Determination of Influence Levels of Natural Factors Affecting Infiltration and Runoff: A Case Goksu Basin

Authors

  • Fatih Karaosmanoglu Ministry of National Education, Adana, Turkey

DOI:

https://doi.org/10.32734/injar.v4i2.5537

Keywords:

Goksu Basin, hydrologic model, infiltration, influence levels, runoff

Abstract

Water is an indispensable element for human and other living life to live.  Therefore, in any river basin, it is very important to calculate the hydrological cycle parameters such as evaporation, infiltration, and runoff, and to determine the level of influence of natural factors affecting this process. In this study, In Goksu Basin, it is aimed to determine the effect levels of natural criteria such as lithology, soil, land use/cover, soil cover (ndvı), slope, aspect, on infiltration and runoff. In the hydrological model developed for this purpose, natural criteria, digitization formula, ArcGIS based analytical hierarchy (AHP) model program were processed and their effect levels were revealed. According to this result, infiltration and runoff values ​​are close to each other; Lithology 57.1%, soil 12.9%, land use/soil cover 18.4%, slope and aspect between 5.1% and 6.4% were determined. As a result of the model application, the total infiltration and flow amounts of 407.1 mm calculated with the converted real infiltration and runoff coefficients were correlated with the current height of 429.2 mm. It was found to be quite successful at 0.95.

Downloads

Download data is not yet available.

References

J. M. Tromble, K. G. Renard, and A. P. Thatcher, “Infiltration for three rangeland soil-vegetation complexes,” Rangel. Ecol. Manag. Range Manag. Arch., vol. 27, no. 4, pp. 318–321, 1974.

T. Dunne and W. E. Dietrich, “Experimental study of Horton overland flow on tropical hillslopes,” J. Geomorphol, vol. 35, pp. 40–59, 1980.

R. C. Ward and M. Robinson, Principles of hydrology. McGraw-Hill New York, 1967.

T. Dunne, W. Zhang, and B. F. Aubry, “Effects of rainfall, vegetation, and microtopography on infiltration and runoff,” Water Resour. Res., vol. 27, no. 9, pp. 2271–2285, 1991.

J. Poulenard, P. Podwojewski, J.-L. Janeau, and J. Collinet, “Runoff and soil erosion under rainfall simulation of Andisols from the Ecuadorian Páramo: effect of tillage and burning,” Catena, vol. 45, no. 3, pp. 185–207, 2001.

A. Rodríguez Rodríguez, J. A. Guerra, S. P. Gorrín, C. D. Arbelo, and J. L. Mora, “Aggregates stability and water erosion in Andosols of the Canary Islands,” L. Degrad. Dev., vol. 13, no. 6, pp. 515–523, 2002.

M. Nanzyo, S. Shoji, and R. Dahlgren, “Physical characteristics of volcanic ash soils,” Developments in Soil Science, vol. 21, Elsevier, 1993, pp. 189–207.

J.-L. Perrin, C. Bouvier, J.-L. Janeau, G. Menez, and F. Cruz, “Rainfall/runoff processes in a small peri‐urban catchment in the Andes mountains. The Rumihurcu Quebrada, Quito (Ecuador),” Hydrol. Process., vol. 15, no. 5, pp. 843–854, 2001.

F. Zehetner and W. P. Miller, “Erodibility and runoff-infiltration characteristics of volcanic ash soils along an altitudinal climosequence in the Ecuadorian Andes,” Catena, vol. 65, no. 3, pp. 201–213, 2006.

B. P. Warkentin, “Properties of Andisols important to engineering,” in Proceedings of the Sixth International Soil Classification Workshop, Chile and Ecuador. Part I: Papers, Sociedad Chilena de la Ciencia del Suelo. Santiago, Chile, 1985, pp. 121–150.

A. Cerdà, “Seasonal changes of the infiltration rates in a Mediterranean scrubland on limestone,” J. Hydrol., vol. 198, no. 1–4, pp. 209–225, 1997.

A. Cerdà, “The influence of aspect and vegetation on seasonal changes in erosion under rainfall simulation on a clay soil in Spain,” Can. J. Soil Sci., vol. 78, no. 2, pp. 321–330, 1998.

A. Cerdà, “Soil aggregate stability under different Mediterranean vegetation types,” Catena, vol. 32, no. 2, pp. 73–86, 1998.

C. C. Jiménez, M. Tejedor, G. Morillas, and J. Neris, “Infiltration rate in andisols: Effect of changes in vegetation cover (Tenerife, Spain),” J. Soil Water Conserv., vol. 61, no. 3, pp. 153–158, 2006.

A. Molina, G. Govers, V. Vanacker, J. Poesen, E. Zeelmaekers, and F. Cisneros, “Runoff generation in a degraded Andean ecosystem: Interaction of vegetation cover and land use,” Catena, vol. 71, no. 2, pp. 357–370, 2007.

F. Domingo, L. Villagarcía, A. J. Brenner, and J. Puigdefábregas, “Measuring and modelling the radiation balance of a heterogeneous shrubland,” Plant. Cell Environ., vol. 23, no. 1, pp. 27–38, 2000.

V. M. Castillo, A. Gomez-Plaza, and M. Martınez-Mena, “The role of antecedent soil water content in the runoff response of semiarid catchments: a simulation approach,” J. Hydrol., vol. 284, no. 1–4, pp. 114–130, 2003.

J. Puigdefábregas, “The role of vegetation patterns in structuring runoff and sediment fluxes in drylands,” Earth Surf. Process. Landforms J. Br. Geomorphol. Res. Gr., vol. 30, no. 2, pp. 133–147, 2005.

P. M. Saco, G. R. Willgoose, and G. R. Hancock, “Eco-geomorphology of banded vegetation patterns in arid and semi-arid regions,” Hydrol. earth Syst. Sci., vol. 11, no. 6, pp. 1717–1730, 2007.

M. Moreno-de Las Heras, L. Merino-Martín, and J. M. Nicolau, “Effect of vegetation cover on the hydrology of reclaimed mining soils under Mediterranean-Continental climate,” Catena, vol. 77, no. 1, pp. 39–47, 2009.

S. Manfreda, T. M. Scanlon, and K. K. Caylor, “On the importance of accurate depiction of infiltration processes on modelled soil moisture and vegetation water stress,” Ecohydrol. Ecosyst. L. Water Process Interact. Ecohydrogeomorphology, vol. 3, no. 2, pp. 155–165, 2010.

J. Neris, C. Jiménez, J. Fuentes, G. Morillas, and M. Tejedor, “Vegetation and land-use effects on soil properties and water infiltration of Andisols in Tenerife (Canary Islands, Spain),” Catena, vol. 98, pp. 55–62, 2012.

T. L. Saaty, “A scaling method for priorities in hierarchical structures,” J. Math. Psychol., vol. 15, no. 3, pp. 234–281, 1977.

J. H. Myers and M. I. Alpert, “Determinant buying attitudes: meaning and measurement,” J. Mark., vol. 32, no. 4_part_1, pp. 13–20, 1968.

N. Akpınar, “Madencilik sonrası alan kullanım alternatiflerinin değerlendirilmesinde fuzzy set tekniğinden yararlanma olanakları üzerine bir araştırma,” Ankara Üniversitesi Ziraat Fakültesi Yayınları, vol. 38, 1995.

T. L. Saaty and L. G. Vargas, Decision making with the analytic network process, vol. 282. Springer, 2006.

E. Eroğlu and F. Lorcu, “Data Envelopment Analytic Hiyerarchy Process, Decision Making” İ.Ü. İşletme Fakültesi İşletme Dergisi C:36 Sayı:2 Kasım 2007 Sayfa: 30-53

S. Görmüş, “Korunan alan planlama stratejilerinin değerlendirilmesi: Kastamonu-Bartın Küre Dağları milli parkı örneği,” Bartın Orman Fakültesi Derg., vol. 14, no. 1. Special Issue, pp. 37–48, 2012.

R. C. Ward, Principles of hydrology, vol. 106, no. 4. LWW, 1968.

F. Karaosmanoglu, “Determination and sustainability of Göksu basin (Seyhan) water potential (Göksu havzası'nın (Seyhan) su potansiyelinin belirlenmesi ve sürdürülebilirliği),” Fırat Üniversitesi, Sosyal Bilimler Enstitüsü, Coğrafya Anabilim Dalı, Doktora Tezi(PhD Thesis), 2020.

Published

2021-07-28

How to Cite

Karaosmanoglu, F. (2021). Determination of Influence Levels of Natural Factors Affecting Infiltration and Runoff: A Case Goksu Basin. Indonesian Journal of Agricultural Research, 4(2), 92 - 104. https://doi.org/10.32734/injar.v4i2.5537