GEOSCIENTIFIC SURVEILLANCE AND PERFORMANCE ASSESSMENT OF BOSSO DAM, NORTHCENTRAL NIGERIA
Abstract
Monitoring of Bosso dam by integrating geoscientific principles was executed. The dam was constructed in 1949 to provide fresh water for human consumption. Physical deterioration, evidence by structure material wear out, concrete cracks and mechanical equipment worn-out among others are visible on the dam and its appurtenant structure. The basement rocks underlying the dam area are weathered and fractured as evidence on the outcrops within the proximity of the dam. Geotechnical characteristics of soil obtained from the dam site includes: Liquid limit range of 30% - 35%, plastic limit range of 26% - 38% and Plasticity index range of 4% to 15%. The classes of the soils fall within the MI, MH and ML soil categories of the USCS, indicating silt of medium, high and low plasticitys. VES models show 3 geoelectric layers which includes regolith/organic silts layer with average resistivity value 50 m. The 2nd layer shows a resistivity range of 9 m to 43 m to the depth range of 3.3m to 4.7m. The 3rd layer is composed of silty-clay and saprolite with resistivity of 163 m. From the 2D tomography, the low resistivity anomalous noticed at the western section of the dam embankment toe is attributed to the effect of possible seepage caused by internal erosion. The effect of ageing and global warming has led to safety deficiencies of Bosso dam that were not apparent at commissioning until recently, therefore urgent remedial measures are needed for the safety of the dam.
References
Adetokunbo, P.; Ismail, A.; Mewafy, F.; Sanuade, O. (2024). Geophysical Characterization and Seepage Detection of the Chimney Rock Dam Embankment Near Salina, Oklahoma. Water, 16, 1224. https://doi.org/10.3390/w16091224 DOI: https://doi.org/10.3390/w16091224
Ahmad, U., Samuel, A. O., Kana, A. A., Sule, A. A., & Muhammad, G. J. (2025). 2D Electrical Resistivity Survey for Groundwater Contamination at Akwanga Dumpsites and Abattoir, Nasarawa State. FUDMA Journal of Sciences, 9, 84 - 91. https://doi.org/10.33003/fjs-2025-09(AHBSI)-3394 DOI: https://doi.org/10.33003/fjs-2025-09(AHBSI)-3394
Ajibade, A. C., Anyanwu, N. P. C., Okoro, A. U. and Nwajide, C. S. (2008): The Geology of Minna Area: Explanation of 1:250,000 Sheet 42 (Minna). Nigeria Geological Survey agency Bull. No 43, pp. 112.
Berhane, G., Kassa, T., & Berhanu, B. (2017). Geotechnical investigation of soils for dam construction: A case study of Geffersa Dam, Ethiopia. International Journal of Scientific and Research Publications (IJSRP), 7(2), 3742
Berhane, Gebremedhin, Mogos Amare, Tesfamichael Gebreyohannes, and Kristine Walraevens. (2017). Geological and Geophysical Investigation of Water Leakage from Two Micro-Dam Reservoirs: Implications for Future Site Selection, Northern Ethiopia. Journal of African Earth Sciences 129: 8293. https://doi.org/10.1016/j.jafrearsci.2016.12.015. DOI: https://doi.org/10.1016/j.jafrearsci.2016.12.015
British Standard Institution (1990) Methods of Test for Soils for Civil Engineering Properties (BS 1377). British Standard Institution. London, UK.
Downing, T.E, Butterfield, R.E., Edmonds, B., Knox, J.W., Moss, S., Piper, B.S. and Weatherhead, E.K. (and the CCDeW project team) (2003). Climate Change and the Demand for Water, Research Report. Stockholm Environment Institute Oxford Office, Oxford.
Garca, J. B., Andr P., and Juan P. V. (2020). Behavioral evaluation of earth dams built with materials above optimum moisture content in high rainfall areas. Soils and Rocks 43(4): 591-606. www.soilsandrocks.com. DOI: https://doi.org/10.28927/SR.434591
Iloeje, N. P., & Eze, C. L. (2014). Safety evaluation of earth dams in Nigeria. International Journal of Civil Engineering and Technology (IJCIET), 5(8), 134-144
International Commission on Large Dams (2003). Dam Surveillance Guide. Bulletin 158 ISBN 978-1-884575-71-6 ISBN: 978-0-908960-65-1
Jimoh, R. A., & Adetoro, A. (2018). Assessment of the structural integrity of Oyan dam, Southwestern Nigeria, using integrated geophysical and geotechnical methods. Environmental Monitoring and Assessment, 190, Article 406.
Kos, K.; Gruchot, A. and Zawisza, E. (2021). Bottom Sediments from a Dam Reservoir as a Core in EmbankmentsFiltration and Stability: A Case Study. Sustainability, 13, 1221. https://doi.org/10.3390/su13031221 DOI: https://doi.org/10.3390/su13031221
Li, Y.; Zhang, H.; Yuan, Y.; Lan, L.; Su, Y. (2024). Research on Failure Modes and Causes of 100-m-High Core Wall Rockfill Dams. Water, 16, 1809. https://doi.org/10.3390/w16131809 DOI: https://doi.org/10.3390/w16131809
Loke, M. H. (1999). Electrical imaging survey for environmental and engineering studies. A practical guide to 2D and 3D Surveys. Retrieved from http://www.abem.se/files/res/2dnotes.pdf.
Lukman S, Otun J. A, Adie D. B, Ismail A, Oke I. A. (2011). A brief assessment of a dam and its failure and prevention. Journal of Failure Analysis and Prevention. Vol. 11: 97-109. DOI: https://doi.org/10.1007/s11668-010-9420-1
Martin, W. (2014). Seismic Hazard and Seismic Design and Safety Aspects of Large Dam Projects. https://www.researchgate.net/publication/289930348, https://doi.org/101007/978-3-319-07118-3_20
Mohammad, R. B. and Amirhossein, M. (2019). Evaluation of Earth Dam Leakage Considering the Uncertainty in Soil Hydraulic Parameters. Civil Engineering Journal, Vol. 5, No. 7 DOI: https://doi.org/10.28991/cej-2019-03091351
Nasrat A., Nadhir A., Varoujan S., Jan L., and Sven K. (2020). Dam Safety: Technical Problems of Aging Embankment Dams. Journal of Earth Sciences and Geotechnical Engineering, Vol. 10, No. 6, 281-322
New Zealand Society on Large Dams (NZSOLD) (2015). New Zealand Dam Safety Guidelines
Rauff, K. O., Abir, I. A., Muhammad, A. K., Rabiu, J. A., & Nur, M. S. (2025). Delineation of Groundwater Potential Zones using Vertical Electrical Sounding (VES) in Rock Formation Settings in Gombe. FUDMA Journal of Sciences, 9(4), 137 - 144. https://doi.org/10.33003/fjs-2025-0904-3563 DOI: https://doi.org/10.33003/fjs-2025-0904-3563
Rizal S. and Pulung A. P. (2024). Aquifer Mapping Using Geo-Electrical Resistivity Survey for Seepage Mitigation in Kuwil Kawangkoan Dam, North Minahasa, North Sulawesi, Indonesia. IOP Conf. Series: Earth and Environmental Science. https://doi.org/10.1088/1755-1315/1378/1/012016 DOI: https://doi.org/10.1088/1755-1315/1378/1/012016
Samaila, M. B. (2020). Investigations into the Suitability of Soil Samples for Dam Embankment Construction (Soil Deposits around Proposed Earth Dam Site in Faskari). Research Journal of Engineering and Information Technology. Vol. 7(1), pp. 6-9, ISSN 2354-4155, DOI: https://doi.org/10.26765/DRJEIT18813070
The State of Victoria Department of Environment, Land, Water and Planning (2016). Decommissioning dams: A guide for dam owners. ISBN 978-1-76047-381-5. www.delwp.vic.gov.au
Umoren, U. N., Edet, A. E. and Ekwere, A. S. (2016). Geotechnical Assessment of a Dam Site: A Case Study of Nkari Dam, South Eastern Nigeria. Journal of Earth Sciences and Geotechnical Engineering, vol. 6, no.2, Pp 73-88. ISSN: 1792-9040.
United State Society on Dams (USSD) (2015). Guidelines for Dam Decommissioning Projects
Zhaozhao L. Qun C., Chen C., Xing L., and Changhong Z. (2024). Experimental investigation on the characteristics of seepage failure of landslide dams with strongly permeable zones. Earth and Environmental Science. https://doi.org/10.1088/1755-1315/1334/1/012022 DOI: https://doi.org/10.1088/1755-1315/1334/1/012022
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