Preview

Agricultural Engineering (Moscow)

Advanced search

Influence of the design parameters of the intake of a pneumatic conveyor of an aerodynamic heating dryer on its efficiency

https://doi.org/10.26897/2687-1149-2025-4-25-33

Abstract

Drying shaft of the modular dryer of aerodynamic heating is equipped with an outlet in the form of a combination of a non-driven mechanical outlet and a pneumatic conveyor. It is established that the design of its intake has a great impact on the performance of the pneumatic conveyor. The research purpose was to assess the influence of design parameters of the intake of a pneumatic conveyor on its performance. When studying the transportation of wheat grain, the authors tested five design options of the intake for a material pipeline of a 120 × 60 mm rectangular cross-section and a material pipeline of a 110 mm circular cross-section. It was found that the maximum capacity of 422.3 kg/h and mass concentration of the mixture 0.9 kg/kg are provided by the rectangular cross-section material pipeline with a protective insert. The direct discharge and the rectangular cross-section of the 120 × 60 mm material pipeline with a passive vibrator ensure the maximum capacity of 416.4 kg/h and a mass concentration of the mixture of 0.7 kg/kg. When using the outlet with a length of 3 cm instead of 6 cm, one can obtain a capacity of 466.8 kg/h and a mass concentration of the mixture of 0.89 kg/kg. To ensure stable operation and a capacity up to 450 kg/h, the intake of the pneumatic conveyor of the experimental modular dryer of aerodynamic heating should be equipped with a direct outlet of a 60 × 60 mm cross-section with a length of not more than 3 cm, connecting the dryer outlet with the intake of the material pipeline of a rectangular 120 × 60 mm cross-section, equipped with a passive vibrator. The air flow velocity at the intake of the pneumatic conveyor should be within 15.7 to 17.0 m/s. The use of a protective insert in the outlet is a promising way to increase the capacity of the pneumatic conveyor under the condition of increasing the initial air flow velocity at its intake.

About the Authors

A. I. Kupreenko
Bryansk State Agrarian University
Russian Federation

Aleksey I. Kupreenko, DSc (Eng), Professor

243365, Bryansk region, Vygonichi district, Kokino, Sovetskaya Str., 2a



Kh. M. Isaev
Bryansk State Agrarian University
Russian Federation

Khafiz M. Isaev, CSc (Econ), Associate Professor

243365, Bryansk region, Vygonichi district, Kokino, Sovetskaya Str., 2a



A. G. Yaloza
Bryansk State Agrarian University
Russian Federation

Andrey G. Yaloza, engineer

243365, Bryansk region, Vygonichi district, Kokino, Sovetskaya Str., 2a



O. A. Kupreenko
Bryansk State Agrarian University
Russian Federation

Oleg A. Kupreenko, PhD student

243365, Bryansk region, Vygonichi district, Kokino, Sovetskaya Str., 2a



S. Kh. Isaev
Bryansk State Agrarian University
Russian Federation

Samir Kh. Isaev, CSc (Eng); Associate Professor

243365, Bryansk region, Vygonichi district, Kokino, Sovetskaya Str., 2a



References

1. Kazakbaev S.Z., Karymsakov N.S. Progressive machines for pre-cleaning of grain. ISJ Theoretical & Applied Science. 2022;5(109):870-879. https://doi.org/10.15863/TAS.2022.05.109.84

2. Sychugov Yu.V., Kazakov V.A. New technologies and technical means of post-harvesting grain treatment and processing. Problems of Intensification of Animal Production including Environment Protection and Alternative Energy Production as well as Biogas. Vol. XXVII. Warsaw: Institute of Technology and Life Sciences, National Research Institute. 2021. Pp. 199-205. (In Russ.)

3. Burkov A.I., Glushkov A.L., Lazykin V.A., Mokiev V.Yu. Study of the inertial separator of the clover thresher with a pneumatic loader. Agricultural Engineering (Moscow). 2023;25(5):4-10. (In Russ.) https://doi.org/10.26897/2687-1149-2023-5-4-10

4. Nepochatoy V.N., Chernysh A.P., Dubodelov R.N. Study of changes in the flow velocity of a fluidized grain layer depending on the inclination angle of the plane of the working tool of the grain dryer. Trends in Agricultural Production in Modern Russia. Proceedings of XII International Scientific and Practical Conference. Kemerovo. 2013. Pp. 14-18. (In Russ.)

5. Afanasyev A.I., Potapov V.Ya., Kostyuk P.A. Basis of calculation of a pneumatic device (pd) for transporting bulk mixtures. Fundamental Research. 2015;10-1:9-11. https://fundamental-research.ru/ru/article/view?id=39115 (accessed: 02/24/2025). (In Russ.)

6. Volzhentsev A.V., Konoshin I.V., Bulavintsev R.A. et al. Fluidization as a system of the drying agent grain. Agrotekhnika i Energoobespechenie. 2020;1(26):14-19. (In Russ.)

7. Volzhentsev A.V., Konoshin I.V., Bulavintsev R.A., Zvekov A.M. Drying of wheat grain in a fluidized bed. Agrotekhnika i Energoobespechenie. 2020;4(29):42-48. (In Russ.)

8. Kuznetsov Yu.A., Kravchenko I.N., Sirotov A.V. et al. Designing grain dryers with fluidized grain layer. Selskiy Mekhanizator. 2018;5:22-23. (In Russ.)

9. Kupreenko A.I., Isaev Kh.M., Mikhailichenko S.M. et al. Modular type aerodynamic heating dryer. Konstruirovanie, Ispolzovanie i Nadezhnost Mashin Selskokhozyaystvennogo Naznacheniya = Design, Use and Reliability of Agricultural Machinery. 2022;1(21):218-222. (In Russ.)

10. Ozherelev V.N., Kupreenko A.I., Isaev Kh.M.O., Kupreenko O.A. Comparative efficiency of using a modular dryer for aerodynamic heating. Current Trends in the Development of Agricultural Science. Proceedings of the II International scientific and practical conference. Bryansk, 2023. Pp. 199-203. (In Russ.)

11. Tarasov V.P., Mukhopad K.A. The influence of characteristics of receiving and feeding devices on the stability of pneumatic conveying of bulk materials. Polzunovskiy Vestnik. 2012;2-2:127-130. (In Russ.)

12. Tarasov V.P., Levin O.L. Influence of the material pipeline loading method on the parameters of the pneumatic conveying process. Izvestiya Vuzov. Food technology. 2003;4(275):92-94. (In Russ.)

13. Kupreenko A.I., Isaev Kh.M.O., Yaloza A.G., Kupreenko O.A. On determining the rate of grain outflow from the drying shaft into the pneumatic conveyor of the dryer. Current Trends in the Development of Agricultural Science. Proceedings of the II International scientific and practical conference. Bryansk, 2023. Pp. 203-208. (In Russ.)

14. Kupreenko A.I., Isaev H.M., Isaev S.H. Comparative tests of the pneumatic conveyor of the aerodynamic heating dryer. Konstruirovanie, Ispolzovanie i Nadezhnost Mashin Selskokhozyaystvennogo Naznacheniya = Design, Use and Reliability of Agricultural Machinery. 2024;1(23):35-41. (In Russ.)

15. Kupreenko A.I., Isaev Kh.M., Yaloza A.G. To substantiation of the design of the pneumatic conveyor receiver of an aerodynamic heating dryer. Vestnik Bryanskoy GSKhA. 2025;1(107):58-61. (In Russ.)


Review

For citations:


Kupreenko A.I., Isaev Kh.M., Yaloza A.G., Kupreenko O.A., Isaev S.Kh. Influence of the design parameters of the intake of a pneumatic conveyor of an aerodynamic heating dryer on its efficiency. Agricultural Engineering (Moscow). 2025;27(4):25-33. (In Russ.) https://doi.org/10.26897/2687-1149-2025-4-25-33

Views: 68


Creative Commons License
This work is licensed under a Creative Commons Attribution 4.0 License.


ISSN 2687-1149 (Print)
ISSN 2687-1130 (Online)