) versus preferential growth. We validate our numerical model against reference solutions and a laboratory experiment for the initiation and growth of a single radial hydraulic fracture. We then investigate the impact of stress interaction on preferential growth of a subset of fractures in the array. Our results show that a sufficiently large local entry friction provides a strong feedback in the system and thus can counteract elastic stress interaction between fractures, thereby ensuring simultaneous growth. We propose a dimensionless number capturing the competition between stress interaction and local entry friction. This dimensionless number is a function of rock properties, fracture spacing and injection parameters. We verify that it captures the transition from the case of simultaneous growth (entry friction larger than interaction stress) to the case of preferential growth of some fractures (interaction stress larger than entry friction). We also discuss the implication of these results for multi-stage fracturing engineering practices. (C) 2015 Elsevier Ltd. All rights reserved.

  • Details
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Type
research article
DOI
10.1016/j.jmps.2015.05.010
Web of Science ID

WOS:000361922100013

Author(s)
Lecampion, Brice  
Desroches, Jean
Date Issued

2015

Publisher

Pergamon-Elsevier Science Ltd

Published in
Journal of the Mechanics and Physics of Solids
Volume

82

Start page

235

End page

258

Subjects

Hydraulic fracturing

•

Fracture shielding

•

Fluid-solid interaction

•

Numerical modeling

•

System modeling

Editorial or Peer reviewed

REVIEWED

Written at

OTHER

EPFL units
GEL  
Available on Infoscience
September 15, 2015
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/117876
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