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Diagenesis in Clay Minerals—A Review

  • Symposium on Clay Mineral Transformation
  • Published:
Clays and Clay Minerals

Abstract

Diagenesis refers to the process, and the changes (usually excluding cation exchange) that take place in sediments after deposition, but definitions of the process vary widely over which changes, and what part (or all) of the time between the transportation of the sediment and the time that the sediment(ary rock) is studied, should be included in diagenesis. Furthermore, Weaver, Griffin, and others, have favored alternative explanations to account for many clay mineral distributions that previously have been interpreted as representing changes in clay minerals in both recent and ancient sediments, and which were referred to diagenesis.

Although agreeing that such alternative explanations account best for many distributions of clay minerals, additional evidence that presumably is convincing of diagenesis is presented herein to account for the formation of certain other occurrences of glauconitic mica, glauconite, illite, corrensite, kaolinite, and vanadiferous micaceous clay. A two-stage mechanism is proposed for a possible process by which illite and probably corrensite are formed: (1) cation sorption driven by energy (activities) of the ions in solution, and binding energy of the clay minerals, and (2) subsequent rearrangement of ions in the clay mineral to produce illite. It is finally proposed that diagenesis of clay minerals is characterized by the addition to and incorporation into them of Me ions, such as Mg, K, Ca, Na, Al, Fe, V, SiO2, and others, driven mainly by chemical energy and aided by mechanical and thermal energy, but as the latter two become more effective the process is designated metamorphism (anamorphism).

Long-time, diagenetic reactions after burial of sediments are probably less important, volume-wise, than provenance and terrestrial weathering in determining the mineralogy of argillaceous sedimentary rocks in the geologic column.

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References

  • Barber, S. A., and Marshall, C. E. (1951) Ionization of soils and soil colloids: II Potassium-calcium relationships in montmorillonite group clays and in attapulgite: Soil Sci., v.72, pp.373–385.

    Article  Google Scholar 

  • Barber, S. A., and Marshall, C. E. (1952) Ionization of soil and soil colloids: III Potassium-calcium relationships in illite, kaolinite, and halloysite: Soil Sci., v.73, pp.403–413.

    Article  Google Scholar 

  • Beavers, A. H., and Marshall, C. E. (1951) The cataphoresis of clay minerals and factors affecting their separation: Proc. Soil Sci. Soc. Amer., v.15, pp.142–145.

    Article  Google Scholar 

  • Bisque, R. E. (1962) Clay polymerization in carbonate rocks: Clays and Clay Minerals, 9th Conf., Pergamon Press, pp.365–373.

    Chapter  Google Scholar 

  • Bisque, R. E., and Lemish, J. (1959) Silicification of carbonate aggregates in concrete: Highway Res. Board Bull. 239, pp.41–55.

    Google Scholar 

  • Botinelly, T., and Fischer, R. P. (1959) Mineralogy and geology of the Rifle and Garfield Mines, Garfield County, Colorado: in Geochemistry and mineralogy of the Colorado Plateau uranium ores: U.S. Geol. Survey, Prof. Paper 320, pp.213–230.

    Google Scholar 

  • Burst, J. F., Jr. (1959) Postdiagenetic clay mineral environmental relationships in the Gulf Coast Eocene: Clays and Clay Minerals, 6th Conf., Pergamon Press, pp.327–341.

    Google Scholar 

  • Carroll, D., and Starkey, H. C. (1960) Effect of sea-water on clay minerals: Clays and Clay Minerals, 7th Conf., Pergamon Press, pp.80–101.

    Google Scholar 

  • Clarke, F. W. (1924) The data of geochemistry: U.S. Geol. Survey, Bull. 770.

    Google Scholar 

  • Coleman, N. T. (1961) Decomposition of clays and the fate of aluminum: Abst., program, 1961 meeting, Geol. Soc. Amer., p.30A.

    Google Scholar 

  • Foster, M. D. (1956) Correlation of dioctahedral potassium micas on the basis of their charge relations: U.S. Geol. Survey Bull. 1036-D, pp.57–67.

    Google Scholar 

  • Foster, M. D. (1959) Chemical study of the mineralized clays, in Geochemistry and mineralogy of the Colorado Plateau uranium ores: U.S. Geol. Survey Prof. Paper 320, pp.121–132.

    Google Scholar 

  • Garrels, R. M., and Thompson, M. E. (1962) A chemical model for sea water at 25°C and one atmosphere total pressure: Amer. J. Sci., v.260, pp.57–66.

    Article  Google Scholar 

  • Gordon, Mackenzie, Jr., Tracey, J. I., Jr., and Ellis, M. W. (1958) Geology of the Arkansas bauxite region, U.S. Geol. Survey Prof. Paper 299.

    Google Scholar 

  • Griffin, Geo. M., (1960) Clay mineral facies development in recent surface sediments of the northeastern Gulf of Mexico: Unpublished Ph.D. Thesis.

    Google Scholar 

  • Griffin, G. M. (1962) Regional clay-mineral facies—products of weathering intensity and current distribution in the northeastern Gulf of Mexico: Bull. Geol. Soc. Amer., v.73, pp.737–768.

    Article  Google Scholar 

  • Grim, R. E. (1953) Clay Minerology: McGraw-Hill, New York, 384pp.

    Google Scholar 

  • Grim, R. E., Dietz, R. S., and Bradley, W. F. (1949) Clay mineral composition of some sediments from the Pacific Ocean off the California coast and the Gulf of California: Bull. Geol. Soc. Amer., v.60, pp.1785–1808.

    Article  Google Scholar 

  • Grim, R. E., Droste, J. B., and Bradley, W. F. (1960) A mixed-layer clay mineral associated with an evaporite: Clays and Clay Minerals, 8th Conf., Pergamon Press, pp.228–235.

    Chapter  Google Scholar 

  • Hahn, G. W., (1954) Clay mineral relationships in the Ochesky fireclay pit: Unpublished Master’s thesis, Library, University of Missouri, Columbia, Mo.

    Google Scholar 

  • Harrison, J. B. (1934) The katamorphism of igneous rocks under humid tropical conditions: British Guiana, Imp. Bur. Soil Sci., Rothamsted Exp. Sta. Harpenden, Pub., St. Albans.

    Google Scholar 

  • Hathaway, J. C. (1959) Mixed-layered structures in vanadium clays, in Geochemistry and mineralogy of the Colorado Plateau uranium ores: U.S. Geol. Survey Prof. Paper 320, pp.133–138.

    Google Scholar 

  • Hendricks, S. B., and Ross, C. S. (1941) Chemical Composition and genesis of glauconite and celadonite: Amer. Min., v.26, pp.683–708.

    Google Scholar 

  • Howell, J. V. (1957) Glossary of Geology and related sciences: Amer. Geol. Inst., under NAS-NRC, Washington, D.C.

    Google Scholar 

  • Hurley, P. M., Cormier, R. F., Hower, J., Fairbairn, H. W., Jr. (1960) Reliability of glauconite for age measurement by K-Ar and Rb-Sr methods: Bull. Amer. Assn. Petrol. Geol., v.44, pp.1793–1808.

    Google Scholar 

  • Jarusov, S. S. (1937) Mobility of exchangeable cations in the soil: Soil Sci., v.43, pp.285–303.

    Article  Google Scholar 

  • Keller, W. D. (1957) Principles of Chemical Weathering: Lucas Bros., Pub., Columbia, Mo., 111pp.

    Google Scholar 

  • Keller, W. D. (1958) Glauconitic mica in the Morrison formation in Colorado: Clays and Clay Minerals, Nat’l. Acad. Sci.-Nat’l. Res. Council pub. 566, pp.120–128.

    Google Scholar 

  • Keller, W. D. (1961b) Mineral and chemical alluviation in a unique pedologic example: J. Sed. Pet., v.31, pp.80–86.

    Article  Google Scholar 

  • Keller, W. D. (1962) Clay minerals in the Morrison formation on the Colorado Plateau: U.S. Geol. Survey Bull. 1150, 90pp.

    Google Scholar 

  • Keller, W. D., and Frederickson, A. F. (1952) Role of plants and colloidal acids in the mechanism of weathering: Am. J. Sci., v.250, pp.594–608.

    Article  Google Scholar 

  • Light, M. A. (1952) Evidence of authigenic and detrital glauconite: Science, v. 115, pp.73–75.

    Article  Google Scholar 

  • Marshall, C. E. (1954) Multifunctional ionization as illustrated by the clay minerals: Clays and Clay Minerals, Nat’l. Acad. Sci.—Nat’l. Res. Council pub. 327, pp.364–385.

    Google Scholar 

  • McLean, E. O. (1950) Interrelationships of potassium, sodium, and calcium as shown by their activities in a beidellite clay: Proc. Soil Sci. Soc. Amer., v.15, pp.102–106.

    Article  Google Scholar 

  • Millot, Georges (1949) Relations entre la constitution et la genèse des roches sedimentaires argileuses: Bull. l’Assn. des Ingen. Geol. de l’univ. Nancy, Tome II, pts. 2, 3, 4, Nancy, France.

    Google Scholar 

  • Packham, G. H., and Crook, K. A. W. (1960) The principle of diagenetic faciès and some of its implications: J. Geol., v.68, pp.392–407.

    Article  Google Scholar 

  • Peterson, M. N. A. (1961) Expandable chloritic clay minerals from upper Mississippian carbonate rocks of the Cumberland Plateau in Tennessee: Amer. Mineral., v.46, pp. 1245–1269.

    Google Scholar 

  • Peterson, M. N. A. (1962) The mineralogy and petrology of upper Mississippian carbonate rocks of the Cumberland Plateau in Tennessee: J. Geol., v.70, pp.1–31.

    Article  Google Scholar 

  • Potts, R. H. (1959) Cationic and structural changes in Missouri River clays when treated with ocean water: Unpublished Master’s thesis, University of Missouri, Library, Columbia, Mo.

    Google Scholar 

  • Powers, M. C. (1957) Adjustment of land-derived clays to the marine environment: J. Sed. Pet., v.27, pp.355–372.

    Google Scholar 

  • Powers, M. C. (1959) Adjustment of clays to chemical change and the concept of the equivalence level: Clays and Clay Minerals, 6th Conf., Pergamon Press, pp.309–326.

    Google Scholar 

  • Pryor, W. A., and Glass, H. D. (1961) Cretaceous-Tertiary clay mineralogy of the upper Mississippi embayment: J. Sed. Pet., v.31, pp.38–51.

    Google Scholar 

  • Ross, C. S., and Kerr, P. F. (1931) The clay minerals and their identity: J. Sed. Pet., v.1, pp.55–65.

    Google Scholar 

  • Shen, M. J. and Rich, C. I. (1962) Aluminum fixation in montmorillonite: Proc. Soil Sci. Soc. Amer., v.26, pp.33–36.

    Article  Google Scholar 

  • Shively, R. R., Jr.. and Weyl, W. A. (1951) The color change of ferrous hydroxide upon oxidation: J. Phys. and Colloid Chem., v.55, pp.512–515.

    Article  Google Scholar 

  • Slaughter, M., and Milne, I. H. (1960) The formation of chlorite-like structures from montmorillonite: Clays and Clay Minerals, 7th Conf., Pergamon Press, pp.114–124.

    Google Scholar 

  • Stevens, R. E., and Carron, M. K. (1948) Simple field test for distinguishing minerals by abrasion pH: Amer. Min., v.33, pp.31–50.

    Google Scholar 

  • Sujkowski, Zb. L. (1958) Diagenesis: Bull. Amer. Assn. Petrol. Geol., v.42, pp.2692–2717.

    Google Scholar 

  • Towe, K. M. (1962) Clay mineral diagenesis as a possible source of silica cement in sedimentary rocks: J. Sed. Pet., v.32, pp.26–28.

    Google Scholar 

  • Weaver, Chas. E. (1958a) A discussion on the origin of clay minerals in sedimentary rocks: Clays and Clay Minerals, Nat’l. Acad. Sei.—Nat’l. Res. Council pub. 566, pp.159–173.

    Google Scholar 

  • Weaver, Chas. E. (1958b) The effects and geologic significance of potassium “fixation” by expandable clay minerals derived from muscovite, biotite, chlorite, and volcanic material: Am. Mineralogist, v.43, pp.839–861.

    Google Scholar 

  • Weaver, Chas. E., (1958c) Geologic interpretation of argillaceous sediments: Bull. Am. Assn. Petrol. Geol., v.42, pp.254–271.

    Google Scholar 

  • Weaver, Chas. E. (1959) The clay petrology of sediments: Clays and Clay Minerals, 6th Conf., Pergamon Press, N.Y., pp.154–187.

    Google Scholar 

  • Weaver, Chas. E. (1960) Possible uses of clay minerals in search for oil: Bull. Amer. Assn. Petrol. Geol., v.44, pp.1505–1518.

    Google Scholar 

  • Weaver, Chas. E. (1961) Clay Mineralogy of the Late Cretaceous rocks of the Washakie Basin: Guide book sixteenth Ann. Conf. Wyo. Geol. Assn., pp.148–154.

    Google Scholar 

  • Weyl, W. A. (1951) Light absorption as a result of two states of valency of the same element: J. Phys. and Colloid Chem., v.55, pp.507–512.

    Article  Google Scholar 

  • Whitehouse, U. G., Jeffrey, L. M., and Delbrecht, J. D. (1960) Differential settling tendencies of clay minerals in saline waters: Clays and Clay Minerals, 7th Conf., Pergamon Press, N.Y., pp.1–80.

    Google Scholar 

  • Woodruff, C. M. (1955a) Ionic equilibria between clay and dilute salt solutions: Proc. Soil Sci. Soc. Amer., v.19, pp.36–40.

    Article  Google Scholar 

  • Woodruff, C. M. (1955b) The energies of replacement of calcium by potassium in soils: Proc. Soil Sci. Soc. Amer., v.19, pp.167–171.

    Article  Google Scholar 

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Keller, W.D. Diagenesis in Clay Minerals—A Review. Clays Clay Miner. 11, 136–157 (1962). https://doi.org/10.1346/CCMN.1962.0110113

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