DOI QR코드

DOI QR Code

Damage characterization of hard-brittle rocks under cyclic loading based on energy dissipation and acoustic emission characteristics

  • Li, Cheng J. (State Key Laboratory of Mining Response and Disaster Prevention and Control in Deep Coal Mine, Anhui University of Science and Technology) ;
  • Lou, Pei J. (School of Civil Engineering and Architecture, Anhui University of Science and Technology) ;
  • Xu, Ying (State Key Laboratory of Mining Response and Disaster Prevention and Control in Deep Coal Mine, Anhui University of Science and Technology)
  • Received : 2020.05.01
  • Accepted : 2022.09.14
  • Published : 2022.11.25

Abstract

In order to investigate the damage evolution law of rock specimens under cyclic loading, cyclic loading tests under constant loads with different amplitudes were carried out on limestone specimens with high strength and brittleness values using acoustic emission (AE) technology and the energy evolution and AE characteristics were evaluated. Based on dissipated energy density and AE counts, the damage variable of specimen was characterized and two damage evolution processes were analyzed and compared. The obtained results showed that the change of AE counts was closely related to radial deformation. Higher cyclic loading values result in more significant radial strain of limestone specimen and larger accumulative AE counts of cyclic loading segment, which indicated Felicity effect. Regarding dissipated energy density, the damage of limestone specimen was defined without considering the influence of radial deformation, which made the damage value of cyclic loading segment higher at lower amplitude loads. The damage of cyclic loading segment was increased with the magnitude of load. When dissipated energy density was applied to define damage, the damage value at unloading segment was smaller than that of AE counts. Under higher cyclic loading values, rocks show obvious damage during both loading and unloading processes. Therefore, during deep rock excavation, the damages caused by the deformation recovery of unloading rocks could not be ignored when considering the damage caused by abutment pressure.

Keywords

Acknowledgement

The research described in this paper was financially supported by the National Natural Science Foundation of China (No. 52074009) and the Anhui Provincial Natural Science Foundation (2208085QE174) and the Open Research Fund of the State Key Laboratory of Coal Resources and safe Mining, CUMT (SKLCRSM22KF017).

References

  1. Bahrani, N., Valley, B. and Kaiser, P. (2019), "Influence of stress path on stress memory and stress fracturing in brittle rocks", Can. Geotech. J., 56(6), 852-867. https://doi.org/10.1139/cgj-2018-0291.
  2. Castagna, A., Ougier-Simonin, A., Benson, P.M., Browning, J., Walker, R.J., Fazio, M. and Vinciguerra, S. (2018), "Thermal damage and pore pressure effects of the brittle-ductile transition in comiso limestone", J. Geophys. Res-Solid. Earth, 123(9), 7644-7660. https://doi.org/10.1029/2017JB015105.
  3. Chen, J., Du, C., Jiang, D.Y., Fan, J.Y. and He, Y. (2016), "The mechanical properties of rock salt under cyclic loading-unloading experiments", Geomech. Eng., 10(3), 325-334. https://doi.org/10.12989/gae.2016.10.3.325.
  4. Chu, Y.P., Sun, H.T. and Zhang, D.M. (2019), "Experimental study on evolution in the characteristics of permeability, deformation, and energy of coal containing gas under triaxial cyclic loading-unloading", Energy Sci. Eng., 7(5), 2112-2123. https://doi.org/10.1002/ese3.417.
  5. Diederichs, M.S., Kaiser, P.K. and Eberhardt, E. (2004), "Damage initiation and propagation in hard rock during tunnelling and the influence of near-face stress rotation", Int. J. Rock Mech. Min., 41(5), 785-812. https://doi.org/10.1016/j.ijrmms.2004.02.003.
  6. Fuenkajorn, K. and Phueakphum, D. (2010), "Effects of cyclic loading on mechanical properties of Maha Sarakham salt", Eng. Geol., 112(1-4), 43-52. https://doi.org/10.1016/j.enggeo.2010.01.002.
  7. Ghamgosar, M., Erarslan, N. and Williams, D.J. (2017), "Experimental investigation of fracture process zone in rocks damaged under cyclic loadings", Exp. Mech., 57(1), 97-113. https://doi.org/10.1007/s11340-016-0216-4.
  8. Jin, P.J., Wang, E.Y., Liu, X.F., Huang, N. and Wang, S.H. (2013), "Damage evolution law of coal-rock under uniaxial compression based on the electromagnetic radiation characteristics", Int. J. Min. Sci. Technol., 23(2), 213-219. https://doi.org/10.1016/j.ijmst.2013.04.017.
  9. Kim, J.S., Lee, K.S., Cho, W.J., Choi, H.J. and Cho, G.C. (2015), "A comparative evaluation of stress-strain and acoustic emission methods for quantitative damage assessments of brittle rock", Rock Mech. Rock Eng., 48(2), 495-508. https://doi.org/10.1007/s00603-014-0590-0.
  10. Li, D.X., Wang, E.Y., Kong, X.G., Jia, H.S., Wang, D.M. and Ali, M. (2019), "Damage precursor of construction rocks under uniaxial cyclic loading tests analyzed by acoustic emission", Constr. Build. Mater., 206, 169-178. https://doi.org/10.1016/j.conbuildmat.2019.02.074.
  11. Li, Y.W., Zhao, Y.D., Tang, J.Z., Zhang, L.Y., Zhou, Y.Y., Zhu, X.Y., Jia, D. and Chen, M. (2020), "Rock damage evolution model of pulsating fracturing based on energy evolution theory", Energy Sci. Eng., 8, 1050-1067. https://doi.org/10.1002/ese3.567.
  12. Liu, X.S., Ning, J.G., Tan, Y.L. and Gu, Q.H. (2016), "Damage constitutive model based on energy dissipation for intact rock subjected to cyclic loading", Int. J. Rock Mech. Min., 85, 27-32. https://doi.org/10.1016/j.ijrmms.2016.03.003.
  13. Liu, Y., Dai, F., Dong, L., Xu, N.W. and Feng, P. (2018), "Experimental investigation on the fatigue mechanical properties of intermittently jointed rock models under cyclic uniaxial compression with different loading parameters", Rock Mech. Rock Eng., 51(1), 47-68. https://doi.org/10.1007/s00603-017-1327-7.
  14. Naji, A.M., Emad, M.Z., Rehman, H. and Yoo, H. (2019), "Geological and geomechanical heterogeneity in deep hydropower tunnels: A rock burst failure case study", Tunn. Undergr. Space Technol., 84, 507-521. https://doi.org/10.1016/j.tust.2018.11.009.
  15. Peng, K., Zhou, J.Q., Zou, Q.L. and Yan, F.Z. (2019), "Deformation characteristics of sandstones during cyclic loading and unloading with varying lower limits of stress under different confining pressures", Int. J. Fatig., 127, 82-100. https://doi.org/10.1016/j.ijfatigue.2019.06.007.
  16. Qi, F.Z. and Ma, Z.G. (2019), "Investigation of the roof presplitting and rock mass filling approach on controlling large deformations and coal bumps in deep high-stress roadways", Lat. Am. J. Solid. Struct., 16(4), 1-24. http://dx.doi.org/10.1590/1679-78255586.
  17. Qiu, S.L., Feng, X.T., Xiao, J.Q. and Zhang, C.Q. (2014), "An experimental study on the pre-peak unloading damage evolution of marble", Rock Mech. Rock Eng., 47(2), 401-419. https://doi.org/10.1007/s00603-013-0394-7.
  18. Srinivasan, V., Gupta, T., Ansari, T.A. and Singh, T.N. (2020), "An experimental study on rock damage and its influence in rock stress memory in a metamorphic rock", Bull. Eng. Geol. Environ., 79(8), 4335-4348. https://doi.org/10.1007/s10064-020-01813-y.
  19. Tang, J.H., Chen, X.D., Dai, F. and Wei, M.D. (2020), "Experimental investigation of fracture damage of notched granite beams under cyclic loading using DIC and AE techniques", Fatig. Fract. Eng. Mater. Struct., 43(7), 1583-1596. https://doi.org/10.1111/ffe.13253.
  20. Voznesenskii, A.S., Kutkin, Y.O., Krasilov, M.N. and Komissarov, A.A. (2015), "The influence of the stress state type and scale factor on the relationship between the acoustic quality factor and the residual strength of gypsum rocks in fatigue tests", Int. J. Fatig., 84, 53-58. https://doi.org/10.1016/j.ijfatigue.2015.11.016.
  21. Wang, Y.H., Liu, Y.F. and Ma, H.T. (2012), "Changing regularity of rock damage variable and resistivity under loading condition", Saf. Sci., 50(4), 718-722. https://doi.org/10.1016/j.ssci.2011.08.046.
  22. Wang, Z.L., Li, Y.C. and Wang, J.G. (2008), "A method for evaluating dynamic tensile damage of rock", Eng. Fract. Mech., 75(10), 2812-2825. https://doi.org/10.1016/j.engfracmech.2008.01.005.
  23. Xiao, F.K., He, J., Liu, Z.J., Shen, Z.L. and Liu, G. (2019), "Analysis on warning signs of damage of coal samples with different water contents and relevant damage evolution based on acoustic emission and infrared characterization", Infrar. Phys. Technol., 97, 287-299. https://doi.org/10.1016/j.infrared.2019.01.007.
  24. Xiao, J.Q., Ding, D.X., Jiang, F.L. and Xu, G. (2010), "Fatigue damage variable and evolution of rock subjected to cyclic loading", Int. J. Rock Mech. Min., 47, 461-468. https://doi.org/10.1016/j.ijrmms.2009.11.003.
  25. Xiao, J.Q., Feng, X.T., Ding, D.X. and Jiang, F.L. (2011), "Investigation and modeling on fatigue damage evolution of rock as a function of logarithmic cycle", Int. J. Numer. Anal. Meth. Geomech., 35, 1127-1140. https://doi.org/10.1002/nag.946.
  26. Xie, H.P., Li, L.Y., Peng, R.D. and Ju, Y. (2009), "Energy analysis and criteria for structural failure of rocks", J. Rock Mech. Geotech. Eng., 1(1), 11-20. https://doi.org/10.3724/SP.J.1235.2009.00011.
  27. Yan, P., Zhao, Z.G., Lu, W.B., Chen, M. and Zhou, C.B. (2016), "Factors influencing vibration effects induced by in-situ stress transient unloading of deep rock mass", Rock Soil Mech., 37(2), 545-553. https://doi.org/10.16285/j.rsm.2016.02.028.
  28. Zhang, M., Dou, L.M., Konietzky, H., Song, Z.Y. and Huang, S. (2020), "Cyclic fatigue characteristics of strong burst-prone coal: Experimental insights from energy dissipation, hysteresis and micro-seismicity", Int. J. Fatig., 133, 105429. https://doi.org/10.1016/j.ijfatigue.2019.105429.
  29. Zhou, X.P., Zhang, Y.X. and Ha, Q.L. (2008), "Real-time computerized tomography (CT) experiments on limestone damage evolution during unloading", Theor. Appl. Fract. Mech., 50(1), 49-56. https://doi.org/10.1016/j.tafmec.2008.04.005.