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Title of the article ESTIMATING OF DURABILITY INDEXES OF STRUCTURAL ELEMENTS BASED ON IDENTIFICATION OF THEIR DETERMINISTIC PROPERTIES
Authors

NEVLIUDOV Igor Sh., D. Sc. in Eng., Prof., Head of the Department of Computer-Integrated Technologies, Automation and Mechatronics, This email address is being protected from spambots. You need JavaScript enabled to view it.">This email address is being protected from spambots. You need JavaScript enabled to view it.

ROMASHOV Yurii V., D. Sc. in Eng., Assoc. Prof., Professor of the Department of Computer-Integrated Technologies, Automation and Mechatronics, Kharkiv National University of Radio Electronics, Kharkiv, Ukraine; Professor of the Department of Applied Mathematics, V.N. Karazin Kharkiv National University, Kharkiv, Ukraine, This email address is being protected from spambots. You need JavaScript enabled to view it.">This email address is being protected from spambots. You need JavaScript enabled to view it.

In the section DYNAMICS, DURABILITY OF VEHICLES AND STRUCTURES
Year 2021
Issue 1
Pages 21–24
Type of article RAR
Index UDK 620.1
DOI https://doi.org/10.46864/1995-0470-2020-1-54-21-24
Abstract Durability indexes are presented as a consequence of some deterministic properties inherent in the system and (or) their elements, and it is proposed to determine the durability indexes on the basis of analysis of these properties. The most important for estimating the durability are properties related to the lifetime, and the deterministic properties basic for determining the indexes of durability, can be represented by the function of the dependence of the lifetime on the parameter defining the operational conditions. Estimating the durability indexes is reduced to identification of the deterministic properties representing the dependence of the lifetime on the parameter defining the operational conditions. An example of estimating the durability of pipes of superheaters of steam boilers demonstrates the proposed approaches with relatively less complexities. This particular example shows that deterministic properties can have a significant influencing on the durability due to significant differences between the density function of the parameter defining the operational conditions and the density function of the lifetime. The proposed approaches can be recommended for use to estimate the durability indexes of unique technical systems, such as high-power steam boilers and nuclear power reactors, which are usually manufactured in single batches, as well as to estimate the durability indexes of any systems at the stage of their development in order to compare the durability of different constructions.
Keywords deterministic properties, identification, durability, computed estimation, mean time to failure, Bx lifetime
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Bibliography
  1. Argoud V., Morel F., Pessard E., Bellett D., Thibault S., Gourdin S. Fatigue behaviour of gear teeth made of case hardened steel: from competing mechanisms to lifetime variability. Procedia structural integrity, 2019, vol. 19, pp. 719–728.
  2. Jantara Junior V.L., Basoalto H., Papaelias M. A damage mechanics approach for lifetime estimation of wind turbine gearbox materials. International journal of fatigue, 2020, vol. 137. DOI: https://doi.org/10.1016/j.ijfatigue.2020.105671.
  3. Dedov A., Klevtsov I., Lausmaa T., Bojarinova T. High temperature corrosion and remaining lifetime assessment of ferritic steel 13CrMo4-4 tubes in a convective superheater of a CFB oil shale boiler. Corrosion science, 2020, vol. 164. DOI: https://doi.org/10.1016/j.corsci.2019.108311.
  4. Krivanek R. Factors limiting lifetime of nuclear power plants with pressurized-water reactors. Nuclear engineering and design, 2020, vol. 370. DOI: https://doi.org/10.1016/j.nucengdes.2020.110872.
  5. Segantin S., Testoni R., Zucchetti M. The lifetime determination of ARC reactor as a load-following plant in the energy framework. Energy policy, 2019, vol. 126, pp. 66–75.
  6. González-Gómez P.A., Gómez-Hernández J., Briongos J.V., Santana D. Lifetime analysis of the steam generator of a solar power plant. Applied thermal engineering, 2019, vol. 159. DOI:
    https://doi.org/10.1016/j.applthermaleng.2019.113805.
  7. Bertsche B. Reliability in automotive and mechanical engineering. Berlin, Heidelberg, Springer-Verlag, 2008. 492 p.
  8. Ventsel E.S. Teoriya veroyatnostey [Theory of probabilities]. Moscow, Vysshaya shkola Publ., 2001. 575 p. (in Russ.).
  9. Romashov Yu.V. Otsenka pokazateley dolgovechnosti teploobmennykh trub parogeneratorov AES s VVER na osnove kontinualnoy modeli korrozionnogo rastreskivaniya [Assessment of reliability
    indices for WWER steam generator heat exchange tubes based on a continuum stress-corrosion cracking model]. Nuclear and radiation safety, 2012, vol. 3, iss. 55, pp. 16–20 (in Russ.).
  10. Morachkovskii O.K., Romashov Yu.V. Prediction of the corrosion cracking of structures under the conditions of high-temperature creep. Materials science, 2011, vol. 46, no. 5, pp. 613–618.
  11. Timoshenko S., Goodier J.N. Theory of elasticity. New York, Toronto, London, McGraw-Hill Book Company, 1951. 506 p.
  12. Antikayn P.A. Korroziya metalla parogeneratorov [Corrosion of the metal of steam generators]. Moscow, Energiya Publ., 1977. 112 p. (in Russ.).