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The effect of integrating the structural modifications of the grinding wheel upon the internal cylindrical grinding process

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Wybrane pełne teksty z tego czasopisma
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Języki publikacji
EN
Abstrakty
EN
In this article an abbreviated presentation of the current trends in grinding development was made. It points to modifications of the grinding wheel construction as one of the most important directions in this field. The work describes in detail three selected modifications consisting of zone diversified structure, shaping microdiscontinuities of the grinding wheel active surface and applying the cooling liquid provision system inside the grinding wheel. The presented experiments were carried out in the single-pass internal cylindrical grinding process. The aim of the research was to establish the influence that the integration of certain modifications might have on the conditions and effects of the grinding process. The results obtained show that depending on the integration level, the grinding power can be decreased within the range from 31% to 56% and the surface roughness can be reduced by approximately 25%.
Rocznik
Strony
60--67
Opis fizyczny
Bibliogr. 17 poz., rys., tab., wykr.
Twórcy
autor
  • Koszalin University of Technology, Faculty of Mechanical Engineering, Racławicka 15-17, 75-620 Koszalin, Poland
Bibliografia
  • [1] I.D. Marinescu, M. Hitchiner, E. Uhlmann, W.B. Rowe, I. Inasaki, Handbook of machining with grinding wheels, CRC Press, Boca Raton, 2007.
  • [2] S. Malkin, C. Guo, Grinding technology: the way things can work: theory and applications of machining with abrasives, Industrial Press, New York, 2008.
  • [3] W.B. Rowe, Principles of modern grinding technology, William Andrew, Burlington, 2009.
  • [4] M.J. Jackson, J.P. Davim, Machining with abrasives, Springer, New York, 2010.
  • [5] J. Webster, M. Tricard, Innovations in abrasive products for precision grinding, Annals of the CIRP 53 (2) (2004) 597–617.
  • [6] A. Xingas, Next generation grinding, American Mechanist 143 (9) (1999) 58–64.
  • [7] P. Luetjens, H. Mushardt, Grinding out hardened parts, American Mechanist 148 (3) (2004) 52–59.
  • [8] B. Słowinski, K. Nadolny, Effective manufacturing method for automated inside diameter grinding, Journal of Advanced Mechanical Design, Systems, and Manufacturing 1 (4) (2007) 472–480.
  • [9] D. Herman, J. Plichta, K. Nadolny, New ceramic abrasive tools for rough and finishing grinding in one pass, Material Science Forum 526 (2006) 163–168.
  • [10] D. Herman, J. Plichta, K. Nadolny, Ceramic Abrasive Tool for Single-Pass Cylindrical Grinding and its Manufacture, Polish Patent no. 204902, 2009.
  • [11] K. Nadolny, J. Plichta, Microdiscontinuities of active surface as a method of lengthening of the grinding wheels durability period, Mechanic 82 (8–9) (2009) 701–706 (in Polish).
  • [12] K. Nadolny, J. Plichta, D. Herman, B. Słowinski, Single-pass grinding effective manufacturing method for finishing, in: Proceedings of the 19th International Conference on Systems Engineering, August 19–21, 2008, University of Nevada Las Vegas, Las Vegas, USA, pp. 236–241.
  • [13] J. Plichta, T. Bill, Method of Grinding Wheel Dressing Using Singlegrain Dresser, Polish Patent no. 155182, 1992.
  • [14] K. Nadolny, W. Kaplonek, Design of a device for precision shaping of the grinding wheel macro- and microgeometry, Journal of Central South University of Technology 19 (1) (2012) 135–143.
  • [15] K. Nadolny, J. Plichta, Folding Grinding Tool with Internal Centrifugal Cooling and Component of This Tool, Polish Patent no. 209014, 2010.
  • [16] D. Herman, Glass and glass-ceramic binder obtained from waste material for binding alundum abrasive grains into grinding wheels, Ceramics International 7 (1998) 515–520.
  • [17] D. Herman, J. Markul, Influence of microstructures of binder and abrasive grain on selected operational properties of ceramic grinding wheels made of alumina, International Journal of Machine Tools and Manufacture 5 (2004) 511–522.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-8b50ad8d-4748-456e-b04d-41a2cb1040e6
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