AbstractAbout AuthorsReferences
This paper provides a review of the regulatory framework of the permissible value of the vibration level depending on the accuracy of the equipment, a review of the problem of the influence of vibration on the operation of high-precision equipment. Based on the results of the analysis of the identified problem, a lack of initial data from manufacturers of vibration sources in terms of vibration characteristics was identified, and a solution was proposed to obtain the necessary parameters for frequency analysis.
V.A. SMIRNOV1,2, Candidate of Sciences (Engineering) (This email address is being protected from spambots. You need JavaScript enabled to view it.),
E.O. GARBER1,2, Engineer (This email address is being protected from spambots. You need JavaScript enabled to view it.);
D.D. MALOV1, Engineer (This email address is being protected from spambots. You need JavaScript enabled to view it.)
E.O. GARBER1,2, Engineer (This email address is being protected from spambots. You need JavaScript enabled to view it.);
D.D. MALOV1, Engineer (This email address is being protected from spambots. You need JavaScript enabled to view it.)
1 Scientific-Research Institute of Building Physics of RAACS (21, Lokomotivniy Driveway, Moscow, 127238, Russian Federation)
2 National Research Moscow State University of Civil Engineering (26, Yaroslavskoe Highway, Moscow, 129337, Russian Federation)
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8. Smirnov V.A. Experimental and numerical assessment of vibration levels of the foundation structure of high-precision equipment. Zhilishchnoe Stroitel’stvo [Housing Construction]. 2016. No. 6, pp. 33–36. (In Russian).
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2. Воронков А.А. Оценка воздействия вибрации в помещениях на чувствительное оборудование. Обзор подходов и практический опыт // Мир измерений. 2019. № 3. С. 34–36.
2. Voronkov A.A. Assessment of the impact of vibration in rooms on sensitive equipment. Overview of approaches and practical experience. Mir izmereniy. 2019. No. 3, pp. 34–36. (In Russian).
3. Gordon C.G. Generic criteria for vibration-sensitive equipment. Proc. SPIE: Vibration Control in Microelectronics, Optics and Metrology. 1991. Vol. 1619, pp. 71–85.
4. Гусев В.П. Вибрация оборудования инженерных систем и способы защиты от нее // АВОК. 2010. № 5. С. 44–53.
4. Gusev V.P. Vibration of engineering systems equipment and methods of protection against it. AVOK. 2010. No. 5, pp. 44–53. (In Russian).
5. Tsypkin M. Induction motor condition monitoring: vibration analysis technique – a practical implementation. IEEE International Electric Machines and Drives Conference, 2011, pp. 406–411.
6. Guinchard M. Investigation and Estimation of the LHC Magnet Vibrations Induced by HL-LHC Civil Engineering Activities. 9th International Particle Accelerator Conference, Vancouver, Canada, pp. 2565–2567.
7. Смирнов В.А. Экспериментальное определение динамических нагрузок в опорах эксплуатирующихся станков. Актуальные проблемы строительной отрасли и образования: Сборник докладов Первой национальной конференции. Москва, 2020. С. 787–793.
7. Smirnov V.A. Experimental determination of dynamic loads in the supports of operating machines. Actual problems of the construction industry and education: Collection of reports of the First National Conference. Moscow. 2020, pp. 787–793. (In Russian).
8. Смирнов В.А. Экспериментально-численная оценка уровней вибраций конструкции фундамента высокоточного оборудования // Жилищное строительство. 2016. № 6. С. 33–36.
8. Smirnov V.A. Experimental and numerical assessment of vibration levels of the foundation structure of high-precision equipment. Zhilishchnoe Stroitel’stvo [Housing Construction]. 2016. No. 6, pp. 33–36. (In Russian).
9. Мондрус В.Л. Решение задачи о выбросах при случайных колебаниях виброзащитных систем высокоточного оборудования // Научное обозрение. 2015. № 13. С. 44–47.
9. Mondrus V.L. Solving the problem of emissions from random vibrations of vibration-proof systems of high-precision equipment. Nauchnoe obozrenie. 2015. No. 13, pp. 44–47. (In Russian).
10. Smith S.T., Chetwynd D.G. Foundations of ultraprecision mechanism design. Gordon and Breach Science Publishers. USA. 1992. 364 p.
11. Nakazawa H. Principles of precision engineering. Oxford Science Publications. UK. 1994. 280 p.
12. Hale L.C. Principles and techniques for designing precision machines. PhD thesis. Massachusetts. 1999. 211 p.
13. Van Schothorst G. Active vibration control using piezoelectric smart discs. Mathematics and Control in Smart Structures. 1999, pp. 637–648.
For citation: Smirnov V.A., Garber E.O., Malov D.D. On the issue of assigning dynamic characteristics of engineering equipment in designing of high-precision production. Zhilishchnoe Stroitel'stvo [Housing Construction]. 2024. No. 9, pp. 75–79. (In Russian). https://doi.org/10.31659/0044-4472-2024-9-75-79
