Al-Adhaim River is one of the main tributaries of the Tigris River, it has three main tributaries: Khassa Soo, Aq Soo, and Tuz Chia, all of which are seasonal streams. The course of Al-Adhaim River and its three tributaries flow in a very rugged topography, especially in the upper courses with high gradients. The exposed rocks in the catchment area are mainly soft claystone rocks with coarse conglomerate and sandstone, which are very easily eroded by the running water, especially during floods. We have used SRTM images of ground resolution of 3-arc-second (90 m) and a vertical resolution of approximately 10 m to divide the catchment area into 14 sub-basins using ArcGIS (Arc map). Moreover, many factors concerning soil erosion were calculated, such as drainage density, erosion intensity, erosion rates, and soil erodibility. We have found that the drainage density ranges between (0.26 - 0.39) km/km2 with class Poor, the Erosion Intensity ranges between (264 - 387) m/km2 with Very poor zone, the Erosion rates (Kk) ranges from (0.01 - 0.325), and the Erosion Coefficient ranges from (0.7 - 1.0).
References
[1]
Buringh, P. (1960) Soils and Soil Conditions in Iraq. Republic of Iraq, Ministry of Agriculture, Directorate General of Agricultural Research and Projects.
[2]
Abbasa, N., Wasimia, S.A. and Al-Ansari, N. (2016) Assessment of Climate Change Impacts on Water Resources of Al-Adhaim, Iraq Using SWAT Model. Engineering, 8, 716-732. https://doi.org/10.4236/eng.2016.810065
[3]
Khare, D., Mondal, A., Kundu, S. and Mishra, P.K. (2016) Climate Change Impact on Soil Erosion in the Mandakini River Basin, North India. Applied Water Science, 7, 2373-2383. https://doi.org/10.1007/s13201-016-0419-y
[4]
Sajadi, P., Singh, A., Mukherjee, S., Luo, P., Chapi, K. and Salari, M. (2019) Multivariate Statistical Analysis of Relationship between Tectonic Activity and Drainage Behavior in Qorveh-Dehgolan Basin Kurdistan, Iran. Geocarto International, 36, 540-562. https://doi.org/10.1080/10106049.2019.1611948
[5]
Hamdan, A.N.A., Almuktar, S. and Scholz, M. (2021) Rainfall-Runoff Modeling Using the HEC-HMS Model for the Al-Adhaim River Catchment, Northern Iraq. Hydrology, 8, Article 58. https://doi.org/10.3390/hydrology8020058
[6]
Hussain, H.H., Obaidy, A.I.A., Hommadi, A.H., Hudaib, H.T.A., Masoodi, A.T.A., Saeed, F.H., et al. (2022) Modifying the Spillway of Adhaim Dam, Reducing Flood Impact, and Saving Water. Journal of Water Management Modeling, 30, C485. https://doi.org/10.14796/jwmm.c485
[7]
Horton, R.E. (1945) Erosional Development of Streams and Their Drainage Basins; Hydrophysical Approach to Quantitative Morphology. Geological Society of America, 56, 275-370. http://dx.doi.org/10.1130/0016-7606(1945)56[275:EDOSAT]2.0.CO;2
[8]
Bergsma, E. (1983) Rainfall Erosion Surveys for Conservation Planning. Infinite Technology Corp, 2, 166-174.
[9]
Amiri, F. (2010) Estimate of Erosion and Sedimentation in Semi-Arid Basin Using Empirical Models of Erosion Potential within a Geographic Information System. Air, Soil and Water Research, 3, ASWR.S3427. https://doi.org/10.4137/aswr.s3427
[10]
Sissakian, V.K. and Fouad, S.F. (2015) Geological Map of Iraq. 4th Edition, Scale 1:1000000. Iraqi Bulletin of Geology and Mining, 11, 9-18.
[11]
Fouad, S.F. (2015) Tectonic Map of Iraq, Scale 1:1000 000. Iraqi Bulletin of Geology and Mining, 11, 1-8.
[12]
Melton, M.A. (1957) An Analysis of the Relations among Elements of Climate, Surface Properties, and Geomorphology. Technical Report No. 11, Columbia University.
[13]
Kinthada, N.R., Chirala, U. and Gurram, M.K. (2012) Correlation of Geomorphometric Parameters for the Hydrological Characterization of Meghadrigedda Watershed, Visakhapatnam, India—A GIS Approach. International Journal on Engineering, Science and Technology, 4, 3169-3183.