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March 7, 2026Processes2 citationsOpen Access

Fracture Response Characteristics and Rockburst Pressure-Relief Control of Thick and Hard Roofs Under Multi-Parameter Coupled Staged Hydraulic Fracturing

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GDGuowei DongDLDongyang LiXRXiaoliang Ren

Key Points

  • The aim is to analyze fracture propagation and develop pressure-relief techniques in thick, hard roofs during hydraulic fracturing.
  • Conducted a 3D numerical study using ABAQUS finite element platform
  • Applied Ins-coh cohesive elements to model fracture behavior
  • Varied elastic modulus, Poisson’s ratio, injection rate, and fluid viscosity for analysis
  • Employed borehole imaging to observe fracture connectivity
  • Increasing elastic modulus reduces fractured volume by 8% for every 10 GPa rise
  • Higher Poisson’s ratio increases fracture width and volumetric growth by about 3% and 5%
  • Raising injection rate from 0.01 to 0.025 m3/s boosts fractured volume by approximately 160%
  • Fluid viscosity has limited impact on volume but stabilizes fracture morphology

Abstract

To address the problems of strong roof integrity, severe energy accumulation, and difficult caving in thick and hard roofs, a three-dimensional numerical study on fracture propagation and pressure-relief control durisng segmented hydraulic fracturing was carried out based on the engineering geological conditions of the 6125-1 working face at the Haishiwan Coal Mine, Shaanxi Province, China. using the ABAQUS finite element platform coupled with Ins-coh cohesive elements. A systematic analysis was conducted to elucidate the effects of elastic modulus, Poisson’s ratio, injection rate, and fluid viscosity on fracture initiation, stress evolution, and fractured volume. The results show that for every 10 GPa increase in elastic modulus, the average fractured volume decreases by 8%, and the fracture width exhibits a marked reduction; increasing Poisson’s ratio enhances the lateral deformation compatibility of the rock mass, raising the fracture width and volumetric growth rate by approximately 3% and 5%, respectively, although an excessively high Poisson’s ratio induces stress diffusion and reduces fracture stability. When the injection rate increases from 0.01 m3/s to 0.025 m3/s, the fractured volume increases by about 160%, and the maximum fracture width increases by 43%, whereas increasing fluid viscosity exerts a limited influence on volumetric growth but is conducive to stabilizing fracture morphology. Field observations via borehole imaging and seepage confirm full fracture connectivity within the roof and the formation of a continuous rupture zone, promoting timely roof breakage and caving along the dip direction and thereby creating favorable conditions for reducing rockburst hazards at the working face. This study clarifies the mechanical mechanisms and multi-parameter coupling laws governing hydraulic fracture propagation in thick and hard roofs, providing a theoretical basis and engineering reference for roof pressure-relief control and rockburst-resistant design under similar geological conditions.

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Cite This Study

Dong et al. (2026) studied this question.

synapsesocial.com/papers/69abc2725af8044f7a4ec0f7https://doi.org/10.3390/pr14050843
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