Plant Soil Environ., 2021, 67(8):482-489 | DOI: 10.17221/614/2020-PSE

Effect of sprinkler irrigation on the properties of leached chernozem and the yield of Bromopsis inermis Leyss. in the Southern Cis-UralOriginal Paper

Alexander Komissarov*,1, Mikhail Komissarov2, Irek Minniakhmetov1, Oleg Lykasov1, Julia Afanasyeva3
1 Department of Real Estate Cadastre and Geodesy, Federal State Budgetary Educational Establishment of Higher Education "Bashkir State Agrarian University", Ufa, Russia
2 Laboratory of Soil Science, Ufa Institute of Biology UFRC RAS, Ufa, Russia
3 Department of Pharmacology with Clinical Pharmacology Course, Federal State Budgetary Educational Establishment of Higher Education "Bashkir State Medical University", Ufa, Russia

The paper examines the effect of the long-term (10 years) low-intensity sprinkler irrigation on the properties of leached chernozem soils covered with Bromopsis inermis Leyss. (BIL) stands in the Southern Cis-Ural forest-steppe. The study analysed changes in the soil's agrophysical and chemical properties. As a result of long-term irrigation, the humus horizon (A + AB) thickness increased by 16 ± 3 cm; the organic carbon (Corg) content and nutrients decreased in this rooting zone, in particular, Corg by 0.3%, available phosphorus by 24.8 mg/kg, exchangeable potassium by 18.4 mg/kg and the stock of Corg by 16 t/ha. The particle size distribution of irrigated soil did not significantly changed; some changes were observed for the soil's aggregate composition. The soil's hydrophysical properties, water and air regime worsened.

Keywords: harvests; natural moisture; perennial grass; drought; water regime; watering

Published: August 31, 2021  Show citation

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Komissarov A, Komissarov M, Minniakhmetov I, Lykasov O, Afanasyeva J. Effect of sprinkler irrigation on the properties of leached chernozem and the yield of Bromopsis inermis Leyss. in the Southern Cis-Ural. Plant Soil Environ.. 2021;67(8):482-489. doi: 10.17221/614/2020-PSE.
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References

  1. Arampatzis G., Hatzigiannakis E., Pisinaras V., Kourgialas N., Psarras G., Kinigopoulou V., Panagopoulos A., Koubouris G. (2018): Soil water content and olive tree yield responses to soil management, irrigation, and precipitation in a hilly Mediterranean area. Journal of Water and Climate Change, 9: 672-678. Go to original source...
  2. Arinushkina E.V. (1970): A Handbook of Chemical Analysis of Soils. Moscow, Moscow State University.
  3. Asylbaev I., Khabirov I., Khasanov A., Gabbasova I., Garipov T. (2020): Temporal change of soil chemical properties in the southern forest-steppe of the Ufa region of the Republic of Bashkortostan, Russia. Journal of Water and Land Development, 44: 8-12.
  4. Khafizov A., Khazipova A., Kutliyarov D., Mustafin R., Kamaletdinova L., Nedoseko I., Galeev E., Kutliyarov A., Zubairov R. (2019): Justification of reclamation watershed regimes of the forest-steppe zone of the western part of the Republic of Bashkortostan with regard to their provision with heat and moisture. Asian Journal of Water, Environment and Pollution, 16: 101-108. Go to original source...
  5. Komissarov M.A., Gabbasova I.M. (2017): Erosion of agrochernozems under sprinkler irrigation and rainfall simulation in the southern forest-steppe of Bashkir Cis-Ural region. Eurasian Soil Science, 50: 253-261. Go to original source...
  6. Kutova А., Hetmanenko V., Skrylnik I., Paramonova T., Kuts A. (2020): Effect of irrigation and fertilization on the content and composition of humus of chernozem in the vegetable-fodder crop rotation. AgroLife Scientific Journal, 9: 192-197.
  7. Nikanorova A.D., Milanova E.V., Dronin N.M., Telnova N.O. (2016): Estimation of water deficit under climate change and irrigation conditions in the Fergana Valley of Central Asia. Arid Ecosystems, 6: 260-267. Go to original source...
  8. Novák J., Jankowski K., Sosnowski J., Malinowska E., WiśniewskaKadżajan B. (2020): Influence of plant species and grasslands quality on sequestration of soil organic carbon. Ekológia (Bratislava), 39: 289-300. Go to original source...
  9. Safonov V.A., Danilova V.N., Ermakov V.V., Vorobyov V.I. (2019): Mercury and methylmercury in surface waters of arid and humid regions, and the role of humic acids in mercury migration. Periódico Tchê Química, 16: 892-902. Go to original source...
  10. Safonov V.A., Ermakov V.V., Degtyarev A.P., Dogadkin N.N. (2020): Prospects of biogeochemical method implementation in identifying rhenium anomalies. In: Proceedings of the IOP Conference Series: Earth and Environmental Science, 421. IOP Publishing, 062035. Go to original source...
  11. Selyaninov G.T. (1930): Methods of agricultural climatology. Agricultural Meteorology, 22: 4-20.
  12. Sokolov A.V. (1976): Agrochemical Techniques of Soil Research. Moscow, Nauka.
  13. Sun H., Zhang X., Liu X., Ju Z., Shao L. (2018): The long-term impact of irrigation on selected soil properties and grain production. Journal of Soil and Water Conservation, 73: 310-320. Go to original source...
  14. Vadyunina A.F., Korchagina Z.A. (1986): Methods for Studying the Physical Properties of Soils. Moscow, Agropromizdat.

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