Kaolinite Occurrence of Kachchh, Gujarat: A Product from Rhyolitic Tuff by Hydrothermal Alteration

Authors

  • Techno India University, Salt Lake City, Kolkata – 700 091
  • WBMDTCL, Kolkata – 700 087

DOI:

https://doi.org/10.1007/s12594-019-1269-7

Keywords:

No Keywords

Abstract

Kaolinite associated with Mesozoic sediments of Kachchh and alkaline igneous rocks are not well studied in view of its genesis. The petrography, EPMA and DTA studies support that the studied kaolinite samples formed by mature transformation from rhyolitic tuff by hydrothermal alteration in epithermal condition. Such postulation indicates that there was intermittent acid volcanic episode along with alkaline basic igneous magmatism in the Cretaceous of Kachchh basin, western part of India.

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Research Articles

Published

2019-07-03

How to Cite

Maitra, M., & Gangopadhyay, K. K. (2019). Kaolinite Occurrence of Kachchh, Gujarat: A Product from Rhyolitic Tuff by Hydrothermal Alteration. Journal of Geological Society of India, 94(1), 78–80. https://doi.org/10.1007/s12594-019-1269-7

References

Ali Sayin, S. (2007) Origin of kaolinite deposits: Evidence from the Hisarcik (Emet-Kutahya) deposits, Western Turkey. Turkish Jour Earth Sci., v.16, 77-96.

Biswas, S.K. (2005) A review of structure and tectonics of Kutch basin, western India, with special reference to earthquake. Curr. Sci., v.88(10), pp.15921600.

Bose, M.K. (1980) Alkaline magmatism in Deccan volcanic province. Jour. Geol. Soc. India, v.21(7), pp.317-329.

Brindley, G.W., Chih-chun, K., Harrison, J.L., Lipsicas, M. and Raythatha, R. (1986) Relations between structural disorder and other characteristics of kaolinites and dickites. Clays & Clay Minerals, v.34, pp.233-249.

Buie, B.F. (1963) Possibility of volcanic origin of the Cretaceous sedimentary kaolin of south Carolina and Georgia; Florida State University. Abst. pp.195.

Celik, M., Karakaya, N and Temel, A. (1999) Clay minerals in hydrothermally altered volcanic rocks, Eastern Pondites, Turkey. Clay and Clay Minerals, v.47(6) pp.708-717.

De La Fuente, S., Cusdros, J., Fiore, S. et al. (2000) Electron microscopic study of volcanic tuff alteration to illite-smectite under hydrothermal conditions. Clay and Clay Minerals, v.48(3) pp.339-350.

Dey, A. (1969) A volcanic plug of differentiated alkaline olivine basalt in Kutch. Proc. Indian Sci. Cong. 56 session. Pt III, p.180.

Donoghue, E, Valentin R. Troll, H. C. , O'Halloran, Walter T. R, Torrado, F.J.P. (2008) Low-temperature hydrothermal alteration of intra-caldera tuffs, Miocene Tejeda caldera, Gran Canaria, Canary Islands. Jour.

Volcanol. Geothermal Res., v.176, pp.551–564.

Garcia-Romero, E., Vegas, J., Baldonedo, J.L. et al. (2005) Clay minerals as alteration products in basaltic volcanoclastic deposits of La Palma (Cannary Islands, Spain). Sediment. Geol., v.174(3-4), pp.237-253.

Harvey, C.C. and Murray, H. H. (1993) The geology, mineralogy and exploitation of Halloysite clay of Northland, New Zeeland. In Murray H.H., Bundy W.M. and Harvey, C.C. (Eds.), Kaolin Genesis and Utilisation. Spec. Publ. 1, The Clay Mineral Society, Bloomington, pp.233-248.

Hemley, J.J. (1959) Some Mineralogical Equilibria in the System K2O-Al2O3SiO2-H2O. American Jour. Sci., v.257, pp.241–270.

Karakas, Z and Kadir, S. (2000) Devitrification of volcanic grlasses in Konya volcanic units, Turkey. Turkish Jour Earth Sci., v.9, pp.39-46.

Maitra, M. and Korakappa, M.M. (2012) Tschermask clinopyroxene-bearing calc-silicate skarn rock at Nirwandh, Patcham Island, Kachhah, Gujarat. Jour. Geol. Soc. India, v.80, pp.609-916.

Maitra, M. (2005) Petrology of alkaline plugs of Patcham Island, Kachhah district, Gujarat. Indian Jour. Geol., v.75 (1-4), pp.167-190.

Ruiz Cruz, M.D. (2007) Genesis and evolution of kaolin-group minerals during the diagenesis and beginning of metamorphism. In: Fernando Nieto and Juan Jiménez-Millán (Eds.), Diagenesis and Low-Temperature Metamorphism. Theory, Methods and Regional Aspects. Seminarios SEM, 3, pp.41-52.

Sanchez-Soto, P.J., Justo, A. and Parez-Rodriguez, J.L. (1994) Grinding effect on kaolinite-pyrophyllite-illite natural mixtures and its influence of mullite formation. Jour. Material Sci., v.29, pp.1276-1283.

Singh, I.B. and Sukla, U.K. (1991) Significance of Trace fossils in Bhuj Sandstone Lower Cretaceous), Bhuj area, Kachchh. Jour. Palaeont. Soc. India, v.36, pp.121-126.

Singh, R. K., Agrawalla, R.C, Verma, D. P., Goel, A. K. and Gupta, S.K. (2006) Hydrocarbon Exploration of Mesozoic in Kutch Offshore Area, 6th International Conference & Exposition on Petroleum Geophysics "Kolkata 2006”.

Sukla, U.K. and Singh, I.B. (1990) Facies analysis of Bhuj Sandstone (Lower Cretaceous), Bhuj area, Kachchh. Jour. Palaeont. Soc. India, v.35, pp.189196.

Tzuzuki, Y. and Mizutani, S. (1971) A study of rock alteration process based on kinetics of hydrothermal experiment. Contrib. Mineral. Petrol., v.30, pp.15-33.

Yuan, Y., Shi, G., Yang, M., Wu, Y., Zhang, Z., Huang, A. and Zhang, J. (2014) Formation of hydrothermal kaolinite deposit from rhyolitic tuff in Jiangxi, China. Jour. Earth Sci., v.25(3), pp.495-505.

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