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Mineralogical and Chemical Properties and the Origin of Two Types of Analcime in SW Ankara, Turkey

Published online by Cambridge University Press:  01 January 2024

Necati Karakaya
Affiliation:
Selçuk Universitesi Mühendislik Fakültesi, Jeoloji Müh. Böl. Konya, 42079, Turkey
Muazzez Çelik Karakaya*
Affiliation:
Selçuk Universitesi Mühendislik Fakültesi, Jeoloji Müh. Böl. Konya, 42079, Turkey
Abidin Temel
Affiliation:
Hacettepe Üniversitesi Mühendislik Fakültesi, Jeoloji Müh. Böl. 06800 Ankara, Turkey
*
*E-mail address of corresponding author: mzzclk@hotmail.com

Abstract

Authigenic analcimes were observed in different amounts in Miocene units in central Anatolia, Turkey. Two types of analcime occurrences were defined: (1) as continuous but inhomogeneous concentrations varying from 3 to 75 wt.% in lacustrine sedimentary rocks; and (2) as low concentrations (between 3 and 20%) and discontinuous components in the tuffs and claystones intercalated with tuff. The type 2 analcimes have been investigated by many researchers while the origin and properties of the sedimentary analcimes, which are widespread in different parts of Turkey, have not been clarified. The present study focused on the genesis and the mineralogical and geochemical properties of both types of analcime. The analcimes were investigated using X-ray diffraction, optical microscopy, scanning electron microscopy, and chemical analytical methods. In the first type, other than volcaniclastic material, analcime is the only zeolite mineral. The first type of analcime was associated mainly with montmorillonite, dolomite, and feldspar and sometimes with calcite, and rarely with illite and kaolinite. The second type of analcime was found as an accessory mineral accompanied by montmorillonite, feldspar, and heulandite/clinoptilolite, and more rarely by erionite, kaolinite, and mica. The pyroclastic rocks are chemically classified into two subgroups, dacitic and andesitic rocks, with an intermediate to high silica content and a high percentage of alkali cations. Analcime in the pyroclastics intercalated with clay layers commonly replaced early-formed zeolites, such as clinoptilolite or volcanic materials. The first type of analcime was not formed from precursor zeolites and had a different origin than the second type. Type 1 analcime contains larger amounts of Si (34.19 to 34.68 Si per unit cell) and less Al and Na than in theoretical analcime. The theoretical structural formula of analcime is Na16(Al16Si32O96)H2O. The strongly decomposing feldspar and clay minerals (in particular montmorillonite and partially illite) of the older formations and the dissolution of halite and also soda minerals, e.g. thenardite and glauberite, allow the authigenic formation of type 1 analcime, dolomite, K-feldspar, and montmorillonite in a saline and highly alkaline environment such as the marginal part of Lake Tuzgölü. Type 2 analcime may have been precipitated directly from solution, pyroclastic material, or precursor zeolite minerals in saline and alkaline lake water.

Type
Research Article
Copyright
Copyright © The Clay Minerals Society 2013

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References

Anders, E. and Grevesse, N., 1989 Abundances of the elements: meteoric and solar Geochimica et Cosmochimica Acta 53 197214.CrossRefGoogle Scholar
Ataman, G., 1976 Türkiye’de yeni bir analsim oluşuğu ve zeolitli serilerle plaka tektoniği araşnda muhtemel ilişkiler H.Ü. Yerbilimleri 2 923.Google Scholar
Ataman, G. and Beseme, P., 1972 Decouverte de I’analcime sedimentaire en Anatolia du Nord-Quest (Turquie), Minerologie, genese, paragenese Chemical Geology 9 203225.CrossRefGoogle Scholar
Ataman, G. and Gündoğdu, N., 1982 Analcimic zones in the Tertiary of Anatolia and their geologic positions Sedimentary Geology 31 8999.CrossRefGoogle Scholar
Armstrong, J.T., Newbury, D.E., 1988 Accurate quantitative analysis of oxygen and nitrogen with a WSi multilayer crystal Microbeam Analysis San Francisco, California, USA San Francisco Press 301304.Google Scholar
Bhatia, M.R. and Taylor, S.R., 1981 Trace element geochemistry and sedimentary provenances: a study from the Tasman geosyncline, Australia Chemical Geology 33 115125.CrossRefGoogle Scholar
Boles, J.R. and Surdam, R.C., 1979 Diagenesis of volcanogenic sediments in a Tertiary saline lake: Wagon Bed Formation, Wyoming American Journal of Science 279 832853.CrossRefGoogle Scholar
Boynton, W.V., Henderson, P., 1984 Geochemistry of rare earth elements: meteorite studies Rare Earth Element Geochemistry Amsterdam Elsevier 63114.CrossRefGoogle Scholar
Brobst, D.A. and Tucker, J.D., 1973 X-ray mineralogy of the Parachute Creek Member, Green River Formation, in the northern Piceance Creek basin, Colorado U.S. Geological Survey Professional Paper 803 53 pp..Google Scholar
Campo, M.D. Papa, D.C. and Jiménez-Millán, J ^F, 2007 Clay mineral assemblages and analcime formation in a Palaeogene fluvial-lacustrine sequence (Míz Gordo Formation Palaeogene) from northwestern Argentina Sedimentary Geology 201 5674.CrossRefGoogle Scholar
Castanier, S. Le M’Etayer-Levrel, G. and Perthuisot, J.P., 1999 Ca-carbonates precipitation and limestone genesis — the microbiogeologist point of view Sedimentary Geology 126 923.CrossRefGoogle Scholar
Chipera, S. and Apps, J., 2001 Geochemical stability of natural zeolites Natural Zeolites: Occurrence, Properties, Applications 45 117161.CrossRefGoogle Scholar
Coombs, D.S., 1998 Recommended nomenclature for zeolite minerals — Report of the subcommittee on zeolites of the International Mineralogical Association Mineralogical Magazine 62 533571.CrossRefGoogle Scholar
Coombs, D.S. and Whetten, J.T., 1967 Composition of analcime from sedimentary and metamorphic rocks Geological Society of America Bulletin 78 269282.CrossRefGoogle Scholar
Corfu, F. and Davis, D.W., 1991 Archaean hydrothermal zircon in the Abitibi greenstone belt: constraints on the timing of gold mineralization Comment Earth and Planetary Science Letters 104 545552.CrossRefGoogle Scholar
Cox, R. Lowe, D.R. and Cullers, R.L., 1995 The influence of sediment recycling and basement composition on evolution of mudrock chemistry in the southwestern United States Geochimica et Cosmochimica Acta 59 29192940.CrossRefGoogle Scholar
Cullers, R.L., 1994 The controls on the major and trace element variation of shales, siltstones, and sandstones of Pennsylvanian-Permian age from uplifted continental blocks in Colorado to platform sediment in Kansas, USA Geochimica et Cosmochimica Acta 58 49554972.CrossRefGoogle Scholar
Cullers, R.L., 1995 The controls on the major-and trace-element evolution of shales, siltstones and sandstones of Ordovician to Tertiary age in the Wet Mountains region, Colorado, USA Chemical Geology 123 107131.CrossRefGoogle Scholar
Cullers, R.L. Basu, A. and Suttner, L.J., 1988 Geochemical signature of provenance in sand-size material in soils and stream sediments near the Tobacco Root batholith, Montana, USA Chemical Geology 70 335348.CrossRefGoogle Scholar
Emelyanov, E.V. and Shimkus, K.M., 1986 Geochemistry and Sedimentology of the Mediterranean Sea The Netherlands Reidel, Dordrecht 553 pp..CrossRefGoogle Scholar
English, P.M., 2001 Formation of analcime and moganite at Lake Lewis, central Australia: significance of groundwater evolution in diagenesis Sedimentary Geology 143 219244.CrossRefGoogle Scholar
Esenli, F. and Özpeker, I., 1993 Zeolitic diagenesis of Neogene basin and the mineralogy of heulandite-clinoptilolite around Gördes Geological Bulletin of Turkey 8 118.Google Scholar
Esenli, F. and Sirkecioğlu, A., 2005 The relationship between zeolite (heulandite-clinoptilolite) content and the ammonium-exchange capacity of pyroclastic rocks in Gördes, Turkey Clay Minerals 40 557564.CrossRefGoogle Scholar
Faure, G., 1998 Principles and Applications of Geochemistry Upper Saddle River, New Jersey, USA Prentice Hall 600 pp..Google Scholar
Floyd, P.A. and Winchester, J.A., 1978 Identification and discrimination of altered and metamorphosed volcanic rocks using immobile elements Chemical Geology 21 291306.CrossRefGoogle Scholar
Gall, Q. and Hyde, R., 1989 Analcime in lake and lake-margin sediments of the Carboniferous Rocky Brook Formation, western Newfoundland, Canada Sedimentology 36 875887.CrossRefGoogle Scholar
Gao, S. and Wedepohl, K.H., 1995 The negative Eu anomaly in Archean sedimentary rocks: implication for decomposition, age and importance of their granitic sources Earth and Planetary Science Letters 133 8194.CrossRefGoogle Scholar
Gottardi, G. and Galli, E., 1985 Natural Zeolites Berlin Springer-Verlag 409 pp..CrossRefGoogle Scholar
Gottardi, G. and Obradovic, J., 1978 Sedimentary zeolites in Europe Fortschritte der Mineralogie 56 316366.Google Scholar
Görür, M.N. Oktay, F.Y. Seymen, I. and Şengör, A.M.C., 1984 Paleotectonic evolution of the Tuzgölübasin complex, Central Turkey: sedimentary record of a Neo-Tethyan closure The Geological Evolution of the Mediterranean 17 467482.Google Scholar
Gromet, L.P. Dymek, R.F. Haksin, L.A. and Korotev, R.L., 1984 The “North American shale composite”: its compilation, major and trace element characteristics Geochimica et Cosmochimica Acta 48 24693482.CrossRefGoogle Scholar
Gündoğdu, M.N., 1982 Neojen yaşl. Bigadiç sedimanter baseninin jeolojik, mineralojik ve jeokimyasal incelenmesi PhD thesis Ankara, Turkey Hacettepe University 386 pp..Google Scholar
Gündoğdu, M.N. Yalçın, H. Temel, A. and Clauer, N., 1996 Geological, mineralogical and geochemical characteristics of zeolite deposits associated with borates in the Bigadic Emet and K.rka Neogene lacustrine basins, western Turkey Mineralium Deposita 31 492513.CrossRefGoogle Scholar
Gürer, Ö F F and Aldanmaz, E., 2002 Origin of the Upper Cretaceous-Tertiary Sedimentary Basins within the Tauride-Anatolide Platform in Turkey Geological Magazine 139/2 191197.CrossRefGoogle Scholar
Hay, R.L., 1966 Zeolites and zeolitic reactions in sedimentary rocks Geological Society of America Special Paper 85 130 pp..Google Scholar
Hay, R.L., 1968 Chert and its sodium-silicate precursors in sodium carbonate lakes of East Africa Contributions to Mineralogy and Petrology 17 255274.CrossRefGoogle Scholar
Hay, R.L., 1970 Silicate reactions in three lithofacies of a semi-arid basin, Olduvai Gorge, Tanzania Mineralogical Society of America Special Paper 3 237255.Google Scholar
Hay, R.L. and Guldman, S.G., 1986 Silicate diagenesis in sediments of Searles Lake, California: in Programme and Abstracts 23rd Annual Meeting of The Clay Minerals Society, Jackson, Mississippi, USA 15.Google Scholar
Hay, R.L. and Moiola, R.J., 1963 Authigenic silicate minerals in Searles Lake, California Sedimentology 2 312332.CrossRefGoogle Scholar
Hay, R.L. and Sheppard, R.A., 2001 Occurrence of zeolites in sedimentary rocks: an overview Natural Zeolites: Occurrence, Properties, Applications 45 217234.CrossRefGoogle Scholar
Helvacı, C. Stamatakis, M.G. Zagouroglou, C. and Kanaris, J., 1993 Borate minerals and related authigenic silicates in northeastern Mediterranean late Miocene continental basins Exploration and Mining Geology 2 171178.Google Scholar
Iijima, A. and Hay, R.L., 1968 Analcime composition in the Green River Formation of Wyoming American Mineralogist 53 184200.Google Scholar
Innocenti, F. Mazzuoli, R. Pasquare, G. Radicati Di Brozolo, F. and Villari, L., 1975 The Neogene calcalkaline volcanism of central Anatolia: geochronological data on Kayseri-Niğde area Geological Magazine 112 349360.CrossRefGoogle Scholar
Jagoutz, E. Palme, H. Baddenhausen, H. Blum, K. Cendales, M. Dreibus, G. Spottel, B. Lorenz, V. and Wanke, H., 1979 The abundances of major, minor and trace elements in the Earth’s mantle as derived from primitive ultramafic nodules. Proceedings of the Lunar and Planetary Science Conference No 10 Geochimica et Cosmochimica Acta, Supplement 11 20312050.Google Scholar
Kabata-Pendias, A. and Pendias, H., 1999 Biochemistry of Trace Elements Warsaw Wyd Nauk PWN 398 pp..Google Scholar
Kaçmaz, H. and Koktürk, U., 2004 Geochemistry and mineralogy of zeolitic tuffs from the Alacat. (Ceşme) area, Turkey Clays and Clay Minerals 52 705713.CrossRefGoogle Scholar
Kadir, S. Önen-Hall, A.P. Aydın, S.N. Yakıcıer, C. Akarsu, N. and Tuncer, M., 2008 Environmental effect and genetic influence: a regional cancer predisposition survey in the Zonguldak region of Northwest Turkey Environmental Geology 54 391409.CrossRefGoogle Scholar
Karakaş, Z. and Kadir, S., 2006 Occurrence and origin of analcime in a Neogene volcano-sedimentary lacustrine environment, Beypazarı-Çayırhan basin, Ankara, Turkey Neues Jahrbuch für Mineralogie Abhandlungen 182 253264.CrossRefGoogle Scholar
Karakaya, M. Karakaya, N. Kupeli, , 2011 Mineralogical and geochemical properties of the Na- and Ca-bentonites of Ordu (N.E. Turkey) Clays and Clay Minerals 59 7594.CrossRefGoogle Scholar
Karakaya, N. Karakaya, M. and Yavuz, F., 2012 Investigation of mineralogic, geochemical and some technologic properties of zeolite occurrences in around of Kulu (Konya) and Haymana (Ankara) 200 pp..Google Scholar
Kurt, H. Asan, A. and Ruffet, G., 2008 The relationship between collision-related calcalkaline, and within-plate alkaline volcanism in the Karacadağ Area (Konya-Türkiye, Central Anatolia) Chemie der Erde 68 155176.CrossRefGoogle Scholar
McLennan, S. M., 1989 Rare earth elements in sedimentary rocks: influence of provenance and sedimentary processes Geochemistry and Mineralogy of Rare Earth Elements 21 169190.CrossRefGoogle Scholar
McLennan, S.M. and Taylor, S.R., 1991 Sedimentary rocks and crustal evolution: tectonic setting and secular trends Journal of Geology 99 121.CrossRefGoogle Scholar
McLennan, S.M. Nance, W.B. and Taylor, S.R., 1980 Rare earth element-thorium correlation in sedimentary rocks, and the composition of the continental crust Geochimica et Cosmochimica Acta 44 18331839.CrossRefGoogle Scholar
Moiola, R.J., 1970 Authigenic zeolites and K-feldspars in the Esmeralda Formation, Nevada American Mineralogist 55 16811691.Google Scholar
Okay, A.I. Tansel, and Tüysüz, O., 2001 Obduction, subduction and collision as reflected in the Upper Cretaceous-Lower Eocene sedimentary record of western Turkey Geological Magazine 138 117142.CrossRefGoogle Scholar
Özen, S. and Göncüoğlu, M.C., 2011 Origin of analcime in the Neogene Ar.kl. tuffs, Biga Peninsula, NW Turkey Neues Jahrbuch für Mineralogie 189 2134.CrossRefGoogle Scholar
Pasquar, G. Poli, S. Vezzoli, L. and Zanchi, A., 1988 Continental arc volcanism and tectonic setting in Central Anatolia, Turkey Tectonophysics 146 217230.CrossRefGoogle Scholar
Passaglia, E. and Sheppard, R.A., 2001 Crystal chemistry of zeolites Natural Zeolites: Occurrence, Properties, Applications 45 69116.CrossRefGoogle Scholar
Remy, R.R. and Ferrell, R.E., 1989 Distribution and origin of analcime in marginal lacustrine mudstones of the Green River Formation, south-central Uintsa Basin, Utah Clays and Clay Minerals 37 419432.CrossRefGoogle Scholar
Renaut, R.W., 1993 Zeolitic diagenesis of late Quarternary fluviolacustrine sediments and associated calcrete formation in the Lake Bogoria Basin, Kenya Rift Valley Sedimentology 40 271301.CrossRefGoogle Scholar
Rollinson, H., 1993 Using Geochemical Data; Evaluation, Presentation, Interpretation Harlow, Essex, UK Scientific and Technical 352 pp..Google Scholar
Şahin, M.B., 2007 Orta Anadolu’da belirlenen önemli bir şabazit oluşumu ve mineralojik özellikleri MTA Dergisi 135 3144.Google Scholar
Saunders, A.D. Tarney, J. Marsh, N.G. Wood, D.A., Panayiotou, A., 1980 Ophiolites as ocean crust: a geochemical approach Ophiolites: Proceedings of the International Ophiolite Symposium Cyprus Ministry of Agriculture and Natural Resources 193204.Google Scholar
Sheppard, R.A. and Gude, A.J., 1968 Distribution and genesis of authigenic silicate minerals in tuffs of Pleistocene Lake Tecopa, Inyo County, California U.S. Geological Survey Professional Paper 597 38 pp..Google Scholar
Sheppard, R.A. and Gude, A.J., 1969 Diagenesis of tuffs in the Barstow Formation, Mud Hills, San Bernardino County, California U.S. Geological Survey Professional Paper 634 35 pp.Google Scholar
Sheppard, R.A. and Hay, R.L., 2001 Formation of zeolites in open hydrologic systems Natural Zeolites: Occurrence, Properties, Application 45 261276.CrossRefGoogle Scholar
Shimizu, H. and Masuda, A., 1977 Cerium in chert as an indication of marine environment of its formation Nature 266 346348.CrossRefGoogle Scholar
Snellings, R. Haten van, T. Machiels, L. Mertens, G. Vandenberghe, N. and Elsen, J., 2008 Mineralogy, geochemistry and diagenesis of clinoptilolite tuffs (Miocene) in the central Simav graben, Western Turkey Clays and Clay Minerals 56 622632.CrossRefGoogle Scholar
Surdam, R.C. and Eugster, H.P., 1976 Mineral reactions in the sedimentary deposits of the Lake Magadi region, Kenya Geological Society of America Bulletin 87 17391752.2.0.CO;2>CrossRefGoogle Scholar
Surdam, R.C. and Parker, R.B., 1972 Authigenic aluminosilicate minerals in the tuffaceous rocks of the Green River Formation, Wyoming Geological Society of America Bulletin 83 689700.CrossRefGoogle Scholar
Surdam, R.C. Sheppard, R.A., Sand, L.B. and Mumpton, F.A., 1978 Zeolites in saline, alkaline-lake deposits Natural Zeolites: Occurrence, Properties, Use Elmsford, New York Pergamon Press 145174.Google Scholar
Taylor, S.R. and McLennan, S.M., 1985 The Continental Crust: its Composition and Evolution Oxford, UK Blackwell 312 pp..Google Scholar
Temel, A. and Gündoğdu, M.N., 1996 Zeolite occurrences and the erionite-mesothelioma relationship in Cappadocia, central Anatolia Mineralium Deposita 31 539547.CrossRefGoogle Scholar
Uğuz, F.M. Turhan, N. Bilgin, A.Z. Umut, M. Şen, A.M. and Acarlar, M., 1999.Kulu (Konya)-Haymana (Ankara) ve Kırıkkale dolayının jeolojisi MTA Rapor No: 10399Google Scholar
Velde, B., 1985 Clay Minerals: a Physico-Chemical Explanation of their Occurrence Amsterdam Elsevier 427 pp..Google Scholar
Whitney, D.L. and Evans, B.W., 2010 Abbreviations for names of rock-forming minerals American Mineralogist 95 185187.CrossRefGoogle Scholar
Wilkin, R. and Barnes, H., 2000 Nucleation and growth kinetics of analcime from precursor Na-clinoptilolite American Mineralogist 85 13291341.CrossRefGoogle Scholar
Winchester, J.A. and Floyd, P.A., 1977 Geochemical discrimination of different magma series and their differentiations products using immobile elements Chemical Geology 20 325340.CrossRefGoogle Scholar
Wronkiewicz, D.J. and Condie, K.C., 1987 Geochemistry of Archean greywackes from Wyoming Supergroup, South Africa: source-area weathering and provenance Geochimica et Cosmochimica Acta 51 24012416.CrossRefGoogle Scholar
Wronkiewicz, D.J. and Condie, K.C., 1989 Geochemistry and provenance of sediments from the Pongola Supergroup, South Africa: evidence for a 3.0 Ga old continental craton Geochimica et Cosmochimica Acta 53 15371549.CrossRefGoogle Scholar
Wronkiewicz, D.J. and Condie, K.C., 1990 Geochemistry and mineralogy of sediments from the Ventersdrop and Transvaal Supergroups, South Africa: cratonic evolution during the early Paleozoic Geochimica et Cosmochimica Acta 54 343354.CrossRefGoogle Scholar
Wu, D.C., 1970 Origin of mineral analcite in the upper Flowerpot Shale, northwestern Oklahoma Transactions of the Kansas Academy of Science 73 247251.CrossRefGoogle Scholar