Federal Scientific Agroengineering Center VIM, Moscow, Russian Federation
https://doi.org/10.22314/2073-7599-2022-16-1-63-68
Abstract
The degradation of unused agricultural lands is noted to cause significant damage to agricultural production such as plot overgrowing with weeds, blackened surface layer emergence, the existing microrelief disturbance, soil self- compaction and acidification, soil infiltration properties deterioration, and water erosion. (Research purpose) The research aims to determine the technological and physical and mechanical properties of the blackened soils in the Ryazan region, being out of active use for 2-6 years. (Materials and methods) The parameters of various unused soil plots were studied in the Ryazan region: in particular, the composition of the herbage, the thickness of the blackened soil layer, the degree of soil blackening, its density and moisture, and infiltration properties. (Results and discussion) It was found that a 6-year increase in the period of overgrowth in an unused site leads to an increase in the amount of weeds. The most common species of many-year-old weeds are dog grass (Elymus caninus L) with the occurrence of 13 percent, field grass (Cirsium arvense L.) with the occurrence of 11 percent, creeping wheatgrass (Elitrigia repens L.) with the occurrence of 10 percent, shoot-forming vole (Agrostis stolonifera L.) with the occurrence of 9 percent. It was determined that an increase in the period of plot overgrowing from 2 to 6 years results in the soil recompaction, an increase in its density from 1.32 to 1.56 grams per cubic centimeter, the blackened soil layer thickening from 3 to 11 centimeters, an increase in the soil blackening degree from 13 to 44 grams per cubic decimetre. It was found that the coefficient of variation in the soil blackening degree decreases from 21.0 to 5.1 percent, and the coefficient of variation in the blackened soil layer thickness declines from 25.3 to 6.6 percent. (Conclusions) The dependence between the soil infiltration intensity and its blackening degree was established: even being waterlogged in the blackened upper layer (0-10 centimeters), with the absolute moisture of 45 percent, this indicator remains within 20-25 percent in the lower layer (20-30 centimeters).
About the Author
A. V. MironovaRussian Federation
Anastasiya V. Mironova, researcher
Moscow
References
1. Mazitov N.K., Sorokin N.T., Sharafiev L.Z., Novikov N.N., Lobachevskiy Ya.P., et al. Osnovy sokhraneniya i povysheniya plodorodiya pochvy – tekhnika i tekhnologiya ee obrabotki [Tillage equipment and techniques as the basis for conservation and enrichment of soil]. Problemy mekhanizatsii agrokhimicheskogo obespecheniya sel'skogo khozyaystva. 2017. N11. 41-52 (In Russian).
2. Izmaylov A.Yu., Lobachevskiy Ya.P., Sizov O.A., Akhalaya B.Kh. Agrotekhnicheskoe i ekologicheskoe obosnovanie effektivnosti (tselesoobraznosti) ispol'zovaniya bioaktivnykh tekhnologicheskikh sposobov obrabotki pochvy v sisteme mashinnykh tekhnologiy dlya obrabotki zalezhey i zapushchennykh ugodiy [Agrotechnical and ecological substantiation of the effectiveness (feasibility) of using bioactive technological tillage methods of in the system of machine technologies for processing fallows and neglected lands]. Sistema tekhnologiy i mashin dlya innovatsionnogo razvitiya APK Rossii: Sbornik nauchnykh dokladov Mezhdunarodnoy nauchno-tekhnicheskoy konferentsii, posvyashchennoy 145-letiyu so dnya rozhdeniya osnovopolozhnika zemledel'cheskoy mekhaniki akademika V.P. Goryachkina. Part 1. Moscow: VIM. 2013. 127-130 (In Russian).
3. Toshtemirov S.Zh., Razzakov T.Kh. Fiziko-mekhanicheskie svoystva pochv poley s neravnomernym rel'efom [Physical and mechanical properties of soils in uneven relief fields]. Molodoy uchenyy. 2017. N17(151). 86-87 (In Russian).
4. Mironova A.V. Obrabotka zadernelykh i degradirovannykh pochv [Processing of turfed and degraded soils]. Elektrotekhnologii i elektrooborudovanie v APK. 2019. N2(35). 57-62 (In Russian).
5. Vadyunina A.F., Korchagina Z.A. Metody issledovaniya fizicheskikh svoystv pochv [Methods for studying the physical properties of soils]. Moscow: Agropromizdat. 1986. 416 (In Russian).
6. Izmaylov A.Yu., Lobachevskiy Ya.P., Sizov O.A. Tekhnologii i tekhnicheskie sredstva dlya vosstanovleniya i reabilitatsii neispol'zuemykh i degradirovannykh sel'khozugodiy [The technological and technique means for recreation and rehabilitation of idle and degraded agricultural lands]. Tekhnika i oborudovanie dlya sela. 2010. N2. 12-14 (In Russian).
7. Izmaylov A.Yu., Lobachevskiy Ya.P., Sizov O.A. Opyt ispol'zovaniya bioaktivnykh tekhnologicheskikh sposobov obrabotki pochvy v sisteme mashinnykh tekhnologiy dlya obrabotki zalezhey i zapushchennykh ugodiy [Experience of using bioactive technological methods of soil cultivation in the system of machine technologies for cultivating fallows and neglected lands]. Mekhanizatsiya i elektrifikatsiya sel'skogo khozyaystva. 2014. N1(99). 132-138 (In Russian).
8. Shchukin S.V., Golubeva A.I., Dorokhova V.I., Dugin A.N. Rekomendatsii po vovlecheniyu v khozyaystvennyy oborot neispol'zuemykh zemel' sel'skokhozyaystvennogo naznacheniya [Recommendation for involving idle agricultural lands into farm use]. Vestnik APK Verkhnevolzh'ya. 2018. N1(41). 87-98 (In Russian).
9. Zhelyaskov A.L., Seturidze D.E. Osobennosti organizatsii sel'skokhozyaystvennykh ugodiy pri vovlechenii v oborot neispol'zuemykh i nevostrebovannykh zemel' [Agricultural land arrangement when bringing under cultivation unused and unclaimed lands]. Uspekhi sovremennoy nauki i obrazovaniya. 2017. N1(5). 206-212 (In Russian).
10. Starovoytov S.I., Akhalaya B.Kh., Mironova A.V. Konstruktivnye osobennosti rabochikh organov dlya uplotneniya i vyravnivaniya poverkhnosti pochvy [Structural features of working tools for soil surface compaction and levelling]. Elektrotekhnologii i elektrooborudovanie v APK. 2019. N4(37). 51-56 (In Russian).
11. Kovalev N.G., Khaylis G.A., Kovalev M.M. Sel'skokhozyaystvennye materialy (vidy, sostav, svoystva) [Agricultural materials (types, composition, properties).]. Moscow: Rodnik. 1998. 208 (In Russian).
12. Dmitriev S.Yu., Dmitriev Yu.P., Tsench Yu.S. Kompleks mashin dlya obrabotki zalezhnykh zemel' [Complex of machines for processing fallow lands]. Vestnik VIESKH. 2018. N2(31). 40-47 (In Russian).
13. Lobachevskiy Ya.P. Prochnostnye i deformatsionnye svoystva svyaznykh zadernennykh pochv [Strength and deformation properties of cohesive soddy soils]. Sel'skokhozyaystvennye mashiny i tekhnologii. 2011. N5(3). 18-20 (In Russian).
14. Mudarisov S.G., Gabitov I.I., Lobachevsky Y.P., et al. Modeling the technological process of tillage. Soil & Tillage Research. 2019. N190. 70-77 (In English).
15. Lobachevskiy Ya.P., Starovoytov S.I. Fizicheskie aspekty suglinistoy pochvy [Physical aspects of loamy soil]. Bryansk: Bryanskiy GAU. 2015. 92 (In Russian).
16. Mironova A.V., Liskin I.V. Osnovy vosstanovleniya plodorodiya pochv tselinnykh i zalezhnykh zemel' [Bases for restoration of fertility soils for virgin and fallow lands]. Innovatsii v sel'skom khozyaystve. 2019. N4(33). 62-69 (In Russian).
17. Konovalova A.A., Khaydapova D.D. Otsenka strukturnogo sostoyaniya pochv metodami fiziko-mekhaniki [Assessment of soil structural state by methods of physical mechanics]. Vestnik Tomskogo gosudarstvennogo universiteta. 2011. N1(13). 11-18. (In Rusian).
Review
For citations:
Mironova A.V. Federal Scientific Agroengineering Center VIM, Moscow, Russian Federation. Agricultural Machinery and Technologies. 2022;16(1):63-68. (In Russ.) https://doi.org/10.22314/2073-7599-2022-16-1-63-68