Review on the Fracture Mechanism of Mining-Induced Coal and Rock Mass

Authors

  • Qi Liu School of Energy Science and Engineering, Henan Polytechnic University, Jiaozuo 454000, China
  • Runmin Wang School of Resources and Environment, Henan Polytechnic University, Jiaozuo 454000, China

DOI:

https://doi.org/10.54097/6kh76v83

Keywords:

Coal and rock mass, Fracture mechanism, Numerical simulation

Abstract

 Coal mine is one of the important energy resources in the world, and the fracture mechanism of coal and rock mass has always been one of the important research issues in the field of mining engineering in the process of coal mining and transportation. It is of great significance to understand the fracture mechanism of mining coal rock mass to ensure the safe production of coal mines and improve the efficiency of coal mining. In this paper, the research on the fracture mechanism of mined coal and rock mass is reviewed, and the deformation and failure characteristics of coal and rock mass under different stress states, the law of rock mass fault evolution, and the application of numerical simulation and experimental research in the study of the fracture mechanism of mined coal and rock mass are discussed.

Downloads

Download data is not yet available.

References

[1] Liu Y., Lu C.P., Wang H., et al. Study on deformation and failure mechanism of irregular coal pillars based on moment tensor inversion. Journal of Mining & Safety Engineering, 2023, 40(6): 1201–1209.

[2] Zhou N., Xu J.F., Zhang J.X., et al. Mechanism of rock burst induced by filling-weakened hard overburden. Chinese Journal of Rock Mechanics and Engineering, 2023, 42(10): 2412–2426.

[3] Cao A.Y., Dou L.M., Bai X.Q., et al. Mechanism, current status and challenges of mine seismicity in coal mines in China. Journal of China Coal Society, 2023, 48(5): 1894–1918.

[4] Zhu Z.J., Yao Z.H., Wang L.G., et al. Experimental study on the influence mechanism of fracture distribution on impact tendency of coal and rock mass. Journal of Mining & Safety Engineering, 2023, 40(3): 554–562.

[5] Yuan C.L., Wang Y.Z., Shi X.Y., et al. Rock burst mechanism of coal pillars in near-vertical extra-thick coal seams with segmented top-coal caving. Journal of Mining & Safety Engineering, 2023, 40(1): 60–68.

[6] Fan G.W., Zhang D.S., Chen M.W., et al. Dissipative structure characteristics and catastrophic instability threshold of fracture systems in mining overburden. Journal of Mining & Safety Engineering, 2019, 36(6): 1093–1101.

[7] Zhang Q.S. Study on macro–micro mechanical model of creep failure of brittle rocks under dynamic disturbance. Beijing University of Civil Engineering and Architecture, 2023.

[8] Meng F.F., Pu H., Ni H.Y., et al. Re-fracture mechanism and void structure evolution of broken rock mass in mined-out areas of closed mines. Coal Science and Technology, 2024, 52(2): 104–114.

[9] Shuang H.Q., Xin Y.Q., Li S.G., et al. Fracture distribution characteristics of overburden based on key strata theory in roof-cutting gob-side entry retaining. Coal Science and Technology, 2024.

[10] Yang J.F., Chai J., Zhang D.D., et al. Study on ductile fracture mechanism of coal and rock mass based on cohesive crack model. Chinese Journal of Rock Mechanics and Engineering, 2021, 40(S2): 3014–3023.

[11] Li J.H. Study on load transfer effect and instability characteristics of weathered rock in close-distance coal seam mining. Journal of Mining & Safety Engineering, 2023, 40(6): 1253–1263.

[12] Liu H.T., Han Z., Han Z.J., et al. Stress field evolution and roadway layout method in downward mining of close-distance coal seams. Coal Science and Technology, 2024.

[13] Zhang Z.N., Yang Y.Z. Numerical simulation of unloading dynamic fracture of coal considering roof subsidence effect. Journal of Tunnel and Underground Engineering Disaster Prevention, 2021, 3(3): 29–35.

[14] Chen H.X., Wang M.Y., Li J. Characteristic energy factors and application in deformation and failure of deep rock mass. Explosion and Shock Waves, 2019, 39(8): 41–51.

[15] Zeng L., Guo Y., Zha H.Y., et al. Cracking characteristics of silty mudstone under thermo-hydro-mechanical coupling. Journal of Hunan University (Natural Sciences), 2024, 51(1): 126–136.

[16] Zhang K., Zhang D.X., Zhao Y.Q., et al. Experimental study on acoustic emission evolution characteristics and response mechanism of damaged rocks. Coal Geology & Exploration, 2024, 52(3): 96–106.

[17] Wang J., Cao Y., Xue J., et al. A comparative experimental and theoretical calculation study of CaAl-LDH modified with various aromatic inhibitors for corrosion protection in epoxy coatings. Corrosion Science, 2024, 231: 111994. DOI: https://doi.org/10.1016/j.corsci.2024.111994

[18] Wang L., Shi T.W., Yan M.T., et al. Experimental study on influence mechanism of fiber orientation angle in AFRP cutting. Proceedings of the Institution of Mechanical Engineers, Part C, 2024, 238(6): 2071–2083. DOI: https://doi.org/10.1177/09544062231195147

[19] Deluan F., Yuxin W., Dongyao C., et al. Experimental study on the influence mechanism of clay particles on microbial treatment of granite residual soil. Construction and Building Materials, 2024, 411: 134659. DOI: https://doi.org/10.1016/j.conbuildmat.2023.134659

[20] Duan H.Q., Wang C., Sun M. Mechanical properties and support mechanism of coal–rock composite under post-peak unloading–reloading. Journal of Mining & Safety Engineering, 2024, 41(2): 372–383.

[21] Chen H., Changwei J., Shuofeng W., et al. Experimental study on cyclic variation of hydrogen-blended ammonia engine with Miller cycle. International Journal of Hydrogen Energy, 2024, 55: 1335–1346. DOI: https://doi.org/10.1016/j.ijhydene.2023.12.065

[22] Wang K., Zuo X.H., Du F., et al. Macro–micro failure characteristics and energy–damage constitutive model of coal–rock composite under cyclic loading. Journal of China Coal Society, 2024, 49(2): 767–784.

Downloads

Published

19-03-2026

Issue

Section

Articles

How to Cite

Liu, Q., & Wang, R. (2026). Review on the Fracture Mechanism of Mining-Induced Coal and Rock Mass. Academic Journal of Applied Sciences, 1(1), 13-15. https://doi.org/10.54097/6kh76v83