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Prediction of Microfinishing Effects with the Use of Abrasive Films Utilizing Data Characterizing Their Surface Topography

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The publication describes the methodology and results of the studies on stereometric characteristics of the diamond surface of microfinishing films. This methodology is used in different treatments of precise finishing of very high smoothness and accuracy. One presented the results of analysis of vertices’ size in parallel plane to the film surface and towards perpendicular plane to it. Moreover, one performed an assessment of the distance between the grains using surface decomposition on Voronoi cell surface. In order to determine the film surface necessary to perform a particular microfinishing operation, one developed an index which is dependent on the overall profile of the film in the form of an envelope of the sum of vertices’ projections above a certain level. Studying the formation of diamond aggregates of abrasive grains and the spaces between them, one can conclude about the machining potential of microfinishing film and determine a recommended speed of the film displacement ensuring maximum utilization of this potential.
Rocznik
Strony
103--112
Opis fizyczny
Bibliogr. 21 poz., tab., rys.
Twórcy
autor
  • Koszalin University of Technology, Faculty of Mechanical Engineering, Department of Precision Mechanics, Koszalin, Poland
autor
  • Koszalin University of Technology, Faculty of Mechanical Engineering, Department of Precision Mechanics, Koszalin, Poland
autor
  • Centre National de la Recherche Scientifique, (CNRS) Laboratoire de Tribologie et Dynamique des Systemes, Lyon, France
Bibliografia
  • [1] BIRGERELLE M, MATHIA T., BOUVIER S., 2012, The multi-scale roughness analyses and modeling of abrasion with the grit size effect on ground surfaces, Wear, 286-287, 124-135.
  • [2] HILERIO I., MATHIA T., 2004, 3D Measurements of the knee prosthesis surfaces applied in optimizing of manufacturing process, Wear, 257, 12, 1230-1234.
  • [3] KACALAK W., KROLIKOWSKI T., RYPINA L., 2013, Modeling process difficult-Microcutting materials in finite element solver LS-DYNA, Mechanik, 8-9, 226-240 (in Polish).
  • [4] KACALAK W., SZAFRANIEC F., TOMKOWSKI R., LIPINSKI D., LUKIANOWICZ C., 2011, Methodology for evaluation of classification abilities of parameters characterizing stereometry features of surface irregularities, Pomiary Automatyka Kontrola, 57/5, 542-547, (in Polish).
  • [5] KACALAK W., TANDECKA K., 2011, Metrological aspects of the evaluation of diamond abrasive films topography for precise microfinishing, Pomiary Automatyka Kontrola, 57/5, 531-535, (in Polish).
  • [6] KACALAK W., TANDECKA K., 2011, Methodology for assessing the topography of the abrasive film for the precise superfinishing, Archiwum technologii maszyn i automatyzacji, 31/4, 87–95, 2011, (in Polish).
  • [7] KACALAK W., TANDECKA K., 2014, The effects of the use of discontinuous active surface of microfinishing films for superfinishing process, MECHANIK, 8-9, 36-40, (in Polish).
  • [8] KACALAK W., TANDECKA K., 2012, Effect of superfinishing metods kinematic features on the machined surface, Journal of Machine Engineering, 12/4, 35-48.
  • [9] KACALAK W., TANDECKA K., 2012, Basics of the superfinishing results prognostication be the diamond lapping films, Journal of Machine Engineering, 12/4, 49-62.
  • [10] KACALAK W., TANDECKA K., SEMPRUCH R., 2013, Modeling research of Microcutting process, MECHANIK, 8-9, 189-202/702, (in Polish).
  • [11] KHELLOUKI A., RECH J., ZAHOUANI H., 2010, The effect of lubrication conditions on belt finishing, International Journal of Machine Tools & Manufacture, 50, 917-921.
  • [12] KIM J., LIM E., JUNG Y., 2012, Determination of efficient superfinishing conditions for mirror surface finishing of titanium, Journal of Central South University, 19, 155-162.
  • [13] MATHIA T., LUIS F., MAEDER G., MAIREY D., 1982, Relationships between surface states, finishing processes and engineering properties, Wear, 83/2, 241-250.
  • [14] MATHIA T.G., PAWLUS P., WIECZOROWSKI M., Recent trends in surface metrology, Wear, 2011, 271/3-4, 494–508.
  • [15] MEZGHANI S., EL MANSORI M., 2008, Abrasiveness properties assessment of coated abrasives for precision belt grinding, Surfaces & Coatings Technology, 203, 786-789.
  • [16] MEZGHANI S., M. EL MANSORI, ZAHOUANI, 2009, New criterion of grain size choise for optimal surface texture and tolerance in belt finishing production, Wear, 266, 578-580.
  • [17] MEZGHANI S., EL MANSORI M., MASSAQ A., GHIDOSSI P., 2008, Correlation between surface topography and tribological mechanisms of the belt-finishing process using multiscale finishing process signature, Science Direct, C.R. Mecanique, 336, 794-799.
  • [18] MEZGHANI S., EL MANSORI M., SURA E., 2009, Wear mechanism maps for the belt finishing of steel and cast iron, Wear, 267/1–4, 86–91.
  • [19] SERPIN K., MEZGHANI S., EL MANSORI M., 2015, Multiscale assessment of structured coated abrasive grits in belt finishing process, Wear, 332-333, 780-787.
  • [20] GRZESIK W., ZAK K., 2013, Comparison of surface textures produced by finish cutting, abrasive and burnishing operations in terms of their functional properties, Journal of Machine Engineering, 13/2, 46-58.
  • [21] TAKAHASHI S., TANABE I., FUKUDA N., 2014, Development of polishing technology using heat for mirror-like surface of aluminum, Journal of Machine Engineering, 14/2, 57-68.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-b358fa6e-7430-4663-baea-e7ef977cac77
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