Environmental Reconstruction and Maturity Assessment of Beach Sand: Insights from the Sapele Bypass, Benin Region, Nigeria

Authors

Martins Ilevbare

Afe Babalola University (Nigeria)

Ambrose Ekhalemilu Utsalo

Western Delta University (Nigeria)

Olumuyiwa Ademola Alao

College of Sciences, Afe Babalola University (Nigeria)

Janet Aderonke Cole

College of Sciences, Afe Babalola University (Nigeria)

Article Information

DOI: 10.51244/IJRSI.2026.13010198

Subject Category: Geology

Volume/Issue: 13/1 | Page No: 2284-2302

Publication Timeline

Submitted: 2026-01-25

Accepted: 2026-01-30

Published: 2026-02-16

Abstract

The Beach sand, Obedoluogbeyi and Idogbo communities along Sapele bypass in Benin Region, Nigeria were studied for environmental and maturity indices. Forty (40) samples were collected and experimentally analysed for textural characteristics heavy minerals composition, pebble morphology and petrographic thin section.
The examination of heavy minerals showed that the major deposit of heavy minerals was opaque. The graphic mean (average 1.542) revealed that medium to coarse sand size sediments predominated which are moderately to well sorted (average 1.141), typical of Continental paleo-environment. The graphic skewedness (average 3.445) typifies a period of a balance between erosion and deposition of the sediments with the majority of the sediments being substantially coarsely skewed and a small amount of strongly finely skewed sediments. In the graphic kurtosis (3.64), are consistent with mesokurtic to leptokurtic sand grains, characteristic of an intermediate to high energy ancient fluvial depositional environment. The sand was compositionally mature (Qtz >90%), mineralogical mature (MMI average = 18.66) and chemically immature sub-mature (ZTR = 70.10). The ancient environment of the deposition from the average of the sorting value is typical of a continental origin. This finding is authenticated by the environmental discrimination plots which also confirm a continental environment of deposition for the coastal plain sand. The fluvial or continental origin indicates past river processes, which helps to reconstruct regional paleoenvironment. Textural and compositional maturity suggests significant transport and sorting by water. The mineralogical maturity provides insights to source rock weathering or recycling. Overall, understanding the origin and maturity, guides exploration strategies

Keywords

Beach Sand, Benin Region, Compositional maturity

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References

1. Adegoke, O. A., and Akande, O. A. (2017). Sedimentology and sequence stratigraphy of the Agbada Formation, Niger Delta: implications for hydrocarbon prospectivity. Journal of African Earth Sciences, 138, 101-119. [Google Scholar] [Crossref]

2. Ajadi, J., Yusuf, A.J., Ajala, A.A. (2020). Sedimentological characterization of clastic sediments of Anambra basin: implications for provenance and paleo-environments. Research gate. [Google Scholar] [Crossref]

3. Ajakaiye, D.O., and Oti, M. O. (2016). Tectonic evolution of the Niger Delta basin: implications for hydrocarbon exploration. Journal of Petroleum Geology, 39(2), 147-163. [Google Scholar] [Crossref]

4. Akpofure, E. and Akana, S.T. (2019). Grain size Analysis of Beach Sediments from Bonny Beach in the Niger Delta. International Journal of Geology and Mining, 5(2), 245-257. [Google Scholar] [Crossref]

5. Akujieze, C.N. (2004) Effects of Anthropogenic Activities (Sand Quarrying and Waste Disposal) on Urban Groundwater System and Aquifer Vulnerability Assessment in Benin City, Edo State, Nigeria. PhD Thesis, University of Benin, Benin City, Nigeria. [Google Scholar] [Crossref]

6. Anyanwu, T.C., Ekpo, B.O., Oriji, B.A. (2022). Biomarker application in the recognition of the geochemical characteristics of crude oils from the five depobelts of the Niger Delta basin, Nigeria. Iranian Journal of Earth Sciences. Vol. 14, No. 1, 2022, 1-17. DOI: 10.30495/ijes.2022.1943029.1664 [Google Scholar] [Crossref]

7. Boboye, O.A., Chidiebere, C. (2013). Sedimentological and palynological assessment of three wells in Eastern Dahomey Embayment, southwestern Nigeria, West Africa. Quarternary international 657, 77-91. [Google Scholar] [Crossref]

8. British Geological Survey (2007). Silica Sand: Geology and Mineral Planning fact Sheet for Scotland, 11-25. [Google Scholar] [Crossref]

9. British International Standard 2975 (1988). Methods of sampling and analysis of glass making sand [Google Scholar] [Crossref]

10. Dickinson, W. R. (1970). Interpreting detrital modes of Greywacke and Arkose. Sedimentary Petrology Journal, 40, 695-707. [Google Scholar] [Crossref]

11. Dickison, W.R., Lindberg, F.A, Ryberg P.T. (1983). Provenance of North American Phanerozoic sandstones in relation to tectomic setting. Geological society of American Bulletin, 94: 222235 [Google Scholar] [Crossref]

12. Dickison, W.R., Lindberg, F.A, & Ryberg P.T. (1983). Provenance of North American Phanerozoic sandstones in relation to tectomic setting. Geological society of American Bulletin, 94: 222235 [Google Scholar] [Crossref]

13. Enyioko N. D., Onyekuru S. O., Ikoro D. O, Ogbonna T. L. (2022). Sedimentologic and Petrographic Study of Outcrops of Ajali Sandstone in Okigwe, Uturu and Isiukwuato, Anambra Basin Southeastern Nigeria. Earth sciences and human constructions. DOI:10.37394/232024.2022.2.14 [Google Scholar] [Crossref]

14. Folk, R. L. and Ward, W. (1957). Brazos River Bar. A study in Significance of Grain-size Parameters. Sedimentary Petrology Journal, 27,3-26. [Google Scholar] [Crossref]

15. Folk, R.L. (1965). Petrology of sedimentary Rocks. Austin, University of Texas Publication. 170 [Google Scholar] [Crossref]

16. Fontana, D., Amoroso, S., Minarelli, L., & Stefani, M., (2016). Sand liquefaction induced by a blast test: new insights on source layer and grain-size segregation mechanisms (Late Quaternary, Emilia, Italy). [Google Scholar] [Crossref]

17. Friedman G.M. (1962). On Sorting, sorting co-efficient and Log Normality of the grain size distribution of Sandstones. J Geol. 70, 734 – 753 [Google Scholar] [Crossref]

18. Friedman, G. M. (1979). Differences in size distribution of populations among sands of various origins. Sedimentology, 26, 3-32. [Google Scholar] [Crossref]

19. Friedman, G.M., (1961). Distinction between dune, beach and river sands from the textural characteristics: Journal Sedimentary Petrology, 31, 514-529. [Google Scholar] [Crossref]

20. Harry, T.A., Etim, I.U., Etim, C.E. (2022). Sedimentology and Palynology Models of Sedimentary Sections Along Lemna Section of the Benin Formation, Cross River- Southern Nigeria. Pakistan Journal of Geology (PJG) ISSN: 2521-2923. DOI: Http://Doi.Org/10.26480/Pjg.01.2022.24.28 [Google Scholar] [Crossref]

21. Harry, T.A., Etim, I.U. & Etim, C.E. (2022). Sedimentology and Palynology Models of Sedimentary Sections Along Lemna Section of the Benin Formation, Cross River- Southern Nigeria. Pakistan Journal of Geology (PJG) ISSN: 2521-2923. DOI: Http://Doi.Org/10.26480/Pjg.01.2022.24.28 [Google Scholar] [Crossref]

22. Ikhile, C.I. (2016). Geomorphology and Hydrology of the Benin Region, Edo State, Nigeria. International Journal of Geosciences 7, 144-157. http://dx.doi.org/10.4236/ijg.2016.72012 [Google Scholar] [Crossref]

23. Ilevbare M., and Agbaje Y.O. (2026). Geochemical Fingerprints of Coastal sand of Benin Formation, Niger Delta Basin Nigeria: Implication for Provenance, Maturity, Weathering and Paleoredox Conditions. Malaysian Journal of Geosciences, 10(1):1-7 [Google Scholar] [Crossref]

24. Ilevbare M., Vangerwua, M.A., Agbaje, Y.O., Ore, O.T., Olutomilola, O.O. (2025). Paleoenvironment of Deposition and Maturity of Coastal Plain Sand in Okomu, Benin Formation, Niger Delta Basin, Nigeria. International Journal of Earth Sciences Knowledge and Applications 7(1), 11-24. doi.org/10.5281/ zenodo.15341410 [Google Scholar] [Crossref]

25. Ilevbare, M. and Omorogieva, O. M. (2020). Formation Evaluation of the Petrophysical Properties of Wells in E - Field Onshore Niger Delta, Nigeria. Nigerian Journal of Technology (NIJOTECH). Vol. 39, No. 4, pp. 962 - 971. ISSN: 2467-8821. http://dx.doi.org/10.4314/njt.v3914.1 [Google Scholar] [Crossref]

26. Ilevbare, M., and Omodolor, H. E. (2020). Ancient deposition environment, mechanism of deposition and textural attributes of Ajali Formation, western flank of the Anambra Basin, Nigeria. Elsevier. Case Studies in Chemical and Environmental Engineering 2, 10002. [Google Scholar] [Crossref]

27. Ingersoil, R. V., Bullard, T.F., Ford, R. L., Grim, J. P., Pickle, J.D., Sares, S. W. (1984). The effects of grain size on data modes: a test of the Gazzi - Dickson point - counting method. Sedimentary Petrology Journal, 46: 620-632. ISSN 2059-3058 [Google Scholar] [Crossref]

28. Javed, A., Wahid, A., Mughal, M.S., Khan, M.S., Qammar, R.S., Ali, S.H., Siddiqui, N.A., Iqbal, M.A. (2021). Geological and petrographic investigations of the Miocene molasses deposits in sub-Himalayas, district Sudhnati, Pakistan. Arabian journal of Geosciences 14, 1-24. [Google Scholar] [Crossref]

29. Khan, S.A., Dar, S.A., Khan, K.F., Karim, Y. (2022). Geochemical characteristics of Early Cambrian phosphate bearing sedimentary rocks from the Mussorie syncline, India: Implications for paleo-redox conditions. Geosystems and environment 1 (3), 100046. [Google Scholar] [Crossref]

30. Mange, M.A and Maurer, F.W. (1992). Heavy minerals in Colour. Chapman & Hall, London. British Geological Survey (2007). Silica Sand: Geology and Mineral Planning fact Sheet for Scotland, 11-25. [Google Scholar] [Crossref]

31. McLennan, S.M., Hemming, S., McDaniel, D.K., Hanson, G.M. (1993). Geochemical approaches to sedimentation, provenance, and tectonics. [Google Scholar] [Crossref]

32. Mohammad, A.S., Zahra, M.S., Hamid, R.P., Franz, T.F., Christoph, H. (2018). Provenance and Palaogeography of uppermost Triassic and Lower Cretaceous Terrigeneous rock of Central Iran: Reflection of the Cimmerian events. N. Jb. Geol. Palaont. Abh. 288 (1), 49-77. [Google Scholar] [Crossref]

33. Mueller, P., Langone, A., Patacci, M., Giulio, A.D. (2020). Tethyan paleomargin provenance signature: sandstone detrital modes and detrital zircon U-Pb age distribution of the Upper Cretaceous-Paleocene. International journal of earth sciences 109, 201-220. [Google Scholar] [Crossref]

34. Nwajide, C.S., & Hoque, M. (1985). Problem of classification and maturity. Evaluation of a diagnostically altered fluvial Sandstone. Geologic on Nujibouw, vol.64, p. 67-70. [Google Scholar] [Crossref]

35. Odumoso, S.E, Olotu, I.N., Omoboriowo, A.O. (2013) Sedimentology and depositional environment of the mid-maastritchtian Ajali sandstone, Anambra Basin, southern Nigeria, Int. J. Sci. Technol. 3 (1), 26-33 [Google Scholar] [Crossref]

36. Overare, B. and Osokpor, J. (2020). Providing Clues on the Paleo-weathering of Ogwashi-Asaba Formation, Niger Delta Basin: Evidence from Geochemistry. Tropical Journal of Science and Technology, 1(1), 74 - 92. ISSN: 2714-3848. [Google Scholar] [Crossref]

37. Pettijohn, F.J., Potter, P.E., Siever, R. (1972) Sand and Sandstones. New York, Springer Verlag. [Google Scholar] [Crossref]

38. Rakhimov, I.R., Saveliev, D.E., Rassomakhin, M.A., Samigullin, A.A. (2022). Chromian spinels from Kazanian-stage placers in the southern pre-urals, Bashkira, Russia: morphological and chemical features and evidence for provenance. Minerals 12 (1), 849. [Google Scholar] [Crossref]

39. Tijani, M.N., Nton, M.E., Kitagawa, R., (2010). Textural and geochemical characteristics of the Ajali sandstone, Anambra basin, SE Nigeria: implication for its provenance. Compt. Rendus Geosci. 342, 136-150. Taylor, S.R., McLennan, S.M., 1985. The continental Crust: its Composition and Evolution. Blackwell Scientific Publication, Carlton, p. 312016. [Google Scholar] [Crossref]

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