Hydrochemical Assessment and Groundwater Pollution in the Southern Hodna Chott Region (Algeria): Characteristics, Pollution Levels, and Drinking Water Quality Implications.
Abstract
Groundwater pollution has become a major issue of concern to both researchers and policymakers. Many climatic and anthropogenic factors impact groundwater. Groundwater is the sole source of water for all needs in a semi-arid area south of the Chott Hodna. Recently, the quality of drinking water has declined due to overexploitation of the aquifer and the presence of contaminating factors. This study aims to describe the hydrochemical characteristics of the aquifer, assess the level of groundwater pollution, and geographically locate the polluted areas. In 2019, we analyzed samples from 45 boreholes south of the Chott Hodna for 13 physicochemical parameters. The level of water pollution was assessed using the Groundwater Pollution Index (GPI). This index has proven effective in communicating information about water pollution to citizens and policymakers. We also used geographical approaches such as inverse distance weighting (IDW) and conventional kriging to present the polluted areas. It was found that calcium concentrations were all above health standards, and more than 93% of the samples had SO₄²⁻ and TH concentrations above the drinking water threshold. In addition, 58% of the samples had nitrate levels above the drinking water standard of 50 mg/L. The Piper diagram classifies groundwater into sulfate-calcium-magnesium-chloride hydrochemical facies, and these waters tend to become salinized. The Gibbs diagram reveals that the groundwater is younger and that evaporation is the dominant process. According to the GPI results, 18% of the samples fell into the insignificant pollution category, and 40% into the low pollution category, while only 22% fell into the moderate pollution category, 7% into the high pollution category, and 13% into the very high pollution category. The geographical presentation of the GPI index revealed that the agricultural zone of Maadher is the one with poor water quality. The analysis showed that borehole water near Sebkha has higher mineral contents and is not potable, compared to borehole water in the northern and eastern study areas.
Keywords: groundwater quality, hydrochemistry, Groundwater Pollution Index (GPI), spatial distribution, drinking water standards
© 2025 Serbian Geographical Society, Belgrade, Serbia.
This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution-NonCommercial-NoDerivs 3.0 Serbia.
Full Text:
PDFReferences
Abdelkarim, B., Antunes, I. M. H. R., Abaab, N., & Agoubi, B. (2023). Modeling groundwater recharge mechanisms in semi-arid regions: Integration of hydrochemical and isotopic data. Euro-Mediterranean Journal for Environmental Integration, 8, 893–905. https://doi.org/10.1007/s41207-023-00400-3
Abidi, J. H., Elzain, H. E., Sabarathinam, C., Selmane, T., Selvam, S., Farhat, B., & Senapathi, V. (2024). Evaluation of groundwater quality indices using multi-criteria decision-making techniques and a fuzzy logic model in an irrigated area. Groundwater for Sustainable Development, 25, Article 101122. https://doi.org/10.1016/j.gsd.2024.101122
Adimalla, N., Qian, H., & Nandan, M. J. (2020). Groundwater chemistry integrating the pollution index of groundwater and evaluation of potential human health risk: A case study from hard rock terrain of south India. Ecotoxicology and Environmental Safety, 206, 111217. https://doi.org/10.1016/j.ecoenv.2020.111217
ANRH. (2006). Modelling of the Hodna aquifer. Mission I: Data collection, analysis and synthesis (in French). Agence Nationale des ressources hydrauliques, Algérie; Icosium Forage and Engineering Services.
Bahrami, M., Zarei, A. R., & Rostami, F. (2020). Temporal and spatial assessment of groundwater contamination with nitrate by nitrate pollution index (NPI) and GIS (case study: Fasarud Plain, southern Iran). Environmental Geochemistry and Health, 42(10), 3119–3130. https://doi.org/10.1007/s10653-020-00546-x
Boukich, O., Ben-Tahar, R., Gharibi, E., Bourhia, M., Shazly, G. A., Dauelbait, M., Mahjoub, M., El Guerrouj, B., & Smiri, Y. (2025). Assessment of groundwater pollution using PIG index and microbiological indicators in the Angads Plain, Morocco. Scientific Reports, 15(1), Article 26412. https://doi.org/10.1038/s41598-025-99956-z
Darmawan, Y., Munawar, M., Atmojo, D. A., Wahyujati, H., & Nainggolan, L. (2023). Accuracy assessment of spatial interpolation methods using ArcGIS. E3S Web of Conferences, 464, Article 09005. EDP Sciences.
Deutsch, W. J. (2020). Groundwater geochemistry: Fundamentals and applications to contamination. CRC Press. https://doi.org/10.1201/9781003069942
Djebassi, T. (2021). Characterization and mapping of groundwater pollution risks in the Tébessa Plain (Northeastern Algeria) using GIS tools, and an attempt at integrated water resource management [Doctoral dissertation]. http://localhost:8080/jspui/handle/123456789/1219
Doderović, M., Mijanović, I., Burić, D., & Milenković, M. (2020). Assessment of the water quality in the Morača River basin (Montenegro) using water quality index. Bulletin of the Serbian Geographical Society, 100(2), 67–81. https://doi.org/10.2298/GSGD2002067D
Dougha, M., & Hasbaia, M. (2019). Contribution of the multivariate analysis and origin for groundwater quality of mixed aquifer in the M’sila Plain (Algeria). International Journal of Hydrology Science and Technology, 9(2), 154–172. https://doi.org/10.1504/IJHST.2019.098160
Ehya, F., & Saeedi, F. (2019). Assessment of groundwater quality in the Garmez area (Southeastern Khuzestan Province, SW Iran) for drinking and irrigation uses. Carbonates and Evaporites, 34, 1443–1454. https://doi.org/10.1007/s13146-018-0481-7
Gad, M., Gaagai, A., Eid, M. H., Szűcs, P., Hussein, H., Elsherbiny, O., Elsayed, S., Khalifa, M. M., Moghanm, F. S., & Moustapha, M. E. (2023). Groundwater quality and health risk assessment using indexing approaches, multivariate statistical analysis, artificial neural networks, and GIS techniques in El Kharga Oasis, Egypt. Water, 15(6), Article 1216. https://doi.org/10.3390/w15061216
Gibbs, R. J. (1970). Mechanisms controlling world water chemistry. Science, 170, 1088–1090.
Guiraud, R. (1973). The main features of the Hodna Chott basin hydrogeology, northern Algeria. Public Service Géologique, 39, 159–170.
Megahed, H. A., GabAllah, H. M., Ramadan, R. H., AbdelRahman, M. A., D’Antonio, P., Scopa, A., & Darwish, M. H. (2023). Groundwater quality assessment using multi-criteria GIS modeling in drylands: A case study at El-Farafra Oasis, Egyptian Western Desert. Water, 15(7), 1376. https://doi.org/10.3390/w15071376
Milanović, A., Kovčević-Majkić, J., & Milivojević, M. (2010). Water quality analysis of Danube River in Serbia – pollution and protection problems. Bulletin of the Serbian Geographical Society, 90(2), 47–68. http://doi.org/10.2298/GSGD1002047M
Najafpour, N., & Soltaninia, S. (2025). Groundwater quality assessment and refining vulnerability index through machine learning and pollution index integration: A case study of the Koohpayeh Plain in Central Iran. Anthropogenic Pollution, 9(1). https://doi.org/10.57647/j.jap.2025.0901.13
Reddy, S., Sunitha, V., & Suvarna, B. (2022). Groundwater quality and its potential health impacts nearby inactive mines using PIG and geospatial technology, southwestern part of Cuddapah Basin, Andhra Pradesh, South India. Groundwater for Sustainable Development, 17, Article 100742. https://doi.org/10.1016/j.gsd.2022.100742
Sanad, H., Mouhir, L., Zouahri, A., Moussadek, R., El Azhari, H., Yachou, H., Ghnimi, A., Ouled Lhaj, M., & Dakak, H. (2024). Assessment of groundwater quality using the pollution index of groundwater (PIG), nitrate pollution index (NPI), water quality index (WQI), multivariate statistical analysis (MSA), and GIS approaches: A case study of the Mnasra Region, Gharb Plain, Morocco. Water, 16(9), Article 1263. https://doi.org/10.3390/w16091263
Selmane, T., Dougha, M., Djerbouai, S., Djemiat, D., & Lemouari, N. (2023). Groundwater quality evaluation based on water quality indices (WQI) using GIS: Maadher Plain of Hodna, Northern Algeria. Environmental Science and Pollution Research, 30(11), 30087–30106. https://doi.org/10.1007/s11356-022-24338-1
Selmane, T., Dougha, M., Hasbaia, M., Ferhati, A., & Redjem, A. (2022). Hydrogeochemical processes and multivariate analysis for groundwater quality in the arid Maadher region of Hodna, northern Algeria. Acta Geochimica, 41(5), 893–909. https://doi.org/10.1007/s11631-022-00553-y
Seraiche, L., Dougha, M., Ghodbane, M., Selmane, T., Ferhati, A., & Djemiat, D. A. (2025). Groundwater vulnerability assessment in semi-arid regions using GIS-based DRASTIC models and FUZZY AHP: South Chott Hodna. Desalination and Water Treatment, 323, Article 101380. https://doi.org/10.1016/j.dwt.2025.101380
Stigter, T. Y., Ribeiro, L., & Carvalho Dill, A. M. M. (2006). Evaluation of an intrinsic and a specific vulnerability assessment method in comparison with groundwater salinisation and nitrate contamination levels in two agricultural regions in the south of Portugal. Hydrogeology Journal, 14(1), 79–99. https://doi.org/10.1007/s10040-004-0396-3
Subba Rao, N. (2012). GPI: A numerical index for dissemination of groundwater contamination zones. Hydrological Processes, 26(22), 3344–3356. https://doi.org/10.1002/hyp.8456
Taloor, A. K., Singh, C. K., & Shukla, A. (2023). Development of a modified groundwater quality index in arid regions using integrated weighting techniques. Environmental Monitoring and Assessment, 195(5), Article 471. https://doi.org/10.1007/s10661-023-11107-y
Tiwari, A. K., Singh, P. K., & Mahato, M. K. (2022). Groundwater quality evaluation and health risk assessment in semi-arid regions using integrated indices and GIS. Journal of Environmental Management, 310, Article 114752. https://doi.org/10.1016/j.jenvman.2022.114752
Verma, A., & Singh, N. B. (2021). Evaluation of groundwater quality using pollution index of groundwater (GPI) and non-carcinogenic health risk assessment in part of the Gangetic Basin. Acta Geochimica, 40(3), 419–440. https://doi.org/10.1007/s11631-020-00446-y
WHO. (2017). Guidelines for drinking-water quality. World Health Organization.
Refbacks
- There are currently no refbacks.
