

Effect of fertilizer application methods and drip irrigation on the productivity of columnar apple plants on sod-podzolic soil
https://doi.org/10.31676/0235-2591-2024-1-31-39
EDN: ymzhwq
Abstract
The field agrochemical experiment conducted in 2021–2023 was designed to study the influence of drip irrigation and two methods of mineral fertilizer application on the components of productivity of columnar apple plants when grown on cultivated loamy textured sod-podzolic soil in the conditions of Moscow Oblast. Drip irrigation, solid fertilizer application, and fertigation were found to have different eff ects on plant productivity indicators. Th e eff ects largely depend on the cultivar and weather conditions. Drip irrigation in conjunction with solid fertilizers increased plant productivity to the greatest extent. Thus, the ‘Ostankino’ cultivar yielded by up to 2.16 kg/tree more, i. e. the productivity rose by 27.1 % compared to the controls. In the ‘President’ cultivar, yield per tree increased by up to 2.18 kg/tree (by 35.4 % compared to the controls). The irrigated and fertilized variants of the experiment were distinguished by higher vegetation productivity values for the ‘President’ cultivar plants. For this cultivar, the highest total growth rate was in the fertigation-drip irrigation variant with an increase of up to 459.2 cm/tree in 2022. Th e average growth over two years was 16.5% higher than in the control group. In the ‘Ostankino’ cultivar, the total length value of shoot growth during irrigation and solid fertilizer application decreased compared to the control group by up to 245.2 cm/tree. On average, over two years it decreased by 15.7 % compared to the controls. In the fertigation-drip irrigation variant, there was a decrease in the ammonia nitrogen content in the soil compared to the other variants. As a result, the total mineral nitrogen content in the soil layer to a depth of 60 cm was minimal. Th e highest value of ammonium content and total nitrogen in the rhizosphere were observed in the variant with drip irrigation and solid fertilizer application.
Keywords
About the Authors
S. N. KonovalovRussian Federation
Sergei N. Konovalov, PhD (Biol.), Leading Researcher, Head of the Department
Department of Agrochemistry and Soil Science
115598; Zagorevskaya str., 4; Moscow
V. F. Vorobyеv
Russian Federation
Dr. Sci. (Agric.), Professor, Chief Researcher
Department of Agricultural Technologies in Horticulture
Moscow
V. V. Bobkova
Russian Federation
Research
Department of Agrochemistry and Soil Science
Moscow
N. Yu. Dzhura
Russian Federation
Junior Research
Moscow
References
1. Fomenko T. G., Popova V. P., Chernikov E. A., Drygina A. I., Lebedovsky I.A., Uzlovaty D.V., Myazina A.N. Migration of nutrients in typical chernozem during fertigation of fruit plantations. Agrochemistry, 2021, No. 3. – P. 60-70. DOI: 10.31857/S0002188121040050
2. Svoboda P., Haberle, J., Moulik M., Raimanová, I., Kurešová G., Mészáros M. The Effect of Drip Irrigation on the Length and Distribution of Apple Tree Roots. Horticulturae. 2023, 9, 405. doi: 10.3390/horticulturae9030405.
3. Vastik L., Masan V., Burg P., & Hic P. (2020). Effect of different irrigation rations on fruit yield and annual increments of “Gala” apple. MendelNet, 27, Article 74-79. https://mendelnet.cz/artkey/mnt-202001-0012_Effect-of-different-irrigation-rations-on-fruit-yield-and-annual-increments-of-Gala-apple.php.
4. Zhou H., Ma L., Zhang S., Zhao L., Niu X.; Qin L., Xiang Y., Guo J., Wu Q. Eff ect of Water-Fertilizer Coupling on the Growth and Physiological Characteristics of Young Apple Trees. Agronomy 2023, 13, 2506. doi: 10.3390/agronomy13102506.
5. Neilsen D., Neilsen G., Forge T. 2018. Building resilience: future directions in mineral nutrition of woody perennial crops. Acta Horticulturae, 1217:1-11. DOI: 10.17660/ActaHortic.2018.1217.1.
6. Konovalov S. N. Mineral nutrition of columnar apple trees / Scientific principles of mineral nutrition and the use of fertilizers in plantings of fruit crops. State Scientific Institution VNIIS. Voronezh: Kvarta, 2011. p. 93-98.
7. Program and methodology for the study of varieties of fruit, berry and nut crops. Ed. E. N. Sedova and T. P. Ogoltsova. Orel:VNIISPK, 1999. P. 608.
8. Guidelines for determining alkaline hydrolyzable nitrogen in soil using the Kornfi eld method. Moscow, 1985.
9. Workshop on agrochemistry: Proc. allowance. / Ed. V. G. Mineev, M.: Moscow State University, 2001. 689 p.
10. Wintermans J.E.G. and De Mots A. (1965) Spectrophotometric Characteristics of Chlorophyll a and b and Their Phaeophytins in Ethanol. Biochimica et Biophysica Acta, 109, 448-453. doi: 10.1016/0926-6585(65)90170-6.
11. Wettstein von D. Chlorophyllletale und der submicroskoposche Formwechsel der Plastiden. Experimental Cell Research, 1957, 12: 427–506. DOI: 10.1016/0014-4827(57)90165-9.
12. Strasser R. J., Srivastava A., Tsimilli-Michael M. (2000) The fluorescence transient as a tool to characterize and screen photosynthetic samples. In: Probing Photosynthesis: Mechanism, Regulation & Adaptation (Mohanty P., Yunus, Pathre eds.). – Taylor & Francis, London, p. 443–480.
13. Dospehov B. A. Methodology of field experience (with the basics of statistical processing of research results). M.: Alliance, 2014. – 352 p.
Review
For citations:
Konovalov S.N., Vorobyеv V.F., Bobkova V.V., Dzhura N.Yu. Effect of fertilizer application methods and drip irrigation on the productivity of columnar apple plants on sod-podzolic soil. Horticulture and viticulture. 2024;(1):31-39. (In Russ.) https://doi.org/10.31676/0235-2591-2024-1-31-39. EDN: ymzhwq