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Chemical weathering on the Carnmenellis granite

Published online by Cambridge University Press:  05 July 2018

C. M. Rice*
Affiliation:
Institute of Geological Sciences, London WC1X 8NG, England

Summary

The behaviour of 25 major and trace elements, together with mineral changes, has been examined in a deep weathering profile on the Carnmenellis granite, Cornwall. The bulk chemical and mineralogical composition of the regolith shows only minor changes from the parent rock indicating a low degree of chemical weathering. However, within the regolith marked differences occur between the fine fractions from the various horizons. Chlorite and degraded muscovite characterize the fines of horizons A+B and C whereas gibbsite and kaolinite characterize horizon D. Secondary minerals becoming base deficient with depth is the reverse of normal behaviour and two possible theories are advanced to explain this anomaly. Most of the trace elements are concentrated in the < 10 µm fraction of the various horizons, in part by an association with degraded muscovite. Tin and Zr occur in resistates and Be, Sr, and Co are mainly lost during weathering.

Type
Research Article
Copyright
Copyright © The Mineralogical Society of Great Britain and Ireland 1973

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References

Austtn, (W. G. C.), I96O. Some aspects of the geology of the Carnmenellis area, Cornwall. M.Se. Thesis, University of Birmingham, England.Google Scholar
Ahrens, (L. H.) and Taylor, (S. R.), 1961. Spectrochemical analysis. London (Pergamon). [M.A. 16- 141.Google Scholar
Balci-IIN, (W. G. V.), 1967. The denudation chronology of S.W. Englandin Present views of some aspects of the geology of Cornwall and Devon, 267-81; eds. Hosking and Shrimpton, Royal Geol. Soc. of Cornwall.Google Scholar
Ball, (D. F.), I964. Gibbsite in altered granitic rock in N. Wales. Nature, 204, 673-4. [M.A. 17-555].CrossRefGoogle Scholar
Bradshaw, (P. M. D.), 1967. Distribution of selected elements in feldspar, biotite and muscovite from British granites in relation to mineralization. Trans. Instn Min. Metall. (Sect. B: Appl. Earth Sci.), 76, 137-8.Google Scholar
Brewer, (R.), 1964. Fabric and mineral analysis of soils. London (Wiley).Google Scholar
Brunsden, (D.), 1964. The origin of decomposed granite on Dartmoor in Dartmoor Essays, 97-116; ed. SIMMONS, Devon Assoc. for the Advancement of Sci., Lit. and Art.Google Scholar
Butler, (J. R.), 1953. The geochemistry and mineralogy of rock weathering—I. The Lizard area, Cornwall. Geochimica Acta, 4, 157-78. [M.A. 12,-275].CrossRefGoogle Scholar
Butler, (J. R.) 1954. Trace element distribution in some Lancashire soils. Yourn. Soil Sci., 5, 156-66.CrossRefGoogle Scholar
Chayes, (F.), 1955. Modal comparison of two facies of the Carnmenellis granite. Geol. Mag., 92, 364-6. [M.A. 13-4Ia].CrossRefGoogle Scholar
Clayden, (B.), 1967. Soils of Cornwall in Present views of some aspects of the geology of Cornwall and Devon, 311-30; eds., Hoskinc, and Shrimpton, , Royal Geol. Soc. of Cornwall.Google Scholar
Coombe, (D. E.) and Frost, (L. C.), I956. The nature and origin of the soils over the Cornish serpentine. Yourn. Ecol., 44, 605-15.CrossRefGoogle Scholar
Flanagan, (F. J.), I967. U.S. Geological Survey silicate rock standards. Geoehimica Acta, 31, 289–;309. [M.A. 18-I781.CrossRefGoogle Scholar
Flelscher, (M.), I965. Summary of new data on rock samples G-I and W-l, I962-I965. Geochimica Acta, 29, 1263-85.CrossRefGoogle Scholar
Ghosh, (P. K.), 1934. The Carnmenellis granite: its petrology, metamorphism and tectonics. Journ. Geol. Soc., 90, 240-76.CrossRefGoogle Scholar
Green, (C. P.) and Eden, (M. J.), I97I. Gibbsite in the Dartmoor granite. Geoderma, 6, 315-I7.CrossRefGoogle Scholar
Harris, (R. C.) and Adams, (J. A. S.), I966. Geochemical and mineralogical changes in the weathering of granite rocks. Amer. Yourn. Sci., 264, 146-73.Google Scholar
Huano, (W. H.) and Johns, (W. D.), 1967. Simultaneous determination of fluorine and chlorine in silicate rocks by a rapid spectrophotometric method. Anal. Chim. Acta, 37, 508-15. [M.A. 19-85].Google Scholar
Keeling, (P. S.), 1962. Some experiments on the low-temperature removal of carbonaceous material from clays. Clay Min. Bull., 5, 155-8. [M.A. 16.241].CrossRefGoogle Scholar
Msusule Tonalite, (T.-L.), I963. Geological Survey Division, Supplement No. 1 Dar-es-Salaam.Google Scholar
Picrcering, (R. J.), 1962. Some leaching experiments on three quartz-free silicate rocks and their contribution to an understanding of laterization. Econ. GeoL, 57, 1185–;1206.CrossRefGoogle Scholar
Rice, (C. M.), I97O. Chemical weathering of the Carnmenellis granite.Ph.D. Thesis, University of Sheffield, England.Google Scholar
Riley, (J. P.), I958. The rapid analysis of rocks and minerals. Anal. Chim. Acta, 19, 413-28. [M.A. 14-87].CrossRefGoogle Scholar
Shapiro, (L.), and Brannock, (W. W.), 1955. Rapid analysis of silicate rocks. U.S. Geol. Surv. Bull. 1036c.Google Scholar
Short, (N. M.), 196I. Geochemical variations in four residual soils. Journ. Geol., 69, 534-571. [M.A. 15-51O].CrossRefGoogle Scholar
Swineford, (A.), 1955. Petrographic comparison of some loess samples from western Europe with Kansas loess. Journ. Sed. Petr., 25, 3-23.Google Scholar
Wilson, (M. J.), I969. A gibbsitic soil derived from the weathering of an ultrabasic rock on the island of Rhum. Scottish Journ. Geol., 5, 81-89. [M.A. 70.I149].CrossRefGoogle Scholar