Assessment and mapping of the agro-ecological risk in the Mina plain (northwestern Algeria): Soil salinity and irrigation water quality

Author:

Berkane Ibrahim1,Boulenouar Houari1,Bekhadda Youcef2,Gacem Farid12,Douaoui Abdelkader3,Larid Mohamed1,Benabdeli Khelloufi4

Affiliation:

1. Laboratory: Biodiversity, Water and Soil Conservation , University of Mostaganem , Mostaganem 27000 , Algeria

2. INSID – National Institute of soils, Irrigation and Drainage , Relizane 48000 , Algeria

3. University Center of Tipaza , Laboratory Management and Valorization of Agriculture and Aquatic Ecosystems (LMVAAE) , Tipaza 42022 , Algeria

4. Laboratory: Geo-Environment and Spatial Development , University of Mascara , Mascara 29000 , Algeria

Abstract

Abstract The objective of this study is to contribute in assessing and mapping of the salinity risks level of soil and groundwater for irrigation in the Mina plain. The experimentation was carried out on a surface area of 4000 ha. Electromagnetic conductivity (EM) measurements and soil and well water samples were taken and analysed. The results showed an important spatial variability of the electrical conductivity (EC) of saturated paste extracts (ECe), which varied between 1.35 and 28.8 dS/m. The isovalues map of ECe was estimated by the regression equation and interpolated by the ordinary kriging (OK) method which showed that the area of saline soils (ECe > 4 dS/m) represented 90% of the study area. The results also showed poor to unsuitable well water quality. To find the risk of salinity and sodium, the water points were classified as C3S3 (2.5%), C4S2 (5%), C4S3 (30%) and C4S4 (62.5%). Spatial distribution maps of total dissolved solids (TDS), electrical conductivity of water (ECw) and sodium adsorption ratio (SAR) interpolated by inverse distance weighting (IDW) showed too high risk levels of ECw (>5000 μS/cm) and TDS (>3000 mg/l) occupying a large wellfield (70%); with regard to SAR (>18), 36% of the groundwater had a high risk of sodium. These results showed that the choice of tolerant crops, redevelopment of drainage systems and irrigation with less saline water should be designed for the sustainability of soil productivity and agro-ecosystems.

Publisher

Walter de Gruyter GmbH

Subject

Ecology

Reference40 articles.

1. Abdelhafid, Y. (2010). Soil salinity mapping by electromagnetic induction: Case of the eastern zone of the irrigated perimeter of the Mina. Magister thesis in Agronomy, ENSA, Algiers.

2. ANRH (2003). Monitoring and modeling of soil salinity in the irrigated perim eter of the Mina.

3. APHA (1995). Standard methods for the examination for water and wastewa ter. Washington: Byrd Press Springfield.

4. Ayers, R. & Bronson S. (1975). Guidelines for interpretation of water quality for agriculture. Davis: University of California.

5. Bronson, K.F., Booker, J.D., Officer, S.J., Lascano, R.J., Mass, S.J., Searcy, S.W. & Booker J. (2005). Apparent electrical conductivity, soil properties and spatial covariance in the U.S. southern high plains. Precision Agriculture, 6, 297‒311. DOI: 10.1007/s11119-005-1388-6.10.1007/s11119-005-1388-6

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