Skip to main content
Log in

Depositional facies and palynofacies provenance reconstruction of the Danian Nsukka Formation, Southeastern Nigeria

  • Original Paper
  • Published:
Arabian Journal of Geosciences Aims and scope Submit manuscript

Abstract

A combined detailed palynofacies and lithofacies analysis was carried out on the Nsukka Formation outcropping Danian (Palaeocene) lithostratigraphic units in the Ikpankwu domain (SE Nigeria) for the first time. Lithological characteristics of grain size textural attributes, sedimentary structure and microflora palynofacies elements were instrumental in deciphering eight lithofacies: carbonaceous shale facies (Shfc), claystone facies (Csf), mudstone facies (Mfm), cross-bedded sandstone facies (Spt), siltstone facies (Fmt), heterolith facies (Fls), structureless sandstone facies (Smc), plane parallel laminated sandstones facies (Pls) and seven sub-facies deposited within low- to high-energy environment. These lithofacies and palynofacies-induced sedimentary attributes were grouped into three facies association (FA1, FA2 and FA3) and palynofacies types to delineate the principle palaeoenvironments, palynofacies provenance and depositional mechanisms triggered by hydrodynamic antics of the Nsukka Formation. The palynomaceral elements display superiority of large to medium-sized well-preserved brown to dark brown Palynomaceral 2 phytoclasts and terrestrial sporomorphs, Palynomaceral 4 and limited number of Palynomaceral 1 and Palynomaceral 3. The lithofacies and palynomaceral hydrodynamic array indicate that the mudrock facies of shale, mudstone and siltstone are deposits of lower deltaic plains or Lagoon with high terrestrial microflora input, while the sandstone facies depicts sediment of the upper deltaic plain (upper shoreface) or coastal tidal settings with overall effective oscillation tendency from tidal flat, lagoon to nearshore with open marine-influenced setting. The lithofacies and palynomaceral provenance prototype suggest terrestrially dominated shallow marine and tidally influenced outer neritic environment signalled from the quality and quantity of land-derived palynofacies components in association with few AOM and Kenleyia spp. and Spiniferites ramosus dinocysts, foraminifera test lining along with Laevigatosporites sp., Longerpertites group and other pollen and spore microflora. Lithofacies and palynomaceral organic matter in fluvial and inner neritic deep marine-influenced paralic strata of the study exhibit a perfect model for appreciating the lithological changes associated with a larger diversity of palynomaceral elements in marine and non-marine settings along with those of fluctuating salinity in the water realm.

This is a preview of subscription content, log in via an institution to check access.

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

Fig. 1
Fig. 2
Fig. 3
Fig. 4
Fig. 5
Fig. 6

Similar content being viewed by others

References

  • Abouessa A, Duringer P, Schuster M, Pelletier J, Rubino J (2014) Small-scale sedimentary structures and their implications in recognizing large-scale ancient tidal bedforms. Example from Dur at Talah outcrop, Late Eocene, Sirt Basin. Libya of African Earth Science 100:346–364

    Article  Google Scholar 

  • Abbas A, Jiayong P, Jie Y, Ahmad N (2019) Lithofacies analysis and economic mineral potential of a braided fluvial succession of NW Himalayan foreland basin Pakistan. Arabic J Geosci 1–17

  • Ali H, Khan E, Ilahi I (2019) Environmental chemistry and ecotoxicology of hazardous heavy metals: environmental persistence, toxicity, and bioaccumulation. J Chem 2019

  • Baioumy H, Ting J, Farouk S, Al-Kahtany K (2020) Facies architecture of fluviatile deposits of the Jurassic-Cretaceous Bertangga Formation, Peninsular Malaysia. Neues Jahrbuch Für Geologie Und Paläontologie-Abhandlungen 298(2):177–195

    Article  Google Scholar 

  • Bankole SA, Ola-Buraimo AO (2017) Biostratigraphy and palaeoenvironment of deposition of Nsukka Formation, Anambra Basin, southeastern Nigeria. Journal of Palaeogeography 6(1):45–59

    Article  Google Scholar 

  • Caratini C, Bellet I, Tissot C (1983) Les palynofaciès: représentation graphique, intérêt de leur étude pour les reconstitutions paléogéographiques. Géochimie organique des sédiments marins. D’ orgon à misedor; Éditions du Centre National de la Recherche Scientifique, Paris, pp 327–351

    Google Scholar 

  • Coleman ML, Curtis CD, Irwin H (1979) Burial Rate a Key to Source and Reservoir Potential: World Oil 188:83–92

    Google Scholar 

  • Collinson J, Mountney N, Thompson D (2006) Sedimentary structures. Terra Publishing, Hertfordshire, pp 129–292

    Google Scholar 

  • Combaz A (1964) Les Palynofacies. Revue Du Micropaleontolgie 7:205–218

    Google Scholar 

  • Cookson IC, Eisenack A (1967) Some microplankton from the Paleocene Rivernook Bed. Victoria, Royal Society of Victoria Proceeding 80:247–257

    Google Scholar 

  • Curtis CD (1980) Diagenetic alteration in black shales. J Geol Soc 137(2):189–194

    Article  CAS  Google Scholar 

  • Dalrymple RW, Zaitlin BA, Boyd R (1992) Estuarine facies models; conceptual basis and stratigraphic implications. J Sediment Res 62(6):1130–1146

    Article  Google Scholar 

  • Dalrymple RW, Mackay DA, Ichaso AA, Choi KS (2012) Processes, morphodynamics, and facies of tide-dominated estuaries. In: Davis R Jr, Dalrymple R (eds) Principles of Tidal Sedimentology. Springer, Dordrecht, pp 79–103

    Chapter  Google Scholar 

  • Dim CIP, Okwara IC, Mode AW, Onuoha KM (2016) Lithofacies and environments of deposition within the middle–Upper Cretaceous successions of southeastern Nigeria. Arab J Geosci 9:447–459

    Article  Google Scholar 

  • Edet JJ, Nyong EE (1993) Depositional environments, sea-level history and palaeobiogeography of the late Campanian-Maastrichtian on the Calabar flank. SE Nigeria Palaeogeography, Palaeoclimatology, Palaeoecology 102:161-175 161

    Article  Google Scholar 

  • Edet JJ, Nyong EE (1994) Palynostratigraphy of the Nporo shale exposures (Late Campanian-Maastrichtian) on the Calabar Flank, S. E. Nigeria Review of Paleobotany and Palynology 80:131–147

    Article  Google Scholar 

  • Ehrenberg CG (1838) Die Infusionsthierchen Als Vollkommene Organismen. Leipzig 2:385–388

    Google Scholar 

  • Farouk S, Jain S, Ahmad F, Abu-Alam T, Al-Kahtany K, El Agroudy IS, Bazeen YS, Shaker F (2023) Multiproxy analyses of paleoenvironmental and paleoceanographic changes during the Danian-Selandian in East Central Sinai: an integrated stable isotope and planktic foraminiferal data. Front Earth Sci 11:1158991. https://doi.org/10.3389/feart.2023.1158991

    Article  Google Scholar 

  • Fraquet H (1987) Amber: Butter-worth & Co.

  • Germeraad JH, Hopping CA, Muller J (1968) Palynology of tertiary sediments from tropical areas. Revue of Paleobotany and Palynology 6:189–343

    Article  Google Scholar 

  • Ghashghaie M, Ostad-Ali-Askari K, (2022) Substance Direction of Condensation in a River by Simulation According to the Significance of System Dynamics. Available at https://doi.org/10.2139/ssrn.4741479

  • Ghashghaie M, Eslami H, Ostad-Ali-Askari K (2022) Applications of time series analysis to investigate components of Madiyanrood river water quality. Appl Water Sci 12(8):202

    Article  Google Scholar 

  • Habib D (1979) Sedimentary origin of North Atlantic Cretaceous palynofacies. In: Talwani M, Hay W, Ryan WBF (eds) Deep drilling results in the Atlantic ocean: continental margins and palaeoenvironment, Maurice Ewing Series 3. American Geophysical Union, pp 420–437

    Chapter  Google Scholar 

  • Herngreen GFW, Chlonova AF (1981) Cretaceous microfloral provinces. Pollen Spores 23:441–555

    Google Scholar 

  • Hjellbakk A (1997) Facies and fluvial architecture of a high-energy braided river: the Upper Proterozoic Seglodden Member, Varanger Peninsula, northern Norway. Sed Geol 114:131–161

    Article  Google Scholar 

  • Howard JD, Frey RW (1984) Characteristic trace fossils in nearshore to offshore sequences, Upper Cretaceous of east-central Utah. Can J Earth Sci 21:200–219

    Article  Google Scholar 

  • Kvale EP (2006) The origin of neap-spring tidal cycles. Mar Geol 235:5–18

    Article  Google Scholar 

  • Kwetche P, Ntamak-Nida MJ, Nitcheu ALD, Etame J, Owono FM, Mbesse CO, Kissaaka JBI, Ngon GN, Bourquin S, Bilong P (2018) Facies analysis and sequence stratigraphy of missole outcrops: N’Kapa Formation of the South-Eastern Edge of Douala Sub-Basin (Cameroon). Earth Sciences Research 7(1):35–54

    Google Scholar 

  • Larsson SG (1978) Baltic amber- a palaeobiological study; Entomonograph 1. Scandinavian Science Press, Klampenborg, Denmark, p 192

    Book  Google Scholar 

  • Litwin RJ, Ash SR (1991) First early Mesozoic amber in the western Hemisphere. Geology 19:273–276

    Article  Google Scholar 

  • Loeblich AR Jr., Loeblich AR III (1966) Index to the genera, subgenera and section of the pyrrhophyta: Studies Tropical Oceanography, Miami, no. 3, x+94p

  • Masran TC, Pocock SAJ (1981) The classification of plant derived particulate organic matter in sedimentary rock, In Organic Maturation Studies And Fossil Fuel Exploration (Ed.J. Brooks), Academic Press London, Pp.145 – 76

  • Miall AD (1985) Architectural-element analysis: a new method of facies analysis applied to fluvial deposits. Earth Sci Rev 22(4):261–308

    Article  Google Scholar 

  • Miall AD (1987) Recent developments in the study of fluvial facies models

  • Miall AD (2000) Principles of sedimentary basin analysis. Springer-Verlag, Berlin, pp 141–153

    Google Scholar 

  • Miall AD (2006) The geology of fluvial deposits: sedimentary facies, basin analysis, and petroleum geology, 4th corrected print. Springer, Berlin Heidelberg New York, pp 141–248

    Book  Google Scholar 

  • Miall AD (2016) The valuation of unconformities. Earth Sci Rev 163:22–71

    Article  CAS  Google Scholar 

  • Miall AD (2022) Stratigraphy: the modern synthesis. Stratigraphy: A modern synthesis. Springer International Publishing, Cham, pp 341–417

    Chapter  Google Scholar 

  • Mode AW (2004) Shallow marine transgressive sedimentation in the Nsukka Formation, Southeastern Nigeria, Nigeria. Niger Assoc Pet Exploration Bull 17:28–41

    Google Scholar 

  • Mode AW, Odumodu CFR (2014) Lithofacies and ichnology of the late Maastrichtian-Danian Nsukka Formation in the Okigwe area, Anambra Basin, southeastern Nigeria. Arab J Geosci 8:7455–7466

    Article  Google Scholar 

  • Mode A, Ekwenye O, Oha I, Onah F (2018) Facies analysis and ichnology of a prograding river-dominated and wave-influenced deltaic deposit: the Nkporo Formation in the Itigidi-Ediba region of the Afikpo Sub-basin, south-eastern Nigeria. J Afr Earth Sc 147:152–168

    Article  Google Scholar 

  • Murthy S, Sarate OS, Aggarwal N (2019) Palynofloral and palynofacies evidences and its implication on the depositional environment from Wardha Valley Coalfield, Maharashtra. J Geol Soc India 93(1):85–94

    Article  CAS  Google Scholar 

  • Neves R, Gueinn KJ, Clayton G, Ioannides NS, Neville RS, Kruszewska K (1973) 2.—palynological correlations within the lower carboniferous of Scotland and Northern England. Earth and Environmental Science Transactions of the Royal Society of Edinburgh 69(2):23–70

    Google Scholar 

  • Nichols A, Tamura Y, Sato T, Fujiwara O, Kodaira S (2016) Advents of continents: a new hypothesis. Sci Rep 6:63–101

    Google Scholar 

  • Nichols G (2009) Sedimentology and stratigraphy Second Edition. Blackwell Publishers, pp. 1–300

  • Nio SD, Yang CS (1991) Diagnostic attributes of clastic tidal deposits: a review. In: Smith, D.G., Reinson, G.E., Zaitlin, A., Rahmani, A. (Eds.), Clastic Tidal Sedimentology. Canadian Society of Petroleum Geologists, Memoir 16 3–28

  • Nwajide CS, Reijers TJA (1996) Geology of the southern Anambra Basin. In: Reijers TJA (ed) Selected Chapters on Geology. SPDC Warri, pp 133–148

    Google Scholar 

  • Oboh FE (1992) Multivariate statistical analysis of palynodebris from the Middle Miocene of The Niger Delta and their environmental significance. Palaios 7:559–573

    Article  Google Scholar 

  • Oboh-Ikuenobe FE, Yepes O, Gregg JM (1998) 25 Palynostratigraphy, palynofacies, and thermal maturation of Cretaceous-Paleogene sediments from the Côte D’Ivoire-Ghana transform margin. In Proc Ocean Drill Prog Scient Res 159:277–318

    Google Scholar 

  • Oboh-Ikuenobe FE, Obi CG, Jaramillo CA (2005) Lithofacies, palynofacies and sequence stratigraphy of Paleogene strata in Southeastern Nigeria. J Afr Earth Sc 41:79–102

    Article  Google Scholar 

  • Odu NJ, Anyiam OA, Emedo CO, Okeke KK, Ulasi NA (2021) Sedimentology, diagenesis, and reservoir quality assessment of the Upper Cretaceous sedimentary succession (Anambra Basin) in Inyi and environs, southeastern Nigeria. Arab J Geosci 14:1–24

    Article  Google Scholar 

  • Odumodu CFR, Ephraim B (2008) Paleoenvironmental analysis of the Nsukka Formation, using pebble morphometry. Nat Appl Sci J 8(1):73–84

    Google Scholar 

  • Okeke KK, Umeji OP, Dim CP, Ekwenye OC, Ulasi NA, Uwakwe OC, Maduewesi CO (2023) Depositional Facies and Palynofacies Provenance of Clastic Deposits: Insight from Paleocene Strata in Southeast Region, Nigeria. Iran J Sci 47(1):73–90

    Article  Google Scholar 

  • Okeke KK, Slimani H, Jbari H, Ukpabi N, Asadu AN (2024) Palynostratigraphy and palaeoenvironment of the Danian sediments from the Nsukka Formation of the Anambra Basin at the vicinity of Ikpankwu, southeastern Nigeria. J Afr Earth Sci 210:105133

  • Okeke KK, Umeji OP (2018) Oil shale prospects of Imo formation Niger Delta Basin, Southeastern Nigeria: palynofacies, organic thermal maturation and source rock perspective. J Geol Soc India 92(4):498–506

    Article  Google Scholar 

  • Olariu C, Steel RJ, Dalrymple RW, Gingras MK (2012) Tidal dunes versus tidal bars: the sedimentological and architectural characteristics of compound dunes in a tidal seaway, the lower Baronia Sandstone (Lower Eocene), Ager Basin, Spain. Sed Geol 279:134–155

    Article  Google Scholar 

  • Reyment RA (1965) Aspects of the geology of Nigeria. Ibadan University Press, pp 2–115

    Google Scholar 

  • Reading HG, Levell BK (1996) Controls on the sedimentary rock record. In: Reading HG (ed) Sedimentary environments: processes, facies and stratigraphy. Blackwell Scientific Publications, 3, pp 5–36

  • Reineck HE, Singh IB (1980) Depositional sedimentary environments: with reference to Terrigenous Clastics. Springer-Verlag, Berlin, pp 162–182

    Book  Google Scholar 

  • Simpson A (1954) The Nigerian coal field: the geology of parts of Owerri and Benue Provinces. Geological Survey of Nigeria Bulletin 24:1–85

    Google Scholar 

  • Staplin FL (1969) Sedimentary organic matter, organic metamorphism and oil and gas occurrences. Bull Can Petrol Geol 17:47–66

    CAS  Google Scholar 

  • Takahashi K (1982) Miospores from the Eocene Nanggulan Formation in The Yogyakarta Region, Central Java. Trans. Proc. Palaeont. Soc. Japan. N S 126:303–326

    Google Scholar 

  • Talebmorad H, Ostad-Ali-Askari K (2022) Hydro geo-sphere integrated hydrologic model in modeling of wide basins. Sustainable Water Resources Management 8(4):118

    Article  Google Scholar 

  • Tyson RV (1995) Sedimentary organic matter, organic facies and palynofacies. Hapman and Hall, London, p 615

    Book  Google Scholar 

  • Tyson RV (1987) The genesis and palynofacies characteristics of marine petroleum rocks. In: Brooks J, Fleet A J (eds) Marine Petroleum Source Rocks. Geological Society, London, Special Publication 26(1):47–67

  • Tyson RV (1989) Late Jurassic palynofacies trends, Piper and Kimmeridge Clay Formations, UK onshore and offshore. In: Batten DJ, Keen (eds) Northwest European Micropalaeontology and Palynology. British Micropalaeontological Society Series, Ellis Horwood, Chichester, pp 135–172

  • Tyson RV (1993) Palynofacies analysis. In: Jenkins DG (ed) Applied Micropalaeontology, Kluwer Academic Publishers. The Netherlands, Amsterdam, pp 153–191

    Chapter  Google Scholar 

  • Umeji OP, Edet JJ (2008) Palynostratigraphy and paleoenvironments of the type area of Nsukka Formation of Anambra Basin, Southeastern Nigeria. Nigerian Association of Petroleum Explorationists’ Bulletin 20:72–89

    Google Scholar 

  • Umeji OP, Nwajide CS (2007) Age control and designation of the standard stratotype of the Nsukka Formation of the Anambra Basin, Southeastern Nigeria. J Min Geol 43(2):147–166

    Google Scholar 

  • Umeji AC (2000) Evolution of the Abakaliki and the Anambra sedimentary basins, Southeastern Nigeria. A Report Submitted to The Shell Petroleum Development Company Ltd, P.155

  • van Der Zwan CJ, Van De Laar JGM, Pagnier HJM, Van Amerom HWJ (1993) Palynological, ecological and climatological synthesis of the Upper Carboniferous of the Well De Lutte-6 (East Netherlands). In: Comptes Rendus XII ICC-P, vol 1. Buenos Aires,  pp 167–186

  • Van Hoeken-Klinkenberg PMJ (1964) A palynological investigation of some Upper Cretaceous sediments in Nigeria. Pollen Spores 6:209–231

    Google Scholar 

  • Van Hoeken-Klinkenberg PMJ (1966) Maastrichtian, Paleocene and Eocene Pollen and Spores from Nigeria. Leidse Geol Meded 38:37

    Google Scholar 

  • Whitaker MF, Giles MR, Cannon SJC (1992) The usage of palynostratigraphy and palynofacies in definition of troll field geology. Sixth Offshore Northern Sea Conference and Exhibition, Stavanger Norway Paper G6:50

    Google Scholar 

  • Whitaker F (1982) Palynofacies investigation in the Jurassic interval of the Norske Shell Well 31/2–4. Shell International Petroleum Maatschappij B.V., pp 1–14

  • Whitaker MF (1984) Palynological result of good 6407/9–1. A/S Norske Shell Exploration and Production, pp 1–25

Download references

Author information

Authors and Affiliations

Authors

Corresponding author

Correspondence to Kachikwulu Kingsley Okeke.

Ethics declarations

Conflict of interest

The authors declare that they have no competing interests.

Additional information

Responsible Editor: Attila Ciner

Rights and permissions

Springer Nature or its licensor (e.g. a society or other partner) holds exclusive rights to this article under a publishing agreement with the author(s) or other rightsholder(s); author self-archiving of the accepted manuscript version of this article is solely governed by the terms of such publishing agreement and applicable law.

Reprints and permissions

About this article

Check for updates. Verify currency and authenticity via CrossMark

Cite this article

Okeke, K.K. Depositional facies and palynofacies provenance reconstruction of the Danian Nsukka Formation, Southeastern Nigeria. Arab J Geosci 17, 157 (2024). https://doi.org/10.1007/s12517-024-11957-w

Download citation

  • Received:

  • Accepted:

  • Published:

  • DOI: https://doi.org/10.1007/s12517-024-11957-w

Keywords

Navigation