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May 1, 2026Applied Sciences2 citationsOpen Access

Mechanism and Engineering Practice of Pressure Relief by Hydraulic Fracturing with Directional Long Boreholes in Hard Roof Strata

ZYZhuangzhuang YaoTFTianxin FengLDLinchao Dai

Key Points

  • This research aims to explore the pressure relief mechanisms through hydraulic fracturing in hard roof strata to enhance mine safety.
  • Conducted true triaxial hydraulic fracturing experiments with acoustic emission monitoring.
  • Identified a low-position key stratum as the target for fracturing based on geological survey.
  • Designed a fracturing network with 6 drilling fields and 12 directional long boreholes.
  • Achieved a maximum fracturing influence radius of 27.8 m.
  • Observed reductions in average daily microseismic event frequency by 50.65% and total energy by 27.73%.
  • Noted a decrease in stress in the roadway by 17.69%, confirming effective pressure relief.

Abstract

To address the technical challenge of large-area roof hanging and induced strong strata behaviors in deep mines with hard roof strata, a study on pressure relief using hydraulic fracturing technology was conducted, taking the 1012006 working face in the Yuanzigou Coal Mine as the engineering background. Through geological survey and key stratum theory analysis, a low-position key stratum located 23 m above the roadway roof was identified as the target layer for fracturing. True triaxial hydraulic fracturing experiments coupled with acoustic emission (AE) monitoring revealed a synchronous response characterized by a sudden drop in injection pressure and a rapid increase in AE counts. This established a quantitative correlation between rock mass fracturing and AE characteristics, providing a theoretical basis for field microseismic monitoring. Based on the “dual-borehole synergy” borehole layout principle, a fracturing network comprising 6 drilling fields and 12 directional long boreholes was designed, with a total drilling length of 5727 m and 120 planned fracturing stages. Specialized equipment was selected for implementation. Field monitoring results demonstrated: a maximum fracturing influence radius of 27.8 m; that the average daily frequency and total energy of microseismic events decreased by 50.65% and 27.73%, respectively; and that the stress in the deep part of the roadway decreased by 17.69%. These results confirm the effective improvement of the roof stress environment and the successful achievement of the expected pressure relief and rockburst prevention effect.

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Cite This Study

Yao et al. (2026) studied this question.

synapsesocial.com/papers/69f44488967e944ac55678cdhttps://doi.org/10.3390/app16094209
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