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Modelling Safety of Multistate Systems with Dependent Components and Subsystems

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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
This report focuses on the safety analysis in the multistate ageing system after changing the safety state by any of its components, the inside interactions among the remaining components may cause the change of those components’ safety states. As we consider multistate systems, in a local, equal and mixed load sharing model of dependencies. For them, we analyze the safety of a multistate parallel-series and “m out of l”-series system, assuming that the lifetimes of subsystem components in the safety state subset are decreasing according to the local load sharing rule and the lifetimes of subsystems are decreasing according to the equal load sharing rule.
Słowa kluczowe
Rocznik
Strony
23--42
Opis fizyczny
Bibliogr. 21 poz.
Twórcy
  • Maritime University, Gdynia, Poland
  • Maritime University, Gdynia, Poland
Bibliografia
  • 1. Amari S.V., Misra R.B., Comment on: Dynamic reliability analysis of coherent multistate systems. IEEE Transactions on Reliability, 46, 460-461, 1997
  • 2. Blokus-Roszkowska A., Kołowrocki K., Reliability analysis of complex shipyard transportation system with dependent components, Journal of Polish Safety and Reliability Association, Summer Safety and Reliability Seminars, Vol. 5, No 1, 21-31, 2014a
  • 3. Blokus-Roszkowska A., Kołowrocki K., Reliability analysis of ship-rope transporter with dependent components, Proc. European Safety and Reliability Conference - ESREL 2014, 255-263, 2014b
  • 4. Blokus-Roszkowska A., Kołowrocki K., Reliability analysis of multistate series systems with dependent components. Journal of Polish Safety and Reliability Association, Summer Safety and Reliability Seminars, Vol. 6, No 1, 73-88, 31-36, 2015a
  • 5. Blokus-Roszkowska A., Kołowrocki K., Reliability of the exemplary multistate series system with dependent components. Journal of Polish Safety and Reliability Association, Summer Safety and Reliability Seminars, Vol. 6, No 1, 73-88, 37-46, 2015b
  • 6. Blokus-Roszkowska A., Kołowrocki K., Reliability analysis of conveyor belt with dependent components. Proc. European Safety and Reliability Conference - ESREL 2015, Zurich, Switzerland, 1127-1136, 2015c
  • 7. Cheng D., Zhu D., Broadwater R. P., Lee S., A graph trace based safety analysis of electric power systems with time-varying loads and dependent failures, Electric Power Systems Research, Vol. 79, 1321 - 1328, 2009
  • 8. Daniels H.E., The statistical theory of the strength of bundles of threads I, Proc. Roy. Soc. Ser. A. Vol. 183, 404-435, 1945
  • 9. EU-CIRCLE Report D2.1-GMU2, Modelling outside dependences influence on Critical Infrastructure Safety (CIS) - Modelling Critical Infrastructure Operation Process (CIOP) including Operating Environment Threats (OET), 2016
  • 10. EU-CIRCLE Report D3.3-GMU3, Modelling inside and outside dependences influence on safety of complex multistate ageing systems (critical infrastructures) - Integrated Model of Critical Infrastructure Safety (IMCIS) related to its operation process including operating environment threats (with other critical infrastructures influence, without climate-weather change influence), 2016
  • 11. Harlow D.G., Phoenix S.L., Probability distribution for the strength of fibrous materials under local load sharing, Adv. Appl. Prob. Vol. 14, 68-94, 1982
  • 12. Harlow D.G., Phoenix S.L., The chain-of-bundles probability model for the strength of fibrous materials, Journal of Composite Materials Vol. 12, 195-214, 1978
  • 13. Jain M., Gupta R., Load sharing M-out of-N: G system with non-identical components subject to common cause failure, International Journal of Mathematics in Operational Research, Vol. 4, No 5, 586-605, 2012
  • 14. Kołowrocki K., Reliability of Large and Complex Systems, Amsterdam, Boston, Heidelberd, London, New York, Oxford, Paris, San Diego, San Francisco, Singapore, Sidney, Tokyo, Elsevier, 2014
  • 15. Kołowrocki K., Soszyńska-Budny J., Reliability and Safety of Complex Technical Systems and Processes: Modeling - Identification - Prediction - Optimization, London, Dordrecht, Heildeberg, New York, Springer, 2011
  • 16. Kostandyan E., Sørensen J., Dependent systems safety estimation by structural safety approach, International Journal of Performability Engineering, Vol. 10, No 6, 605-614, 2014
  • 17. Phoenix S.L., Smith R.L., A comparison of probabilistic techniques for the strength of fibrous materials under local load sharing among fibres, Int. J. Solids Struct. Vol. 19, No 6, 479-496, 1983
  • 18. Pradhan S., Hansen A., Chakrabarti B.K., Failure processes in elastic fiber bundles, Rev. Mod. Phys. Vol. 82, 499-555, 2010
  • 19. Singh B., Gupta P.K., Load-sharing system model and its application to the real data set, Mathematics and Computers in Simulation, Vol. 82, No 9, 16151629, 2012
  • 20. Smith R.L., The asymptotic distribution of the strength of a series-parallel system with equal load sharing, Ann. of Prob. Vol. 10, 137-171, 1982
  • 21. Smith R.L., Limit theorems and approximations for the reliability of load sharing systems, Adv. Appl. Prob. Vol. 15, 304-330, 1983
Uwagi
Opracowanie ze środków MNiSW w ramach umowy 812/P-DUN/2016 na działalność upowszechniającą naukę (zadania 2017).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-e9df91b4-c8fb-48ee-8d59-7b21231edd51
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