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Methodology of Preparing Hypoid Gears for Vibroacoustic Diagnostics in Laboratory Conditions

Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
This article presents the methodology of preparing a hypoid gear for vibroacoustic diagnostics with consideration to signal recording conditions and ensuring peripheral parts’ noise reduction. The procedure is aimed at increasing the clarity of the signal generated by meshing for its more precise and unambiguous interpretation.
Słowa kluczowe
Rocznik
Strony
63--72
Opis fizyczny
Bibliogr. 16 poz., il., rys.
Twórcy
autor
  • Rzeszow University of Technology, Faculty of Mechanical Engineering and Aeronautics
autor
  • Rzeszow University of Technology, Faculty of Mechanical Engineering and Aeronautics
Bibliografia
  • 1. Błazucki, P. and Skawiński, P. (2015). Experimental verification of tooth contact of spiral bevel gear machined on 4-axis CNC milling center. Machine Dynamics Research, 39(3).
  • 2. Cempel, C. (1989). Vibroacoustic diagnostics of machinery. Państwowe Wydawnictwo Naukowe, Warszawa.
  • 3. Czech, P., Łazarz, B., Madej, H., and Wojnar, G. (2009). Diagnosis of industrial gearboxes condition by vibration analysis. Acta Tech. Corviniensis-Bull. Eng., 2.
  • 4. Czech, P., Łazarz, B., and Wojnar, G. (2007). Detection of local gear teeth damage rusing artificial neural networks and genetic algorithms. Institute for Sustainable Technologies.
  • 5. Guo, D. and Sun, G. (2014). Vibroacoustic modeling and path control of air-borne axle whine noise. Advances in Mechanical Engineering, 6:248362.
  • 6. Liang, J. and Xin, L. (2013). Dynamic simulation of spiral bevel gear based on solidworks and adams. Journal of Theoretical & Applied Information Technology, 47(2).
  • 7. Marciniec, A. and Płocica, M. (2015). Generating solid models of bevel gears on the basis of a grid of points in the CATIA CAD system. International Conference “Methods and Tools for CAE, 47(2).
  • 8. Niola, V. and Quaremba, G. (2011). The gear whine noise and vibro-acoustic emission of gear-box. In Proceedings of the 11th WSEAS international conference on robotics, control and manufacturing technology, and 11th WSEAS international conference on Multimedia systems & signal processing, pages 138–143. Citeseer.
  • 9. Noga, S. (2015). Analytical and numerical problems of vibrations in circular symmetry systems. Rzeszow University of Technology Publishing House.
  • 10. Tomaszewski, J. (2017). Gears diagnostics in industrial conditions. www.ceramizer.pl/sites/all/pliki/dokumenty/diagnostyka.pdf.
  • 11. Tuszyński, W., Kalbarczyk, M., Hoyos de la Garza, E., Mydlarz, J., Kiser, B., and Handzlik, P. (2015). Technological setups of the gleason phoenix cnc spiral bevel and hypoid gear milling machines. Tribology, (1):121–135.
  • 12. Wilk, A., Łazarz, B., and Madej, H. (2017). Using housing vibration signal in planetary gear diagnosis. http://www.obrum.gliwice.pl/upload/downloads/spg/100/09Wilk.pdf.
  • 13. Wójcik, Z. (2004). Bevel gears of the gleason system. Rzeszow University of Technology Publishing House.
  • 14. Wojnar, G. (2008). Selection of toothed gear vibrations signal for diagnostics. Scientific Papers of Silesian University of Technology, (64):275–282.
  • 15. Wojnar, G. (2010). Using of torsional vibrations velocity for the detection of toothed wheels fault. Scientific Papers of Silesian University of Technology, (66):123–128.
  • 16. Wojnar, G., Figlus, T., and Czech, P. (2009). Circulating power stand as a system for acquiring test data for neural classifiers. Scientific Papers of Silesian University of Technology, (65):119–124.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-80827b7a-d38d-4e6c-ac38-0e81d166ef84
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