Abstract
This article is devoted to the modeling of a mechatronic module based on linear motion actuator, including the processes of modeling the dynamic, kinematic, and control parameters of the mechatronic module, as well as the design and functional characteristics of the drives providing linear motion. In modern manufacturing enterprises and automated production systems, the need for mechatronic modules with high accuracy, speed, and reliability is increasing. In addition, mechatronic systems based on linear motion play a key role in the efficient control of technological processes, increasing positioning accuracy, and reducing energy consumption. The article presents mathematical models that allow one to construct kinematic and dynamic equations of a mechatronic module based on linear motion actuator, calculating mass, friction forces, inertia, coil inductance, and external loads as system parameters. The efficiency of the modeling process based on these mathematical models is mainly due to the correct choice of the integration method and the corresponding software; the computer model of the mechatronic module was built in the MATLAB/Simulink environment. The results obtained through computer modeling allow us to determine the optimal parameters of the mechatronic module, evaluate its design and functional characteristics, and conduct a comparative analysis of the adequacy of theoretical calculations performed for inertial and dynamic transient processes.
First Page
58
Last Page
63
References
1. Nazarov, Kh.N., Rakhimov, T.O., Yusupov, B.B. (2019). Mathematical models of multi-coordinate electromechatronic system of intellectual robots. Chemical Technology, Control and Management, 4(1), 47–51.
2. Angeles, J. (2003). Fundamentals of Robotic Mechanical Systems: Theory, Methods, and Algorithms. New York: Springer. 545 p.
3. Murray, M., Li, Z., Sastry, S.S. (1994). A Mathematical Introduction to Robotic Manipulation. CRC Press. 474 p.
4. Matyokubov, N.R., Rakhimov, T.O. (2023). Mathematical Model of an Industrial Robot Built Based on Linear Motion Mechatron Modules. Chemical Technology, Control and Management, 4(112), 37–42. https://doi.org/10.59048/2181-1105.1481
5. Nazarov, H.N., Hasanov, P.F. (1996). Elektromagnitnyy lineynyy dvigatel [Electromagnetic linear motor]. Patent RF № 511655, 27.11.1996. BI, № 23. (in Russian).
6. Nazarov, H.N., Matyokubov, N.R. (2017). Kontseptsiya postroeniya elektromagnitnykh mekhatronnykh moduley [Concept of constructing electromagnetic mechatronic modules]. Khimicheskaya tekhnologiya. Kontrol i upravlenie, 6(78), 42–46. (in Russian).
7. Matyokubov, N.R., Rakhimov, T. (2023). Principles for Constructing Mechatron Modules Based on Electromagnetic Linear Execution Elements of Intelligent Robot. Acta of Turin Polytechnic University in Tashkent, 13(2), 49–53.
8. Yusupbekov, N.R., Yusupbekov, A.N., et al. (2015). Intellektualnye sistemy upravleniya i prinyatiya resheniy [Intelligent Control and Decision-Making Systems]. Tashkent: Publishing House of the National Encyclopedia of Uzbekistan. 572 p. (in Russian).
9. Matyokubov, N.R., Rakhimov, T.O. (2024). Group Control of Functional Linear Actuation Elements of Mechatronic Modules. Transactions of the Korean Institute of Electrical Engineers, 73(06). https://doi.org/10.5370/KIEE.2024.73.6.995
10. Poduraev, Yu.V. (2007). Mekhatronika: Osnovy, Metody Primeneniya [Mechatronics: Fundamentals and Application Methods]. Moscow: Mashinostroenie. 405 p. (in Russian).
11. Nazarov, H.N. (2019). Intellektualnye mnogokoordinatnye mekhatronnye moduli robototekhnicheskikh sistem [Intelligent Multi-Coordinate Mechatronic Modules of Robotic Systems]. Tashkent: Mashhur-Press. 144 p. (in Russian).
12. Gotlib, B.M. (2007). Proektirovanie mekhatronnykh sistem. Chast 1. Informatsionnoe obespechenie protsessa proektirovaniya mekhatronnykh sistem [Design of Mechatronic Systems. Part 1. Information Support of the Design Process of Mechatronic Systems]. Ekaterinburg: UrGUPS. 115 p. (in Russian).
Recommended Citation
Аlimova, Nodira Batirdjanovna and Yusupov, Bekmurod Bayotovich
(2026)
"MODELING OF A MECHATRONIC MODULE BASED ON A LINEAR MOTION ACTUATOR,"
Chemical Technology, Control and Management: Vol. 2026:
Iss.
3, Article 7.
DOI: https://doi.org/10.59048/2181-1105.1810