Peatlands as Filters for Polluted Mine Water?—A Case Study from an Uranium-Contaminated Karst System in South Africa—Part I: Hydrogeological Setting and U Fluxes
Abstract
:1. Introduction
2. Hydrological and Hydrogeological Conditions
2.1. Regional Overview
Sequence/Supergroup (SG) | Group | Subgroup | Formation | Sub-formation | Chert-/water contents of dolomite * (Yield [L/s]) ** | Type of rocks | Av. thickness in study area [m] * |
---|---|---|---|---|---|---|---|
Transvaal sequence | Pretoria | Rooihoogte | shales | ~300 | |||
Chuniespoort | Malmani | Eccles | high (11) | dolomite | ~380 | ||
Lyttleton | Low (3) | dolomite | ~50 | ||||
Monte Christo | upper | high (12) | dolomite | ~260 | |||
middle | low | dolomite | ~160 | ||||
lower | high | dolomite | ~270 | ||||
Oak Tree | Low (6) | dolomite | ~200 | ||||
Black Reef | quartzite, shales | ~10 | |||||
Ventersdorp SG | Ventersdorp lava | lavas | ~1,800 | ||||
Venterspost conglomerate | Ventersdorp Contact Reef | quartzite | 0...~3 | ||||
Witwatersrand SG | Central Rand | Various gold reefs (incl. carbon leader) | quartzite, shales | ~3,000 | |||
Basement | granites, gneiss |
Depth (below groundwater rest level*) | Transmissivity [m3/d × m2] |
---|---|
0–2 m | >7,000 --> highest transmissivity found next to the Bank Dyke and the Wonderfonteinspruit >1,000 Southern flank of the Wonderfontein Valley |
2–12 m | 1,000–100 |
>12 m | <100 |
2.2. Type and Formation of Karst Springs
Dolomitic eyes in the Wonderfonteinspruit catchment
The Gerhard Minnebron Eye
3. Impacts of Deep Level Gold Mining on Hydrological and Geohydrological Conditions
4. Uranium Flux into the GMB Peatland
4.1. Sources and Extent of U Pollution
4.2. Pathways of U Pollution
5. Summary and Conclusions
Acknowledgements
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Winde, F.; Erasmus, E. Peatlands as Filters for Polluted Mine Water?—A Case Study from an Uranium-Contaminated Karst System in South Africa—Part I: Hydrogeological Setting and U Fluxes. Water 2011, 3, 291-322. https://doi.org/10.3390/w3010291
Winde F, Erasmus E. Peatlands as Filters for Polluted Mine Water?—A Case Study from an Uranium-Contaminated Karst System in South Africa—Part I: Hydrogeological Setting and U Fluxes. Water. 2011; 3(1):291-322. https://doi.org/10.3390/w3010291
Chicago/Turabian StyleWinde, Frank, and Ewald Erasmus. 2011. "Peatlands as Filters for Polluted Mine Water?—A Case Study from an Uranium-Contaminated Karst System in South Africa—Part I: Hydrogeological Setting and U Fluxes" Water 3, no. 1: 291-322. https://doi.org/10.3390/w3010291
APA StyleWinde, F., & Erasmus, E. (2011). Peatlands as Filters for Polluted Mine Water?—A Case Study from an Uranium-Contaminated Karst System in South Africa—Part I: Hydrogeological Setting and U Fluxes. Water, 3(1), 291-322. https://doi.org/10.3390/w3010291