00
Days
00
Hrs
00
Min
00
Sec
Submit Your Paper

Four Decades of Systematic Sedimentation at Kiri Dam, Nigeria (1982–2025): Dual-Epoch Bathymetry, Hypsographic Change, and Sedimentological Controls on Water-Supply Reliability

Authors

Gambo, A. T

Department of Civil Engineering, Ladoke Akintola University of Technology, Ogbomosho, Nigeria (NG)

Olaniyan, O. S

Department of Civil Engineering, Ladoke Akintola University of Technology, Ogbomosho, Nigeria (NG)

Adegbola, A. A

Department of Civil Engineering, Ladoke Akintola University of Technology, Ogbomosho, Nigeria (NG)

Article Information

DOI: 10.51583/IJLTEMAS.2025.1409000051

Subject Category: civil and water resources engineering

Volume/Issue: 14/9 | Page No: 407-420

Publication Timeline

Submitted: 2025-10-06

Published: 2025-10-06

Abstract

Abstract: This study examines sediment dynamics at Kiri Dam, Nigeria (1982–2025), through a two-epoch bathymetric reassessment to measure hypsographic change and assess implications for water-supply reliability. In 2025, a high-resolution bathymetric survey was performed in accordance with IHO S-44 standards using Trimble RTK-GNSS and ADCP depth soundings, achieving a crossline mean absolute deviation of ≤0.12 m and a vertical RMSE of ≤0.05 m. Results were compared with the 1982 design dataset to evaluate elevation-banded losses. At NTWL (170.5 m A.M.S.L.), live storage capacity decreased from 615.00 to 344.15 MCM (−44.0%), while water spread contracted from 106.36 to 67.02 km² (−37.0%). Over 60% of storage loss occurred on depositional benches between 161 and 167 m, increasing the elevation–capacity gradient and intensifying volumetric penalties relative to areal shrinkage (elasticity ≈1.19). Multi-season analyses of particle-size distribution confirmed silty clays and clay loams dominate mid-bench and outflow zones, while sandy sediments at the right bank served as coarse-textured controls. Geochemical assays revealed moderate enrichment of Pb (16–27 mg/kg), Cu (12–19 mg/kg), and Zn (63–72 mg/kg) in fine-grained benches, with low hydrocarbon residues (ΣPAHs ≤0.8 mg/kg, ΣPCBs ≤0.04 mg/kg). A preliminary cost–benefit analysis indicated hydraulic sluicing ($0.5–1.5/m³) to be more feasible than mechanical dredging ($3–8/m³), with catchment stabilisation offering benefit–cost ratios of 1:1.3–2.0. Recommended monitoring includes resurveys every 5–10 years, event-triggered campaigns following ≥Q10 floods or >5% shoreline change, and seasonal PSD and geochemistry sampling.

Keywords

Reservoir sedimentation, Bathymetric survey, Elevation–area–capacity (E–A–C), Hypsographic change, Sediment geochemistry, Particle-size distribution (PSD), Hydraulic sluicing, Catchment management, Kiri Dam (Nigeria), Sudano–Sahel hydrology

Downloads

References

1. Adamo, N., Al-Ansari, N., Ali, S. H., Laue, J., & Knutsson, S. (2021). Dams safety: Review of satellite remote sensing applications to dams and reservoirs. Journal of Earth Sciences and Geotechnical Engineering, 11(1), 347–438. [Google Scholar] [Crossref]

2. American Public Health Association (APHA), American Water Works Association (AWWA), & Water Environment Federation (WEF). (2017). Standard methods for the examination of water and wastewater (23rd ed.). Washington, DC: American Public Health Association. [Google Scholar] [Crossref]

3. Dawkins, D. J. B., Pianosi, F., Lowe, J. A., & Economou, T. (2023). Quantifying uncertainty and sensitivity in climate risk assessments: Varying hazard, exposure, and vulnerability modelling choices. Climate Risk Management, 40, 100511. https://doi.org/10.1016/j.crm.2023.100511 [Google Scholar] [Crossref]

4. Domínguez-Gálvez, D. L., & Álvarez-Álvarez, M. J. (2025). Sustainable sediment management in reservoirs: La Estancilla case study. Journal of Water and Land Development, 64(I–III), 211–220. https://doi.org/10.24425/jwld.2025.147220 [Google Scholar] [Crossref]

5. Grimm JW, Lynch JA (2004). Enhanced wet deposition estimates using modeled precipitation inputs. Environ Monit Assess. 2004 Jan;90(1-3):243-68. [Google Scholar] [Crossref]

6. doi:10.1023/b:emas.0000003592.56006.a0. PMID: 15887375. [Google Scholar] [Crossref]

7. Helsel, D. R., Hirsch, R. M., Ryberg, K. R., Archfield, S. A., & Gilroy, E. J. (2020). Statistical methods in water resources (2nd ed.). U.S. Geological Survey, Techniques and Methods, Book 4, Chapter A3. https://doi.org/10.3133/tm4a3 [Google Scholar] [Crossref]

8. Horowitz, A. J. (1991). A primer on sediment-trace element chemistry (2nd ed.). Boca Raton, FL: Lewis Publishers. [Google Scholar] [Crossref]

9. International Hydrographic Organization. (2020). S-44: Standards for hydrographic surveys (6.0.0). Monaco: IHO. [Google Scholar] [Crossref]

10. International Hydrographic Organization. (2022). S-44: Standards for hydrographic surveys (6.1.0). Monaco: IHO. [Google Scholar] [Crossref]

11. Kondolf, G. M., Rubin, Z. K., & Minear, J. T. (2014). Sustainable sediment management in reservoirs and regulated rivers: Experiences from five continents. Earth’s Future, 2(5), 256–280. https://doi.org/10.1002/2013EF000184 [Google Scholar] [Crossref]

12. Li, J., Zhang, C., & Wu, P. (2020). Reservoir sedimentation and water-supply risk in semi-arid basins. Water Resources Research, 56(7), e2020WR027517. [Google Scholar] [Crossref]

13. https://doi.org/10.1029/2020WR027517 [Google Scholar] [Crossref]

14. Mekonnen, Y. A., Mengistu, T. D., Asitatikie, A. N., & Kumilachew, Y. W. (2022). Evaluation of reservoir sedimentation using bathymetry survey: A case study on Adebra night storage reservoir, Ethiopia. Applied Water Science, 12, 269. https://doi.org/10.1007/s13201-022-01705-2 [Google Scholar] [Crossref]

15. Morisette, J. T., Paturel, J. E., Di Baldassarre, G., & Ward, P. J. (2021). Flood frequency analysis in data-scarce regions: Insights from the Sudano–Sahel. Journal of Hydrology: Regional Studies, 35, 100819. https://doi.org/10.1016/j.ejrh.2021.100819 [Google Scholar] [Crossref]

16. Morris, G. L., & Fan, J. (1998). Reservoir sedimentation handbook: Design and management of dams, reservoirs, and watersheds. New York, NY: McGraw-Hill. [Google Scholar] [Crossref]

17. Palmieri, A., Shah, F., & Dinar, A. (2001). Economics of reservoir sedimentation and sustainable management. Journal of Environmental Management, 61(2), 149–163. https://doi.org/10.1006/jema.2000.0392 [Google Scholar] [Crossref]

18. Punuf, D. A., Sartohadi, J., & Setiawan, M. A. (2025). Community-based management of small reservoirs in areas prone to erosion, landslides, and drought. Environmental Sustainability, 15(1), 83–96. https://doi.org/10.1007/s42398-025-00345-1 [Google Scholar] [Crossref]

19. U.S. Army Corps of Engineers. (2013). EM 1110-2-1003: Hydrographic surveying. Washington, DC: USACE. [Google Scholar] [Crossref]

20. U.S. Bureau of Reclamation. (1985). Area–capacity curves for reservoirs. Denver, CO: USBR. [Google Scholar] [Crossref]

21. World Meteorological Organization. (2009). Guide to hydrological practices (WMO-No. 168, 6th ed.). Geneva: WMO. [Google Scholar] [Crossref]

Metrics

Views & Downloads

Similar Articles

© 2026 IJLTEMAS · RSIS International. All rights reserved. ISSN 2278-2540.