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AGRICULTURE MECHANIZATION AND ELECTRIFICATION

DYNAMICS OF THE CYLINDRICAL FRAME

M. Nemerebaev 1 , T.L. Ayazbayev 1 , P.M. Maliktaeva 1 , Zh.A. Shymyr* 1

1 International Taraz Innovation Institute, Taraz, Republic of Kazakhstan

doi.org/10.37884/4-2021/14 pp. 119-126 Admitted 14.03.2022 Published 30.12.2021

Abstract

A frame is provided consisting of stringers consisting of a number k, parallel to each other, and L-ring frames located on it in an orthogonal plane. It is necessary to determine the function of the action of the particles of the previously considered frame and calculate in detail the direction of the force acting on it, the position at which the ring is directed tangentially to the middle line of the frame.

To obtain the result, research was carried out on the calculation of a thin cylindrical film under the action of preliminary free loads, the creation of a matrix of its shock function. In a flat cylindrical film, to solve this problem, a frame cylindrical shell is first calculated only if the functions of the action of the film-free frame are known.

The matrix of the action function of a flat cylindrical film can be calculated if six of its main elements are known, the physical values of which are functions of the action of a single force: vertical (normal), ascending and circumferential.

In this paper, the dynamic flexibility function of the framework is defined. It was determined based on the applied approaches to determining the impact functions on the dynamic plasticity of the frame.

To determine the dynamic flexibility function, the necessary system of equations was obtained using special approaches.

Dynamics, function, cylinder, frame, flexibility, element, force, direction.

01 Introduction

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02 References

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Citation Links

[1]2021. DYNAMICS OF THE CYLINDRICAL FRAME. Izdenister natigeler. 4 (92) (Dec. 2021), 119–126. DOI:https://doi.org/10.37884/4-2021/14.
(1)DYNAMICS OF THE CYLINDRICAL FRAME. Izdenister natigeler 2021, No. 4 (92), 119-126. https://doi.org/10.37884/4-2021/14.
DYNAMICS OF THE CYLINDRICAL FRAME. (2021). Izdenister Natigeler, 4 (92), 119-126. https://doi.org/10.37884/4-2021/14
DYNAMICS OF THE CYLINDRICAL FRAME. Izdenister natigeler, [S. l.], n. 4 (92), p. 119–126, 2021. DOI: 10.37884/4-2021/14. Disponível em: https://agrosoil.kaznaru.edu.kz/index.php/research/article/view/65. Acesso em: 15 sep. 2026.
“DYNAMICS OF THE CYLINDRICAL FRAME”. 2021. Izdenister Natigeler, no. 4 (92) (December): 119-26. https://doi.org/10.37884/4-2021/14.
“DYNAMICS OF THE CYLINDRICAL FRAME” (2021) Izdenister natigeler, (4 (92), pp. 119–126. doi:10.37884/4-2021/14.
[1]“DYNAMICS OF THE CYLINDRICAL FRAME”, Izdenister natigeler, no. 4 (92), pp. 119–126, Dec. 2021, doi: 10.37884/4-2021/14.
“DYNAMICS OF THE CYLINDRICAL FRAME”. Izdenister Natigeler, no. 4 (92), Dec. 2021, pp. 119-26, https://doi.org/10.37884/4-2021/14.
“DYNAMICS OF THE CYLINDRICAL FRAME”. Izdenister natigeler, no. 4 (92) (December 30, 2021): 119–126. Accessed September 15, 2026. https://agrosoil.kaznaru.edu.kz/index.php/research/article/view/65.
1.DYNAMICS OF THE CYLINDRICAL FRAME. Izdenister natigeler [Internet]. 2021 Dec. 30 [cited 2026 Sep. 15];(4 (92):119-26. Available from: https://agrosoil.kaznaru.edu.kz/index.php/research/article/view/65
1.DYNAMICS OF THE CYLINDRICAL FRAME. Izdenister natigeler. 2021;(4 (92):119-126. doi:10.37884/4-2021/14