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Authigenic palygorskite in Miocene sediments in Linxia basin, Gansu, northwestern China

Published online by Cambridge University Press:  09 July 2018

H. L. Hong*
Affiliation:
Faculty of Earth Sciences
N. Yu
Affiliation:
Postgraduate School, China University of Geosciences
P. Xiao
Affiliation:
Faculty of Earth Sciences
Y. H. Zhu
Affiliation:
Faculty of Earth Sciences
K. X. Zhang
Affiliation:
Faculty of Earth Sciences State Key Laboratory of Geological Process and Mineral Resources, Wuhan, Hubei, 430074, P R China
S. Y. Xiang
Affiliation:
Faculty of Earth Sciences

Abstract

The mineralogical characteristics of authigenic palygorskite occurring with chlorite and illite in Miocene sediments in Linxia basin were investigated using X-ray diffraction (XRD), scanning electron microscopy (SEM), and high-resolution transmission electron microscopy (HRTEM). The XRD results suggest that the mineral composition of the sediments includes mainly quartz, chlorite, illite, calcite, plagioclase, orthoclase, minor palygorskite and small amounts of gypsum and ankerite. Two kinds of palygorskite were observed in the sediments, relatively straight fibrous particles found in matted, felted masses associated with platy chlorite and silky aggregates found in the void spaces. The former probably replaces chlorite grains, growing from the edges or the fissures of chlorite particles. Chlorite grains exhibit bay-shaped or rounded edges, with ambiguous felted boundaries between chlorite particles, indicative of an intensive dissolution process and the growth of palygorskite at the expense of chlorite. Palygorskite is also observed as inclusions within calcite, sprouting from or coating calcite surfaces, suggesting that palygorskite crystallized from solution. The textural relations of palygorskite and the occurrence of ankerite and the characteristically Fe-bearing palygorskite in the sediments suggest the destruction and hydrolysis of chlorite. The ankerite seems to be preferentially present in the void spaces, closely associated with chlorite and illite; fibrous palygorskite crystallizes at the edges of these clay mineral particles and the platy clay mineral particles are gradually replaced by fibrous palygorskite crystals, suggesting that alteration of chlorite to palygorskite involves an interaction with water during the diagenetic process.

Type
Research Article
Copyright
Copyright © The Mineralogical Society of Great Britain and Ireland 2007

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References

Bachmann, G.O. & Machette, M.N. (1977) Calcite soils and calcretes in the southwestern United States. US Geological Survey, Open-file Report 77-794, 163 pp.Google Scholar
Botha, G.A. & Hughes, J.C. (1992) Pedogenic palygorskite and dolomite in a late Neogene sedimentary succession, northwestern Transvaal, South Africa. Geoderma, 53, 139154.Google Scholar
Chahi, A., ClauerN. & Toulkeridis, T. (1999) Rare-earth elements as traces of the genetic relationship between smectite and palygorskite in marine phosphorites. Clay Minerals, 34, 419428.Google Scholar
Fan, M.J. & Song, C.H. (2003) A sedimentary environment analysis and the tectonic uplift of Linxia Basin in the northeast margin of Tibetan Plateau. Journal of Lanzhou University (Natural Sciences), 39, 8489 (Chinese text with English abstract).Google Scholar
Fang, X.M., Li, J.J., Zhu, J.J., Chen, H.L. & Cao, J.X. (1997) Division and age dating of the Cenozoic strata of the Linxia Basin in Gansu, China. Chinese Science Bulletin, 42, 14571471 (in Chinese).Google Scholar
Garrels, R.M. & Christ, C.L. (1965) Solutions, Minerals and Equilibria. Harper and Row, New York.Google Scholar
Hassouba, H. & Shaw, H.F. (1980) The occurrence of palygorskite in Quaternary sediments of the coastal plain of north-west Egypt. Clay Minerals, 15, 7783.Google Scholar
Heystek, H. & Schmidt, E. (1953) The mineralogy of the attapulgite-montmorillonite deposit in the Springbok Flats, Transvaal. Transactions of the Geological Society of Africa, 56, 99115.Google Scholar
Hodges, T., Turchenek, L.W. & Oades, J.M. (1984) Occurrence of palygorskite in groundwater rendzinas (petrocalcic Calciaquolls) in southeast South Australia. Pp. 199210 in: Palygorskite-Sepiolite: Occurrences, Genesis and Uses (Singer, A. and Galán, E., editors). Developments in Sedimentology, 37, Elsevier, Amsterdam.Google Scholar
Hutton, J.T. & Dixon, J.C. (1981) The chemistry and mineralogy of some South Australia calcretes and associated soft carbonates and their dolomitization. Journal of Geological Society of Australia, 28, 7179.Google Scholar
Inglès, M. & Anadón, P. (1991) Relationship of clay minerals to depositional environment in the nonmarine Eocene Pontils group, SE Ebro basin (Spain). Journal of Sedimentary Petrology, 61, 926939.Google Scholar
Jackson, M.L. (1978) Soil Chemical Analyses. Published by the author, University of Wisconsin, Madison, USA.Google Scholar
Jamoussi, F., Ben Aboud, A. & López-Galindo, A. (2003) Palygorskite genesis through silicate transformation in Tunisian continental Eocene deposits. Clay Minerals, 38, 187199.Google Scholar
Jones, B.F. & Galán, E. (1988) Sepiolite and palygorskite. Pp. 631674 in: Hydrous Phyllosilicates (exclusive of micas) (Bailey, S.W., editor). Reviews in Mineralogy, 19, Mineralogical Society of American, Washington, D.C. Google Scholar
Khademi, H. & Mermut, A.R. (1998) Source of palygorskite in gypsiferous arid soils and associated sediments from central Iran. Clay Minerals, 33, 561578.CrossRefGoogle Scholar
Khademi, H. & Mermut, A.R. (1999) Submicroscopy and stable isotope geochemistry of carbonates and associated palygorskite in Iranian Aridisols. European Journal of Soil Science, 50, 207216.Google Scholar
Klappa, C.F. (1983) A process-response model for the formation of pedogenic calcretes. Pp. 211220 in: Residual Deposits: Surface Related Weathering Processes and Materials (Wilson, R.C.L., editor). Special Publications, 11, Geological Society of London and Blackwell Scientific Publications, Oxford.Google Scholar
Muir, A. (1951) Notes on soils of Syria. Journal Soil Science, 2, 163182.Google Scholar
Patil, D.N. & Surana, A.P. (1992) Origin of the calcrete deposits of Saswad-Nira area, Western Maharashtra, India. Journal of the Geological Society of India, 39, 105117.Google Scholar
Proust, D., Eymery, J. & Beaufort, D. (1986) Supergene vermiculitization of a magnesian chlorite: iron and magnesium removal processes. Clays and Clay Minerals, 34, 572580.Google Scholar
Ren, L.F. (1992) Clay Minerals and Clay Rock. Geological Press, Beijing, pp. 6979 (in Chinese).Google Scholar
Righi, D. & Meunier, A. (1991) Characterization and genetic interpretation of clays in an acid brown soil (Dystrochrept) developed in a grantitic saprolite. Clays and Clay Minerals, 39, 519530.CrossRefGoogle Scholar
Rodas, M., Luque, F.J., Mas, R. & Garzon, M.G. (1994) Calcretes, palygorskites and silcretes in the paleogene detrital sediments of the Duero and Tajo basins, central Spain. Clay Minerals, 29, 273285.Google Scholar
Sancho, C., Melendez, A., Signes, M. & Bastida, J. (1992) Chemical and mineralogical characteristics of Pleistocene caliche deposits from the central Ebro Basin, NE Spain. Clay Minerals, 27, 293308.Google Scholar
Singer, A. (1981) The texture of palygorskite from the Rift Valley, Southern Israel. Clay Minerals, 16, 415419.CrossRefGoogle Scholar
Singer, A. (1989) Palygorskite and sepiolite group minerals. Pp. 829872 in: Minerals in Soil Environments (Dixon, J.B. and Weed, S.B., editors). Soil Science Society of America, Madison, Wisconsin.Google Scholar
Singer, A. (2002) Palygorskite and sepiolite. Pp. 556580 in: Soil Mineralogy with Environmental Applications (Dixon, J.B. and Schultze, D.G., editors). SSSA Book Series, no 7, Soil Science Society of America, Madison, Wisconsin.Google Scholar
Singer, A. & Galán, E. (editors) (1984) Palygorskite-Sepiolite, Occurrences, Genesis, Uses. Developments in Sedimentology 37, Elsevier, Amsterdam, 340 pp.Google Scholar
Singer, A. & Norrish, K. (1974) Pedogenic palygorskite occurrences in Australia. American Mineralogist, 59, 508517.Google Scholar
Velde, B. (1985) Clay Minerals. A Physico-Chemical Explanation of their Occurrence. Developments in Sedimentology, 40, Elsevier, Amsterdam.Google Scholar
Verrecchia, E.P. & LeCoustumer, M.N. (1996) Occurrence and genesis of palygorskite and associated clay minerals in a Pleistocene calcrete complex, SDE Boqer, Negev desert, Israel. Clay Minerals, 31, 183202.Google Scholar
Weaver, C.E. & Beck, K.C. (1977) Miocene of the SE United States: a Model for Chemical Sedimentation in a peri-marine Environment. Developments in Sedimentology, 22, Elsevier, Amsterdam, pp. 1234.Google Scholar
Zhong, W., Li, J.J., Fang, X.M., Zhu, J.J. & Cao, J.X. (1998) Features of paleoclimatic changes since about 30 Ma B.P. in Linxia basin — geochemical records in Cenozoic sediment. Geographical Research, 17, 258264 (Chinese text with English abstract).Google Scholar
Zhou, X.R. & Wang, F.Z. (1987) Physics and Chemistry of Rocks. Henan Scientific and Technological Publishing House, Zhengzhou, China.Google Scholar