Mechanical properties and damage evolution of rock–backfill composite under impact load

Jinping Guo , Zefeng Li , Xiaolin Wang , Haiqiang Jiang , Shunman Chen , Jinyan Zhang

Green and Smart Mining Engineering ›› 2025, Vol. 2 ›› Issue (2) : 109 -121.

PDF (14222KB)
Green and Smart Mining Engineering ›› 2025, Vol. 2 ›› Issue (2) :109 -121. DOI: 10.1016/j.gsme.2025.05.004
research-article
Mechanical properties and damage evolution of rock–backfill composite under impact load
Author information +
History +
PDF (14222KB)

Abstract

The combined failure of rocks and backfills significantly affects the safety of underground mining. Based on the finite difference method (FDM)–discrete element method (DEM) coupled numerical simulation method, a numerical system of a split Hopkinson pressure bar (SHPB) and numerical models of rock–backfill composites were constructed. The mechanical properties, fracture process, microcrack propagation, and damage evolution of rock–backfill composites under impact loading were investigated. The results indicated that the dynamic peak stress and peak strain of the rock–backfill composite decreased at lower cement tailing ratios (CTR). Microcracks first appeared in the low-CTR region of the backfill and gradually spread into the surrounding rock. As the CTR decreased, the rock damage decreased, whereas the backfill damage increased. The rock and low-CTR zone of the backfill underwent coupled failure after instability at their contact interface, resulting in greater fracture penetration in the composite. The damage evolution of the rock–backfill composite in both combination modes occurred in three stages: gradual accumulation, dramatic increase, and deceleration. The layered structure changed the stress distribution in the composite, causing a sharp increase in microcracks in the low-CTR region of the backfill during the gradual damage accumulation stage.

Keywords

Rock–backfill composite / Split Hopkinson pressure bar / Finite difference method / Discrete element method / Mechanical properties / Damage evolution

Cite this article

Download citation ▾
Jinping Guo, Zefeng Li, Xiaolin Wang, Haiqiang Jiang, Shunman Chen, Jinyan Zhang. Mechanical properties and damage evolution of rock–backfill composite under impact load. Green and Smart Mining Engineering, 2025, 2 (2) : 109-121 DOI:10.1016/j.gsme.2025.05.004

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

A.X. Wu, Y. Wang, Z.E. Ruan, B.L. Xiao, J.D. Wang, L.Q. Wang, Key theory and technology of cemented paste backfill for green mining of metal mines, Green Smart Min. Eng. 1 (1) (2024) 27-39.

[2]

W. Sun, D. Wu, E. Yilmaz, G.D. Yang, J. Liu, Delving into the role of microwave curing on the strength and cement hydration features of cemented tailings backfill, Green Smart Min. Eng. 1 (3) (2024) 289-298.

[3]

N.M. Chiloane, F. Sengani, F. Mulenga, Extension of analytical solution methods to the stability of exposed stratified cemented backfills, Int. J. Geomech. 24 (8) (2024) 04024146.

[4]

C. Hou, W.C. Zhu, B.X. Yan, K. Guan, L.L. Niu, Analytical and experimental study of cemented backfill and pillar interactions, Int. J. Geomech. 19 (8) (2019) 04019080.

[5]

G.S. Liu, L. Li, X.C. Yang, L.J. Guo, Numerical analysis of stress distribution in backfilled stopes considering interfaces between the backfill and rock walls, Int. J. Geomech. 17 (2) (2017) 06016014.

[6]

S.J. Chen, A.B. Jin, Y.Q. Zhao, H. Li, J. Wang, Mechanical properties and deformation mechanism of stratified cemented tailings backfill under unconfined compression, Constr. Build. Mater. 335 (2022) 127205.

[7]

N.M. Chiloane, F. Sengani, F. Mulenga, An experimental and numerical study of the strength development of layered cemented tailings backfill, Sci. Rep. 14 (2024) 734.

[8]

J. Wang, J.X. Fu, W.D. Song, Mechanical properties and microstructure of layered cemented paste backfill under triaxial cyclic loading and unloading, Constr. Build. Mater. 257 (2020) 119540.

[9]

W. Sun, S.Y. Zhang, J.X. Li, Z.Y. Li, Experimental study on energy dissipation of layered backfill under impact load, Constr. Build. Mater. 347 (2022) 128478.

[10]

C. Zhang, J.X. Fu, W.D. Song, M.C. Kang, T. Li, N.W. Wang, Analysis on mechanical behavior and failure characteristics of layered cemented paste backfill (LCPB) under triaxial compression, Constr. Build. Mater. 324 (2022) 126631.

[11]

W. Zhang, C.Y. Yan, G.Y. Zhou, J.P. Guo, Y.Y. Chen, B.H. Zhang, S.S. Wu, Experimental and analytical investigation into the synergistic mechanism and failure characteristics of the backfill-red sandstone combination, Minerals 12 (2) (2022) 202.

[12]

K. Zhao, M. Huang, Y. Zhou, Y.J. Yan, W.L. Wan, F.J. Ning, Z.W. He, J.Q. Wang, Synergistic deformation in a combination of cemented paste backfill and rocks, Constr. Build. Mater. 317 (2022) 125943.

[13]

Y.R. Wang, H.J. Lu, J. Wu, Experimental investigation on strength and failure characteristics of cemented paste backfill-rock composite under uniaxial compression, Constr. Build. Mater. 304 (2021) 124629.

[14]

H.J. Lu, Y.R. Wang, D.Q. Gan, J. Wu, X.J. Wu, Numerical investigation of the mechanical behavior of the backfill-rock composite structure under triaxial compression, Int. J. Miner. Metall. Mater. 30 (5) (2023) 802-812.

[15]

X. Yu, W.D. Song, Y.Y. Tan, J. Kemeny, J. Wang, Energy dissipation and 3d fracturing of Backfill-encased-rock under triaxial compression, Constr. Build. Mater. 341 (2022) 127877.

[16]

X. Yu, J. Kemeny, Y.Y. Tan, W.D. Song, K. Huang, Mechanical properties and fracturing of rock-backfill composite specimens under triaxial compression, Constr. Build. Mater. 304 (2021) 124577.

[17]

X. Yu, J. Kemeny, J.L. Li, W.D. Song, Y.Y. Tan, 3D observations of fracturing in rock-backfill composite specimens under triaxial loading, Rock Mech. Rock Eng. 54 (12) (2021) 6009-6022.

[18]

S. Cao, E. Yilmaz, W.D. Song, G.L. Xue, Assessment of acoustic emission and triaxial mechanical properties of rock-cemented tailings matrix composites, Adv. Mater. Sci. Eng. (1) (2019) 6742392.

[19]

K. Fang, M. Fall, Shear behaviour of rock-tailings backfill interface: Effect of cementation, rock type, and rock surface roughness, Geotech. Geol. Eng. 39 (3) (2021) 1753-1770.

[20]

W.L. Wu, W.B. Xu, J.P. Zuo, Effect of inclined interface angle on shear strength and deformation response of cemented paste backfill-rock under triaxial compression, Constr. Build. Mater. 279 (2021) 122478.

[21]

X. Yu, Y.Y. Tan, S.W. Qi, W.D. Song, J. Kemeny, B.W. Zheng, S.F. Guo, Damage index correlation in massive granite-porous backfills under hydromechanical triaxial cyclic loading using acoustic emissions and X-ray computed tomography, J. Mater. Res. Technol. 33 (2024) 3659-3671.

[22]

X. Yu, Y.Y. Tan, W.D. Song, J. Kemeny, S.W. Qi, B.W. Zheng, S.F. Guo, Damage evolution of rock-encased-backfill structure under stepwise cyclic triaxial loading, J. Rock Mech. Geotech. Eng. 16 (2) (2024) 597-615.

[23]

Y. Wang, X.F. Yi, D.Y. Long, Y.J. Xia, P. Li, M.F. Cai, Energy-based fatigue-creep damage and failure pattern of rock-backfill composite structure material in mine stopes under high static stress: disturbed amplitude effect, Rock Mech. Rock Eng. 57 (4) (2024) 3021-3042.

[24]

Y. Wang, X.F. Yi, D.Y. Long, T.Q. Mao, On the fracture and energy characteristics of rock-backfill composite structure specimens exposed to fatigue-creep interaction loading, Fatigue Fract. Eng. Mater. Struct. 47 (1) (2024) 153-169.

[25]

Y. Wang, D.Y. Long, X.F. Yi, T.Q. Mao, Alternative fatigue-creep performance of rock-backfill composite structure material in mine stopes under high static stress: disturbed amplitude effect, Fatigue Fract. Eng. Mater. Struct. 47 (2) (2024) 491-510.

[26]

H.P. Xie, J.B. Zhu, T. Zhou, K. Zhang, C.T. Zhou, Conceptualization and preliminary study of engineering disturbed rock dynamics, Geomech. Geophys. Geo Energy Geo Resour. 6 (2) (2020) 34.

[27]

A. Kwinta, R. Gradka, Analysis of the damage influence range generated by underground mining, Int. J. Rock Mech. Min. Sci. 128 (2020) 104263.

[28]

X.L. Liu, Z. Liu, X.B. Li, F.Q. Gong, K. Du, Experimental study on the effect of strain rate on rock acoustic emission characteristics, Int. J. Rock Mech. Min. Sci. 133 (2020) 104420.

[29]

D. Zheng, W.D. Song, S. Cao, J.J. Li, Dynamical mechanical properties and microstructure characteristics of cemented tailings backfill considering coupled strain rates and confining pressures effects, Constr. Build. Mater. 320 (2022) 126321.

[30]

D. Zheng, L.J. Guo, G.S. Liu, X.C. Yang, S. Wu, Mechanical properties and mesoscopic analysis of rock-backfill-rock composite sample under dynamic loading, in: G.W. Wilson, N.A. Beier, D.C. Sego, A.B. Fourie, D. Reid (Eds.), Paste 2023: Proceedings of the 25th International Conference on Paste, Thickened and Filtered Tailings, University of Alberta, Edmonton, and Australian Centre for Geomechanics, Perth, pp. 127-139.

[31]

X.B. Li, Y. Zou, Z.L. Zhou, Numerical simulation of the rock SHPB test with a special shape striker based on the discrete element method, Rock Mech. Rock Eng. 47 (5) (2014) 1693-1709.

[32]

X. Zhou, Y.J. Xie, G.C. Long, X.H. Zeng, J.T. Li, N. Li, F. Wang, H.Abdullahi Umar, Influence of end friction confinement on dynamic mechanical properties and damage evolution of concrete by coupled DEM-FDM method, Eng. Fract. Mech. 281 (2023) 109150.

[33]

A. Bagher Shemirani, R. Naghdabadi, M.J. Ashrafi, Experimental and numerical study on choosing proper pulse shapers for testing concrete specimens by split Hopkinson pressure bar apparatus, Constr. Build. Mater. 125 (2016) 326-336.

[34]

F. Dai, S. Huang, K.W. Xia, Z.Y. Tan, Some fundamental issues in dynamic compression and tension tests of rocks using split Hopkinson pressure bar, Rock Mech. Rock Eng. 43 (6) (2010) 657-666.

[35]

W. You, F. Dai, Y. Liu, Experimental and numerical investigation on the mechanical responses and cracking mechanism of 3D confined single-flawed rocks under dynamic loading, J. Rock Mech. Geotech. Eng. 14 (2) (2022) 477-493.

[36]

S. Cao, E. Yilmaz, W.D. Song, Dynamic response of cement-tailings matrix composites under SHPB compression load, Constr. Build. Mater. 186 (2018) 892-903.

[37]

W.C. Zhu, Y. Bai, X.B. Li, L.L. Niu, Numerical simulation on rock failure under combined static and dynamic loading during SHPB tests, Int. J. Impact Eng. 49 (2012) 142-157.

[38]

Y.R. Lv, L. Wu, Y.C. Su, SHPB experiments and FDM-DEM coupled simulations on calcareous sand under uniaxial to triaxial deformation, Int. J. Impact Eng. 181 (2023) 104751.

[39]

T. Zhang, L.Y. Yu, H.J. Su, Q. Zhang, S.B. Chai, Experimental and numerical investigations on the tensile mechanical behavior of marbles containing dynamic damage, Int. J. Min. Sci. Technol. 32 (1) (2022) 89-102.

[40]

J.X. Fu, J. Wang, W.D. Song, Damage constitutive model and strength criterion of cemented paste backfill based on layered effect considerations, J. Mater. Res. Technol. 9 (3) (2020) 6073-6084.

[41]

S.L. Zhang, C.S. Zhang, L. Liao, C.L. Wang, Numerical study of the effect of ITZ on the failure behaviour of concrete by using particle element modelling, Constr. Build. Mater. 170 (2018) 776-789.

[42]

P.H.S.W. Kulatilake, B. Malama, J.L. Wang, Physical and particle flow modeling of jointed rock block behavior under uniaxial loading, Int. J. Rock Mech. Min. Sci. 38 (5) (2001) 641-657.

[43]

T.B. Zhao, W.Y. Guo, C.P. Lu, G.M. Zhao, Failure characteristics of combined coal-rock with different interfacial angles, Geomech. Eng. 11 (3) (2016) 345-359.

[44]

X.L. Wang, Z.F. Li, J.P. Guo, C.W. Lu, H.Q. Jiang, J.W. Mei, Experimental and numerical investigations on damage mechanical behaviors of surrounding rock-backfill composite under uniaxial compression, Constr. Build. Mater. 417 (2024) 135210.

[45]

J. Zhu, S.S. Hu, L.L. Wang, An analysis of stress uniformity for concrete-like specimens during SHPB tests, Int. J. Impact Eng. 36 (1) (2009) 61-72.

[46]

J.F. Hazzard, R.P. Young, S.C. Maxwell, Micromechanical modeling of cracking and failure in brittle rocks, J. Geophys. Res. Solid Earth 105 (B7) (2000) 16683-16697.

PDF (14222KB)

0

Accesses

0

Citation

Detail

Sections
Recommended

/