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Application of the laser scanning microscopy to evaluation of abrasive tool wear

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Grinding is one of the basic precise machining methods. Evaluation of the abrasive tool surface is the basic criterion of forecasting the tools' durability and the process results. The applied method of laser scanning made determination of the surface coordinates and subsequently of its geometric features with micrometric accuracy possible. Using the information on the abrasive tool surface geometric structure, a methodology of evaluation of the level of changes of the tool during the machining process was developed. The developed method allowed for evaluation of the level of abrasive tools' wear, and subsequently formed foundations for assessment of the influence of the machining parameters on the durability of abrasive tools, evaluation of the influence of the parameters of the process of shaping the abrasive tools' active surfaces on their geometric characteristic and evaluation of the level of correlation between the monitored process parameters and the degree of the abrasive tools' wear.
Słowa kluczowe
Rocznik
Strony
99--110
Opis fizyczny
Bibliogr. 13 poz., rys.
Twórcy
autor
  • Department of Mechanical Engineering, Koszalin University of Technology, Raclawicka 15-17, 75-620 Koszalin, Poland
autor
  • Department of Mechanical Engineering, Koszalin University of Technology, Raclawicka 15-17, 75-620 Koszalin, Poland
autor
  • Department of Mechanical Engineering, Koszalin University of Technology, Raclawicka 15-17, 75-620 Koszalin, Poland
Bibliografia
  • [1] COMES DE OLICERIRA J.F., DORNFELD D.A., 1994, Dimensional characterization of grinding wheel surface through acoustic emission, Annals CIRP, 43, 291–294.
  • [2] FURUTANI K, OHGURO N, HIEU NT, NAKAMURA T., 2002, In process measurement of topography change of grinding wheel by hydrodynamic pressure. Int. J. Mach. Tools Manuf., 42, 1447–1453.
  • [3] INASAKI I., 1991, Monitoring and optimization of internal grinding process, Annals CIRP, 41, 359–362.
  • [4] LIPINSKI D., KACALAK W., 2007, Assessment of the accuracy of the process of ceramics grinding with the use of fuzzy interference”, Adaptive and natural computing algorithms, Lecture Notes in Computer Science, SpringerVerlag Berlin, 596-603.
  • [5] MOKBEL A.A., MAKSOUD T.M., 2000, Monitoring of the condition of diamond grinding wheels using acoustic emission technique. J. Mater. Process. Technol., 101, 292–297.
  • [6] LACHANCE S., BAUER R., WARKENTIN A., 2004, Application of region growing method to evaluate the surface condition of grinding wheels. Int. J. Mach. Tools Manuf., 44, 823–829.
  • [7] FAN K.C., LEE M.Z., MOU J.I., 2002, On-line non-contact system for grinding wheel wear measurement, Int. J. Adv. Manuf. Technol., 19, 14–22.
  • [8] KURADA S., BRADLEY C., 1997, A review of machine vision sensors for tool condition monitoring, J. Computers and Industry, 34, 55-72.
  • [9] NADOLNY K., KAPLONEK W., VALICEK J., 2011, Pneumatic method used for fast non-contact measurements of axial contour of grinding wheel active surface. Measurement Automation and Monitoring, 57, 1071–1074.
  • [10] SU J.C., TARNG Y.S., 2006, Measuring wear of the grinding wheel using machine vision, Int. J. Adv. Manuf. Technol., 31, 50–60.
  • [11] KASSIM A. A., MANNAN M. A., ZHU M., 2007, Texture analysis methods for tool condition monitoring, J. Image and Vision Computing, 25, 1080-1090.
  • [12] KACALAK W., 1989, Wear and durability of diamond wheels in the process of automated grinding of ceramic components, Monographs, Wydzial Mechaniczny, Politechnika Koszalinska, (in Polish).
  • [13] SHAW M.C., 1996, Principles of abrasive processing, Oxford University Press, New York.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-ab7c4407-b21a-4636-bb98-eb50982f0e0a
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