The study is dedicated to the evaluation of the safety of personnel attending industrial buildings under vibrational impacts caused by industrial equipment. A general approach to the evaluation of vibrational safety of the objects of capital construction in Russia, in conditions of dynamic impacts caused by industrial equipment, based on the analysis of requirements for structures of buildings and facilities at the stages of design and operation, has been provided. The areas associated with buildings and facilities have been described, including the requirements for the mechanical safety of buildings and facilities.
It has been noted that the properties of elements of building structures considered at the design stage in dynamic calculations of strength and stability of a building or facility may change during operation under workflow impacts that can cause fatigue manifestations in the construction materials. A strength calculation methodology for structural elements built on dynamic calculation considering the shift of supports of frame structures of production buildings and facilities has been provided.
Recommendations on the reinforcement of embrittled bearing structures of industrial buildings in order to ensure the safety of attending personnel under vibrational impacts have been recommended. The main provisions and approaches to the determination of methods of building structures reinforcement in industrial buildings and facilities based on the function of the alignment of strength resistance of these elements in accordance with loads and impacts have been specified.
The results of the implementation of these proposals will facilitate the efficiency increase of the processes of Russian industrial construction of buildings and facilities, upgrading the regulatory and engineering framework, ensuring the safety of production facilities, preserving the compliance of buildings and facilities with their functional purposes, mitigating the risk of damage to health and property of physical and legal bodies, state or municipal property and the environment.
2. On technical regulation: the Federal Law of December 20, 2002, № 184-FZ. Available at: https://docs.cntd.ru/document/901836556 (accessed: January 1, 2025). (In Russ).
3. GOST 12.1.012—2004. Occupational safety standards system. Vibration safety. General requirements. Available at: https://docs.cntd.ru/document/1200059881 (accessed: January 1, 2025). (In Russ).
4. GOST ISO 8041—2006. Vibration. Human response to vibration. Measuring instrumentation. Available at: https://docs.cntd.ru/document/1200060895 (accessed: January 1, 2025). (In Russ).
5. SN 2.2.4/2.1.8.566—96. The sanitary norms of industrial vibration, vibration of residential and public buildings. Available at: https://docs.cntd.ru/document/901703281?ysclid=m9soa642wz151804232 (accessed: January 1, 2025). (In Russ).
6. Technical regulation on the safety of buildings and structures: Federal Law of December 30, 2009, № 384-FZ. Available at: https://docs.cntd.ru/document/902192610 (accessed: January 1, 2024). (In Russ).
7. GOST 27751—2014. Reliability for constructions and foundations. General principles. Available at: docs.cntd.ru/document/1200115736?ysclid=m9so66iamp883867125 (accessed: January 1, 2025). (In Russ).
8. Berlinov M.V. Calculating the structures of building frames under dynamic impacts caused by industrial equipment. Promyshlennoe i grazhdanskoe stroitelstvo = Industrial and Civil Engineering. 2004. № 6. pp. 48–49. (In Russ).
9. Berlinov M.V., Tvorogov A.V. Influence of vibration loads on the operation of bases and foundations. BST: Byulleten stroitelnoy tekhniki = BST: Bulletin of Construction Technology. 2020. № 3 (1027). pp. 41–43. (In Russ).
10. Berlinov M.V. Developing the phenomenological equations triaxial deformation of concrete under dynamic loads. Available at: https://www.matec-conferences.org/articles/matecconf/pdf/2017/20/matecconf_spbw2017_04008.pdf (accessed: January 1, 2025).
11. Berlinov M.V. Exploitation characteristics of the constructions of transport buildings and structures under dynamic loads. Advances in Intelligent Systems and Computing. 2020. Vol. 1116. P. 567–574. DOI: 10.1007/978-3-030-37919-3_57
12. Fedorova N.V., Savin S.Yu. Time of dynamic impact to elements of RC frame at column buckling. IOP Conference Series Materials Science and Engineering. 2019. Vol. 687. № 3. DOI: 10.1088/1757-899X/687/3/033030
13. Tamrazyan A.G. Design of Structural Elements in the Event of the PreSet Reliability, Regular Load and Bearing Capacity Distribution. Vestnik MGSU (nauchno-tekhnicheskiy zhurnal po stroitelstvu i arkhitekture) = Vestnik MGSU (Proceedings of Moscow State University of Civil Engineering). 2012. № 10. pp. 109–115. (In Russ).
14. Bondarenko V.M. Phenomenology of the kinetics of damage to concrete and reinforced concrete structures operated in an aggressive environment. Beton i zhelezobeton = Concrete and reinforced concrete. 2008. № 2. pp. 25–28. (In Russ).
15. Tamrazyan A.G. Methodology for the Analysis and Assessment of the Reliability of the State and Prediction the Service Life of Reinforced Concrete Structures. Zhelezobetonnye konstruktsii = Reinforced Concrete Structures. 2023. Vol. 1. № 1. pp. 5–18. (In Russ).
16. Bondarenko V.M., Kolchunov V.I. Design models of strength resistance of reinforced concrete. Мoscow: ASV, 2004. 472 p. (In Russ).
17. Bondarenko V.M., Larionov E.M. Vibrocreep of concrete. Izvestiya vysshikh uchebnykh zavedeniy. Stroitelstvo = News of Higher Educational Institutions. Construction. 2004. № 3 (543). pp. 4–8. (In Russ).
18. Berlinov M.V. Vibration Safety During the Operation of Industrial Building Structures under Conditions of Dynamic Effects from Equipment. Bezopasnost Truda v Promyshlennosti = Occupational Safety in Industry. 2023. № 6. pp. 81–89. (In Russ.). DOI: 10.24000/0409-2961-2023-6-81-89
19. RD 34.21.306—96. Methodological instructions on the inspection of the dynamic state of building structures of facilities and foundations of equipment of energy enterprises. Available at: https://ohranatruda.ru/upload/iblock/0ca/4294847212.pdf?ysclid=m9sflfmrjp831500919 (accessed: January 1, 2025). (In Russ).
20. SP 63.13330.2018. Concrete and reinforced concrete structures. General provisions. Available at: https://docs.cntd.ru/document/554403082?ysclid=m9sdqjr2h8666261847 (accessed: January 1, 2025). (In Russ).