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October 22, 2025Processes2 citationsOpen Access

Numerical Simulation Study on Volume Fracturing of Shale Oil Reservoirs in Y Block of Ordos Basin, China

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JZJinyuan ZhangJCJunbin ChenZSZhen Sun

Key Points

  • The study shows that natural fractures significantly influence hydraulic fracture direction in shale reservoirs.
  • Numerical simulations indicate that lower geostress differences result in complex fracture branching compared to simpler fracture morphology at higher stresses.
  • Fracture width and pore pressure at injection points demonstrate distinct trends during hydraulic fracturing under varying geostress conditions.
  • Simulation results provide vital insights for optimizing multi-cluster fracturing techniques in horizontal well sections of shale formations.

Abstract

The shale oil reservoir in Block Y of the Ordos Basin exhibits low porosity and low permeability, yet it features distinct stratification and developed micro-fractures. During the development process using “horizontal wells + volume fracturing”, the differential in geostress exerts a certain influence on the initiation and propagation of fractures. This paper employs the Cohesive element simulation method to investigate the formation patterns of fracture networks in fractured formations. By prefabricating natural fractures, the study explores the impact of natural fractures on the direction of hydraulic fractures during the hydraulic fracturing process. The study considers the fracture initiation and propagation patterns as well as the interaction between hydraulic fractures and natural fractures under differential geostress conditions of 0 MPa, 1 MPa, and 5 MPa. The numerical simulation results reveal that the presence of natural fractures significantly affects the direction of hydraulic fractures, with the tip of the hydraulic fracture deflecting towards the natural fracture. The smaller the geostress difference, the more complex the fractures become with more branching fractures. Conversely, a larger geostress difference leads to the formation of a single double-wing fracture perpendicular to the minimum principal stress, resulting in a simpler fracture morphology. The pore pressure variation at the injection point generally experiences a rapid increase followed by a slight decrease, subsequently undergoing wavy changes. The occurrence of wavy pressure variations indicates the continuous generation of micro-fractures. The fracture width at the injection point generally exhibits an increasing trend followed by a decreasing trend. When the stress difference is 0 MPa, 1 MPa, and 5 MPa, the peak rupture pressures are 12.63 MPa, 13.42 MPa, and 18.33 MPa, respectively; the maximum crack openings are 0.797 cm, 0.779 cm, and 0.771 cm, respectively. The study on fracture initiation and propagation in shale reservoirs provides guidance for the field application of multi-cluster fracturing in horizontal well sections.

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Cite This Study

Zhang et al. (2025) studied this question.

synapsesocial.com/papers/68f83321d24b29c969481fachttps://doi.org/10.3390/pr13103356
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Also Consider

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