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Chemical Disaggregation of Kaolinitic Claystones (Tonsteins and Flint Clays)

Published online by Cambridge University Press:  01 January 2024

Don M. Triplehorn
Affiliation:
Department of Geology and Geophysics, University of Alaska, Fairbanks, Alaska 99775, USA
Bruce F. Bohor
Affiliation:
US Geological Survey, MS 939, Box 25046, Denver, CO 80225, USA
William J. Betterton*
Affiliation:
US Geological Survey, MS 939, Box 25046, Denver, CO 80225, USA
*
*E-mail address of corresponding author: wbettert@usgs.gov
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Abstract

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The coarse, non-clay fraction of many flint-like kaolinitic claystones often contains mineral grains diagnostic of the claystone's origin and, in the case of tonsteins (altered volcanic ashes), may also provide minerals suitable for radiometric dating. Separation of the non-clay mineral fraction is often difficult because flint clays and flint-like clays resist slaking in water and thus are difficult to disaggregate. Chemical disaggregation of resistant kaolinitic claystones may be achieved by immersion in either hydrazine monohydrate or DMSO for periods ranging from one day to several weeks. Generally, hydrazine monohydrate works more quickly and efficiently than DMSO to disaggregate most kaolinitic claystones and flint clays.

Type
Research Article
Copyright
Copyright © 2002, The Clay Minerals Society

References

Blumenthal, G. Schmalstieg, A. and Wiegmann, J., (1990) Zum Intercalationsverhalten thermisch vorbelasteter Kaolinite gegenuber Hydrazinhydrat, Dimethylsulfoxid, sowie Harnstoff (On the intercalation behavior of preheated kaolinites towards hydrazine hydrate, dimethyl sulfoxide, and carbamide) Zeitschrift für Anorganische und Allgemeine Chemie 590 229237 10.1002/zaac.19905900123.CrossRefGoogle Scholar
Bohor, B.F. and Triplehorn, D. M. (1981) Volcanic origin of the flint clay parting in the Hazard #4 (Fire Clay) coal bed of the Breathitt Formation in eastern Kentucky. Pp. 4954 in: Guidebook, Geological Society of America Annual Meeting, Coal Division Field Trip, Coal and Coal-Bearing Rocks of Eastern Kentucky. Kentucky Geological Survey.Google Scholar
Bohor, B.F. and Triplehorn, D.M. (1993) Tonsteins: Altered volcanic-ash layers in coal-bearing sequences. Geological Society of America Special Paper, 285, 44 pp.Google Scholar
Bohor, B.F., Triplehorn, D.M. and Betterton, W.J. (1993) Chemical disaggregation of kaolinitic claystones (abst.). Book of Abstracts, 10th International Clay Conference, Adelaide, Australia, O-20.Google Scholar
Calvert, C.S., (1984) Simplified, complete, CsCl-hydrazine-dimethylsulfoxide intercalation of kaolinite Clays and Clay Minerals 26 125130 10.1346/CCMN.1984.0320206.CrossRefGoogle Scholar
Gary, M. McAfee, R Jr. and Wolf, C.L., (1974) Glossary of Geology Washington, D.C. American Geological Institute 805 pp.Google Scholar
Jackson, M.L. and Abdel-Kader, F.H., (1978) Kaolinite intercalation procedure for all size and types with x-ray diffraction spacing distinctive from other phyllosilicates Clays and Clay Minerals 26 8187 10.1346/CCMN.1978.0260201.CrossRefGoogle Scholar
Koshevar, V.D. and Lukavykh, O.V., (1992) Intercalation of kaolinite by iron-containing dimethyl sulfoxide complexes Zurnal Prikladonoi Khimii 65 7 16141618 Translation in: Journal of Applied Chemistry of the USSR (1993), 1329–1332, Plenum Publishers, New York, Consultants Bureau.Google Scholar
Lim, C.H. Jackson, M.L. and Higashi, T., (1981) Intercalation of soil clays with dimethylsulfoxide Soil Science Society of America Journal 45 433436 10.2136/sssaj1981.03615995004500020039x.CrossRefGoogle Scholar
Mason, J. and Triplehorn, D.M. (2000) A preparator’s dream: softening and disaggregation of sandstone with dimethylsulfoxide (DMSO) (abst.). Journal of Vertebrate Paleontology, 21, no. 3 (Supplement), 78A.Google Scholar
Miller, W.D. Keller, W.D. and Swineford, A., (1981) Differentiation between endellite-halloysite and kaolinite by treatment with potassium acetate and ethylene glycol Clays and Clay Minerals, Proceeding of the 10th National Conference on Clays and Clay Minerals Washington, D.C. Pergamon Press Pp. 244–253.Google Scholar
Olejnik, S. Aylmore, L.A.G. Posner, A.M. and Quirk, J.P., (1968) Infrared spectra of kaolin mineral-dimethyl sulfoxide complexes Journal of Physical Chemistry 72 241249 10.1021/j100847a045.CrossRefGoogle Scholar
Triplehorn, D.M., (2000) Kaolinite-cemented sandstones (abst.) Geological Society of America Bulletin 32 7 A 11.Google Scholar
Triplehorn, D.M., (2002) An easy way to remove fossils from sandstones: DMSO disaggregation Journal of Paleontology 76 394395 10.1017/S0022336000041780.2.0.CO;2>CrossRefGoogle Scholar
Triplehorn, D.M. and Bohor, B.F. (1981) Altered volcanic ash partings in the C Coal, Ferron Sandstone Member of the Mancos Shale, Emery County, Utah. US Geological Survey Open-File Report, 81–775, 43 pp.Google Scholar
Triplehorn, D.M. Bohor, B.F. and Voorees, K.S., (1986) Volcanic ash layers in coal: Origin, distribution, composition, and significance Mineral Matter and Ash in Coal Washington, D.C. American Chemical Society 10.1021/bk-1986-0301.ch007 Pp. 90–98.Google Scholar
Triplehorn, D.M. and Severin, K.P., (2002) DMSO disaggregation of sandstones impels a re-evaluation of sandstone diagenesis (abst.) Official Program, American Association of Petroleum Geologists Annual Meeting TX Houston A 178 March 2002.Google Scholar
Waage, K.M. (1950) Refractory clays of the Maryland Coal Measures. Department of Geology, Mines and Water Resources of Maryland Bulletin, 9, 182 pp.Google Scholar
Waage, K.M. (1961) Stratigraphy and refractory clayrocks of the Dakota Group along the northern Front Range, Colorado. US Geological Survey Bulletin, 1102, 154 pp.Google Scholar
Wada, K., (1961) Lattice expansion of kaolin minerals by treatment with potassium acetate American Mineralogist 46 78 91.Google Scholar
Wada, K. and Yamada, H., (1968) Hydrazine intercalation-intersalation for differentiation of kaolin minerals from chlorites American Mineralogist 53 334 339.Google Scholar
Weaver, C., (1963) The interpretive value of heavy minerals from bentonites Journal of Sedimentary Petrology 33 343 349.Google Scholar
Weiss, A. and Range, K., (1970) Superiority of hydrazine over potassium acetate in the formation of kaolinite intercalation compounds (abst.) Proceedings of the International Clay Conference 2 185.Google Scholar
Weiss, A. Thielepape, W. Ritter, W. Schafer, H. and Goring, G., (1963) Zur Kentnis von Hydrazine-Kaolinit Zeitschrift für Anorganische und Allgemeine Chemie 320 183204 10.1002/zaac.19633200122.CrossRefGoogle Scholar