Role of Mineral Deposits in Global Geochemical Cycles
Abstract
Mineral deposits represent the most extreme degree of natural concentration for most elements and their formation and destruction are important parts of global geochemical cycles. Quantitative estimates of the role that mineral deposits play in these geochemical cycles has been limited, however, by the lack of information on actual amounts of elements that are concentrated in these deposits, and their rates of formation and destruction at geologic time scales. Recent use of a “tectonic diffusion” model for porphyry copper deposits, the most important source of world copper, in conjunction with estimates of their copper content (Kesler and Wilkinson, 2008), allows an assessment of the role of copper deposits in Earth’s global copper cycles. These results indicate that ~4.5*10^8 Gg of Cu have been concentrated in porphyry copper deposits through Phanerozoic time, that deposits containing ~2.8*10^8 Gg of Cu have been removed by uplift and erosion over the same time period, and that deposits containing ~1.7*10^8 Gg remain in Earth’s crust. If styles of formation and destruction of other copper-bearing mineral deposits are similar, then all crustal deposits contain ~3*10^8 Gg of copper. This constitutes about 0.03% of the copper that resides in crustal rocks and provides a first-ever estimate of the rate at which natural geochemical cycles produce the extreme concentrations that constitute mineral deposits. Another ~8*10^8 Gg of copper have been destroyed during the uplift and erosion of mineral deposits over Phanerozoic time, a flux amounting to an annual contribution of about 1.5 Gg of copper to the near-surface environment. This amount is similar in magnitude to copper released by volcanic outgassing, but only ~2.5% of the 56 Gg of copper estimated to be released annually by weathering of average crustal rocks (Rauch and Graedel, 2007). The amount of copper removed from mineral deposits by mining, 1.1*10^4 Gg/year, is much larger than any natural contributions to the near-surface global copper cycle and, for porphyry copper deposits, is approximately 13,000 times larger than the rate at which Earth concentrates copper in them. Preliminary estimates for mineral deposits containing gold yield similar results, suggesting that these relations apply to most metals that are concentrated into hydrothermal mineral deposits. These comparisons indicate that erosion of mineral deposits is a small but important contributor to the natural near-surface flux of metals. Anthropogenic removal and dispersal of metals into the surface environment (mining) is several orders of magnitude larger, and is likely to result in depletion of mineral deposits from the upper few kilometers of Earth’s crust within the next few thousand years.
- Publication:
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AGU Fall Meeting Abstracts
- Pub Date:
- December 2009
- Bibcode:
- 2009AGUFM.V31D2005K
- Keywords:
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- 1009 GEOCHEMISTRY / Geochemical modeling;
- 1030 GEOCHEMISTRY / Geochemical cycles