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Received 19.04.2023

Revised 22.08.2023

Accepted 20.09.2023

Retrieved from Iss. 114, P. 1, 2023

Pages 151 -159

  • 131 Views

Suggested citation

Varfolomeev, Yu., Levkivskyi, S., & Moroz, V. (2023). PLANETARY GEARS DYNAMIC MODEL OF ROAD MACHINE DRIVES FOR CALCULATING FORCED VIBRATIONS. Automobile Roads and Road Construction, (114.1), 151-159. https://doi.org/10.33744/0365-8171-2023-114.1-151-159

PLANETARY GEARS DYNAMIC MODEL OF ROAD MACHINE DRIVES FOR CALCULATING FORCED VIBRATIONS

Yuriy Varfolomeev Sergii Levkivskyi Valentyn Moroz

Abstract

The paper proposes an experimental technique for finding the uneven distribution of torque between the gears of a planetary gear and, at the same time, the distribution of the load along the tooth based on five load sensors on the shaft of each planetary gear. The object of study is the rigidity and inertial parameters of the planetary gear elements. The purpose of the study is to create a dynamic model of a planetary gear to calculate forced vibrations caused by time-varying gaps - tensions arising in gears. The paper provides an analysis of the problem for the developed model and factors that complicate its creation. Recommendations based on the results of theoretical studies are highlighted. Such recommendations necessitate the obligatory identification of the satellite axes in the model as separate masses. Also, each satellite is represented in the model by a separate mass, which includes its moment of inertia in rotational motion and the mass reduced to it in translational motion together with the carrier. All connections between moving and stationary masses are represented in the model in the form of elastic massless elements with corresponding stiffness values. A mathematical model has been constructed that analytically depicts the movement of masses in the proposed dynamic model. The model consists of ten inhomogeneous second-order differential equations with constant coefficients. To check the adequacy of the resulting model, the parameters of rigidity and inertia of the planetary gear elements were determined. The results obtained indicate that the rigidity of elastic connections between the masses introduced into the mathematical model does not differ from the real ones. The conducted studies indicate the possibility of using this mathematical model to calculate forced vibrations caused by time-varying gaps - tensions arising in gears

Keywords:

planetary gearbox, coefficient of uneven distribution of loading between satellites, dynamic model, forced vibrations, polynomial models, adequacy

References

  1. Tiutin, V.M., & Levkivskyi, S.A. (2020). Improving the technical level of general-purpose planetary gearboxes. In LXXVI Scientific and practical conference of academic and teaching staff, postgraduate students, students and structural units of the university (pp. 16). Kyiv: National Transport University.
  2. Tyutin, V.M., Levkivsky, S.A., & Levkivska, L.V. (2021). Building a model for calculating free vibrations of planetary gears. In The 7th international scientific and practical conference “World science: Problems, prospects and innovations” (pp. 162-170). Toronto: Perfect Publishing.
  3. Tiutin, V.M., Moroz, V.V., & Levkivskyi, S.A. (2021). Statistical analysis of the results of experimental study of a planetary gearbox using the bootstrap method. Bulletin of the National Transport University. Series “Technical Sciences”, 51(Part 1), 373-381.
  4. Varfolomeev, Yu.M., & Levkivskyi, S.A. (2023). Dynamic model of planetary gears for studying free vibrations. In International scientific and practical conference “Development and restoration of the mechanical engineering complex of Ukraine” (pp. 71-73). Kharkiv: Kharkiv National Automobile and Highway University.
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https://doi.org/10.33744/0365-8171-2023-114.1-151-159

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