Combined Unit for Tillage with Pulsed Shock Wave Action
https://doi.org/10.22314/2073-7599-2023-17-4-62-67
EDN: RBWZHM
Abstract
The paper shows that incorporating a multifunctional combined unit with pulsed shock wave action into soil tillage presents a pertinent and promising advancement in the soil cultivation system. (Research purpose) The research aims to develop a multifunctional combined unit for soil tillage integrating pulsed shock wave action. The objectives include enhancing productivity, refining tillage quality and promoting ecological considerations. (Materials and methods) The unit consists of a main frame, two side-folding sections, and a central section, which is made featuring a carriage, support and transport wheels. Additionally, it incorporates a frame in the shape of a hollow shaft, connected to a compressed air cylinder. The front frames of each section are equipped with rigidly fixed working bodies taking the form of cultivator paws with embedded pneumatic tubes. These tubes have outlet holes positioned at the ends of the wings of the paws, with a compressed air effective radius of 5-10 centimeters. (Results and discussion) The established ratio between the depth of surface tillage using a cultivator paw and the depth of subsoil tillage through pulsed blows of compressed air is 1:2. The tillage devices are supplemented by disc cutters with a diameter ranging from 25 to 30 centimeters, along with harrows designed for processing to a depth of 5-7 centimeters. (Conclusions) Enhanced by this modification, the design of the multifunctional combined unit enables the simultaneous execution of multiple operations, including cultivation with weed destruction, soil loosening using high-pressure air flow, and surface milling and grinding.
Keywords
About the Authors
B. Kh. AkhalayaRussian Federation
Badry Kh. Akhalaya, Ph.D.(Eng.), leading researcher
Moscow
Yu. S. Tsench
Russian Federation
Yulia S. Tsench, Dr.Sc.(Eng.), chief researcher, associate professor
Moscow
References
1. Lachuga Yu.F., Izmailov A.Yu., Lobachevsky Ya.P., Mazitov N.K. Pochvoobrabatyvayushchaya tekhnika: puti importozameshcheniya [Soil-cultivating machinery: ways of import substitution]. Sel’skokhozyaystvennye mashiny i tekhnologii. 2017. N2. 37-42 (In Russian). DOI:10.22314/207375992017.2.3741. EDN:YODARL.
2. Lobachevskiy Ya.P. Novye pochvoobrabatyvayushchie tekhnologii i tekhnicheskie sredstva [New tillage technologies and technical means]. Mekhanizatsiya i elektrifikatsiya sel’skogo khozyaystva. 2000. N8. 30-32 (In Russian). DOI: 10.223-14/2073-7599-2018-12-3-4-11. EDN: UUULOB.
3. Izmaylov A.Yu., Lobachevskiy Ya.P., Khoroshenkov V.K., et al. Optimizaciya upravleniya tekhnologicheskimi processami v rastenievodstve [Optimization of technological process management in plant growing]. Sel’skokhozyaystvennye mashiny i tekhnologii. 2018. Vol. 12. N3. 4-11 (In Russian). DOI: 10.22314/2073-7599-2018-12-3-4-11.
4. Dorokhov A.S., Sibirev A.V., Aksenov A.G., Mosyakov M.A. Analiticheskoe obosnovanie sistemy avtomaticheskogo kontrolya glubiny obrabotki pochvy [Analytical feasibility study of the for automatic control system of tillage depth]. Agroinzheneriya. 2021. N3(103). 19-23 (In Russian). DOI: 10.26897/2687-1149-2021-3-19-23. EDN: FWCRIM.
5. Fedorenko V.F., Kireev I.M., Marchenko V.O. Issledovanie metodov i tekhnicheskikh sredstv dlya izmereniya glubiny obrabotki pochvy pri ispytaniyakh pochvoobrabatyvayushchikh mashin [Research of methods and technical means for measuring the tillage depth when testing tillage machines]. Tekhnika i oborudovanie dlya sela. 2019. N5(263). 12-17 (In Russian). DOI: 10.33267/2072-9642-2019-5-12-17. EDN: QXUZCE.
6. Liskin I.V., Mironova A.V. Obosnovanie iskusstvennoy pochvennoy sredy dlya laboratornykh issledovaniy iznosa i tyagovykh kharakteristik pochvorezhushchikh rabochikh organov [Artificial soil environment justification for laboratory studies of wear and traction characteristics of soil-cutting working bodies]. Sel’skokhozyaystvennye mashiny i tekhnologii. 2020. N3. 53-58 (In Russian). DOI: 10.22314/2073-7599-2020-14-3-53-58. EDN: PMAMCF.
7. Maslov G.G., Yudina E.M., Taran A.D. Nulevaya obrabotka pochvy: za i protiv [Zero tillage: pros and cons]. Sel’skiy mekhanizator. 2022. N1. 10-11 (In Russian). EDN: VJFPOF.
8. Kireev I.M., Koval’ Z.M., Marchenko V.O., Zimin F.A. Ratsional’nyy tekhnologicheskiy process obrabotki pochvy rabochimi organami pochvoobrabatyvayushchikh mashin [Reasonable tillage process using tillage machine working bodies]. Tekhnika i oborudovanie dlya sela. 2020. N6 (276). 8-13 (In Russian). DOI: 10.33267/2072-9642-2020-6-8-13. EDN: HJJDGV.
9. Tseplyaev A.N., Kosulnikov R.A., Tseplyaev V.A., et al. Snizhenie tyagovogo soprotivleniya sel’skokhozyaystvennykh mashin za schet minimalizatsii ego kolebaniy pri obrabotke tyazhelosuglinistykh pochv [Reducing traction resistance of agricultural machines by minimizing its fluctuations when tilling heavy-loamy soils]. Agroinzheneriya. 2019. N2(90). 14-19 (In Russian). EDN: UTZXZN.
10. Panov A.I., Aldoshin N.V., Plyaka V.I., Mekhedov M.A. Agrotekhnicheskaya i energeticheskaya otsenka mashin dlya narezki gryad i grebney [Agrotechnical and energy assessment of ridgers and seedbed formers]. Agroinzheneriya. 2020. N5. 4-9 (In Russian). DOI: 10.26897/2687-1149-2020-5-4-9. EDN: VPBGYQ.
11. Gattinger A., Jawtusch J., Muller A., Mäder P. No-till agriculture – a climate smart solution. Published by: Bischöfliches Hilfswerk Misereore. Aachen, Germany. 2011. 24 (In English).
12. Brennen C.E. Cavitation and buddle dynamics. New York: Cambridge University press, 2014. 249 (In English). DOI: https://doi.org/10.1017/CBO9781107338760.
13. Yasui K. Acoustic cavitation and bubble dynamics. Japan: National Institute of Advanced Industrial Sience and Technology. 2018. 118 (In English). DOI: https://doi.org/10.1007/978-3-319-68237-2.
14. Akhalaya B.Kh., Shogenov Yu.Kh., Starovoytov S.I., et al. Trekhsekcionnyy pochvoobrabatyvayushchiy agregat s universal’nymi smennymi rabochimi organami [Three-section soil processing unit with universal replaceable working units]. Vestnik Kazanskogo GAU. 2019. Vol. 14. N3 (54). 92-95 (In Russian). DOI: 10.12737/article_5db9656e2ade23.01560949. EDN: MZOGIZ.
15. Akhalaya B.Kh., Shogenov Yu.Kh., Tsench Yu.S. Agregat dlya obrabotki pochvy pulsiruyushchim szhatym vozdukhom [Unit for soil processing by pulsing compressed air]. Vestnik Kazanskogo GAU. 2018. T. 13. N3(50). 69-72 (In Russian). DOI: 10.12737/article-5bcf556a9e00e3.71318160. EDN: VMGDYR.
Review
For citations:
Akhalaya B.Kh., Tsench Yu.S. Combined Unit for Tillage with Pulsed Shock Wave Action. Agricultural Machinery and Technologies. 2023;17(4):62-67. (In Russ.) https://doi.org/10.22314/2073-7599-2023-17-4-62-67. EDN: RBWZHM