Skip to main content
Log in

The tin zone: sediment-hosted hydrothermal tin mineralization at Rooiberg, South Africa

  • Published:
Mineralium Deposita Aims and scope Submit manuscript

Abstract

The Rooiberg tin field, also known as the Rooiberg Fragment, is located within the western lobe of the Bushveld Complex. The fragment is triangular-shaped, consists of early Proterozoic Transvaal Sequence volcano-sedimentary rocks, and is surrounded by granitoid intrusives of the Lebowa Granite Suite. Practically all the significant tin deposits are hosted by arkoses, located towards the transition with shaly arkoses at the stratigraphic top of the Boschoffsberg Quartzite Member. This stratabound distribution of individual deposits gave rise to the concept of a regionally developed continuous stanniferous zone. On regional scale, the individual deposits are broadly similar and are collectively classified as replacement and open space-filling type. Particular styles of mineralization such as tourmaline pockets/orbicules, disseminated cassiterite, steep and flat dipping sulphidic fractures and hydrothermal carbonate breccias appear to dominate each mine. Petrological and geochemical investigations of four mineralized centres, indicated the presence of a 500–600 m thick stratified zone of pervasively altered clastic sedimentary rocks of possible arkosic precursor composition. Alteration displays a distinct zonal distribution consisting of a grey-green sodic (albitized) foot wall, an approximately 80 m transitional sericitized-tourmalinized sulphidic tin zone and red hematitic potassic hanging wall. The observed zonal pattern and localization of economically significant cassiterite, is explained by the evolutionary path of magmatic stanniferous hydrothermal fluids genetically related to the surrounding acid phase of the Bushveld Complex. Areas of high fracture density, the tectonic focal points, acted as conduits for the ascending reactive fluids. Factors such as fluid-lithostatic pressure equilibration, limited fracture evolution and/or impermeable shaly arkose retarded this ascent. As a result accumulation, lateral spreading of fluid and pervasive alteration occurred over a broad stratified front. Lateral overlapping of these fronts creates the impression of a continuous tin zone. Abundance of geochemical common denominators between the various focal points (mines) supports a shared composition and source for these contemporaneous fluids.

This is a preview of subscription content, log in via an institution to check access.

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

Similar content being viewed by others

References

  • Bard, J.P., Moine, B. (1979) Acebuches amphibolites in the Aracena hercynian metamorphic belt (southwest Spain). Geochemical variations and basaltic affinities. Lithos 12:271–282

    Google Scholar 

  • Bates, R.L., Jackson, J.A. (1980) Glossary of geology. 2nd edn. American Geological Institute, Falls Church Virginia 805 pp

    Google Scholar 

  • Begley, C.C. (1983) Appraisal of the Rooiberg A Mine lithogeo chemical orientation study data. Unpubl. Rep. Gold Fields of South Africa, 6 pp

  • BMDP Statistical Software Inc. (1993) Cork Technology Park, Los Angeles, USA

  • Boardman, L.G. (1946) The geology of a portion of the Rooiberg Tinfields. Trans. Geol. Soc. S. Afr. 49:103–132

    Google Scholar 

  • Brown, R.W. (1984) Statistical analysis of geochemical data to define marker horisons for the tin zone (A Mine). Unpubl. Rep. Gold Fields of South Africa, 8 pp

  • Conway, G.P. (1986) Rooiberg fragment lithogeochemical and mineralogical study. Unpubl. Rep. Gold Fields of South Africa, 4 pp

  • Dinsdale, J.L. (1981) The development and control of pocket-mineralization in the Rooiberg quartzites. Unpubl. M.Sc. thesis, Univ. Pretoria, Pretoria, South Africa, 150 pp

    Google Scholar 

  • Du Plessis, C.P., Walraven, F. (1990) The tectonic setting of the Bushveld Complex in Southern Africa. I. Structural deformation and distribution. Tectonophysics 176:305–319

    Google Scholar 

  • Eriksson, P.G., Meyer, R., Botha, W.J. (1988) A hypothesis on the Pretoria Group basin. S. Afr. J. Geol. 94:490–497

    Google Scholar 

  • Eriksson, P.G., Clendenin, C.W. (1990) A review of the Transvaal Sequence, South Africa. J. Afr. Earth Sci. 10:101–116

    Google Scholar 

  • Eriksson, P.G., Schreiber, U.M., Van der Neut, M. (1991) A review of the sedimentology of the early Proterozoic Pretoria Group, Transvaal Sequence, South Africa: implications for tectonic setting. J. Afr. Earth Sci. 13:107–119

    Google Scholar 

  • French, B.M., Twist, D. (1983) Status of the Rooiberg Felsite in the Bushveld Complex: a review. Res. Rep. Inst. Geol. Res. Bushreld Complex, Univ, Pretoria 39: 26 pp

  • Friede, H.M., Steel, R.H. (1976) Tin mining and smelting in the Transvaal during the Iron Age. J. S. Afr. Mining and Metallurgy, 12 pp

  • Gevers, T.W. (1935) Geology of Rietfontein. Unpubl. Rep. Rooiberg Minerals Development Company, 93 pp

  • Haikney, S.A. (1986) Report on the compilation of geochemical data of the rooiberg Fragment. Unpubl. Rep. Gold Fields of South Africa, 12 pp

  • Hartzer, F.J. (1989) Stratigraphy, structure and tectonic evolution of the Crocodile River Fragment. S. Afr. J. Geol. 92:110–124

    Google Scholar 

  • Heinrich, C.A. (1990) The chemistry of hydrothermal tin (-tungsten) ore deposition. Econ. Geol. 85:457–481

    Google Scholar 

  • Hunter, D.R. (1975) The regional geological setting of the Bushveld Complex. Rep. Econ. Geol. Res. Unit, Univ. Witwatersrand, Johannesburg, 16 pp

    Google Scholar 

  • Ianello, P. (1971) The Bushreld granites around Rooiberg, Transvaal, South Africa. Geol. Rundschan 60:630–655

    Google Scholar 

  • Jackson, K.J., Helgeson, H.C. (1985) Chemical and thermodynamic constraints on the hydrothermal transport and deposition of tin. I. Calculation of solubility of cassiterite at high pressures and temperatures. Geochim. et Cosmochim. Acta 49:1–22

    Google Scholar 

  • Labuschagne, L.S. (1970) The structure and the mineralization of the ore bodies at Blaaubank and Nieuwpoort, Rooiberg Tinfields. Unpubl. M.Sc. thesis, Univ. Pretoria, 77 pp

  • Lagache, M., Weisbrod, A. (1977) The system: two alkali feldspar-KCl-NaCl-H2O at moderate to high temperatures and low pressures. Contr. Min. Petrol. 62:77–101

    Google Scholar 

  • Leube, A. (1960) Structural control in the Rooiberg Tinfields (South Africa). Trans. Geol. Soc. S. Afr. 63:265–282

    Google Scholar 

  • Leube, A., Stumpfl. E.F. (1963) The Rooiberg and Leeuwpoort Tin Mines, Transvaal. S. Africa. Econ. Geol. 58, 391–418:527–557

    Google Scholar 

  • Lomberg, K.G. (1985) A petrographic and geochemical study of selected samples from borehole CMS 147 (Mine) and V108 (Vellefontein). Unpubl. Rep. Gold Fields of South Africa, 30 pp

  • Marrack, T. (1942) The geology of the Rooiberg Tinfield. Unpubl. Rep. Rooiberg Minerals Development Company, 24 pp

  • McNaughton, N.J., Pollard, P.J., Groves, D.I., Taylor, R.G. (1993) A long-lived hydrothermal system in Bushveld granites at the Zaaiplaats tin mine: Lead isotope evidence. Econ. Geol. 88:27–43

    Google Scholar 

  • Oxland, G.O., White, H. (1974) Ancient mining practices in the Rooiberg area. J. S. Afr. Inst. Min. Metall. 74: 6 pp

    Google Scholar 

  • Pettijohn, F.J., Potter, P.E., Siever, R. (1972) Sand and sandstone. Springer, Berlin Heidelberg New York, 618 pp

    Google Scholar 

  • Pettijohn, F.J. (1975) Sedimentary Rocks, Harper and Row, New York, 628 pp

    Google Scholar 

  • Phillips, A.H. (1982) The geology of the Leeuwpoort tin deposits and selected aspects of its environs. Unpubl. M.Sc. thesis, Univ. Witwatersrand, Johannesburg, 297 pp

    Google Scholar 

  • Pirajno, F. (1992) Hydrothermal mineral deposits. Springer, Berlin Heidelberg New York, 709 pp

    Google Scholar 

  • Pollard, P.J., Taylor, R.G., Taylor R.P., Groves, D.I. (1991) Petrographic and geochemical evolution of pervasively altered Bushveld granites at the Zaaiplaats Tin Mine. Econ. Geol. 86:1401–1433

    Google Scholar 

  • Richards, R.J., Eriksson, P.G. (1988) The sedimentology of the Pretoria Group in selected areas in the northern portion of the Rooiberg Fragment. S. Afr. J. Geol. 91:498–508

    Google Scholar 

  • Roberts, G.S. (1980) Rooiberg tin zone geochemical study. Preliminary appraisal of orientation results. Unpubl. Rep. Gold Fields of South Africa, 21 pp

  • Rozendaal, A., Toros, M.S., Anderson, R. (1986) The Rooiberg Tin Deposits, West Central Transvaal. In: Anhaeusser, C.R., Maske, S. (eds.) Mineral deposits of Southern Africa, vols. 1 and II. Geol. Soc. S. Afr. Johannesburg, pp. 1307–1327

    Google Scholar 

  • South African Committee for Stratigraphy (SACS) (1980) Stratigraphy of South Africa, part 1. L.E. Kent (ed.). Lithostratigraphy of the Republic of South Africa, South West Africa/Namibia, and the Republics of Bophuthatswana, Transkei and Venda. Handbook Geol. Surv. S. Afr. 8: 690 pp

  • Schreiber, U.M. (1990) A paleoenvironmental study of the Pretoria group in the Eastern Transvaal. Unpubl. Ph.D. thesis, Univ. Pretoria, Pretoria, South Africa, 308 pp

    Google Scholar 

  • Schreiber, U.M., Eriksson, P.G., Snyman, C.P. (1991) A provenance study of the standstones of the Pretoria Group, Transvaal sequence (South Africa): petrography, geochemistry and paleocurrent directions. S. Afr. J. Geol. 94:286–298

    Google Scholar 

  • Stear, W.M. (1976) The geology and ore-controls of the Northern Rooiberg Tinfield, Transvaal. Unpubl. M.Sc. thesis Univ Stellenbosch, 89 pp

  • Stear, W.M. (1977a) The stratigraphy and sedimentation of the Pretoria Group at Rooiberg, Transvaal. Trans. Geol. Soc. S. Afr. 80:53–65

    Google Scholar 

  • Stear, W.M. (1977b) The stratabound tin-deposits and structure of the Rooiberg Fragment. Trans. Geol. Soc. S. Afr. 80:67–78

    Google Scholar 

  • Strauss, C.A. (1947) Granitization and rheomorphism associated with the Bushveld Igneous Complex near the Leeuwport Tin Mine. Trans. Geol. Soc. S. Afr. 50:161–170

    Google Scholar 

  • Taylor, R.G., Pollard, P.J. (1988) pervasive hydrothermal alteration in tin-bearing granites and implications for the evolution of ore-bearing magmatic fluids. In: Taylor, R.G., Strong D.F. (eds.) Recent advances in the geology of granite related mineral deposits. Special Volume 39. The Canadian Institute of Mining and Metallurgy, Ottawa, pp. 86–95

    Google Scholar 

  • Taylor, R.G. (1979) Geology of tin deposits. Elsevier, Amsterdam, 543 pp

    Google Scholar 

  • Taylor, J.R., Wall, V.J. (1992) The behaviour of tin in granitoid magmas. Econ. Geol. 87:403–420

    Google Scholar 

  • Taylor, J.R., Wall, V.J. (1993) Cassiterite solubility, tin speciation and transport in a magmatic aqueous phase. Econ. Geol. 88:437–460

    Google Scholar 

  • Toros, M.S. (1984) Cassiterite mineralization at Rooiberg. Unpubl. Rep. Gold Fields of South Africa, 18 pp

  • Turekian, K.K., Wedepohl, K.H. (1961) Distribution of the elements in some major units of the earth's crust. Bull. Geol. Soc. Am. 72:175–192

    Google Scholar 

  • Vickers, P.D.F., Osborne, J. (1981) Rooiberg A Mine lithogeochemical orientation study. Unpubl. Rep. Gold Fields of South Africa, 16 pp

  • Walraven, F., Hattingh, L.E. (1993) Geochronology of the Nebo Granite, Bushveld Complex. S. Afr. J Geol. 96:31–41

    Google Scholar 

  • Walraven, F. (1976) Notes on the late-stage history of the Western Bushveld Complex. Trans. Geol. Soc. S. Afr. 79:13–21

    Google Scholar 

Download references

Author information

Authors and Affiliations

Authors

Rights and permissions

Reprints and permissions

About this article

Cite this article

Rozendaal, A., Misiewicz, J.E. & Scheepers, R. The tin zone: sediment-hosted hydrothermal tin mineralization at Rooiberg, South Africa. Mineral. Deposita 30, 178–187 (1995). https://doi.org/10.1007/BF00189347

Download citation

  • Received:

  • Accepted:

  • Issue Date:

  • DOI: https://doi.org/10.1007/BF00189347

Keywords

Navigation