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DOI: 10.15507/2658-4123.035.202501.284-297

 

Analyzing the Process of Formation and Retaining of Straightness of Flax Stem Strips during Flax Harvesting

 

Alexandr N. Zintsov
Dr.Sci. (Eng.), Professor of the Chair of Tractors and Automobiles, Kostroma State Agricultural Academy (34 Uchebny Gorodok St., Karavaevo 156530, Russian Federation), ORCID: https://orcid.org/0000-0003-3443-2015, Researcher ID: ADY-1834-2022, This email address is being protected from spambots. You need JavaScript enabled to view it.

Mixail M. Kovalev
Dr.Sci. (Eng.), Chief Researcher, Federal Research Center for Bast Crops (17/56 Komsomolsky Ave., Tver 170041, Russian Federation), ORCID: https://orcid.org/0000-0003-2424-4205, Researcher ID: AAT-4775-2021, This email address is being protected from spambots. You need JavaScript enabled to view it.

Gennady A. Perov
Cand.Sci. (Eng.), Leading Researcher, Federal Research Center for Bast Crops (17/56 Komsomolsky Ave., Tver 170041, Russian Federation), ORCID: https://orcid.org/0000-0002-5830-6817, Researcher ID: AAB-5326-2022, This email address is being protected from spambots. You need JavaScript enabled to view it.

 

Abstract
Introduction. The effectiveness of flax cultivation largely depends on the degree of mechanization of harvesting processes. At the same time, a high productivity of flax stem pick-ups with minimal product losses can be ensured only when working on straight flax stem strips.
Aim of the Study. The study is aimed at improving the quality of spreading flax stem strips when performing machine harvesting.
Materials and Methods. To achieve this goal, a new device has been developed for controlled spreading of flax stem strips. The working space of the device is formed by the active side edge of a flat belt with protrusions and a clamping mechanism consisting of rods pivotally fixed to each other with the possibility of lifting their clamping surfaces under the influence of a moving layer of flax stems. To evaluate the effectiveness of an innovative technical solution, the proposed device is mounted on an OKP-1.5K turner and tested under production conditions.
Results. It has been found that the absence of controlled tracking of the mass of flax stems during spreading generates irregular curvature of the flax stem strip in the frequency range from ɷср = 0,512 to ɷср = 0,712 m–1. The expansion of the frequency spectrum occurred as a result of the effects of wind and machine vibrations on the dried mass of flax stems, with retaining a slight straightness of the flax stem strip at a level of only 45%. At the same time, the use of a new spreading device completely protects the spreading process from these influences and retains the straightness of the treated flax stem strips more effectively (at the level of 73%). In this case, the appearance of new low-frequency oscillations is caused only by the trajectory of the pick-up turner.
Discussion and Conclusion. The impact of the new spreading device on retaining the straightness of flax stem strips is positive that will ensure an increase in the productivity of flax pick-ups, a proportional reduction in operating costs per unit of operation and reduce the production costs.

Keywords: flax, flax pick-up, flax stem strip, straightness of flax stem strips, spreading device, hold down rods, machine vibrations, fundamental frequency band

Conflict of interest: The authors declare that there is no conflict of interest.

Funding: This work was supported by the Ministry of Science and Higher Education of the Russian Federation within the framework of the State Assignment for the Federal Scientific Center for Bast Crops (No. FGSS-2022-0005).

For citation: Zintsov A.N., Kovalev M.M., Perov G.A. Analyzing the Process of Formation and Retaining of Straightness of Flax Stem Strips During Flax Harvesting. Engineering Technologies and Systems. 2025;35(2):284–297. https://doi.org/10.15507/2658-4123.035.202502.284-297

Authors contribution:
A. N. Zintsov – conducting the study including carrying out experiments and collecting data; preparing the manuscript: visualizing the study results and obtained data.
M. M. Kovalev – controlling, leading and mentoring the process of planning and conducting the study; formulating the study idea, aims and objectives.
G. A. Perov – conducting the study, including carrying out experiments and collecting data; preparing the manuscript including critical review, commentary and revision at pre- or post-publication stages.

All authors have read and approved the final manuscript.

Submitted 28.12.2024;
revised 20.01.2025;
accepted 28.01.2025

 

REFERENCES

  1. Kadetova N.A., Sereda N.A. Improving Program-Target Planning for Rural Territories Development. Economics of Agriculture of Russia. 2024;(5):104–113. (In Russ., abstract in Eng.) https://doi.org/10.32651/245-104
  2. Rostovtsev R.A., Chernikov V.G., Ushchapovsky I.V., Popov R.A. The Main Problems of Scientific Support of Flax Growing. Agricultural Machinery and Technologies. 2020;14(3):45–52. (In Russ., abstract in Eng.) https://doi.org/10.22314/2073-7599-2020-14-3-45-52
  3. Chernikov V.G., Rostovtsev R.A., Romanenko V.Yu. Flax Harvesting Technologies for Flax Harvesting Machines. Agricultural Machinery and Technologies. 2023;17(1):19–24. (In Russ., abstract in Eng.) https://doi.org/10.22314/2073-7599-2023-17-1-19-24
  4. Sizov I.V., Pak L.N., Belyakova E.S. Evaluation of Straw Flax Preparation Quality in the Framework of Separate Flax Harvesting Technology. Agricultural Machinery and Technologies. 2023;17(2):49–54. (In Russ., abstract in Eng.) https://doi.org/10.22314/2073-7599-2023-17-2-49-54
  5. Perov M.G. Analysis of the State and Ways to Improve the Quality of Flax. Science in the Central Russia. 2022;58(4):53–61. (In Russ., abstract in Eng.) https://doi.org/10.35887/2305-2538-2022-4-53-61
  6. Solovyov S.V., Romanenko V.Yu., Chernikov V.G. Development of Remote-Controlled Self-Propelled Flax Windrow Turner. Agricultural Machinery and Technologies. 2024;18(4):10–16. (In Russ., abstract in Eng.) https://doi.org/10.22314/2073-7599-2024-18-4-10-16
  7. Zintsov A.N., Kovalev M.M., Perov G.A., Perov M.G., Dobretsov V.A. Influence of the Processes of Fluffing the Flax Stem Strips on the Structural Parameters of the Layer. Engineering Technologies and Systems. 2023;33(4):542–557. (In Russ., abstract in Eng.) https://doi.org/10.15507/2658-4123.033.202304.542-557
  8. Zintsov A.N., Kovalev M.M., Perov G.A. Probabilistic Model of the Kinematics of the Device for Reducing Elongation of Flax Fiber Stems in the Tape. Engineering Technologies and Systems. 2022;32(1):126–144. (In Russ., abstract in Eng.) https://doi.org/10.15507/2658-4123.032.202201.126-144
  9. Rostovtsev R.A., Kovalev M.M., Perov G.A., Prоsolov S.V. Studying the Innovative Flax Pulling Process in Apparatuses with Transverse Pulling Channels. Engineering Technologies and Systems. 2022;32(3):355–372. (In Russ., abstract in Eng.) https://doi.org/10.15507/2658-4123.032.202203.355-372
  10. Zintsov A.N., Bilan M.M., Dobretsov V.A. Investigation and Prevention of Defects in Flax Tapes Annotation. Agrarian Bulletin of the Non-Chernozem Region. 2022;(3):56–63. (In Russ., abstract in Eng.) https://doi.org/10.52025/2712-8679_2022_03_56
  11. Bykov N.N., Kalugin V.M., Kovalev M.M., Perov G.A., Sosnov V.I. [A Device for Wrapping and Spreading Flax Ribbons]. Patent 1271428 USSR. 1986 November 23. (In Russ.) Available at: https://clck.ru/3MEKoa (accessed 29.10.2024).
  12. Zubanov V.V., Zintsov A.N., Kovalev M.M., Smirnov N.A., Sokolov V.N. [Device for Forced Spreading of the Ribbon to Flax-Harvesting Machines]. Patent 2193301 Russian Federation. 2002 November 27. (In Russ.) https://patenton.ru/patent/RU2193301C2
  13. Smirnov N.A., Zintsov A.N., Sokolov V.N. Apparatus for Transportation of Plant Tape. Patent 2221361 Russian Federation. 2004 January 20. (In Russ., abstract in Eng.) https://elibrary.ru/zoconn
  14. Rostovtsev R.A., Zintsov A.N. [Investigation of the Process of Forced Spreading of a Ribbon by a Flax Combine]. Achievements of Scienceand Technology of AICis. 2006;(4):22–25. (In Russ.) https://elibrary.ru/kezthj
  15. Perov G. A., Rostovtsev A. A. [Determination of the Parameters of the Stream Conveyor of the Flax Harvester Device]. Vestnik of the Russian Agricultural Sciences. 2011;(5):74–76. (In Russ.) https://elibrary.ru/ogawbl
  16. Chernikov V.G., Perov G.A., Popov R.A., Rostovtsev A.A. [Investigation of the Process of Moving Flax Stalks Along a Spreading Shield in Extreme Weather Conditions]. Agricultural Machinery and Technologies. 2012;(3):27–28. (In Russ.) https://elibrary.ru/oxupur
  17. Lobachev A.A., Trofimov M.A., Smirnov S.V., Sokolov V.N. [Determination of Errors in Copying a Double Roll by a Pick-Up Baler. Agrarian Bulletin of the Upper Volga Region. 2023;(3):129–136. (In Russ.) https://doi.org/10.35523/2307-5872-2023-44-3-129-136
  18. Zubanov V.V., Kovalev M.M., Perov G.A., Sizov I.V. [Wrapping Device with Cantilever Type Clamping Rods]. Patent 107891 Russian Federation. 2011 September 10. (In Russ.) https://elibrary.ru/ogvvns
  19. Zintsov A.N. Spreading Device for Flax Harvesting Machines. Patent 2834953 Russian Federation. 2025 February 19. (InRuss., abstract in Eng.) https://elibrary.ru/gsxima

 

 

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