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March 6, 2026Buildings0 citationsOpen Access

Numerical Simulation Study on Grouted Rock Bolting for Surrounding Rock Masses in Deep Soft Rock Roadway

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XZXicheng ZhangFJFeng JiangMYMinghao Yang

Key Points

  • The study aims to investigate how excavation and grouted rock bolting impact the stability of surrounding rock masses in deep soft rock roadways.
  • Conducted field monitoring and laboratory experiments at Xinhe Coal Mine.
  • Developed numerical models using FLAC3D for simulating various support schemes.
  • Analyzed roadway displacement fields and plastic failure development.
  • Simulation results showed strong agreement with field observations of roadway deformation patterns.
  • Identified Roadway Rehabilitation Scheme S1 as optimal, incorporating pre-grouting and full-section rock bolts.
  • Demonstrated high reliability of the numerical simulation methodology.

Abstract

Large deformations in deep soft rock roadways primarily stem from low rock strength under high in situ stress and intense mining disturbance. This renders stability control a critical challenge in tunneling support engineering. Utilizing Xinhe Coal Mine’s deep soft rock tunnel as a representative case, this study integrates field monitoring, laboratory experimentation, and numerical simulation to investigate how excavation and grouted rock bolting influence surrounding rock stability. Building upon field-observed deformation mechanisms and support failure patterns, constitutive models for FLAC3D’s embedded cable and beam elements were modified to achieve high-fidelity simulation of grouted support systems. Numerical models simulating diverse support schemes were established to analyze roadway displacement fields, plastic failure development, and structural behavior of support components, ultimately identifying the optimal rehabilitation solution. The research results indicate that the numerical simulation outcomes of the original support scheme exhibit good agreement with field observations in terms of roadway deformation patterns, deformation magnitudes, and occurrences of bolt/cable fractures. This demonstrates that the adopted refined numerical simulation methodology and parameters are reasonable and exhibit high reliability. Considering both surrounding rock stability and cost control, Roadway Rehabilitation Scheme S1 was identified as the optimal support solution. Its specific parameters are pre-grouting + full-section rock bolts (diameter 22 mm, length 2.4 m, spacing 0.8 m, row spacing 1.6 m) + full-section grouted cables (diameter 22 mm, length 6.2 m, spacing 1.0 m, row spacing 1.6 m).

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Cite This Study

Zhang et al. (2026) studied this question.

synapsesocial.com/papers/69aa70c8531e4c4a9ff5ae39https://doi.org/10.3390/buildings16051014
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