Optimization of the main parameters of the support-lump-breaking coil
DOI:
https://doi.org/10.15587/1729-4061.2021.229184Keywords:
tillage mechanics, support-lump-breaking coil, elastic rods, seedbed formationAbstract
Agricultural land plays an important role in ensuring food security and employment in rural areas. For many years, the planned economy has forced Uzbekistan to grow water-intensive crops, which has led to declining land productivity and increased crop yields. In a market economy, new innovative technologies are in high demand not only in agriculture but also in other sectors.
In order to solve the above-mentioned problems, our research has found it necessary to set goals and objectives.
The purpose of the study was to substantiate the parameters of frontal plowing slope, which provides high-quality execution of the technological process in accordance with the agro-technical requirements with minimum energy consumption without furrow plowing, agrotechnical and energy performance of variable frontal forks.
The following results were achieved by performing the tasks identified in the study: a – humidity V=16–17 % and load conditions with elastic rods of 3 mm, 4 mm, 5 mm; b – humidity V=13–14 % and the diameter of elastic rods is 3 mm, 4 mm, 5 mm; c – humidity V=9–10 % and the diameter of the elastic rods is 3 mm, 4 mm, 5 mm.
The experiments were performed on lumps with different humidity conditions: 9–10 %, 13–14 % and 16–17 %. The speed of the installation was 1.0 m/s.
The recommended technology was to destroy soil fragments with a moisture content of 16–17 % at a vertical load of 400 N with 3, 4 and 5 mm elastic rods at 86.6, 81.5, 75.1 %, respectively, and the vertical load equal to 1,000 N – 94.4, 89.2, 81.2 %, respectively
References
- The State of the World’s Land and Water Resources for Food and Agriculture. Available at: http://www.fao.org/3/i1688e/i1688e.pdf
- Ding, K., Shi, X., Wang, H., Li, C., Wang, W., Dou, H. et. al. (2018). The calcined soils can be used as anode materials for lithium ion batteries. International Journal of Electrochemical Science, 13 (5), 4967–4980. https://doi.org/10.20964/2018.05.34
- Bartenev, I. M. (2015). The value of primary tillage in the development of plant trees and shrubs. Forestry Engineering Journal, 5 (2), 149–158. doi: https://doi.org/10.12737/11989
- Dorokhov, A. S., Aksenov, A. G., Sibirev, A. V., Sazonov, N. V. (2020). Justification of design and technological parameters of the onion harvester bed-shaping roller spiral drum. INMATEH Agricultural Engineering, 60 (1), 107–114. doi: https://doi.org/10.35633/inmateh-60-12
- Decree of the President of the Republic of Uzbekistan No. PF-4947 "On the strategy of further development of the Republic of Uzbekistan" dated February 7, 2017 (2017). Collection of Legislation of the Republic of Uzbekistan, 6.
- Das, A., Chakrabortty, P., Popescu, R. (2021). Assessment of lumped particles effect on dynamic behaviour of fine and medium grained sands. Bulletin of Earthquake Engineering, 19 (2), 745–766. doi: https://doi.org/10.1007/s10518-020-01012-w
- Van Leeuwen, M. M. W. J., Heuvelink, G. B. M., Wallinga, J., de Boer, I. J. M., van Dam, J. C., van Essen, E. A. et. al. (2018). Visual soil evaluation: reproducibility and correlation with standard measurements. Soil and Tillage Research, 178, 167–178. doi: https://doi.org/10.1016/j.still.2017.11.012
- Ball, B. C., Guimarães, R. M. L., Cloy, J. M., Hargreaves, P. R., Shepherd, T. G., McKenzie, B. M. (2017). Visual soil evaluation: A summary of some applications and potential developments for agriculture. Soil and Tillage Research, 173, 114–124. doi: https://doi.org/10.1016/j.still.2016.07.006
- Ball, B. C., Batey, T., Munkholm, L. J. (2007). Field assessment of soil structural quality – a development of the Peerlkamp test. Soil Use and Management, 23 (4), 329–337. doi: https://doi.org/10.1111/j.1475-2743.2007.00102.x
- Golub, G., Dvornyk, A. (2020). Influence of constructive and technological parameters of the unit for strip till on the lumpiness. Technical and Technological Aspects of Development and Testing of New Machinery and Technologies for Agriculture of Ukraine, 27 (41). doi: https://doi.org/10.31473/2305-5987-2020-2-27(41)-8
- Emmet-Booth, J. P., Forristal, P. D., Fenton, O., Ball, B. C., Holden, N. M. (2016). A review of visual soil evaluation techniques for soil structure. Soil Use and Management, 32 (4), 623–634. doi: https://doi.org/10.1111/sum.12300
- Tang, H., Van Ranst, E., Sys, C. (1992). An approach to predict land production potential for irrigated and rainfed winter wheat in Pinan county, China. Soil Technology, 5 (3), 213–224. doi: https://doi.org/10.1016/0933-3630(92)90023-t
- Umarov, S. R., Durmanov, A. S., Kilicheva, F. B., Murodov, S. M., Sattorov, O. B. (2019). Greenhouse Vegetable Market Development Based on the Supply Chain Strategy in the Republic of Uzbekistan. International Journal of Supply Chain Management (IJSCM), 8 (5), 864–874.
- Durmanov, A., Bayjanov, S., Khodjimukhamedova, S., Nurimbetov, T., Eshev, A., Shanasirova, N. (2020). Issues of accounting for organizational and economic mechanisms in greenhouse activities. Journal of Advanced Research in Dynamical and Control Systems, 12 (SP7), 114–126. doi: https://doi.org/10.5373/jardcs/v12sp7/20202089
- Bazdyrev, G. I., Loshakov, V. G., Puponin, A. I. (2000). Agriculture. Moscow: Kolos, 551.
- Juneja, A., Chafale, A. S. (2019). Consolidation behaviour of double-porosity clay using flexible wall permeameter. Proceedings of the Institution of Civil Engineers - Ground Improvement, 172 (3), 179–191. doi: https://doi.org/10.1680/jgrim.18.00060
- Wang, S., Hagan, P., Cao, C. (2017). Advances in Rock-Support and Geotechnical Engineering. Elsevier. doi: https://doi.org/10.1016/c2015-0-06590-x
- Pulleman, M., Wills, S., Creamer, R., Dick, R., Ferguson, R., Hooper, D. et. al. (2021). Soil mass and grind size used for sample homogenization strongly affect permanganate-oxidizable carbon (POXC) values, with implications for its use as a national soil health indicator. Geoderma, 383, 114742. doi: https://doi.org/10.1016/j.geoderma.2020.114742
- Shi, X. S., Herle, I., Muir Wood, D. (2018). A consolidation model for lumpy composite soils in open-pit mining. Géotechnique, 68 (3), 189–204. doi: https://doi.org/10.1680/jgeot.16.p.054
- Herle, I., Shi, X. S., Karcher, C. (2019). Constitutive Modelling of Multiporous Lumpy Soils. Lecture Notes in Applied and Computational Mechanics, 3–12. doi: https://doi.org/10.1007/978-3-030-28516-6_1
- Sagoff, M. (2008). On the Economic Value of Ecosystem Services. Environmental Values, 17 (2), 239–257. doi: https://doi.org/10.3197/096327108x303873
- Durmanov, A., Umarov, S., Rakhimova, K., Khodjimukhamedova, S., Akhmedov, A., Mirzayev, S. (2021). Development of the Organizational and Economic Mechanisms of Greenhouse Industry in the Republic of Uzbekistan. Journal of Environmental Management and Tourism, 12 (2), 331–340. doi: https://doi.org/10.14505//jemt.v12.2(50).03
- Komissarov, M. A., Klik, A. (2020). The Impact of No-Till, Conservation, and Conventional Tillage Systems on Erosion and Soil Properties in Lower Austria. Eurasian Soil Science, 53 (4), 503–511. doi: https://doi.org/10.1134/s1064229320040079
- Paterson, S., Minasny, B., McBratney, A. (2018). Spatial variability of Australian soil texture: A multiscale analysis. Geoderma, 309, 60–74. doi: https://doi.org/10.1016/j.geoderma.2017.09.005
- Curry, J. (2004). Factors Affecting the Abundance of Earthworms in Soils. Earthworm Ecology, 91–113. doi: https://doi.org/10.1201/9781420039719.pt3
- Da Silva, A. P., Kay, B. D., Perfect, E. (1997). Management versus inherent soil properties effects on bulk density and relative compaction. Soil and Tillage Research, 44 (1-2), 81–93. doi: https://doi.org/10.1016/s0167-1987(97)00044-5
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Copyright (c) 2021 Timur Nurimbetov, Sukhrob Umarov, Zulfiya Khafizova, Sarsengaliy Bayjanov, Orinbay Nazarbaev, Rahima Mirkurbanova, Akmal Durmanov
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