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Methods of Geometric Surface Structure Measurement of AW-2017A Alloy after Cavitation Wear

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Evaluation of the cavitation erosion resistance of structural materials is based on selected measurement method. Destruction of the sample surface caused by cavitation phenomenon can be evaluated in laboratory conditions by measuring few quantitative parameters e.g. loss of mass of sample, quantity or weight of detached particles, the area of the worn material, the average and the maximum depth of cavitation erosion, the change of surface roughness or the number of cavities on the surface. In this paper optical and profilometry methods of geometric surface structure measurement of AW-2017A alloy after cavitation wear, were presented and compared. The optical method was carried out on Nikon Eclipse MA200 light microscope and profilometry method was performed using TOPO 01P v3D profilometer.
Rocznik
Strony
181--186
Opis fizyczny
Bibliogr. 10 poz., fot., rys., tab., wykr.
Twórcy
  • Institute of Basic Technical Sciences, Maritime University of Szczecin, Szczecin, Poland
autor
  • Department of Advanced Materials and Technologies, Military University of Technology, Warszawa, Poland
Bibliografia
  • [1] Brennen, C. E. (1995). Cavitation and Buble Dynamics. Oxford University Press.
  • [2] Briggs, L. J. (1970). The Limiting Negative Pressure of Water, Journal of Applied Physics. Vol. 21, 721-722.
  • [3] Trevena, D. H. (1987). Cavitation and tension in liquids, IOP Publishing Ltd, 1987.
  • [4] Plesset, M. S. & Chapman, R. B. (1971). Collapse of an Initially Spherical Vapour Cavity in the Neighbourhood of a Solid Boundary, Journal of Fluid Mechanics. Vol. 47, Part 2, 283-290.
  • [5] Thiruvengadam, A. & Preisner, H. S. (1964). On testing materials for cavitation damage resistance, Journal of ship research. Vol. 8, No 3, 39-56.
  • [6] Tichler, J. W. & W de Gee, A. (1970). Time Dependence of Cavitation Erosion and Effect of Some Material Properties. Farnborough, England, 847-879.
  • [7] Plesset, F. J. & Devine, R. E. (1966). Effect of Exposure Time on Cavitation Damage, Journal Basic Eng. Vol. 68, No 4, 691-705.
  • [8] Steller, K. (1982). Cavitation Basic concepts, with particular emphasis on the concepts of hydraulic machines, Zeszyty Naukowe Instytutu Maszyn Przepływowych PAN w Gdańsku, Nr 140/1057/82, Gdańsk.
  • [9] Jasionowski, R., Przetakiewicz, W. & Zasada D. (2011). The method for determination of the beginning of cavitational wear through comparison of mass decrement and destroyed surface increment on the example of FeAl36 alloy, Archives of Foundry Engineering. Vol. 11, Special Issue 2, 103-107.
  • [10] [10] Gadelmawla, E. S., Koura, M. M., Maksoud, T. M. A., Elewa, I. M. & Soliman H. H. (2002). Roughness parameters. Journal of Materials Processing Technology. Vol. 123, 133-145.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-72da0f59-36c5-41d2-849b-4f56b59c9d07
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