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2024 | Vol. 25, nr 9 | 101--115
Tytuł artykułu

Study of the Relationship Between Evaporation, Soil Water De cit, and Air Temperature in Arid Regions (Case of the Touggourt Zone)

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Języki publikacji
EN
Abstrakty
EN
The primary objective of this study is to evaluate soil evaporation in arid regions using a minimal set of readily accessible parameters, which are represented through a nomogram. This work explores the relationships between soil evaporation, soil water deficit, and air temperature. Evaporation is a critical factor influencing the soil water regime. Irrigation artificially adjusts soil moisture to maintain it within optimal limits for vegetation. This regulation can only be effectively managed if the principles of soil-water balance are thoroughly understood. In arid and semi-arid regions, where water quality is often poor (high salinity), prolonged excessive irrigation can lead to soil salinization, thereby reducing agricultural productivity. In this study, ten lysimeters were used to measure soil evaporation at different levels of soil water saturation. The highest evaporation rate was recorded in fully saturated soil, peaking at 548 mm. This rate decreased as the soil water saturation decreased. Therefore, a good knowledge of the evaporation value is necessary to establish appropriate irrigation and soil leaching rates and consequently, an adequate water balance.
Wydawca

Rocznik
Strony
101--115
Opis fizyczny
Bibliogr. 34 poz., rys., tab.
Twórcy
  • Laboratory of Exploitation and Valorization of Natural Resources in Arid Zones, University of Ouargla, PB 147 RP, 30000 Ouargla, Algeria, mounir.bennamia@gmail.com
  • Laboratory of Exploitation and Valorization of Natural Resources in Arid Zones, University of Ouargla, PB 147 RP, 30000 Ouargla, Algeria, boutoutaoudjamel@gmail.com
  • Laboratory of Water and Environment Engineering in Saharan Environment (GEEMS), University of Ouargla, PB 147 RP, 30000 Ouargla, Algeria, sofiane.saggai@gmail.com
  • Higher School of Saharan Agriculture El Oued, PB 90 Chouhada, 39011 El Oued, Algeria
  • Experimental Station of Sidi Mehdi Touggourt, National Agronomic Research Institute of Algeria (INRAA), PB17, 55000 Touggourt, Algeria, Gherianisofiane@gmail.com
  • Laboratory of Exploitation and Valorization of Natural Resources in Arid Zones, University of Ouargla, PB 147 RP, 30000 Ouargla, Algeria, meriemelfergougui@yahoo.com
Bibliografia
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  • 2. Allen, S. 1990. Measurement and estimation of evaporation from soil under sparse barley crops in northern Syria. Agricultural and Forest Meteorology 49, 291–309. https://doi.org/10.1016/0168-1923(90)90003-O
  • 3. Aydin, M., Yang S.L., Kurt N., Yano T. 2005. Test of a simple model for estimating evaporation from bare soils in different environments. Ecological Modelling 182, 91–105. https://doi.org/10.1016/j.ecolmodel.2004.07.013
  • 4. Bekkari, N., Halis Y., Benhaddya M., Saker M. 2017. Étude de l’impact des activités agricoles sur l’environnement Oasien de la région de l’Oued Righ. Journal Algérien des Régions Arides.https://www.asjp.cerist.dz/en/article/103739
  • 5. Boast, C., T. Robertson. 1982. A “micro‐lysimeter” method for determining evaporation from bare soil: Description and laboratory evaluation. Soil Science Society of America Journal 46, 689–696. https://doi. org/10.2136/sssaj1982.03615995004600040005x
  • 6. Bouchahm, N., Chaib W., Drouiche A., Zahi F., Hamzaoui W., Salemkour N., Fekraoui F., Djabri L.. 2013. Caracterisation et cartographie des sites de remontee dans la region de l’oued righ (bas sahara algerien). J Algérien des Régions arides. 76–88. https://www.asjp.cerist.dz/en/article/76906
  • 7. Boutoutaou, D. 1995. Evaporation des surfaces des plans d’eau des retenues et barrages en Algérie. Thèse de Doctorat PhD en Sciences Techniques. Institut d’Hydraulique, Moscou
  • 8. Chen, L., Wang W., Zhang Z., Wang Z., Wang Q., Zhao M., Gong C. 2018. Estimation of bare soil evaporation for different depths of water table in the wind-blown sand area of the Ordos Basin, China. Hydrogeology Journal 26, 1693–1704. https://doi.org/10.1007/s10040-018-1774-6
  • 9. Chu, C.-R., Li M.-H., Chen Y.-Y., Y.-H. Kuo. 2010. A wind tunnel experiment on the evaporation rate of Class A evaporation pan. Journal of Hydrology 381, 221-224. https://doi.org/10.1016/j.jhydrol.2009.11.044
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  • 13. Gong, C., Wang W., Zhang Z., Wang H., Luo J., Brunner P. 2020. Comparison of field methods for estimating evaporation from bare soil using lysimeters in a semi-arid area. Journal of Hydrology 590. https://doi.org/10.1016/j.jhydrol.2020.125334
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  • 16. King, D.A., Bachelet D.M., Symstad A.J., Ferschweiler K., Hobbins M. 2015. Estimation of potential evapotranspiration from extraterrestrial radiation, air temperature and humidity to assess future climate change effects on the vegetation of the Northern Great Plains, USA. Ecological Modelling 297, 86–97.https://doi.org/10.1016/j.ecolmodel.2014.10.037
  • 17. Lemon, E.R. 1956. The potentialities for decreasing soil moisture evaporation loss. Soil Science Society of America Journal 20, 120–125. https://doi.org/10.2136/sssaj1956.03615995002000010031x
  • 18. Liu, C., Zhang X., Zhang Y. 2002. Determination of daily evaporation and evapotranspiration of winter wheat and maize by large-scale weighing lysimeter and micro-lysimeter. Agricultural and Forest Meteorology 111, 109–120.https://doi.org/10.1016/S0168-1923(02)00015-1
  • 19. Marenholtz, E.H., Lieffers V.J., Silins U. 2010. Evaporative demand across a range of microsites in partial-cut boreal forests. Scandinavian Journal of Forest Research 25, 118–126. http://dx.doi.org/10.1080/02827581003730765
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  • 24. Réméniéras, G. 1986. L’Hydrologie De L’Ingenieur. Eyrolles.
  • 25. Remini, B. 2005. L’évaporation des lacs de barrages dans les régions arides et semi arides: exemples algériens. LARHYSS Journal P-ISSN 1112-3680/EISSN 2521-9782. https://www.asjp.cerist.dz/en/article/54683
  • 26. Ritchie, J.T. 1972. Model for predicting evaporation from a row crop with incomplete cover. Water Resources Research 8,1204–1213. https://doi.org/10.1029/WR008i005p01204
  • 27. Ruth, C.E., Michel D., Hirschi M., Seneviratne S.I. 2018. Comparative study of a long‐established large weighing Lysimeter and a state‐of‐the‐art mini‐lysimeter. Vadose Zone Journal 17, 1–10. https://doi.org/10.2136/vzj2017.01.0026
  • 28. Salah, B.M. 2017. Caractéristiques hydrogéologiques de la nappe superficielle dans la région de l’Oued Righ et évaluation de l’impact de la pollution et de la salinité sur la qualité de ses eaux. These de doctorat, université de Badji Mokhtar Annaba, Algerie.
  • 29. Schoeller, H. 1962. Les eaux souterraines masson et cie Paris. Istanbul.
  • 30. Shirmohammadi-Aliakbarkhani, Z., Saberali S.F. 2020. Evaluating of eight evapotranspiration estimation methods in arid regions of Iran. Agricultural Water Management 239, 106243. https://doi.org/10.1016/j.agwat.2020.106243
  • 31. Song, X., Zhang J., Zhan C., Xuan Y., Ye M., Xu C. 2015. Global sensitivity analysis in hydrological modeling: Review of concepts, methods, theoretical framework, and applications. Journal of Hydrology 523, 739–757.https://doi.org/10.1016/j.jhydrol.2015.02.013
  • 32. Suleiman, A.A., Ritchie J.T. 2003. Modeling soil water redistribution during second-stage evaporation. Soil Science Society of America Journal 67, https://doi.org/10.2136/sssaj2003.3770
  • 33. Teng, J., Yasufuku N., Liu Q., Liu S. 2014. Experimental evaluation and parameterization of evaporation from soil surface. Natural Hazards 73, 14051418. https://doi.org/10.1007/s11069-014-1138-z
  • 34. Zhang, Y., Shen Y., Wang J., Qi Y. 2022. Estimation of evaporation of different cover types using a stable isotope method: Pan, bare soil, and crop fields in the North China Plain. Journal of Hydrology 613. https://doi.org/10.1016/j.jhydrol.2022.128414
Typ dokumentu
Bibliografia
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Identyfikator YADDA
bwmeta1.element.baztech-49719b21-07cb-497c-a6c1-ad807e740584
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