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Palygorskite in the Eocene Rocks of the Dammam Dome, Saudi Arabia

Published online by Cambridge University Press:  02 April 2024

M. Namik Çag̃atay*
Affiliation:
King Fahd University of Petroleum and Minerals, KFUPM Box 895, Dhahran 31261, Saudi Arabia

Abstract

Clay mineralogy and petrography of the Early to Middle Eocene succession of the Dammam dome, Saudi Arabia, comprising the Rus and Dammam Formations, were studied using X-ray powder diffraction, light microscopy, and scanning electron microscopy. These formations consist of alternations of dolomite, dolomitic marl, claystone, and shale. The rocks were deposited and subjected to early diagenetic dolomitization in a shallow, coastal marginal basin characterized by rapid changes in salinity. Palygorskite occurs as interwoven fibrous mats forming fine laminae in shales and as coatings and pore-filling and pore-bridging cements in dolomitic marls. This textural evidence suggests a direct chemical precipitation, mostly post-dating dolomitization. Magnesium concentrations in presence of dolomite was sufficient for palygorskite precipitation; the necessary Si and Al were derived by dissolution of silicates under alkaline conditions. The maximum development of palygorskite was near the top of the Dammam Formation, which was deposited during a marine transgression in the Lutetian. The formation of palygorskite in marginal restricted basins in eastern Saudi Arabia took place during Paleocene-Middle Eocene time and was contemporaneous with similar occurrences in the Tertiary basins of West Africa.

Type
Research Article
Copyright
Copyright © 1990, The Clay Minerals Society

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References

Al-Tamimi, M. H., 1985 Stratigraphical and microfacies analysis of the Early Paleogene succession in the Dammam dome, Eastern Saudi Arabia .Google Scholar
Biscaye, B. E., 1965 Mineralogy and sedimentation of Recent deep sea clay in the Atlantic Ocean and adjacent seas and oceans Geol. Soc. Amer. Bull 16 803832.CrossRefGoogle Scholar
Çagatay, M. N., 1988 Clay mineralogy and chemistry of some argillaceous rocks in central and eastern Saudi Arabia Arabian J. Sci. Eng 13 4763.Google Scholar
Cavalier, C., 1975 Le Tertiaire du Qatar en affleurement Lexique Strat. Int 3 89120.Google Scholar
Chamley, H., Talwani, M., Hay, W. and Ryan, W. B., 1979 North Atlantic clay sedimentation and paleoenvironment since the Late Jurassic: Deep sea drilling results in the Atlantic Ocean Continental Margins and Paleoenvironment Washington, D.C. American Geophysical Union 342361.Google Scholar
Chamley, H., Diester-Haass, L. and Lange, H., 1977 Terrigenous material in East Atlantic sediment cores as an indicator of northwestern African climates “Meteor” Forsch.-Ergebn., Reihe C 26 4459.Google Scholar
Chamley, H., Giround d’Argoud, G. and Robert, C., 1977 Genese des smectites messiniennes de Sicile: Implications paleoclimatiques Geol. Medit 4 371378.CrossRefGoogle Scholar
Dickson, J. A. D., 1965 A modified staining technique for carbonates in thin section Nature 205 587.CrossRefGoogle Scholar
Doornkamp, J. C., Brunsden, D. and Jones, D. K. C., 1980 Geology, Geomorphology and Pedology of Bahrain Norwich, United Kingdom Geo Abstracts Ltd. 1585.Google Scholar
Elprince, A. M., Mashhady, A. S. and Aba-Husayn, M. M., 1979 The occurrence of pedogenic palygorskite (attapul-gite) in Saudi Arabia Soil Sci 128 211218.CrossRefGoogle Scholar
Folk, R. L. and Land, L. S., 1975 Mg/Ca ratio and salinity; two controls over crystallization of dolomite Bull. Amer. Ass. Petrol. Geol 59 6068.Google Scholar
Folk, R. L. and Pittman, J. S., 1971 Length-slow calcedony: A new testament for vanished evaporites J. Sedim. Petrol 41 10451058.Google Scholar
Folk, R. L. and Siedlecka, A., 1974 The ‘schizohaline’ environment: Its sedimentary and diagenetic fabrics as exemplified by Late Paleozoic rocks of Bear Island, Svalbard Sedim. Geol 11 115.CrossRefGoogle Scholar
Hassouba, H. and Shaw, H. F., 1980 The occurrence of palygorskite in Quarternary sediments of the coastal plain of north-west Egypt Clay Miner 15 7783.CrossRefGoogle Scholar
Isphording, W. C., 1973 Discussion of the occurrence and origin of sedimentary palygorskite-sepiolite deposits Clays & Clay Minerals 21 391401.CrossRefGoogle Scholar
Isphording, W. C., Singer, A. and Galan, E., 1984 The clays of Yukatan, Mexico: a contrast in genesis Palygorskite-Sepiolite, Occurrences, Genesis and Uses Amsterdam Elsevier 5973.Google Scholar
Jackson, M. L., 1975 Soil Chemical Analysis—Advanced Course 2nd ed. Madison, Wisconsin Published by the author.Google Scholar
Longman, M. W., 1980 Carbonate diagenetic textures from nearshore diagenetic environments Bull. Amer. Ass. Petrol. Geol 64 461487.Google Scholar
Millot, G., 1970 Geology of Clays New York Springer-Verlag.CrossRefGoogle Scholar
Munis, R. J., 1980 Middle East: Stratigraphie evolution and oil habitat Bull. Amer. Ass. Petrol. Geol 64 597618.Google Scholar
Powers, R. W., Ramirez, L. F., Redmont, C. D. and Elberg, E. L. (1966) Geology of the Arabian peninsula: Sedimentary geology of Saudi Arabia: U.S. Geol. Surv. Prof. Pap. 560–D, D84D93.Google Scholar
Shadfan, H., Mashhady, A. S., Dixon, J. B. and Hussen, A. A., 1985 Palygorskite from Tertiary formations of eastern Saudi Arabia Clays & Clay Minerals 33 451457.CrossRefGoogle Scholar
Singer, A., 1979 Palygorskite in sediments: detrital, diagenetic or neoformed: A critical review Geol. Rdsch 68 9961008.CrossRefGoogle Scholar
Singer, A., Singer, A. and Galan, E., 1984 Pedogenic palygorskite in the arid environment Palygorskite-Sepiolite, Occurrences, Genesis and Uses Amsterdam Elsevier 169175.Google Scholar
Singer, A., 1984 The paleoclimatic interpretation of clay minerals in sediments — A review Earth-Science Reviews 21 251293.CrossRefGoogle Scholar
Singer, A. and Norrish, K., 1974 Pedogenic palygorskite occurrences in Australia Amer. Mineral 59 508517.Google Scholar
Tleel, J. W., 1973 Surface geology of Dammam dome, Eastern Province, Saudi Arabia Bull. Amer. Ass. Petrol. Geol 57 558576.Google Scholar
Velde, B., 1985 Clay Minerals, A Physico-Chemical Ex-planation of their Occurrence Amsterdam Elsevier 225256.Google Scholar
Watts, N. L., 1980 Quarternary pedogenic calcretes from the Kalahari (South Africa): mineralogy, genesis and dia-genesis Sedimentology 27 661686.CrossRefGoogle Scholar
Weaver, C. E., Singer, A. and Galan, E., 1984 Origin and geologic implications of the palygorskite deposits of S.E. United States Palygor-skite-Sepiolite, Occurrences, Genesis and Uses Amsterdam Elsevier 3958.Google Scholar
Weaver, Charles E. and Beck, Kevin C., 1977 Miocene of the S.E. United States: A model for chemical sedimentation in a peri-marine environment Sedimentary Geology 17 1-2 IX234.CrossRefGoogle Scholar
Willis, R. P., 1967 Geology of the Arabian Peninsula: Bah-rain U.S. Geol. Surv. Prof. Pap 560–E 14.Google Scholar
Yaalon, D. H. and Wieder, M., 1976 Pedogenic palygorskite in some arid brown (calciorthid) soils of Israel Clay Miner 11 7380.CrossRefGoogle Scholar