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April 26, 2026Applied Sciences0 citationsOpen Access

Evolution Mechanism and Bearing Capacity of End-Area Hanging Roofs in Thick Hard Roofs with Liquid Nitrogen Fracturing Control

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PSPengfei ShanKYKe YangHXHuicong Xu

Key Points

  • This study aims to explore the evolution mechanisms and bearing capacity of end-area hanging roofs in thick hard roofs under severe strata pressures.
  • Developed a multiscale mechanical model for roof evolution.
  • Conducted simulations using FLAC3D and 3DEC to analyze deformation patterns.
  • Proposed a weakening strategy integrating drilling, hydraulic pre-cracking, and liquid nitrogen fracturing.
  • Derived limit criteria confirming bending failure as the main cause of instability.
  • Proven that the weakening strategy forms a 3D fracture network and reduces peak shield resistance by 20%.
  • Confirmed improved stability and reduced caving intervals in field tests.

Abstract

To address severe strata pressure induced by large end-area hanging spans and poor caving of thick, hard roofs in western coal mines, this study takes the 1302 working face of Zhujiamao Coal Mine as a case study. A multiscale mechanical model is developed to describe the progressive evolution of a stratified hard roof from a continuous beam to a cantilever beam and finally to an arched triangular hanging roof. Limit criteria for the maximum hanging length under bending and shear failure are derived, indicating that bending governs end-area roof instability. The theoretical results show good agreement with field observations and numerical simulations, providing guidance for liquid nitrogen fracturing target selection. Coupled FLAC3D-3DEC simulations reveal the staged deformation of overlying strata and clarify the spatial correspondence between the “O-X” fracture pattern and the arched triangular hanging roof. Based on these findings, a collaborative weakening strategy integrating directional drilling, hydraulic pre-cracking, and deep liquid nitrogen fracturing is proposed. Field observations and comparative tests confirm that this method effectively forms a three-dimensional fracture network, reduces roof stiffness and strength, shortens the caving interval, lowers peak shield resistance, and promotes stable caving of the end-area hanging roof.

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Cite This Study

Shan et al. (2026) studied this question.

synapsesocial.com/papers/69edac074a46254e215b3d5dhttps://doi.org/10.3390/app16094195
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