DOI QR코드

DOI QR Code

Numerical investigation of the impact of geological discontinuities on the propagation of ground vibrations

  • Haghnejad, Ali (Department of Mining Engineering, Science and Research Branch, Islamic Azad University) ;
  • Ahangari, Kaveh (Department of Mining Engineering, Science and Research Branch, Islamic Azad University) ;
  • Moarefvand, Parviz (Department of Mining and Metallurgical Engineering, Amirkabir University of Technology) ;
  • Goshtasbi, Kamran (Department of Mining Engineering, Tarbiat Modares University, Tehran, Iran University Square)
  • Received : 2017.03.29
  • Accepted : 2017.10.25
  • Published : 2018.04.30

Abstract

Blast-induced ground vibrations by a significant amount of explosives may cause many problems for mining slope stability. Geological discontinuities have a significant influence on the transmission of dynamic pressure of detonation and according to their position relative to the slope face may have damaging or useful impacts on the slope stability. In this study, the effect of geological discontinuities was investigated by modelling a slope with geological discontinuities through applying the dynamic pressure in three-dimensional discrete element code (3DEC). The geological discontinuities in four states that generally apperceived in mine slopes are considered. Given the advantages of the pressure decay function defined by some researcher, this type of function was used to develop the pressure-time profile. The peak particle velocities (PPV) values were monitored along an axis by utilization of Fish programming language and the results were used as an indicator to measure the effects. As shown in the discontinuity-free model, PPV empirical models are reliable in rocks lacking discontinuities or tightly jointed rock masses. According to the other results, the empirical models cannot be used for the case where the rock mass contains discontinuities with any direction or dip. With regard to PPVs, when the direction of discontinuities is opposite to that of the slope face, the dynamic pressure of detonation is significantly damped toward the slope direction at the surface of discontinuities. On the other hand, when the discontinuities are horizontal, the dynamic pressure of detonation affects the rock mass to a large distance.

Keywords

References

  1. Ainalis, D., Kaufmann, O., Tshibangu, J.P., Verlinden, O. and Kouroussis, G. (2016), "Modelling the source of blasting for the numerical simulation of blast-induced ground vibrations: A review", Rock Mech. Rock Eng., 50(1), 171-193.
  2. Ak, H. and Konuk, A. (2008), "The effect of discontinuity frequency on ground vibrations produced from bench blasting: A case study", Soil Dyn. Earthq. Eng., 28(9), 686-694. https://doi.org/10.1016/j.soildyn.2007.11.006
  3. Aksoy, C.O., Uyar, G.G. and Ozcelik, Y. (2016), "Comparison of Hoek-Brown and Mohr-Coulomb failure criterion for deep open coal mine slope stability", Struct. Eng. Mech., 60(5), 809-828. https://doi.org/10.12989/sem.2016.60.5.809
  4. Aliabadian, Z. and Sharafisafa, M. (2014), "Numerical modeling of presplitting controlled method in continuum rock masses", Arab. J. Geosci., 7(12), 5005-5020. https://doi.org/10.1007/s12517-013-1158-0
  5. Azizabadi, H.R.M., Mansouri, H. and Fouche, O. (2014), "Coupling of two methods, waveform superposition and numerical, to model blast vibration effect on slope stability in jointed rock masses", Comput. Geotech., 61, 42-49. https://doi.org/10.1016/j.compgeo.2014.04.008
  6. Duvall, W.I. (1953), "Strain-wave shapes in rock near Explosions", Geophys., 18(2), 310-323. https://doi.org/10.1190/1.1437875
  7. Elevli, B. and Arpaz, E. (2010), "Evaluation of parameters affected on the blast induced ground vibration (BIGV) by using relation diagram method (RDM)", Acta Montanistica Slovaca, 4, 261-268.
  8. Far, M.S. and Wang, Y. (2016), "Probabilistic analysis of crushed zone for rock blasting", Comput. Geotech., 80, 290-300. https://doi.org/10.1016/j.compgeo.2016.08.025
  9. Faradonbeh, R.S., Armaghani, D.J., Majid, M.A., Tahir, M.M., Murlidhar, B.R., Monjezi, M. and Wong, H.M. (2016), "Prediction of ground vibration due to quarry blasting based on gene expression programming: a new model for peak particle velocity prediction", J. Environ. Sci. Technol., 13(6), 1453-1464.
  10. Hao, H., Wua, Y., Ma, G. and Zhou, Y. (2001), "Characteristics of surface ground motions induced by blasts in jointed rock mass", Soil Dyn. Earthq. Eng., 21(2), 85-98. https://doi.org/10.1016/S0267-7261(00)00104-4
  11. Hoek, E. (2012), Blast Damage Factor, in Technical Note for RockNews.
  12. Hudson. J.A. (1993), Comprehensive Rock Engineering: Principles, Practice, and Projects, Pergamon Press, Oxford, U.K.
  13. Hustrulid, W.A. (1999), Blasting Principles for Open Pit Mining: General Design Concepts, Balkema, Rotterdam, The Netherlands.
  14. Jong, Y., Lee, C., Jeon, S., Cho, Y.D. and Shim, D.S. (2005), "Numerical modeling of the circular-cut using particle flaw code", Proceedings of the 31st Annular Conference of Explosives and Blasting Technique, Orlando, Florida, U.S.A.
  15. Kekec, B., Gokay, M.K. and Bilim, N. (2015), "Evaluation of the effect of vibrational wave propagation of different artificial discontinuous planes in rock samples", Arab. J. Geosci., 8(8), 6399-6407. https://doi.org/10.1007/s12517-014-1647-9
  16. Kuhlmeyer, R.L. and Lysmer, J. (1973), "Finite element method accuracy for wave propagation problems", J. Soil Mech. Found. Div., 99(5), 421-427.
  17. Kumar, R., Choudhury, D. and Bhargava, K. (2016), "Determination of blast-induced ground vibration equations for rocks using mechanical and geological properties", J. Rock Mech. Geotech. Eng., 8(3), 341-349. https://doi.org/10.1016/j.jrmge.2015.10.009
  18. Kuzu, C. (2008), "The importance of site-specific characters in prediction models for blast-induced ground vibrations", Soil Dyn. Earthq. Eng., 28(5), 405-414. https://doi.org/10.1016/j.soildyn.2007.06.013
  19. Ma, G.W. and An, X.M. (2008), "Numerical simulation of blasting-induced rock fracture", J. Rock Mech. Min. Sci., 45(6), 966-975. https://doi.org/10.1016/j.ijrmms.2007.12.002
  20. Read J. and Stacey P. (2009), Guidelines for Open Pit Slope Design, CSIRO Publishing, Melbourne, Australia.
  21. Resende, J.R.P. (2010), "An investigation of stress wave propagation through rock joints and rock masses", Ph.D. Dissertation, University of Porto, Porto, Portugal.
  22. Roy, P.P. (1991), "Prediction and control of ground vibrations due to blasting", Colliery Gaurd., 239(7), 215-219.
  23. Saharan, M.R. and Mitri, H.S. (2008), "Numerical procedure for dynamic simulation of discrete fractures due to blasting", Rock Mech. Rock Eng., 41(5), 641-670. https://doi.org/10.1007/s00603-007-0136-9
  24. Taqieddin S.A. (1986), "Ground vibration levels: Prediction and parameters", Min. Sci. Technol., 3(2), 111-115. https://doi.org/10.1016/S0167-9031(86)90257-4
  25. Wang, Z.L., Konietzky, H. and Shen, R.F. (2009), "Coupled finite element and discrete element method for underground blast in faulted rock masses", Soil Dyn. Earthq. Eng., 29(6), 939-945. https://doi.org/10.1016/j.soildyn.2008.11.002
  26. Wang, W.H., Li, X.B., Zuo, Y.J., Zhou, Z.L. and Zhang, Y.P. (2006), "3DEC modeling on effect of joints and interlayer on wave propagation", Trans. Nonferr. Met. Soc. Chin., 16(3), 728-734. https://doi.org/10.1016/S1003-6326(06)60129-5
  27. Wei, X.Y., Zhao, Z.Y. and Gu, J. (2009), "Numerical simulations of rock mass damage induced by underground explosion", J. Rock Mech. Min. Sci., 46(7), 1206-1213. https://doi.org/10.1016/j.ijrmms.2009.02.007
  28. Yan, P., Zhou, W., Lu, W., Chen, M. and Zhou, C. (2016), "Simulation of bench blasting considering fragmentation size distribution", J. Impact Eng., 90, 132-145. https://doi.org/10.1016/j.ijimpeng.2015.11.015
  29. Yang, J., Lu W., Jiang, Q., Yao, C., Jiang, S. and Tian, L. (2016), "A study on the vibration frequency of blasting excavation in highly stressed rock masses", Rock Mech. Rock Eng., 49(7), 2825-2843. https://doi.org/10.1007/s00603-016-0964-6
  30. Yilmaz, O. (2016), "The comparison of most widely used ground vibration predictor equations and suggestions for the new attenuation formulas", Environ. Earth Sci., 75(3), 269. https://doi.org/10.1007/s12665-015-5011-5
  31. Yilmaz, O. and Unlu, T. (2013), "Three dimensional numerical rock damage analysis under blasting load", Tunn. Undergr. Sp. Technol., 38, 266-78. https://doi.org/10.1016/j.tust.2013.07.007
  32. Zhou, J., Lu, W., Yan, P., Chen, M. and Wang, G. (2016), "Frequency-dependent attenuation of blasting vibration waves", Rock Mech. Rock Eng., 49(10), 4061-4072. https://doi.org/10.1007/s00603-016-1046-5
  33. Zhu, Z.M., Mohanty, B. and Xie, H.P. (2007), "Numerical investigation of blasting-induced crack initiation and propagation in rocks", J. Rock Mech. Min. Sci., 44(3), 412-424. https://doi.org/10.1016/j.ijrmms.2006.09.002
  34. Zhuge, Y. and Hunt, S. (2003), "Numerical simulation of masonry shear panels with distinct element approach", Struct. Eng. Mech., 15(4), 477-493. https://doi.org/10.12989/sem.2003.15.4.477

Cited by

  1. Numerical investigation of the impact of rock mass properties on propagation of ground vibration pp.1573-0840, 2019, https://doi.org/10.1007/s11069-018-3559-6
  2. Study on the effects of blast damage factor and blast design parameters on the ground vibration using 3D discrete element method vol.5, pp.2, 2020, https://doi.org/10.1007/s41062-020-0286-0
  3. A rock physical approach to understand geo-mechanics of cracked porous media having three fluid phases vol.23, pp.4, 2018, https://doi.org/10.12989/gae.2020.23.4.327