Hostname: page-component-cd9895bd7-7cvxr Total loading time: 0 Render date: 2024-12-27T07:39:11.440Z Has data issue: false hasContentIssue false

Mineralogy of peralkaline lamproites from the Raniganj Coalfield, India

Published online by Cambridge University Press:  05 July 2018

R. H. Mitchell*
Affiliation:
Department of Geology, Lakehead University, Thunder Bay, Ontario, Canada P7E 5J7
Fareeduddin
Affiliation:
Geological Survey of India, AMSE Wing, Vasudha Bhavan, Kumaraswamy Layout, Bangalore 560 078, India
*

Abstract

Two mineralogically distinct lamproites occurring as dykes in the Raniganj coalfield of eastern India are described in terms of a mineralogical-genetic classification as: (1) peralkaline olivine-ilmenitephlogopite- K-feldspar lamproite (var. Damodar); and (2) peralkaline pseudoleucite-phlogopite-amphibole- K-feldspar lamproite (var. Damodar). Compositional and paragenetic data are provided for major, accessory and trace minerals. Minerals common to both rocks include: chlorite-pseudomorphed phenocrystal olivine, phenocrystal Ti-rich Al-poor phlogopite and tetraferriphlogopite, groundmass potassic amphiboles, Sr-rich apatite and monazite-(Ce), late stage Na-poor K-feldspar and quartz. The rocks differ in terms of the character of the amphiboles (Ti-potassian arfvedsonite vs. K-richterite– K-magnesioarfvedsonite–K-arfvedsonite solid solution), spinel compositions (qandilite–chromite– magnetite vs. chromite–ulvöspinel–magnetite), the presence or absence of: pseudoleucite, microphenocrystal magnesian ilmenite, diopside, titanian aegirine, lorenzenite, an unamed Ti-silicate, an unnamed Mg-Zr silicate, bazirite, rutile, dolomite and norsethite. The rocks are considered to be members of a spectrum of modally-diverse peralkaline rocks, formed from a common parental magma produced by the partial melting of the ancient metasomatized lithospheric mantle of the northern Singhbhum craton. None of the rocks can be considered as aillikites, minettes, orangeites or kimberlites.

Type
Research Article
Copyright
Copyright © The Mineralogical Society of Great Britain and Ireland 2009

Access options

Get access to the full version of this content by using one of the access options below. (Log in options will check for institutional or personal access. Content may require purchase if you do not have access.)

References

Alfors, J.T. and Pabst, A. (1984) Titanium taramellites in western North America. American Mineralogist, 69, 358-373 .Google Scholar
Banerjee, S. (1953) Petrology of lamprophyres and associated rocks of the Raniganj coalfield. Indian Minerals, 1, 9-29 .Google Scholar
Basu, A., Bhattacharya, A.K. and Paul, D.K. (1997) Petrology and geochemistry of the lamprophyric rocks from the Bokaro Coalfield, Bihar and their economic potential. Journal of the Geological Society of India, 50, 411-438 .Google Scholar
Blandford, W.T. (1861) On the geological structure and relations of the Raniganj coalfield. Indian Minerals, 1, 9-29.Google Scholar
Bose, P.N. (1888) Notes on some mica traps from Barakar and Raniganj. Records of the Geological Survey of India, 21, 163.Google Scholar
Currie, K.L., Curtis, L.W. and Gittins, J. (1975) Petrology of the Red Wine alkaline complexes, Central Labrador and a comparison with the Ilimaussaq Complex, South West Greenland. Geological Survey of Canada Paper, 75-1, Part A, 271-280.Google Scholar
Czamanske, G.K. and Atkin, S.A. (1985) Metasomatism, titanian acmite, and alkali amphi- boles in lithic-wacke inclusions within the Coyote Peak diatreme, Humboldt County, California. American Mineralogist, 70, 499-516 .Google Scholar
Fareeduddin Pant, N.C. and Neogi, S. (2006) Petrology of the Kodomali diatreme, Mainpur area, Chhattisgarh, Central India: Implications for a Palaeozoic orangeite field. Journal of the Geological Society of India, 68, 19-34 .Google Scholar
Ferguson, A.K. (1977) The natural occurrence of aegirine-neptunite solid solution. Contributions to Mineralogy and Petrology, 60, 247-253 .CrossRefGoogle Scholar
Ferguson, A.K. (1978) The occurrence of ramsayite, titan-lavenite and a fluorine-rich eucolite (eudialyte) in a nepheline syenite incusion from Tenerife, Canary Islands. Contributions to Mineralogy and Petrology, 66, 15-20 .CrossRefGoogle Scholar
Flower, M.F. (1974) Phase relations of titan-acmite in the system Na2O-Fe2O3-Al2O3-TiO2-SiO2 at 1000 bars total water pressure. American Mineralogist, 59, 536-548 .Google Scholar
Ghose, C. (1949) Petrochemical studies of the lamprophyres and associated intrusive rocks of the Jharia coalfield. Quarterly Journal of the Geological, Mining and Metallurgical Society of India, 21, 133- 147.Google Scholar
Hammond, A. and Mitchell, R.H. (2002) Accessory mineralogy of the Swartruggens orangeite. Mineralogy and Petrology, 76, 1-19 .CrossRefGoogle Scholar
Holland, T.H. (1894) On highly phosphatic mica- peridotites intrusive into the Lower Gondwana rocks of Bengal. Records of the Geological Survey of India, 2, 129-141 .Google Scholar
Kent, R.W., Ghose, N.C., Paul, P.R., Hassan, M.J. and Saunders, A.D. (1992) Coal-magma interactions: an integrated model for the emplacement of cylindrical intrusions. Geological Magazine, 129, 753-762 .CrossRefGoogle Scholar
Kent, R.W., Kelley, S.P. and Pringle, M.S. (1998) Mineralogy and 40Ar/39Ar geochronology of oran- geites (Group II kimberlites) from the Damodar Valley, eastern India. Mineralogical Magazine, 62, 313-323 .CrossRefGoogle Scholar
Kent, R.W., Ingle, S., Mattielli, N., Kempton, P.D., Saunders, A.D. and Suzuki, K. (2004) Hafnium- osmium systematics of Cretaceous Group II kimberlites from India. EOS Transactions of the American Geophysical Union, 85, abstract V51B- 0560.Google Scholar
Middlemost, E.A., Paul, D.K. and Fletcher, I.R. (1988) Geochemistry of the minette-lamproite association from the Indian Gondwanas. Lithos, 22, 137-146 .CrossRefGoogle Scholar
Mitchell, R.H. (1995) Kimberlites, Orangeites, and Related Rocks. Plenum Press, New York, 442 pp.CrossRefGoogle Scholar
Mitchell, R.H. (1995) Kimberlites, Orangeites, and Related Rocks. Plenum Press, New York, 410pp.CrossRefGoogle Scholar
Mitchell, R.H. (2006) Potassic magmas derived from metasomatized lithospheric mantle: Nomenclature and relevance to exploration for diamond-bearing rocks. Journal of the Geological Society of India, 67, 317-327 .Google Scholar
Mitchell, R.H. (2007) Potassic rocks from the Gondwana coalfields of India: Closing Pandora's box of petrological confusion? Journal of the Geological Society of India, 69, 505-512 .Google Scholar
Mitchell, R.H. and Bergman, S.C. (1991) Petrology of Lamproites. Plenum Press, New York, 446 pp.CrossRefGoogle Scholar
Mukherjee, K.K. (1961) Petrology of the lamprophyres of Bokaro coalfield. Quarterly Journal of the Mineralogical and Metallurgical Society of India, 33, 69-87 .Google Scholar
Pekhov, I.V. (2000) Lovozero Massif: History, Pegmatites, Minerals. Excalibur Mineral Co., Peerskill, New York, 480 pp.Google Scholar
Pautov, L.A. and Khvorov, P.V. 1998 Bazirite from Tadjikistan. Zapiski Vs er os siisko go Mineralogicheskogo Obshchestva, 127, 80-83 .(in Russian).Google Scholar
Rock, N.M., Griffin, B.J., Edgar, A.D., Paul, D.K. and Hergt, J.M. (1992) A spectrum of potentially diamondiferous lamproites and minettes from the Jharia coalfield, eastern India. Journal of Volcanology and Geothermal Research, 50, 55—83.CrossRefGoogle Scholar
Rønsbo, J.G., Pedersen, A.K. and Engell, J. (1977) Titan-aegirine from early Tertiary ash layers in northern Denmark. Lithos, 10, 193—204.CrossRefGoogle Scholar
Schminke, H.U. (1974) Volcanological aspects of peralkaline silicic welded ash-flow tuffs. Bulletin of Volcanology, 38, 594—636.Google Scholar
Srivastava, R.K., Chalapathi Rao, N.V. and Sinha, A.K. (2009) Cretaceous potassic intrusives with affinities to aillikites from Jahria area: Magmatic expression of metasomatically veined and thinned lithospheric mantle beneath Singhbhum craton, eastern India. Lithos, DOI:10.106/j.lithos.2009.05.005.CrossRefGoogle Scholar
Tappe, S., Foley, S.F., Jenner, G.A. and Kjarsgaard, B.A. (2005) Integrating ultramafic lamprophyres into the IUGS classification of igneous rocks: rationale and implications. Journal of Petrology, 46, 1893—2000.CrossRefGoogle Scholar
Young, B.R., Hawkes, J.R., Morriman, R.J. and Styles, M.T. (1978). Bazirite, BaZrSi3O9, a new mineral from Rockall Island, Inverness-shire, Scotland. Mineralogical Magazine, 42, 35—40.CrossRefGoogle Scholar