Measurement of width, depth and soil loss for gully erosion impact in the Sudan Savannah region, Kebbi State Nigeria
Suleiman Usman

, Aliyu Aminu, Sakaba YB
Резюме: Soil erosion has become global news as it affects soil, environmental and food security in many nations. Gully erosion is one of the serious types of soil erosion that damages soil productivity and soil quality in African drylands. The aim of this study was to measure the impact of gully erosion based on width, depth and soil volume loss in the Sudan Savannah’s dryland of Kebbi State Nigeria. Gully erosion impact was recorded and calculated based on USDA standard method of measuring soil erosion in the field. Results show that the highest soil volume loss (796647.2 m3) was recorded at Gwandu whereas the lowest (241.60 m3) was recorded at Augie. The maximum width (49.56 m) was recorded at Tarasa and minimum (1.01 m) at Argungu2. Likewise, maximum depth (8.666 m) was recorded at Badariyya and minimum (0.94 m) was recorded at Argungu. The soil physical properties revealed that soil structural configuration were classified as granular, massive and single-grains, and are non-coherent but loose and poorly sorted. Most of the sites have more that 65% sand characterized as low organic matter, nitrogen and CEC. Sites were considerably affected by gully erosion and the impact was physical and quantitative. Soil quality (Sq) and land suitability (Ls) potentials for agricultural production were affected. The affected sites were evaluated as bad land (Sq5, Ls5), notably damaged (Sq4, Ls4) and partially damaged (Sq3, Ls3). The study recommended the use of advanced soil conservation measures across the affected sites, which will employ the adaptation of water harvesting systems, orchard plantation and drainages.
Ключови думи: chemical properties; depth of gully; gully erosion; physical properties; soil volume loss; width of gully
Цитиране: Usman, S., Aminu A., &YB, S. (2025). Measurement of width, depth and soil loss for gully erosion impact in the Sudan Savannah region, Kebbi State Nigeria. Bulgarian Journal of Soil Science Agrochemisty and Ecology, 59(1), 17-32.
Литература: (click to open/close) | Al Shoumik, B. A., Khan, M. Z., & Islam, M. S. (2023). Soil erosion estimation by RUSLE model using GIS and remote sensing techniques: A case study of the tertiary hilly regions in Bangladesh from 2017 to 2021. Environmental Monitoring and Assessment, 195(9), 1096. Andualem, T. G., Hewa, G. A., Myers, B. R., Peters, S., & Boland, J. (2023). Erosion and sediment transport modeling: a systematic review. Land, 12(7), 1396. Baade, J., Aucamp, I., Collett, A., Eckardt, F., Funk, R., Glotzbach, C., ... & Roux, J. J. L. (2024). Soil Erosion Research and Soil Conservation Policy in South Africa. In Sustainability of Southern African Ecosystems under Global Change: Science for Management and Policy Interventions (pp. 335-368). Cham: Springer International Publishing. https://doi.org/10.1007/978-3-031-10948-5_13. Bray, R.H., & Kurtz, L.T. (1945). Determination of Total Organic and Available Forms of Phosphorus in Soils. Soil Science, 59, 39-46. http://dx.doi.org/10.1097/00010694-194501000-00006. Dou, X., Ma, X., Zhao, C., Li, J., Yan, Y., & Zhu, J. (2022). Risk assessment of soil erosion in Central Asia under global warming. Catena, 212, 106056. Evans, R. (2013). Assessment and monitoring of accelerated water erosion of cultivated land–when will reality be acknowledged?. Soil use and management, 29(1), 105-118. https://doi.org/10.1111/sum.12010. Ezeh, C. U., Igwe, O., Asare, M. Y., Ndulue, D. C., Ayadiuno, R. U., & Preko, K. (2024). A review of soil erosion modeling in Nigeria using the Revised Universal Soil Loss Equation model. Agrosystems, Geosciences & Environment, 7(1), e20471. FAO (2022). A primer on soil analysis using visible and near-infrared (vis-NIR) and mid-infrared (MIR) spectroscopy. https://doi.org/10.4060/cb9005en. https://openknowledge.fao.org/items/b60663a8-22a9-4789-9a39-4fd51d21f922 (last accessed 02.01.2025). FAO, Rome Italy. Available at: https://www.fao.org/about/meetings/soil-erosion-symposium/key-messages/en/(last accessed 12.11.2024). FAO-GSP (2017). Global Soil Partnership Endorses Guidelines on Sustainable Soil Management. https://efotg.sc.egov.usda.gov/references/public/MO/gully-ephemeral_erosion.pdf (last accessed 28.11.2024). Gezici, K., Şengül, S., & Kesgin, E. (2025). Advances in sheet erosion and rainfall simulator performance: A comprehensive review. Catena, 248, 108601. Jat, M. L., Gathala, M. K., Choudhary, M., Sharma, S., Jat, H. S., Gupta, N., & Singh, Y. (2023). Conservation agriculture for regenerating soil health and climate change mitigation in smallholder systems of South Asia. Advances in agronomy, 181, 183-277. https://doi.org/10.1016/bs.agron.2023.05.003. Onyelowe, K. C., Van, D. B., Ikpemo, O. C., Ubachukwu, O. A., & Van Nguyen, M. (2018). Assessment of rainstorm induced sediment deposition, gully development at Ikot Ekpene, Nigeria and the devastating effect on the environment. Environmental Technology & Innovation, 10, 194-207. Pandey, A., Himanshu, S. K., Mishra, S. K., & Singh, V. P. (2016). Physically based soil erosion and sediment yield models revisited. Catena, 147, 595-620. Rui, L. I., Wenyou, H. U., Zhongjun, J. I. A., Hanqiang, L. I. U., Zhang, C., Huang, B., ... & Taboada, M. A. (2024). Soil degradation: A global threat to sustainable use of black soils. Pedosphere, 35(1), 264-279. https://doi.org/10.1016/j.pedsph.2024.06.011. Salhi, A., El Hasnaoui, Y., Pérez Cutillas, P., & Heggy, E. (2023). Soil erosion and hydroclimatic hazards in major African port cities: the case study of Tangier. Scientific Reports, 13(1), 13158. doi: 10.1038/s41598-023-40135-3. https://pubmed.ncbi.nlm.nih.gov/37573364/(last accessed 17.11.2024). Schoeneberger, P.J., Wysocki, D.A., Benham, E.C., & Soil Survey Staff. (2021). Field book for describing and sampling soils, Version 3.0. National Soil Survey Center Natural Resources Conservation Service U.S. Department of Agriculture. Singh, M. C., Sur, K., Al-Ansari, N., Arya, P. K., Verma, V. K., & Malik, A. (2023). GIS integrated RUSLE model-based soil loss estimation and watershed prioritization for land and water conservation aspects. Frontiers in Environmental Science, 11, 1136243. Srinivasarao, C., Kumar, G. R., Manasa, R., Pilli, K., Sahoo, S., Rakesh, S., ... & Malleswari, S. (2023). Dryland farming: Technological and management options for sustainable agriculture and food systems. In: Encyclopedia of Soils in the Environment (Second Edition)(Michael J. Goss, Margaret Oliver, eds), vol 3, 113-124. https://doi.org/10.1016/B978-0-12-822974-3.00219-6. USDA (2012). Estimating soil loss from gully erosion. Jun 1, 2002 – Section I-D-3. FOTG Erosion Prediction. https://www.fao.org/global-soil-partnership/resources/highlights/detail/en/c/416516 (last accessed 07.12.2024). Usman, S., Nabayi, A., Hamisu, I., & Abdullahi, A. S. (2020). Chapter 34: Digging the environmental resources with soil survey: Concept, Objectives, Types, Stages and Uses. Our Changing Environment and Development ed. (Jacinta AO). Usman, S. (2013). Understanding Soils: Environment and Properties under Agricultural Conditions. Publish America, Baltimore, USA. Usman, S., Jayeoba, J. O., & Kundiri, A. M. (2024). Climate Change at a Global Concept: Impacts and Adaptation Measures. International Journal of Environment and Climate Change, 14(6), 445-459. doi: https://doi.org/10.9734/ijecc/2024/v14i64242. Usman, S. (2007). Sustainable Soil Management of the Dryland Soils of Northern Nigeria. GRIN Publishing GmbH, Munich, Germany. Usman, S. (2016). Surface soil factors and soil characteristics in geo-physical milieu of Kebbi State Nigeria. Eurasian Journal of Soil Science, 5(3), 209-220. doi: 10.18393/ejss.2016.3.209-220. Usman, S. (2024a) Evaluation of local compost methods for soil management in northwestern Nigeria: An advanced scientific theories and economic values. Bulgarian Journal of Soil Science Agrochemisty and Ecology, 58(2), 46-60. doi: https://doi.org/10.61308/RKVQ3583. Usman, S. (2024b). Soil and water management perspectives for tropical and dryland areas of Africa. Soil Studies. 13(2), 104-118. https://doi.org/10.21657/soilst.1601786. Usman, S. (2025). Advanced soil conservation for African drylands: from erosion models to management theories. Pedosphere, https://doi.org/10.1016/j.pedsph.2025.01.012. Usman, S., Omar, G., & Onokebhagbe, V. (2017). Soil problems in dryland environment of sub-Saharan Africa: a review of the impact on soil erosion and desertification. Biological and Environmental Sciences Journal for the Tropics. 14(1), 91-105. Tropics. 14(1), 91-105. Usman, S., & Jayeoba, J. O. (2024). Evaluation of soil structural quality and soil fertility indicators of dryland and fadama milieus using soil profile pits. https://doi.org/10.21203/rs.3.rs-4731751/v1. Usman, S., Amana, S. M., & Jayeoba, J. O. (2025). Evaluation of surface soil quality and land suitability for agricultural soils affected by soil erosion. Discover Soil, 2(1), 1-16. doi: https://doi.org/10.1007/s44378-025-00031-w. Usman, S., Mahmud, A. T., & Adinoyi, S. (2019). Evaluation of gully erosion impact on soil quality development in Fagoji, Kargo and Zai villages of Dutse, Jigawa State Nigeria. Nigerian Journal of Soil and Environmental Research, 17, 89-99. Usman, S., Noma, S. S., & Kudiri, A. M. (2016). Dynamic surface soil components of land and vegetation types in Kebbi State Nigeria. Eurasian Journal of Soil Science, 5(2), 113-120. doi:10.18393/ejss.2016.2.113-120. Valkanou, K., Karymbalis, E., Bathrellos, G., Skilodimou, H., Tsanakas, K., Papanastassiou, D., & Gaki-Papanastassiou, K. (2022). Soil loss potential assessment for natural and post-fire conditions in Evia Island, Greece. Geosciences, 12(10), 367. https://doi.org/10.3390/geosciences12100367. Wen, H., Wang, T., Zhang, T., & Xue, Q. (2024). Footprint of soil erosion effects on pedodiversity at different hierarchical levels: A study across China’s water erosion-prone areas. Journal of Environmental Management, 372, 123152. https://doi.org/10.1016/j.jenvman.2024.123152. Yang, J., Wei, H., Quan, Z., Xu, R., Wang, Z., & He, H. (2023). A global meta-analysis of coal mining studies provides insights into the hydrologic cycle at watershed scale. Journal of Hydrology, 617, 129023. https://doi.org/10.1016/j.jhydrol.2022.129023.
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| Дата на публикуване: 2025-03-27
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