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Shape and distribution analysis of Merensky Reef potholing, Northam Platinum Mine, western Bushveld Complex: implications for pothole formation and growth

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Abstract

Syn-magmatic removal of the cumulate pile during the formation of the Bushveld Complex resulted in “potholes”. Erosion progressed downward in the cumulate pile, resulting in a series of steep, transgressive contacts between locally conformable potholed reefs in the regional pothole sub-facies of the Swartklip Facies in the western limb of the Bushveld Complex. The deepest of these potholes, “third-order” or “FWP2” potholing, occurs where the base of the Merensky Cyclic Unit transgresses the Upper Pseudo-Reef Chromitite marker horizon. The base of a FWP2 pothole on Northam Platinum Mine consists of an unconformable stringer Merensky Chromitite overlain by a medium-grained, poikilitic orthopyroxenite and underlain by either a pegmatitic harzburgite or the medium-grained Lower Pseudo-Reef Anorthosite. Detailed shape and distribution analysis of FWP2 potholes reveals underlying patterns in their shape and distribution which, in turn, suggest a structural control. The ratio between pothole short vs long axes is 0.624 (N=1,385), although the ratio increases from 0.48 to 0.61 in the long axis range 10 to 60 m, then decreases from 0.61 to 0.57 from 61 to 100 m, increasing again from 0.57 to 0.61 from 101 to 400 m, suggesting that there is not a simple relationship between pothole shape and size. Shape (circularity, eccentricity, and dendricity) analysis of a subset of 638 potholes indicates that potholes with long axes <100 m have an elliptical, average normalized shape, elongate on a 120–150° orientation. Potholes with long axis lengths >100 m have an average normalized shape that is bilobate and elongate on a 120° orientation. The average aspect ratio (short axis length divided by long axis length) of potholes is highest for potholes with long axis lengths >100 m and lowest for potholes with long axis lengths between 35 and 60 m. The most common long axis orientation for potholes with long axis lengths <100 m is 150° but 120° for long axis lengths >100 m. Fractal analysis indicates that the distribution of pothole centers is controlled neither by a single nor several interacting fractal dimensions. Autocorrelation (Fry) analysis of the distribution of pothole centers shows recurring pothole distribution trends at 038, 070, and 110° for potholes over the full range of long axis lengths, while the trends of 008 and 152° occur in potholes with long axes lengths between 60 and 100 m. Chi-squared (X 2) analysis of the locations of pothole centers suggests that the distribution of small potholes is highly non-uniform but becomes exponentially more uniform with increasing pothole size. The model which best fits the observed shape and distribution analysis is a combination of protracted independent growth and “nearest neighbor” merging along specific orientations. For instance, the clustered distribution of original pothole centers resulted in merged potholes with long axes lengths of up to 60 m, exhibiting short vs long axes ratios of 0.61, preferred orientations of 150°, and alignment along 010 and 150° trends. Further independent growth allowed for merging of similar-sized (and smaller) neighboring potholes, generating potholes with long axes of up to 100 m in length, a preferred long axis orientation of 150°, and alignment along 010, 040, 075, and 150°. Subsequent preferential merging occurred along a 120° trend, thereby preserving a bilobate form. This implies that while pothole initiation and enlargement may be driven by a “top-down” (i.e., possibly thermomechanical) process, an underlying linear or structural catalyst/control is revealed in changes in pothole shape during enlargement and, furthermore, in the preferred trends along which potholes merged over a considerable period, possibly concomitant with adjustment of major structures in the footwall to the Bushveld Complex and pulses into the magma chamber.

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References

  • Ballhaus CG (1988) Potholes of the Merensky Reef at Brakspruit Shaft, Rustenburg Platinum Mines: primary disturbances in the magmatic stratigraphy. Econ Geol 83:1140–1158

    Google Scholar 

  • Ballhaus CG, Stumpfl EF (1985) Occurrence and petrological significance of graphite in the Upper Critical Zone, Western Bushveld Complex, South Africa. Earth Planet Sci Lett 74:58–68

    Article  Google Scholar 

  • Blenkinsop TG, Sanderson DJ (1999) Are gold deposits in the crust fractals? A study of gold mines in the Zimbabwe Craton. In: McCaffrey KJW, Lonergan L, Wilkinson JJ (eds) Fractures, fluid flow and mineralization. Geological Society Special Publications 155, pp 141–151

  • Buntin TJ, Granddstaff DE, Ulmer CG, Gold DP (1985) A pilot study of geochemical and redox relationships between potholes and adjacent Merensky Normal Reef of the Bushveld Complex. Econ Geol 71:1299–1307

    Google Scholar 

  • Campbell IH (1986) A fluid dynamic model for the potholes of the Merensky Reef. Econ Geol 81:1118–1125

    Google Scholar 

  • Campbell IH, Naldrett AJ, Barnes SJ (1983) A model for the origin of the platinum-rich horizons in the Bushveld and Stillwater complexes. J Petrol 24:133–165

    Google Scholar 

  • Carr HW, Groves DI, Cawthorn RG (1994a) The importance of synmagmatic deformation in the formation of Merensky Reef potholes in the Bushveld Complex. Econ Geol 89:1398–1410

    Google Scholar 

  • Carr HW, Groves DI, Cawthorn RG (1994b) Controls on the distribution of Merensky Reef potholes at the Western Platinum Mine, Bushveld Complex, South Africa: implications for distributions of the layering and pothole formation in the complex. S Afr J Geol 97:431–441

    Google Scholar 

  • Cawthorn RG, Boerst KD (2002) Origin of the Merensky pegmatitic pyroxenite, Bushveld Complex. Extended Abstracts, 9th International Platinum Symposium, Billings, Montana

  • De Bruin JD (2002) Pothole structures within the Bushveld Complex on Impala Platinum Mine. Extended Abstracts, IAGOD 11, Windhoek, Namibia

  • Eales HV, Cawthorn RG (1996) The Bushveld Complex. In: Cawthorn RG (ed) Layered intrusions. Elsevier, Amsterdam, pp 181–230

    Google Scholar 

  • Eales HV, Reynolds IM (1986) Cryptic variations within chromitites of the Upper Critical Zone, Northwestern Bushveld Complex. Econ Geol 81:1056–1066

    Google Scholar 

  • Eales HV, Botha WJ, Hattingh PJ, de Klerk WJ, Maier WD, Odgers ATR (1993) The mafic rocks of the Bushveld Complex, a review of emplacement and crystallization history, and mineralization, in the light of recent data. J Afr Earth Sci 16:121–142

    Article  Google Scholar 

  • Eriksson PG, Reczko BFF (1995) The sedimentary and tectonic setting of the Transvaal Supergroup floor rocks to the Bushveld Complex. J Afr Earth Sci 21(4):487–504

    Article  Google Scholar 

  • Farquhar J (1986) The Western Platinum Mine. In: Anhaeusser CR, Maske S (eds) Mineral deposits of Southern Africa, V. II, Geological Society of South Africa, pp 1135–1142

  • Ferguson J, Botha E (1963) Some aspects of igneous layering in the basic zones of the Bushveld Complex. Verh Geol Ver S-Afr 64:259–282

    Google Scholar 

  • Fry N (1979) Random point distributions and strain measurement in rocks. Tectonophysics 60:89–105

    Article  Google Scholar 

  • Kinloch ED (1982) The regional trends in platinum-group mineralogy of the Critical Zone of the Bushveld Complex, South Africa. Economic Geology 77:1328–1347

    Google Scholar 

  • Kruger FJ (1990) The stratigraphy of the Bushveld Complex: a re-appraisal and relocation of the Main Zone boundaries. S Afr J Geol 94:376–381

    Google Scholar 

  • Kruger FJ (1994) The Sr-isotopic stratigraphy of the western Bushveld Complex. S Afr J Geol 97:393–398

    Google Scholar 

  • Kruger FJ, Marsh JS (1982) Significance of the 87Sr/86Sr ratios in the Merensky cyclic unit of the Bushveld Complex. Nature 289:53–55

    Article  Google Scholar 

  • Kuskov A, Mikhailov A, Dirks P (2001) DotProc v. 1.3. The analysis of 2-dimensional data sets. Computer shareware (http://dotproc.fromru.com)

  • Lee CA (1981) Post-deposition structures in the Bushveld Complex mafic sequence. J Geol Soc (Lond) 138:327–341

    Article  Google Scholar 

  • Lee C (1996) A review of mineralization in the Bushveld Complex and some other layered intrusions. In: Cawthorn, R.G. (ed.) Layered Intrusions, Elsevier, Amsterdam, 103–145

    Google Scholar 

  • Leeb-Du Toit A (1986) The Impala Platinum Mines. In: Anhaeusser CR, Maske S (eds) Mineral deposits of Southern Africa, V. II, Geological Society of South Africa, pp 1091–1106

  • Maier WD, Eales HV (1997) Correlation within the UG2–Merensky Reef interval of the western Bushveld Complex, based on geochemical, mineralogical and petrological data. Bulletin of the Geological Survey of South Africa 120, 56 pp

  • Mossom RJ (1986) The Atok Platinum Mine. Anhaeusser CR, Maske S (eds) Mineral deposits of Southern Africa, V. II, Geological Society of South Africa, pp 1143–1154

  • Reid DL, Basson IJ (2002) Iron-rich ultramafic pegmatite replacement bodies within the Upper Critical Zone, Rustenburg Layered Suite, Northam Platinum Mine, South Africa. Mineral Mag 66(6):895–914

    Article  Google Scholar 

  • Reid DL, Cawthorn RG, Kruger FJ, Tredoux M (1993) Isotope and trace-element patterns below the Merensky Reef, Bushveld Complex, South Africa: evidence for fluids? Chem Geol 106:171–186

    Article  Google Scholar 

  • Schmidt ER (1952) The structure and composition of the Merensky Reef and associated rocks in the Rustenburg platinum mine. Verh Geol Ver S-Afr 55:234–279

    Google Scholar 

  • Scoon R, Mitchell A (1994) Discordant iron-rich ultramafic pegmatites in the Bushveld Complex and their relationship to iron-rich intercumulus and residual liquids. J Petrol 35:881–917

    Google Scholar 

  • Smith DS, Basson IJ, Reid DL (2004) The Normal Reef sub-facies of the Merensky Reef at Northam Platinum Mine, Zwartklip Facies, Western Bushveld Complex. Can Mineral 42:243–260

    Article  Google Scholar 

  • Turcotte DL (1991) Fractals in geology: what are they and what are they good for? GSA Today 1:1–4

    Google Scholar 

  • Turcotte DL (1992) Fractals and chaos in geology and geophysics. Cambridge University Press, 196 pp

  • Viljoen MJ (1994) A review of regional variations in facies and grade distribution of the Merensky Reef, western Bushveld Complex, with some mining implications. Proceedings of the 15th CMMI Congress, South African Institute of Mining and Metallurgy, pp 183–194

  • Viljoen MJ (1999) The nature and origin of the Merensky Reef of the western Bushveld Complex based on geological facies and geophysical data. S Afr J Geol 102(3):221–239

    Google Scholar 

  • Viljoen MJ, Scoon N (1985) The distribution and main geologic features of discordant bodies of iron-rich ultramafic pegmatite in the Bushveld Complex. Econ Geol 80:1109–1128

    Article  Google Scholar 

  • Viljoen MJ, Hieber R (1986) The Rustenburg Section of Rustenburg Platinum Mines Limited, with reference to the Merensky Reef. In: Anhaeusser CR, Maske S (eds) Mineral deposits of Southern Africa, V. II, Geological Society of South Africa, pp 1107–1134

  • Viljoen MJ, Theron J, Underwood B, Walters BM, Weaver J, Peyerl W (1986a) The Amandelbult Section of Rustenburg Platinum Mines Ltd, with reference to the Merensky Reef. In: Anhaeusser CR, Maske S (eds) Mineral deposits of Southern Africa, V. II, Geological Society of South Africa, pp 1041–1060

  • Viljoen MJ, De Klerk WJ, Coetzer PM, Hatch NP, Kinloch P, Peyerl W (1986b) The Union Section of Rustenburg Platinum Mines Ltd, with reference to the Merensky Reef. In: Anhaeusser CR, Maske S (eds) Mineral deposits of Southern Africa, V. II, Geological Society of South Africa, pp 1061–1090

  • Viring RG, Cowell MW (1999) The Merensky Reef on Northam Platinum Limited. S Afr J Geol 102(3):192–208

    Google Scholar 

  • Von Gruenewaldt G (1977) The mineral resources of the Bushveld Complex. Miner Sci Eng 9:83–95

    Google Scholar 

  • Wagner PA (1929) Platinum deposits and mines of South Africa. Struik, Cape Town, South Africa, 383 pp

  • Wilson AH, Chunnett GK (2002) Type variations in the Merensky Reef in the western Bushveld Complex: critical comparisons of the geochemistry, textures and metal distributions. Extended abstracts, 9th international platinum symposium, Billings, Montana

  • Wilson JR, Cawthorn RG, Kruger FJ, Grundvig S (1994) A major unconformity in the western Bushveld Complex: the northern "gap". S Afr J Geol 97:462–472

    Google Scholar 

Download references

Acknowledgements

The authors acknowledge the assistance of Julius Maseko, Francis Motlalentoa, and Armando Langa in gathering data for pothole shape analysis. Debbie Oberholzer provided invaluable assistance in generating pothole plans. Northam Platinum Limited is thanked for their permission to publish this work. Grant Cawthorn, Bernd Lehmann, and an anonymous reviewer are thanked for insightful comments on an earlier draft of this paper.

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Correspondence to Ian J. Basson.

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Smith, D.S., Basson, I.J. Shape and distribution analysis of Merensky Reef potholing, Northam Platinum Mine, western Bushveld Complex: implications for pothole formation and growth. Miner Deposita 41, 281–295 (2006). https://doi.org/10.1007/s00126-006-0059-5

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