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The purpose of the researches was to determine how the potassium balance depended on fertilizing system and how it influenced crop productivity. The experimental part of the work was carried out under the conditions of continuous (since 1964) stationary experiment of the Chair of Agrochemistry and Soil Science the basis of which is a 10-field crop rotation deployed in time and space. The soil of the experimental plots is ashed heavy loamy black soil on loess. For simplifying balance calculations, the number of comparable and equal articles in the coming part and in the extracted one was reduced. It was considered that the total potassium amount which came from the atmosphere and with seeds was responsible for erosion losses and those from washing off. The results obtained show that potassium balance and its intensity in every rotation was formed unevenly and depended considerably on the level of its coming together with fertilizers and removing when harvesting. It has been proved that when increasing the used fertilizer dose, the balance volume rises which characterizes potassium circulation size in agrocenosis. The potassium balance data analysis when leaving unmarketable part in the field has displayed that its intensity increases significantly. Leaving the unmarketable part of the harvest in the field balances potassium in the soil significantly without using high mineral fertilizer doses which entails a number of ecological problems. It has been defined that the majority of crop productivity can be observed at a potassium balance of -30 kg (kg per year). Only clover productivity at a more negative potassium balance has decreased which testifies to its wider tolerance zone as to the given nutrient content in the soil compared to other crop rotations.
Czasopismo
Rocznik
Tom
Strony
198--206
Opis fizyczny
Bibliogr. 33 poz., rys.
Twórcy
autor
- Uman National University of Horticulture, 1 Instytutska St., Uman 20300, Ukraine
autor
- Uman National University of Horticulture, 1 Instytutska St., Uman 20300, Ukraine
autor
- Uman National University of Horticulture, 1 Instytutska St., Uman 20300, Ukraine
autor
- Uman National University of Horticulture, 1 Instytutska St., Uman 20300, Ukraine
autor
- Uman National University of Horticulture, 1 Instytutska St., Uman 20300, Ukraine
autor
- Uman National University of Horticulture, 1 Instytutska St., Uman 20300, Ukraine
autor
- Sofiivka National Dendrological Park of NAS of Ukraine, 20300, Uman, Kyivska Str., 12A, Ukraine
autor
- Uman National University of Horticulture, 1 Instytutska St., Uman 20300, Ukraine
autor
- Uman National University of Horticulture, 1 Instytutska St., Uman 20300, Ukraine
autor
- Uman National University of Horticulture, 1 Instytutska St., Uman 20300, Ukraine
Bibliografia
- 1. Balik Jifi, Kulhanek Martin, Cerny Jindrich, Sedlar Ondrej, Suran Pavel. 2020. Potassium fractions in soil and simple K balance in long-term fertilizing experiments. Soil and Water Research, 15(4), 211–219. https://doi.org/10.17221/151/2019-SWR.
- 2. Brouder S., Hatfield J.L., Sauer T.L. 2011. Potassium cycling. In: Soil Management: Building a Stable Base for Agriculture. Madison, American Society of Agronomy and Soil Science Society of America, 79–102.
- 3. Cakmak I. 2010. Potassium for better crop production and quality. Plant Soil, 335, 1–2.
- 4. Chen J., Guo Z., Chen H., Yang X., Geng J. 2021. Effects of different potassium fertilizer types and dosages on cotton yield, soil available potassium and leaf photosynthesis. Archives of Agronomy and Soil Science, 67(2), 275–287. https://doi.org/10.1080/03650340.2020.1723005
- 5. Davidyuk G., Shkarivska L., Klymenko I., Dovbash N., Kuschuk M. 2024. The influence of different farming systems on the content of mobile potassium compounds in the soil. Herald of Agrarian Science, 102(2), 11–18. https://doi.org/10.31073/agrovisnyk202403
- 6. Gospodarenko H.M. 2015. Fertilizer Application System. TOV “SIK GRUP UkRAINA”, Kyiv.
- 7. Gospodarenko H.M. 2022. Fertilizer application system, Uman.
- 8. Gospodarenko H.M., Nikitina O.V., Kryvda Yu. I. 2013. The content and supplies of potassium moving compounds in the soil after continuous fertilizer application in a field crop rotation. The Bulletin of Sumy National Agrarian University, 11, 51–56.
- 9. Kaletnik H.M., Bulgakov V.M., Hrynyk I.V. 2011. Scientific and practical approaches to the use of straw and plant residues in agriculture. Collection of scientific works of the Vinnytsia National Agrarian University. Series: Technical Sciences, 9, 62–68.
- 10. Karami A., Homaee M., Afzalinia S., Ruhipour H., Basirat S. 2012. Organic resource management: Impacts on soil aggregate stability and other soil physico-chemical properties. Agric. Ecosyst. Environ., 148, 22–28. https://doi.org/10.1016/j.agee.2011.10.021
- 11. Khrystenko А.А. 2014. The use of national standards for diagnosing nitrogen, phosphorus, and potassium soil status. Agrochemistr, 7, 60–68.
- 12. Kryvov V.М. 2006. Ecologically safe land use in the Forest-Steppe of Ukraine. Soil Conservation Issue. Harvest, Kyiv.
- 13. Laila K.A. Ali M. 2011. Study of some methods of waste management of rise through its impact on soil physical properties N, P and K contents in maize yield and water use efficiency under different tillage systems. Australian Journal of Basic Applied, 5, 1017–1034.
- 14. Lisovyi М.V., Nikitiuk М.L., 2006. Nutrient balance in Ukrainian agriculture. Soil Fertility Conservation, 1, 55–58.
- 15. Liu E., Yan C.R., Mei X.R., He W.Q., Bing S.H., Ding L.P., Liu Q., Liu S., Fan T.L. 2010. Long-term effect of chemical fertilizer, straw, and manure on soil chemical and biological properties in northwest China. Geoderma, 158, 173–180. https://doi.org/10.1016/j.geoderma.2010.04.029/
- 16. Nardi S., Morari F., Berti A., Tosoni M., Giardini L. 2004. Soil organic matter properties after 40 years of different use of organic and mineral fertilisers. Europ J Agronomy, 21(3), 357–367. https://doi.org/10.1016/j.eja.2003.10.006
- 17. Nikitina O.V. Vasylenko O.V. 2019 Agroecological influence of continuous fertilizer application on potassium fund of ashed black soil. Tavria Scientific Bulletin, 107, 335–340. https://doi.org/10.32851/2226-0099.2019.104.44
- 18. Nosko B.S. 2014. Agrogenic evolution of soil potassium fund. Agrochemistry and Soil Science. Interdisciplinary Thematic Scientific Work Collection. Kh., 2014. Part 1, 115–120.
- 19. Nosko B.S., Hladkikh Yе. Yu. 2012. The aftermath of mineral fertilizers on the potassium content of typical chernozem soil. Agronomist, 2(36), 30–32.
- 20. Pettigrew W.T., Meredith W.R.J., Young L.D., Argon J. 2005. Potassium fertilization effects on cotton lint yield, yield components and reniform nematode populations, 97, 1245–1251.
- 21. Poliovyy V., Snitynskyy V., Hnativ P., Szulc W., Lahush N., Ivaniuk V., Furmanets M., Kulyk S., Balkovskyy V., Poliukhovych M., Rutkowska B. 2021. Agro-ecological efficiency of a crop fertilization system with the use of phytomass residues in the western forest steppe of Ukraine. J. Elem., 26(2), 433-445. https://doi.org/10.5601/jelem.2021.26.1.2120
- 22. Polovyi, V., Yashchenko, L., Rovna, G., Kolesnyk, T. 2022. The effect of fertilization and liming on the balance and content of potassium forms in sod-podzolic soil. Herald of Agrarian Science, 100(7), 2228. https://doi.org/10.31073/agrovisnyk202207-04
- 23. Prymak І.D., Manko Yu. P., Ridey N.М. et al. 2010. Environmental Issues of Agriculture. Center for Educational Literature, Kyiv.
- 24. Smirnova І.V. 2015. Yield and quality of winter wheat varieties depending on mineral nutrition conditions. Scientific Papers: a Scientific Methodical Journal, 244. Т. 256, 81 – 84.
- 25. Srinivasarao Ch., Kundu S., Ramachandrappa B.K., Reddy S., Lal R., Venkateswarlu B., Sahrawat K.L., Naik R.P. 2014. Potassium release characteristics, potassium balance, and fingermillet (Eleusine coracana G.) yield sustainability in a 27-year long experiment on an Alfisol in the semi-arid tropical India. Plant and Soil, 374, 315–330. https://doi.org/10.1007/s11104-013-1877-1878
- 26. Srinivasarao Ch., Kundu S., Ramachandrappa B.K., Reddy S., Lal R., Venkateswarlu B., Sahrawat K.L., Naik R.P. 2014. Potassium release characteristics, potassium balance, and fingermillet (Eleusine coracana G.) yield sustainability in a 27-yearlong experiment on an Alfisol in the semi-arid tropical India. Plant and Soil, 374, 315–330.
- 27. Steingrobe B., Claasen N. 2000. Potassium dynamics in the rhizosphere and K efficiency of crops. Journal of Plant Nutrition and Soil Science, 163, 101–106.
- 28. Tkachenko M.A. 2015. Forest Soil fertility Restoration when Using Different Fertilizing Systems and Chemical Melioration in the Right-bank Forest Steppe. Ph.D. Thesis, National University of Life and Environmental Sciences of Ukraine, Kyiv, Ukraine.
- 29. Truskavetsky A.S., Tsapko Y.L. 2016. Fundamentals of soil fertility management: a monograph., FOP, Kharkiv.
- 30. Yaroshko М. 2013. Potassium in soil and its role in plant nutrition. Agronomist, 4, 22 – 24.
- 31. Zaryshnyak A.S., Polovyi V.M., Lukashchuk L. Ya. 2012. Effect of potassium on the productivity of sugar beets in the conditions of the Western Forest Steppe. Herald of Agrarian Science, 10, 12-15.
- 32. Zhang Z., Liu D., Wu M., Xia Y., Zhang F., Fan X. 2021. Long-term straw returning improve soil K balance and potassium supplying ability under rice and wheat cultivation. Scientific Reports, 11(1), 22260.
- 33. Zubkovska V.V. 2015. Assessment of Soil Phosphate Status Based on Phosphate Buffering Indices. Agrochemistry and Soil Science, 83, 80–82.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-f77f5e58-0c06-4733-9bc8-5e9489a85c81