Sediment Yield Index (SYI) based prioritization of Benisagar reservoir catchment area using remote sensing and GIS

Authors

  • Rakesh Kumar Yadav Institute of Agricultural Sciences, Banaras Hindu University, Varanasi-221005, Uttar Pradesh Author
  • R.K. Jaiswal National Institute of Hydrology, Regional Centre, Bhopal, Madhya Pradesh Author
  • A.K. Nema Institute of Agricultural Sciences, Banaras Hindu University, Varanasi-221005, Uttar Pradesh Author
  • Shilpi Chourasia National Institute of Hydrology, Regional Centre, Bhopal, Madhya Pradesh Author

DOI:

https://doi.org/10.53550/

Keywords:

Composite erosion intensity unit, Remote sensing and GIS, Sediment yield index, Watershed prioritization

Abstract

An integrated approach to identify priority/critical sub-watershed by the Sediment  Yield Index (SYI) model of the All India Soil and Land Use Survey (AIS&LUS,  1991) has been used for identification of priority sub-watersheds in Benisagar  reservoir catchment of Madhya Pradesh. The SYI values of individual sub  watersheds have been computed in 36 sub-watersheds and categorized in very  high, high, medium, low and very low priority classes. The significant variation in  SYI values calls for conservation planning in cases of very high (13.15 sq km) and  high (27.50 sq km) priority sub-watersheds. The SYI method of prioritization has  been employed for identification of environmentally stressed sub-watersheds in  Banisagar catchment and concluded that 41.93 sq km area which is nearly 50% of  total catchment comes under very high and high priorities need immediate  attention for soil conservation measures.

References

AISS&LUP. 1991. Methodology for Priority Delineation Survey. All India Soil Survey and Land Use Planning, Ministry of Agriculture, Government of India, New Delhi. Bali, Y.P. and Karale, R.L. 1977. A sediment yield index for choosing priority basins. IAHS-AISH Publ., 222: 180. Jain, S.K. and Goel M.K. 2002 Assessing the vulnerability to soil erosion of the Ukai Dam catchments using remote sensing and GIS. Hydrol Sci., 47(1): 31-40. Jaiswal R.K., Thomas T., Galkate R.V., Ghosh N.C. and Singh S. 2014. "Watershed Prioritization Using Saaty's AHP Based Decision Support for Soil Conservation Measures". Water Resour. Manage., 28: 475-494. Karale, R. and Bali, Y.P. 1977. Priority watersheds for soil conservation work in Matatilla catchment. J. Indian Soc. Soil Sci., (25): 331-336. Khan, M.A., GuptaV.P. and Moharanam, P.C. 2001.Watershed prioritization using remote sensing and geographical information system: a case study from Guhiya India. J. Arid Environ., 49: 465-475. Pandey, A., Chowdary, V.M. And Mal, B.C. 2007. Identification of critical erosion prone areas in the small agricultural watershed using USLE, GIS and remote sensing. J. Water Resour. Manage., 21: 729-746. Rao, B.K., Gaur M.L., Kumar, Gopal, Kurothe, R.S. and Tiwari, S.P. 2013. Morphological Characterization and Alterations in Cross Section of Different Order Streams of Mahi Ravines. Ind. J. Soil Cons., 41(1): 20-24. Rao, B.K., Mishra, P.K., Kurothe, R.S., Pande, V.C. and Kumar, Gopal. 2014. Effectiveness of Dichanthium annulatum in Watercourses for Reducing Sediment Delivery from Agricultural Watersheds, Clean Soil, Air, Water. 42. DOI:10.1002/clen.201400265.

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Published

2026-01-14

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Section

Articles

How to Cite

Sediment Yield Index (SYI) based prioritization of Benisagar reservoir catchment area using remote sensing and GIS . (2026). Indian Journal of Soil Conservation, 43(2), 115-119. https://doi.org/10.53550/

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