Abstract

There are a large number of non-penetrating collinear cracks in the rock slope of an open-pit mine. The timeliness of cracks in the rock mass is a problem that cannot be ignored in terms of slope engineering safety. Based on the superposition principle and fracture mechanics, the stress intensity factor of the rock mass crack tip with collinear fractures under biaxial compression was calculated in this study. A mechanical model of rock mass crack propagation with collinear fractures under constant load was established according to the Charles equation. The effects of loading time, crack penetration rate, and crack dip angle on crack propagation along the direction of the rock bridge were analyzed theoretically. The variations in crack propagation with time in the rock mass were examined using a LS-DYNA creep numerical model. The results show that the fracture growth rate changes in three stages over time, progressing through a stable stage, a decreasing stage, and an abrupt stage. A higher crack penetration rate and a larger crack inclination angle cause a higher rock bridge penetration rate in the rock mass. When the crack penetration rate exceeds 74% or the fracture inclination angle is about 60°, the crack expansion directly enters the abrupt stage, and the rock bridge is penetrated. The theoretical analysis results are in close agreement with the numerical results of this work, which validates the proposed age expansion mechanical model for rock masses with non-penetrating collinear fractures.

Highlights

  • Rock mass stability analysis is an important research topic in the field of geotechnical engineering

  • Based on the superposition principle and fracture mechanics, the stress intensity factor of the rock mass crack tip with collinear fractures under biaxial compression was calculated in this study

  • A mechanical model of rock mass crack propagation with collinear fractures under constant load was established according to the Charles equation

Read more

Summary

INTRODUCTION

Rock mass stability analysis is an important research topic in the field of geotechnical engineering. Huang et al studied six failure modes of platform cracks in the rock slope and the propagation and amalgamation of cracks in rock bridges. They determined the failure mode by numerical simulation (PFC).. Kemeny simulated the subcritical crack propagation of rock under compression to establish a mechanical model for rock fracture cohesion degradation with time.. The stress intensity factor of the crack tip of a rock mass with collinear fractures under biaxial compression was calculated according to the superposition principle and fracture mechanics. The effects of loading time, crack penetration rate, and crack dip angle on fracture propagation along the direction of a rock bridge were analyzed theoretically. Equivalent schematic diagram of stress state A under biaxial compression

Mechanical model
Timeliness model
Effect of time factor
Effect of rock bridge length
Effect of confining pressure
Effect of crack inclination
Numerical models
Analysis of the stress and displacement curve at the crack tip
Comparative analysis of theoretical and simulation results
Findings
CONCLUSIONS
Full Text
Published version (Free)

Talk to us

Join us for a 30 min session where you can share your feedback and ask us any queries you have

Schedule a call