1887
Volume 72, Issue 5
  • E-ISSN: 1365-2478

Abstract

Abstract

In the Bushveld Complex, South Africa, open pit mines are faced with a challenge of rock slope stability due to geological structures (fractures, faults and dykes) that compartmentalize the rock mass. Geophysical surveys (seismics, magnetics and electrical methods) were conducted in a 0.2 km2 area at Tharisa mine, with the goal to delineate fractures that may be potential conduits for water migration into the pit. Special processing techniques were applied to the dataset to obtain good quality seismic, magnetic and resistivity models. The P‐wave velocity models show distinct low velocities in the centre of the seismic profile, indicating the presence of weak zones associated with faulting or fracturing. Seismic reflection method was used to image the deeper discontinuities and mineralization contacts. Near surface reflections are observed throughout the profiles and are correlated with the contact between the chromitite and host rock. Ground magnetic surveys were conducted to delineate dykes and fractures. De‐trending and de‐culturing techniques were applied on the magnetic data for correcting regional and temporal variations. The low magnetic regions indicate the presence of fracture systems in the subsurface, whereas the high magnetic region is correlated with the dolerite dyke that crosscuts the pit. The electrical resistivity tomography exhibits linear low resistivity contrast zones that differentiate between the fractured and undisturbed hard rock at an estimated depth of 4–10 m. Resistivity shows discontinuities that suggests the presence of fracturing and dyke‐host rock contacts. Correlation among magnetics, P‐wave velocity models, resistivity section and seismic data is evident when overlaying the different datasets, implying that the low magnetic regions are highly weathered and prone to fracturing. The integration of geophysical data is encouraging, because it was able to image the depth to the bedrock, fractures within the host rock and dyke in a complex mining environment.

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2024-05-21
2026-02-18
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References

  1. Amoush, H.A. & Mashagbeh, A. (2009) Using geophysical methods to image near‐surface cylindrical pipeline: a case study on engineering applications, Jordan. Jordan Journal of Civil Engineering, 3(2), 13. https://core.ac.uk/download/pdf/234698299.pdf
    [Google Scholar]
  2. Basson, I.J. (2019) Cumulative deformation and original geometry of the Bushveld Complex. Tectonophysics, 750, 177–202. https://doi.org/10.1016/j.tecto.2018.11.004
    [Google Scholar]
  3. Binley, A. & Kemna, A. (2005) DC resistivity and induced polarization methods. In: Rubin, Y. & Hubbard, S. (Eds.) Hydrogeophysics, vol. 50: Springer, pp. 129–156. https://doi.org/10.1007/1‐4020‐3102‐5_5
    [Google Scholar]
  4. Blanchy, G., Saneiyan, S., Boyd, J., McLachlan, P. & Binley, A. (2020) ResIPy, an intuitive open source software for complex geoelectrical inversion/modeling. Computers & Geosciences, 137, 104423. https://doi.org/10.1016/j.cageo.2020.104423
    [Google Scholar]
  5. Bumby, A.J., Eriksson, P.G., Catuneanu, O., Nelson, D.R. & Rigby, M.J. (2012) Meso‐Archaean and Palaeo‐Proterozoic sedimentary sequence stratigraphy of the Kaapvaal Craton. Marine and Petroleum Geology, 33(1), 92–116. https://doi.org/10.1016/j.marpetgeo.2011.09.010
    [Google Scholar]
  6. Cawthorn, R.G. (2015) The Bushveld Complex, South Africa. In: Charlier, B., Namur, O., Latypov, R. & Tegner, C. (Eds.) Layered intrusions. Dordrecht, The Netherlands: Springer, pp. 517–587. https://doi.org/10.1007/978‐94‐017‐9652‐1_12
    [Google Scholar]
  7. Dahlin, T. (1996) 2D resistivity surveying for environmental and engineering applications. First Break, 14(7), 275–283. https://doi.org/10.3997/1365‐2397.1996014
    [Google Scholar]
  8. Dildar, J., Manzi, M., Abiye, T., Gomo, S., Rapetsoa, M.K. & Drennan, G. (2023) Groundwater Circulation in the Shallow Crystalline Aquifer of Tharisa Mine, South Africa: Evidence fromEnvironmental Isotopes and Near‐Surface Geophysics. Water, 15(16), 2876. https://doi.org/10.3390/w15162876
    [Google Scholar]
  9. Eales, H.V. & Cawthorn, R.G. (1996) The Bushveld Complex. In: Developments in petrology, vol. 15. Amsterdam: Elsevier, pp. 181–229. https://doi.org/10.1016/S0167‐2894(96)80008‐X
    [Google Scholar]
  10. Gomo, S., Rapetsoa, M.K., Manzi, M.S.D., Onyebueke, E., Dildar, J., Sihoyiya, M. et al. (2023) Integrated geophysical methods for boulder delineation to improve mining. Geophysical Prospecting, 71, 1226–1246. https://doi.org/10.1111/1365‐2478.13322
    [Google Scholar]
  11. Guo, L., Meng, X. & Shi, L. (2012) Gridding aeromagnetic data using inverse interpolation. Geophysical Journal International, 189(3), 1353–1360. https://doi.org/10.1111/j.1365‐246X.2012.05448.x
    [Google Scholar]
  12. Harding, K.L., Morris, W.A., Balch, S.J., Lapointe, P. & Latham, A.G. (1988) A comparison of magnetic character and alteration in three granite drill cores from eastern Canada. Canadian Journal of Earth Sciences, 25(8), 1141–1150. https://doi.org/10.1139/e88‐112
    [Google Scholar]
  13. Hartzenberg, A.G. & Du Plessis, M. (2014) Theinfluence of regional structures associated with the Bushveld Complex on themechanism driving the behaviour of the UG2 hangingwall beam and in‐stopepillars at Lonmin's Marikana Operations. In: The 6th International Platinum Conference. Pretoria: University of Pretoria. https://repository.up.ac.za/bitstream/handle/2263/71695/Hartzenberg_Structural_2019.pdf?sequence=1
  14. James, I., Hird, G. & Fitzpatrick, A. (2019) Refraction tomography at the Nova Ni‐Cu mine. ASEG Extended Abstracts, 2019(1), 1–3. https://doi.org/10.1080/22020586.2019.12073152
    [Google Scholar]
  15. Kerrigan, N.P. (2013) Using shallow geophysical methods to locate a buried stream channel at a stream restoration site in the burd run waterhed, Shippensburg, PA, Shippensburg, PA: Shippensburg University. https://www.ship.edu/globalassets/geo‐ess/kerrigan_thesis_131213.pdf
    [Google Scholar]
  16. Kinnaird, J.A. (2005) The Bushveld large igneous province the review paper, Johannesburg South Africa: The University of the Witwatersrand. http://www.largeigneousprovinces.org/sites/default/files/BushveldLIP.pdf
    [Google Scholar]
  17. Lapointe, P., Morris, W.A. & Harding, K.L. (1986) Interpretation of magnetic susceptibility: a new approach to geophysical evaluation of the degree of rock alteration. Canadian Journal of Earth Sciences, 23(3), 393–401. https://doi.org/10.1139/e86‐041
    [Google Scholar]
  18. Lotheringen, J., James, J., Lomberg, K. & Bornman, H. (2016) Tharisa chrome and PGM mine, South Africa. Competent persons report [Competence report No. JTHA011]. Roodepoort: Coffey Mining. https://www.tharisa.com/pdf/investors/annual‐reports/2016/cpr‐2016.pdf
    [Google Scholar]
  19. Malehmir, A., Andersson, M., Lebedev, M., Urosevic, M. & Mikhaltsevitch, V. (2013) Experimental estimation of velocities and anisotropy of a series of Swedish crystalline rocks and ores: velocities and anisotropy of a series of crystalline rocks and ores. Geophysical Prospecting, 61(1), 153–167. https://doi.org/10.1111/j.1365‐2478.2012.01063.x
    [Google Scholar]
  20. Manzi, M., Durrheim, R. & Webb, S. (2017) 3D seismic attributes for platinum exploration and mine planning in the Bushveld Complex (South Africa). In: International geophysical conference, Qingdao, China, 17–20 April 2017. Qingdao, China: Society of Exploration Geophysicists and Chinese Petroleum Society. pp. 665–668. https://doi.org/10.1190/IGC2017‐169
    [Google Scholar]
  21. Maré, L.P. (2022) Council for Geoscience Petrophysical Properties Atlas. Pretoria: Council for Geosciences. https://maps.geoscience.org.za/download/petrophysics‐map‐package.php
  22. Maries, G., Malehmir, A. & Marsden, P. (2020) Cross‐profile seismic data acquisition, imaging, and modeling of iron‐oxide deposits: a case study from Blötberget, south‐central Sweden. Geophysics, 85(6), B233–B247. https://doi.org/10.1190/geo2020‐0173.1
    [Google Scholar]
  23. Miller, H.G. & Singh, V. (1994) Potential field tilt—a new concept for location of potential field sources. Journal of Applied Geophysics, 32(2), 213–217. https://doi.org/10.1016/0926‐9851(94)90022‐1
    [Google Scholar]
  24. Nabighian, M.N., Grauch, V.J.S., Hansen, R.O., LaFehr, T.R., Li, Y., Peirce, J.W. et al. (2005) The historical development of the magnetic method in exploration. Geophysics, 70(6), 33ND–61ND. https://doi.org/10.1190/1.2133784
    [Google Scholar]
  25. Ofterdinger, U., MacDonald, A.M., Comte, J.‐C. & Young, M.E. (2019) Groundwater in fractured bedrock environments: managing catchment and subsurface resources—an introduction. Geological Society, London: Special Publications, 479(1), 1–9. https://doi.org/10.1144/SP479‐2018‐170
    [Google Scholar]
  26. Parkhomenko, E.I. (1982) Electrical resistivity of minerals and rocks at high temperature and pressure. Reviews of Geophysics, 20(2), 193. https://doi.org/10.1029/RG020i002p00193
    [Google Scholar]
  27. Pazzi, V., Di Filippo, M., Di Nezza, M., Carlà, T., Bardi, F., Marini, F. et al. (2018) Integrated geophysical survey in a sinkhole‐prone area: microgravity, electrical resistivity tomographies, and seismic noise measurements to delimit its extension. Engineering Geology, 243, 282–293. https://doi.org/10.1016/j.enggeo.2018.07.016
    [Google Scholar]
  28. Perritt, S. & Roberts, M. (2007) Flexural‐slip structures in the Bushveld Complex, South Africa?Journal of Structural Geology, 29(9), 1422–1429. https://doi.org/10.1016/j.jsg.2007.06.008
    [Google Scholar]
  29. Rapetsoa, M.K., Manzi, M.S.D., Westgate, M., Sihoyiya, M., James, I., Onyebueke, E. et al. (2022) Cost‐effective in‐mine seismic experiments to image platinum deposits and associated geological structures at Maseve platinum mine, South Africa. Near Surface Geophysics, 20, nsg.12216. https://doi.org/10.1002/nsg.12216
    [Google Scholar]
  30. Reynolds, J.M. (2011) An introduction to applied and environmental geophysics. New York: John Wiley & Sons. https://www.wiley.com/en‐sg/An+Introduction+to+Applied+and+Environmental+Geophysics%2C+2nd+Edition‐p‐9780471485353
    [Google Scholar]
  31. Roberts, M.K.C. & Clark‐Mostert, V. (2010) Is there some commonality between the geological structures in the Bushveld Complex and the Great Dyke? In: The 4th international platinum conference, Rosebank: The Southern African Institute of Mining and Metallurgy, pp. 149–153https://www.saimm.co.za/Conferences/Pt2010/149‐156_Roberts.pdf
  32. Sepato, O. (2015) Statistical and wavelet analysis of density and magnetic susceptibility data from the Bushveld Complex, South Africa.Johannesburg: University of the Witwaterrand. http://hdl.handle.net/10539/18528
    [Google Scholar]
  33. Titus, R., Witthüser, K. & Walters, B. (2009) Groundwater and mining in the Bushveld Complex. In: Proceedings of the International Mine and Water Conference, Extended Abstracts, pp. 178–294. https://www.imwa.info/docs/imwa_2009/IMWA2009_Titus.pdf
  34. Van Schoor, A.M. (2002) Detection of sinkholes using 2D electrical resistivity imaging. Journal of Applied Geophysics, 50(4), 393–399. http://hdl.handle.net/10204/1474
    [Google Scholar]
  35. Westgate, M.C. (2020) Reappraisal of legacy reflection seismic data using advanced processing techniques and seismic attributes. Johannesburg: University of the Witwatersrand, South Africa. https://hdl.handle.net/10539/31030
    [Google Scholar]
  36. Wilson, A.H. (2005) Rock‐strength and physical properties of Norites of the Merensky and Bastard Units, western Bushveld Complex. South African Journal of Geology, 108(4), 525–540. https://doi.org/10.2113/108.4.525
    [Google Scholar]
  37. Zhang, J. & Toksöz, M.N. (1998) Nonlinear refraction traveltime tomography. Geophysics. 63(5), 1726–1737. https://doi.org/10.1190/1.1444468
    [Google Scholar]
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  • Article Type: Research Article
Keyword(s): fractures; groundwater; hydromigration; imaging; interpretation

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