Research of production technology as a factor influencing the time of the product assembly cycle
https://doi.org/10.25206/1813-8225-2024-190-43-49
EDN: XFNRSC
Abstract
Nowadays the organization of domestic serial production of high-tech products requires a lot of time. On the one hand, the reason is the restructuring of logistics chains with foreign suppliers, on the other hand, the building of cooperation in the country. For example, the duration of the implementation of promising production projects in the space industry is still years. Factories are changing approaches in the organization of work – one of the main ways to influence the duration of production is to reduce the time of their own production cycle. As a rule, the analysis of the organization of serial production begins with the final assembly, which determines the tact of work for all other sites that produce components.
When evaluating the effectiveness of the organization of assembly production, criteria and factors are determined. The time of the product assembly cycle is taken as the efficiency criterion. It is necessary to determine the degree of significance for each factor and understand their mutual influence on each other.
The purpose of the research is to develop a unified system of factors affecting the cycle, and a method based on this system for evaluating the effectiveness of the organization of assembly production. The article considers the technological process as a factor affecting the product assembly cycle.
About the Authors
V. S. PonomarevaRussian Federation
Ponomareva Viktoria Sergeevna, Undergraduate, gr. M3O-211M-22
Moscow
O. V. Khomutskaya
Russian Federation
Khomutskaya Olga Vladislavovna, Candidate of Technical Sciences, Associate Professor of Digital Technologies and Information Systems Department
AuthorID (RSCI): 1061146
Moscow
References
1. GOST 57945-2017. Sistema tekhnologicheskogo obespecheniya razrabotki i postanovki na proizvodstvo izdeliy kosmicheskoy tekhniki. Terminy i opredeleniya [System of technological providing for development and raising production of wares of space technology. Terms and definitions]. Moscow, 2018. 15 p. (In Russ.).
2. GOST 3.1121-84. Obshchie trebovaniya k kompleksnosti i oformleniyu komplektov documentov na tipovye i gruppovye tekhnologicheskie protssessy (operatsii) [Unified system of technological documentations. General requirements for completeness and arrangement of sets of documents on typical and group technological processes (operations)]. Moscow, 2012. 48 p. (In Russ.).
3. Satanovskiy R. L., Ellent D. Transformatsiya klyuchevogo pokazatelya upravleniya effektivnoy organizatsii seriynogo proisvodstva [Transformation of the key management indicator of effective series production organization] // Organizator proizvodstva. Organizer of Production. 2023. Vol. 31, no. 1. P. 34– 47. DOI: 10.36622/VSTU.2023.94.85.003. EDN: VQIODV. (In Russ.).
4. GOST 56020-2020. Berezhlivoe proizvodstvo. Osnovnye polozheniya i slovar’ [Lean production. Fundamentals and vocabulary]. Moscow, 2020. 15 p. (In Russ.).
5. Temasova G. N., Leonov O. A., Shkaruba N. Zh. [et al.]. Vnedrenie berezhlivogo proizvodstva na promyshlennykh predpriyatiyakh [Introduction of Lean Production Elements in Industrial Enterprises] // Kompetentnost’. Competency. 2023. No. 6. P 41–46. DOI: 10.24412/1993-8780-2023-6-41-46. EDN: JKHKCM. (In Russ.).
6. Lijn E., Khomutskaya O., Vantsov S. Primeneniye metodov algoritmizatsii v protsesse imitatsionnogo modelirovaniya tekhnologicheskikh protsessov [Application of algorithmic methods in the process of process of simulation modeling of technological processes] // Elektronika: nauka, tekhnologiya, biznes. Electronics: Science, Technology, Business. 2023. No. 1. P. 122–127. DOI: 10.22184/1992-4178.2023.222.1.122.127. (In Russ.).
7. Lijn E. A., Korobkov M. A., Khomutskaya O. V. [et al.]. Formalizatsiya raboty proizvodstvennogo uchastka dlya rasrabotri imitatsionnoy modeli vypolneniya smenno-sutochnogo zadaniya [Formalization of the work of the production site for the development of a simulation model for performing a daily task] // Nauchno-tekhnicheskiy vestnik Povolzh’ya. Scientific and Technical Volga Region Bulletin. 2023. No. 5. P. 212–215. (In Russ.).
8. Kaushik A. K., Dwivedi A. A Review on Assembly Line Balancing by Different Approaches // International Journal of Scientific Research in Science, Engineering and Technology. 2023. Vol. 10, Issue 3. P. 619–625. DOI: 10.32628/IJSRSET23103174. (In Engl.).
9. Tkitek Z., Triki H., Frikha H. Review of Multi-Manned Assembly Line Balancing Problem // Fifth International Conference of the Tunisian Operational Research Society. 2022. P. 1–5. (In Engl.).
10. Ohno T. Proizvodstvennaya Sistema Toyoty. Ukhodya ot massovogo proizvodstva [Toyota Production. Beyond LargeScale Production] / trans. from Engl. Moscow, 2005. 192 p. ISBN 5-902677-04-1. (In Russ.).
11. Shigeo Sh. Izuchenie proizvodstvennoy sistemy Toyoty s tochki zreniya organizatsii proizvodstva [The Study of the Toyota Production System From an Industrial Engineering Viewpoint] / trans. from Engl. Moscow, 2006. 312 p. ISBN 5-903148-03-4. (In Russ.).
Review
For citations:
Ponomareva V.S., Khomutskaya O.V. Research of production technology as a factor influencing the time of the product assembly cycle. Omsk Scientific Bulletin. 2024;10(2):43-49. (In Russ.) https://doi.org/10.25206/1813-8225-2024-190-43-49. EDN: XFNRSC
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