Journal of Petroleum Science & Engineering2022,Vol.21016.DOI:10.1016/j.petrol.2021.109798

Numerical study of hydraulic fracture propagation in inherently laminated rocks accounting for bedding plane properties

Zhang, Yulong Liu, Zaobao Han, Bei Zhu, Shu Zhang, Xin
Journal of Petroleum Science & Engineering2022,Vol.21016.DOI:10.1016/j.petrol.2021.109798

Numerical study of hydraulic fracture propagation in inherently laminated rocks accounting for bedding plane properties

Zhang, Yulong 1Liu, Zaobao 2Han, Bei 3Zhu, Shu 1Zhang, Xin4
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作者信息

  • 1. Hohai Univ
  • 2. Northeastern Univ
  • 3. Beijing Univ Technol
  • 4. Shandong Jianzhu Univ
  • 折叠

Abstract

The objective of this paper is to investigate hydraulic fracture propagation in inherently laminated rocks considering different bedding plane characteristics. To this end, a layered particle-based numerical model is first established in the framework of particle flow simulation. The mechanical behavior of rock matrix is controlled by randomly distributed bond contacts while that of bedding planes by preferentially orientated smooth joint contacts. On this basis, an improved hydromechanical coupled model is then proposed by modelling of hydraulic pipes according to contact types, which can well describe the fluid flow difference of rock matrix and bedding planes. The efficiency of improved model is assessed by comparisons with the Blanton's criterion and typical experimental evidences. Numerical predictions are in good agreement with analytical solutions. The interaction modes between induced fractures and bedding planes are also captured successfully. Hydraulic fracturing simulations of laminated rocks are then conducted and quantitatively analyzed in terms of borehole pressure and fracture propagation. Some key parameters such as the elastic, strength, permeability and thickness of bedding planes effect on hydraulic fracturing process are further investigated and discussed.

Key words

Hydraulic fracturing/Laminated rocks/Bedding planes/Hydromechanical coupling/Particle flow simulation/Discrete element method/BONDED-PARTICLE MODEL/SHALE GAS/MECHANICAL-BEHAVIOR/NATURAL FRACTURES/ELEMENT/INITIATION/PRESSURE/DEFORMATION/SANDSTONE/CRITERION

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出版年

2022
Journal of Petroleum Science & Engineering

Journal of Petroleum Science & Engineering

ISSN:0920-4105
被引量8
参考文献量54
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