DOI QR코드

DOI QR Code

Investigation on the propagation mechanism of explosion stress wave in underground mining

  • Wang, Jiachen (College of Resources & Safety Engineering, China University of Mining & Technology) ;
  • Liu, Fei (College of Resources & Safety Engineering, China University of Mining & Technology) ;
  • Zhang, Jinwang (College of Resources & Safety Engineering, China University of Mining & Technology)
  • Received : 2019.01.21
  • Accepted : 2019.02.19
  • Published : 2019.02.28

Abstract

The bedding plane has a significant influence on the effect of blasting fragmentation and the overall performance of underground mining. This paper explores the effects of fragmentation of the bedding plane and different angles by using the numerical analysis. ANSYS/LS-DYNA code was used for the implementation of the models. The models include a dynamic compressive and tensile failure which is applied to simulate the fractures generated by the explosion. Firstly, the cracks propagation with the non-bedding plane in the coal with two boreholes detonated simultaneously is calculated and the particle velocity and maximum principal stress at different points from the borehole are also discussed. Secondly, different delay times between the two boreholes are calculated to explore its effects on the propagation of the fractures. The results indicate that the coal around the right borehole is broken more fully and the range of the cracks propagation expanded with the delay time increases. The peak particle velocity decreases first and then increases with the distance from the right borehole increasing. Thirdly, different angles between the bedding plane and the centerline of the two boreholes and the transmission coefficient of stress wave at a bedding plane are considered. The results indicated that with the angles increase, the number of the fractures decreases while the transmission coefficient increases.

Keywords

Acknowledgement

Supported by : National Natural Science Foundation of China

References

  1. An, J., Tuan, C.Y. and Cheeseman, B.A. (2011), "Simulation of soil behavior under blast loading", Int. J. Geomech., 11(4), 323-334. https://doi.org/10.1061/(ASCE)GM.1943-5622.0000086
  2. Bai, J.Z. (2005), Theoretical Basis and Case Analysis of LSDYNA3D, Science Press, Beijing, Beijing, China.
  3. Barla, M., Piovano, G. and Grasselli, G. (2012), "Rock slide simulation with the combined finite-discrete element method", Int. J. Geomech., 12(6), 711-721. https://doi.org/10.1061/(ASCE)GM.1943-5622.0000204
  4. Courtney, L., Catherine, T. and Rafiqul, A. (2016), "Experimental evaluation and finite-element simulations of explosive airblast tests on clay soils", Int. J. Geomech., 16(4), 04015097. https://doi.org/10.1061/(ASCE)GM.1943-5622.0000629
  5. Donze, F.V., Bouchez, J. and Magnier, S.A. (1997), "Modeling fractures in rock blasting", Int. J. Rock Mech. Min. Sci., 34(8), 1153-1163. https://doi.org/10.1016/S1365-1609(97)80068-8
  6. Ganesh, T., Anirudha, V.K. and Stephen, R. (2015), "Experimental and finite element analysis of doubly reinforced concrete slabs subjected to blast loads", Int. J. Impact Eng., 75, 162-173. https://doi.org/10.1016/j.ijimpeng.2014.07.018
  7. Hagan, T.N. (1977), "Rock breakage by explosives", Proceedings of the 6th Colloquium on Gasdynamics of Explosions and Reactive Systems, Stockholm, Sweden, August.
  8. Han, Y.Z. and Liu, H.B. (2016), "Failure of circular tunnel in saturated soil subjected to internal blast loading", Geomech. Eng., 11(3), 421-438. https://doi.org/10.12989/gae.2016.11.3.421
  9. Hao, H., Wu, C. and Zhou, Y. (2002), "Numerical analysis of blast-induced stress waves in a rock mass with anisotropic continuum damage models part 1: Equivalent material property approach", Rock Mech. Rock Eng., 35(2), 79-94. https://doi.org/10.1007/s006030200012
  10. Jeon, S., Kim, T.H. and You, K.H. (2015), "Characteristics of crater formation due to explosives blasting in rock mass", Geomech. Eng., 9(3), 329-344. https://doi.org/10.12989/gae.2015.9.3.329
  11. Kalantari, B. (2011), "Strength evaluation of air cured, cement treated peat with blast furnace slag", Geomech. Eng., 3(3), 207-218. https://doi.org/10.12989/gae.2011.3.3.207
  12. Kury, J.W., Lee, E.L. and Hornig, H.C. (1965), "Metal acceleration by chemical explosives", Proceedings of the 4th Detonation Symposium, White Oak, Maryland, U.S.A., October.
  13. Lee, E.L., Hornig, H.C. and Kury, J.W. (1968), Adiabatic Expansion of High Explosive Detonation Products, University of California, Livermore, California, U.S.A.
  14. Li, C.R., Kang, L.J. and Qi, Q.X. (2009), "The numerical analysis of borehole blasting and application in coal mine roof-weaken", Proc. Earth Plan. Sci., 1(1), 451-459. https://doi.org/10.1016/j.proeps.2009.09.072
  15. Li, J. and Hao, H. (2004), "Numerical study of concrete spall damage to blast loads", Int. J. Impact Eng., 68, 41-55. https://doi.org/10.1016/j.ijimpeng.2014.02.001
  16. Liu, J., Liu, Z.G. and Xue, J. (2015), "Application of deep borehole blasting on fully mechanized hard top-coal presplitting and gas extraction in the special thick seam", Int. J. Min. Sci. Technol., 25(5),755-760. https://doi.org/10.1016/j.ijmst.2015.07.009
  17. Livermore Software Technology Corporation (LSTC). (2003), LSDYNA Keyword User's Manual, Version 970, Livermore, California, U.S.A.
  18. Paine, A.S. and Please, C.P. (1994), "An improved model of fracture propagation by gas during rock blasting-Some analytical results", Int. J. Rock Mech. Min. Sci. Geomech. Abstr., 31(6), 699-706. https://doi.org/10.1016/0148-9062(94)90009-4
  19. Sanchidrian, J.A., Castedo, R. and Lopez, L.M. (2015), "Determination of the JWL constants for ANFO and emulsion explosives from cylinder test data", Central Euro. J. Energ. Mater., 12(2),177-194.
  20. Shi, D.Y., Li, Y.C. and Zhang, S.M. (2005), Display Dynamic Analysis Based on ANSYS/LS-DYNA8.1, Tsinghua University Press, Beijing, China.
  21. Timo, S. (2010), "Damage-viscoplastic consistency model with a parabolic cap for rocks with brittle and ductile behavior under low-velocity impact loading", Int. J. Numer. Anal. Meth. Geomech., 34(13),1362-1386. https://doi.org/10.1002/nag.868
  22. Vanessa, P., Huon, B. and Pat, M. (2016), "Analysis of the structural response and failure of containers subjected to internal blast loading", Int. J. Impact Eng., 95, 40-53. https://doi.org/10.1016/j.ijimpeng.2016.04.010
  23. Wang, F.T., Tu, S.H. and Yuan, Y. (2013), "Deep-hole pre-split blasting mechanism and its application for controlled roof caving in shallow depth seams", Int. J. Rock Mech. Min. Sci., 64, 112-121. https://doi.org/10.1016/j.ijrmms.2013.08.026
  24. Wang, J.C. and Li, Y. (2017), Thick Seam Coal Mining and its Ground Control, in Advances in Coal Mine Ground Control, Woodhead Publishing, Cambridge, Sawston, U.K.
  25. Wang, J.C., Bai, X.J. and Wu, Z.S. (2000), "The research on the fractured blocks of the top-coal in the longwall top-coal caving technique of the hard coal seam", J. China Coal Soc., 25(3), 238-242. https://doi.org/10.3321/j.issn:0253-9993.2000.03.004
  26. Wang, J.C., Yang, S.L. and Li, Y. (2014), "Caving mechanisms of loose top coal in longwall top coal caving mining method", Int. J. Rock Mech. Min. Sci., 71, 160-170. https://doi.org/10.1016/j.ijrmms.2014.04.024
  27. Wang, X.L. and Suo, Y.L. (1995), "Computer simulation of preexplosion of fully mechanized coal caving roof in hard coal seam", J. Xi'an Min. Inst., 15, 97-101.
  28. Wang, Z.L., Li, Y.C. and Shen, R.F. (2007), "Numerical simulation of tensile damage and blast crater in brittle rock due to underground explosion", Int. J. Rock Mech. Min. Sci., 44(5), 730-738. https://doi.org/10.1016/j.ijrmms.2006.11.004
  29. Xie, L.X., Lu, W.B. and Zhang, Q.B. (2016), "Damage evolution mechanisms of rock in deep tunnels induced by cut blasting", Tunn. Undergr. Sp. Technol., 58, 257-270. https://doi.org/10.1016/j.tust.2016.06.004
  30. Yang, R.S., Wang, Y.B. and Xue, H.J. (2012), "Dynamic behavior analysis of perforated crack propagation in two-hole blasting", Proc. Earth Plan. Sci., 5, 254-261. https://doi.org/10.1016/j.proeps.2012.01.044
  31. Yasitli, N.E. and Unver, B. (2005), "3D numerical modeling of longwall mining with top-coal caving", Int. J. Rock Mech. Min. Sci., 42(2), 219-235. https://doi.org/10.1016/j.ijrmms.2004.08.007
  32. Yu, A.B. (2004), "Discrete element method: An effective way for particle scale research of particulate matter", Eng. Comput., 21, 205-214. https://doi.org/10.1108/02644400410519749
  33. Yu, L.Y., Su, H.J. and Jing, H. (2017), "Experimental study of the mechanical behavior of sandstone affected by blasting", Int. J. Rock Mech. Min. Sci., 93, 234-241. https://doi.org/10.1016/j.ijrmms.2017.02.002
  34. Zhang, J.W., Wang, J.C. and Wei, W.J. (2018), "Experimental and numerical investigation on coal drawing from thick steep seam with longwall top coal caving mining", Arab. J. Geosci., 11(96), 1-19. https://doi.org/10.1007/s12517-017-3236-1
  35. Zhang, Y.T., Ding, X.L. and Huang, S.L. (2018), "Field measurement and numerical simulation of excavation damaged zone in a 2000 m-deep cavern", Geomech. Eng., 16(4), 399-413. https://doi.org/10.12989/GAE.2018.16.4.399
  36. Zhao, J. and Cai, J.G. (2001), "Transmission of elastic P-waves across single fractures with a non-linear normal deformational behavior", Rock Mech. Rock Eng., 34(1), 3-22. https://doi.org/10.1007/s006030170023
  37. Zhao, J.J., Zhang, Y. and Ranjith, P.G. (2017), "Numerical simulation of blasting-induced fracture expansion in coal masses", Int. J. Rock Mech. Min. Sci., 100, 28-39. https://doi.org/10.1016/j.ijrmms.2017.10.015
  38. Zhu, W.C., Wei, C.H. and Li, S. (2013), "Numerical modeling on destress blasting in coal seam for enhancing gas drainage", Int. J. Rock Mech. Min. Sci., 59, 179-190. https://doi.org/10.1016/j.ijrmms.2012.11.004

Cited by

  1. Numerical calculation and test of the composite materials under dynamic loading vol.38, pp.1, 2019, https://doi.org/10.12989/scs.2021.38.1.079