IMPROVED METHOD FOR ASSESSING THE RELIABILITY OF OBJECTS WITH A VARIABLE STRUCTURE

Authors

  • O. S. Babii Kyiv National Taras Shevchenko University, Kyiv, Ukraine, Ukraine
  • L. M. Sakovych National Technical University of Ukraine “Igor Sikorsky Kyiv Polytechnic Institute”, Kyiv, Ukraine, Ukraine
  • O. O. Sliusarchuk Defence Intelligence of Ukraine, Kyiv, Ukraine, Ukraine
  • Y. M. Yelisov Defence Intelligence of Ukraine, Kyiv, Ukraine, Ukraine
  • Y. E Kuryata National Technical University of Ukraine “Igor Sikorsky Kyiv Polytechnic Institute”, Kyiv, Ukraine, Ukraine

DOI:

https://doi.org/10.15588/1607-3274-2024-2-1

Keywords:

assessment of reliability indicators, objects with variable structure, hidden defects

Abstract

Context. The main idea is to take into account the possibility of the influence of hidden defects on the reliability of multi-mode radioelectronic equipment with a variable structure, which do not take into account the known methods for calculating reliability indicators. A quantitative assessment of the parameter of the failure flow of products is proposed, taking into account the impact of the accumulation of hidden defects on its value.

Objective. Improvement of the method for assessing the reliability of objects with a variable structure, taking into account the possibility of hidden defects when used for their intended purpose in certain operating modes.

Method. The methodology for assessing the values of reliability indicators of complex technical systems is used. The method being developed is the development of an algorithm for assessing the reliability indicators of multi-mode objects in the direction of taking into account the possibility of appearance and accumulation of hidden defects in subsets of elements of the object, which are not used when it operates in separate modes.

Results. Functional dependencies of partial and complex indicators of reliability of multi-mode objects on the accumulation of hidden defects, which manifest themselves only during maintenance or change of operating modes, are obtained. The solution is formalized in the form of an algorithm that uses the results of trial operation of products as initial data.

Conclusions. The scientific novelty lies in the development of the following innovative solutions: 1) for the first time it is proposed to take into account the presence of hidden defects when assessing the reliability of multi-mode objects with a variable structure; 2) for the first time, functional dependencies of the influence of the presence of hidden defects on the values of partial and complex reliability indicators were obtained and studied. The practical significance of the results lies in the fact that it allows, at the stage of trial operation of radioelectronic equipment with a variable structure, to objectively assess the compliance of calculations with the required values of reliability indicators by taking into account the possibility of hidden defects.

Author Biographies

O. S. Babii, Kyiv National Taras Shevchenko University, Kyiv, Ukraine

Senior Lecturer at the Department of Military and Technical Training

L. M. Sakovych, National Technical University of Ukraine “Igor Sikorsky Kyiv Polytechnic Institute”, Kyiv, Ukraine

PhD, Associate Professor of the Special Department of the Institute of Special Communication and Information Security

O. O. Sliusarchuk, Defence Intelligence of Ukraine, Kyiv, Ukraine

PhD, Senior researcher, Senior Researcher of the Military Intelligence Research Institute

Y. M. Yelisov, Defence Intelligence of Ukraine, Kyiv, Ukraine

PhD, Research Fellow of the Military Intelligence Research Institute

Y. E Kuryata, National Technical University of Ukraine “Igor Sikorsky Kyiv Polytechnic Institute”, Kyiv, Ukraine

Head of the Scientific and Organizational Department of the Research Center, Institute of Special Communication and Information Security

References

Nadiinist tekhniky. Terminy ta vyznachennia: DSTU 286094. [Chynnyi vid 1996-01-01]. Kyiv, Derzhstandart Ukrainy, 1994, 88 p.

Nadiinist tekhniky. Metody rozrakhunku pokaznykiv nadiinosti. Zahalni vymohy: DSTU 2862-94. [Chynnyi vid 1997-01-01]. Kyiv, Derzhstandart Ukrainy, 1995, 39 p.

Kuo W., Zuo M. J. Optimal Reliability Modeling: Principles and Applications. New York, John Wiley & Sons, Inc., 2003, 544 p.

Rausand M., Barros A., Høyland A. System reliability theory: models, statistical methods, and applications. Hoboken, John Wiley & Sons, Inc., 2021, 813 p.

Zio E. Reliability Engineering: Old Problems and New Challenges, Reliability Engineering and System Safety, 2009, Vol. 94, pp. 125–141. https://doi.org/10.1016/j.ress.2008.06.002

Uvarov B. M., Nikitchuk A. V. Radioelectronic Apparatus Design with Optimal Reliability Indicators, Visnyk NTUU KPI Seriia – Radiotekhnika Radioaparatobuduvannia, 2018, №75, pp. 48–53. https://doi.org/10.20535/RADAP.2018.75.48-53

Kharchenko V. A. Problems of reliability of electronic components, Modern Electronic Materials, 2015, Vol. 1, Issue 3, pp. 88–92. https://doi.org/10.1016/j.moem.2016.03.002

Swingler J. Reliability Characterisation of Electrical and Electronic Systems. Cambridge, UK, Woodhead Publishing, 2015, 274 p. https://doi.org/10.1016/C2013-0-16487-2

Petrov A., Khoroshko V., Scherbak L., Petrov A., Aleksander M. Reliability Basics of Information Systems. Krakow, Wydawnictwa AGH, 2016, 246 p.

D. Mogylevych, I. Kononova, B. Kredenzer, O. Oksiiuk Reliability of Redundant Telecommunications Equipment Advanced Model Considering Failures and Refusals of Structure Elements, International Conference on Advanced Trends in Information Theory, Kyiv, 18–20 December 2019, proceedings. Kyiv, IEEE, 2019, pp. 238–243. https://doi.org/10.1109/ATIT49449.2019.9030502

Yamada S., Tamura Y. OSS Reliability Measurement and Assessment. Springer, 2016, 185 p. https://doi.org/10.1007/978-3319-31818-9_1

Manzini R., Regattieri A., Pham H., Ferrari E.Maintenance for Industrial Systems. London, Springer, 2010, 497 p. https://doi.org/10.1007/978-1-84882-575-8.

Gurov S. V., Habarov S. P., Utkin L. V. Safety Analysis of a Multi-phased Control System, Microelectronics Reliability, 1997, Vol. 37, Issue 2, pp. 243–254, https://doi.org/10.1016/S00262714(96)00088-1

Ryzhov Y. V., Sakovich L. N., Puchkov O. O., Nebesna Y. E. Evaluation of Reliability of Radio-Electronic devices with Variable Structure, Radio Electronics, Computer Science, Control, 2020, №3, pp. 31–41. https://doi.org/10.15588/1607-3274-2020-3-3

Sakovych L. M., Romanenko V. P., Hyrenko I. M., Kuriata Ya. E., Myroshnychenko Yu. V. Tekhnichna ekspluatatsiia zasobiv ta system zviazku [Elektronnyi resurs]. Kyiv, NTUU KPI im. I. Sikorskoho, 2021, 176 p. Rezhym dostupu https://ela.kpi.ua/bitstream/123456789/57827/1/Tekhnichna_ekspl uatatsiia_zasobiv_ta_system_zviazku.pdf.

Pyrozhkov S. I., Reznikova О. О., Gnatiuk S. Ye., Kuryata Ya. E. Assessing the Reliability of Complex Systems Under Uncertainty in the Context of Ensuring National Resilience, Science and Innovation, 2023, № 19 (4), pp. 3–15. https://doi.org/10.15407/scine19.04.003

Ayers M. L. Telecommunications System Reliability Engineering, Theory, and Practice. Hoboken, John Wiley & Sons, 2012, 256 p. https://doi.org/10.1002/9781118423165.scard

Kononov V. B., Vodolazhko S. V., Koval S. V., Naumenko A. M., Kondrashova I. I. Osnovy ekspluatatsii zasobiv vymiriuvalnoi tekhniky viiskovoho pryznachennia v umovakh provedennia ATO. Kharkov, KhNUPS, 2017, 288 p.

Published

2024-06-11

How to Cite

Babii, O. S., Sakovych, L. M., Sliusarchuk, O. O., Yelisov, Y. M., & Kuryata, Y. E. (2024). IMPROVED METHOD FOR ASSESSING THE RELIABILITY OF OBJECTS WITH A VARIABLE STRUCTURE . Radio Electronics, Computer Science, Control, (2), 6. https://doi.org/10.15588/1607-3274-2024-2-1

Issue

Section

Radio electronics and telecommunications