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Optimisation procedure of inner geometry in spherical roller bearings with regard to their durability

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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
This article deals with an optimisation procedure of inner geometry of rolling elements designed for spherical roller bearings. A process of selection of the most appropriate solution to increase spherical roller bearing durability is understood under the term optimisation in this case. The aim of this article is to examine the impact of a change of inner geometry on the durability and reliability of spherical roller bearings regarding production technology and competitiveness. Contact strain along with a spherical roller by means of Finite Element Method (FEM) in contact points of components of a spherical roller bearing by means of designed 3D parametric models. The most appropriate shape of inner geometry of a bearing from the standpoint of calculated durability will be determined based on the results of analyses.
Rocznik
Tom
Strony
173--181
Opis fizyczny
Bibliogr. 14 poz.
Twórcy
  • Institute of Competitiveness and Innovations, University of Žilina, Univerzitná 1, Žilina 01008, Slovak Republic
  • Department of design and mechanical elements, University of Žilina, Univerzitná 1, Žilina 01008, Slovak Republic
  • Department of design and mechanical elements, University of Žilina, Univerzitná 1, Žilina 01008, Slovak Republic
autor
  • Department of design and mechanical elements, University of Žilina, Univerzitná 1, Žilina 01008, Slovak Republic
Bibliografia
  • 1. Bartnik Grzegorz, Zbigniew Krzysiak, Waldemar Samociuk, Grzegorz Lysiak, Krzysztof Plizga, Marek Szmigielski, Aleksander Nieoczym, Zdzislaw Kaliniewicz, Frantisek Brumercik. 2017. “Documentation of meeting the requirements in the area of technical safety on the example of distribution of liquid fuels”. Przemysl Chemiczny 96(5): 1039-1041. ISSN 0033-2496.
  • 2. Caban J., A. Marczuk, B. Sarkan, J. Vrabel. 2015. “Studies on operational wear of glycolbased brake fluid”. Przemysł Chemiczny 94(10): 1802-1806. ISSN 0033-2496.
  • 3. Czech Piotr. 2012. „Determination of the course of pressure in an internal combustion engine cylinder with the use of vibration effects and radial basis function - preliminary research”. Communications in Computer and Information Science 329: 175-182. DOI https://doi.org/10.1007/978-3-642-34050-5_21. Springer, Berlin, Heidelberg. ISBN:978-3-642-34049-9. ISSN: 1865-0929. In: Mikulski Jerzy (eds), Telematics in the transport environment, 12th International Conference on Transport Systems Telematics, Katowice Ustron, Poland, October 10-13, 2012.
  • 4. Czech Piotr. 2011. „Diagnosing of disturbances in the ignition system by vibroacoustic signals and radial basis function - preliminary research”. Communications in Computer and Information Science 239: 110-117. DOI https://doi.org/10.1007/978-3-642-24660-9_13. Springer, Berlin, Heidelberg. ISBN:978-3-642-24659-3. ISSN: 1865-0929. In: Mikulski Jerzy (eds), Modern transport telematics, 11th International Conference on Transport Systems Telematics, Katowice Ustron, Poland, October 19-22, 2011.
  • 5. Drozdziel P., L. Krzywonos. 2009. “The Estimation of the Reliability of the First Daily Diesel Engine Start-up During its Operation in the Vehicle”. Eksploatacja i Niezawodnosc – Maintenance and Reliability 1(41): 4-10. ISSN 1507-2711.
  • 6. Figlus Tomasz. 2019. “A method for diagnosing gearboxes of means of transport using multi-stage filtering and entropy”. Entropy 21(5): 1-13. ISSN 1099-4300, DOI: 10.3390/e21050441.
  • 7. Figlus Tomasz, Mateusz Koziol. 2016. “Diagnosis of early-stage damage to polymer - glass fibre composites using non-contact measurement of vibration signals”. Journal of Mechanical Science and Technology 30(8): 3567-3576. ISSN: 1738-494X. DOI: 10.1007/s12206-016-0717-1.
  • 8. Jedlinski L., J. Caban, L. Krzywonos, S. Wierzbicki, F. Brumercik. 2015. “Application of vibration signal in the diagnosis of IC engine valve clearance”. Journal of vibroengineering 17(1): 175-187. ISSN 1392-8716.
  • 9. Kohár R., F. Brumerčík, M. Lukáč, A. Nieoczym. 2016. „Numerical analysis of roller bearing“.Applied computer science 12(1): 5-16. ISSN 1895-3735.
  • 10. Krzysiak Zbigniew, Grzegorz Bartnik, Waldemar Samociuk, Janusz Zarajczyk, Krzysztof Plizga, Bartlomiej Rachwal, Slawomir Wierzbicki, Leszek Krzywonos, Frantisek Brumercik. 2017. “Analysis of explosion hazard at the liquid fuel station”. Przemysl Chemiczny 96(2): 279-282. ISSN 0033-2496.
  • 11. Mitka M., R. Bastovansky, F. Brumercik, P. Ignaciuk. 2017. “Local resistance of heating molybdenum sheet in a test device”. Advances in science and technology-research journal 11(3): 87-93. ISSN 2299-8624.
  • 12. Mruzek Martin, Igor Gajdáč, Ľuboš Kučera, Dalibor Barta. 2016. „Analysis of parameters influencing electric vehicle range“. Procedia Engineering 134: 165-174. ISSN 1877-7058.
  • 13. Mruzek Martin, Igor Gajdáč, Ľuboš Kučera, Tomáš Gajdošík. 2017. „The possibilities of increasing the electric vehicle range“. Procedia Engineering 192: 621-625. ISSN 1877-7058.
  • 14. Tomasikova M., M. Tropp, T. Gajdosik, L. Krzywonos, F. Brumercik. 2017. „Analysis of transport mechatronic system properties”. 12th International Scientific Conference of Young Scientists on Sustainable, Modern and Safe Transport. Procedia Engineering 192: 881-886. High Tatras, Slovakia, May 31-Jun 02, 2017. ISSN 1877-7058.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-574c94cf-f504-404a-aa48-a587ca66fae4
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