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Foraminiferid-encrusted ooids: evidence for ancient subtidal algal mats?

Published online by Cambridge University Press:  01 May 2009

M. R. Talbot
Affiliation:
Department of GeologyUniversity of GhanaP.O. Box 58LegonAccraGhana

Summary

Ooids and grapestones from some parts of the Corallian Beds (Oxfordian) contain encrustations of the foraminiferid Nubeculinella. Encrusted layers within ooids clearly reveal lengthy periods when the grains were stationary and not accreting carbonate laminae. It seems likely that during colonisation by the foraminiferids the ooids were immobilised beneath a subtidal algal mat and there are indications that the mats were sufficiently coherent to bind lumps of sediment together during disruption by burrowing organisms.

Type
Articles
Copyright
Copyright © Cambridge University Press 1974

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References

Adams, C. G. 1962. Calcareous adherent foraminifera from the British Jurassic and Cretaceous and the French Eocene. Palaeontology 5, 149–70.Google Scholar
Arkell, W. J. 1927. Corallian rocks of Oxford, Berks., and north Wilts. Phil. Trans. R. Soc. B 216, 67181.Google Scholar
Arkell, W. J. 1947. The geology of the country around Weymouth, Swanage, Corfe and Lulworth. Mem. geol. Surv. Gt Br.Google Scholar
Bathurst, R. G. C. 1967. Sub-tidal gelatinous mat, sand stabilizer and food, Great Bahama Bank. J. Geol. 75, 736–8.CrossRefGoogle Scholar
Bathurst, R. G. C. 1971. Carbonate Sediments and Their Diagenesis. Elsevier, Amsterdam. 620 pp.Google Scholar
Gebelein, C. D. 1969. Distribution, morphology, and accretion rate of Recent subtidal algal stromatolites, Bermuda. J. Sedim. Petrol. 39, 4969.Google Scholar
Gordon, W. A. 1965. Foraminifera from the Corallian Beds, Upper Jurassic of Dorset, England. J. Palaeont. 39, 828–63.Google Scholar
Loeblich, A. R. & Tappan, H. 1964. Treatise on Invertebrate Palaeontology, Part C. Protista. Geological Society of America, University of Kansas Press.Google Scholar
Monty, C. L. V. 1967. Distribution and structure of Recent stromatolitic algal mats, eastern Andros Island, Bahamas. Annls Soc. géol. Belg., Bull. 90, 55100.Google Scholar
Neumann, A. C., Gebelein, C. D. & Scoffin, T. P. 1970. The composition, structure and erodability of subtidal mats, Abaco, Bahamas. J. Sedim. Petrol. 40, 274–97.Google Scholar
Purdy, E. G. 1963. Recent calcium carbonate facies of the Great Bahama Bank. 2. Sedimentary facies. J. Geol. 71, 472–97.CrossRefGoogle Scholar
Scoffin, T. P. 1970. The trapping and binding of subtidal carbonate sediments by marine vegetation in Bimini Lagoon, Bahamas. J. Sedim. Petrol. 40, 249–73.Google Scholar
Shearman, D. J. & Skipwith, P. A. D'E. 1965. Organic matter in Recent and Ancient limestones and its role in their diagenesis. Nature, Lond. 208, 1310–11.CrossRefGoogle Scholar
Shearman, D. J., Twyman, J. & Karimi, M. Z. 1970. The genesis and diagenesis of oolites. Proc. Geol. Ass. 81, 561–75.CrossRefGoogle Scholar
Talbot, M. R. 1971 Calcite cements in the Corallian Beds (Upper Oxfordian) of southern England. J. Sedim. Petrol. 41, 261–73.CrossRefGoogle Scholar
Talbot, M. R. 1973. Major sedimentary cycles in the Corallian Beds. Palaeogeog., Palaeoclimatol., Palaeocol. 14, 293317.CrossRefGoogle Scholar
Wilson, R. C. L. 1967. Particle nomenclature in carbonate sediments. Neues Jb. Geol. Paläont. Mh. 8, 498510.Google Scholar
Wilson, R. C. L. 1968. Carbonate facies variations within the Osmington Oolite Series in southern England. Palaeogeog., Palaeoclimatol., Palaeoecol. 4, 89123.CrossRefGoogle Scholar