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Modelling and Analysis of Displacement of Materials Characterized by Different Properties in the Zone of Microcutting

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
This paper presents the results of numerical studies conducted using Ansys system, the impact of model’s parameters on the workpiece displacement formation. In the simulation, one used the model of real grain. The authors analyzed the influence of material’s properties on the formation of lateral flow in the machining zone. Observation was also made for the material’s stagnation zone, which depends on geometrical characteristics of the blade, shape of its surface and characteristics of the workpiece.
Słowa kluczowe
Rocznik
Strony
46--58
Opis fizyczny
Bibliogr. 18 poz., tab., rys.
Twórcy
autor
  • Department of Precision Engineering, Faculty of Mechanical Engineering, Koszalin University of Technology, Koszalin, Poland
autor
  • Department of Precision Engineering, Faculty of Mechanical Engineering, Koszalin University of Technology, Koszalin, Poland
autor
  • Department of Precision Engineering, Faculty of Mechanical Engineering, Koszalin University of Technology, Koszalin, Poland
Bibliografia
  • [1] ANDERSON D., WARKENTIN A., BAUER R., 2011, Experimental and numerical investigations of single abrasive-grain cutting, International Journal of Machine Tools & Manufacture, 51, 898-910.
  • [2] ANDERSON D., WARKENTIN A., BAUER R., 2012, Comparison of spherical and truncated cone geometries for single abrasive-grain cutting, Journal of Materials Processing Technology, 212, 1946-1953.
  • [3] BUCHKREMER S., WU B., LUNG D., Munstermann, Klocke F., Bleck W., 2014, FE-simulation of machining processes with a new material model, Journal of Materials Processing Technology, 214, 599-611.
  • [4] KACALAK W., KROLIKOWSKI T., RYPINA Ł.,2014, Modelowanie naprężeń i przemieszczeń materiału w strefie mikroskrawania pojedynczym ziarnem ściennym z wykorzystaniem środowiska Ansys – cz. II, Mechanik, 8-9, 171-175/724.
  • [5] ASLAN D., BUDAK E., 2015, Surface roughness and thermo-mechanical force modeling for grinding operations with regular and circumferentially grooved wheels, Journal of Materials Processing Technology, 223, September, 75-90.
  • [6] JERMOLAJEV S., HEINZEL C., BRINKSMEIER E., 2015, Experimental and Analytical Investigation of Workpiece Thermal Load During External Cylindrical Grinding, Procedia CIRP, 31, 465-470.
  • [7] YEJUN Z., WENFENG D., JIUHUA X., CHANGYONG Y., 2015, An investigation of residual stresses in brazed cubic boron nitride abrasive grains by finite element modelling and raman spectroscopy, Materials & Design, 87, 342-351.
  • [8] SETTI D., SINHA M.K., GHOSH S., RAO P.V., 2015, Performance evaluation of Ti–6Al–4V grinding using chip formation and coefficient of friction under the influence of nanofluids, International Journal of Machine Tools and Manufacture, 88, 237-248.
  • [9] DOMAN D.A., WARKENTIN A., BAUER R., 2009, Finite element modeling approaches in grinding, International Journal of Machine Tools and Manufacture, 49/2, 109-116.
  • [10] KACALAK W., TANDECKA K., 2012. The construction of the micro-chips and the effects of the formation of micro-discontinuities in the process of smoothing the surface with a film abrasive, Innovative Manufacturing Technology, 2, 181-192, (in Polish).
  • [11] KACALAK W., TANDECKA K., LIPINSKI D., MATHIA T.G., 2014, Micro and nano - discontinuities of chips formations in diamond foils abrasive finishing process , 2nd International Conference on Abrasive Processes - ICAP Lipinski D., Kacalak W., Tomkowski R., Methodology of evaluation of abrasive tool wear with the use of laser scanning microscopy, SCANNING, 2013 DOI:0.1002/sca.21088
  • [12] LIPINSKI D., KACALAK W., TOMKOWSKI R., 2013, Methodology of evaluation of abrasive tool wear with the use of laser scanning microscopy, SCANNING, DOI:0.1002/sca.21088
  • [13] LIPINSKI D., KACALAK W., TANDECKA K., 2013, The use of spatial scanning system to evaluate the wear of abrasive tools, Pomiary Automatyka Kontrola, 59/11, 1227-1231.
  • [14] NIESLONY P., GRZESIK W., CHUDY R., HABRAT W., 2015, Meshing strategies in FEM simulation of the machining process, Archives of Civil and Mechanical Engineering, 15, 62-70.
  • [15] NIESLONY P., GRZESIK W., LASKOWSKI P., ŻAK K., 2015, Numerical 3D FEM simulation and experimental analysis of tribological aspects in turning Inconel 718 AlloyI, Journal of Machine Engineering, 15/1, 46-57.
  • [16] OUTEIRO J.C., UMBRELLO D., M’SAOUBI R., 2006, Experimental and numerical modelling of the residual stresses induced in orthogonal cutting of AISI 316L steel, International Journal of Machine Tools & Manufacture, 46, 1786-1794.
  • [17] SIMA M., OZEL T., 2010, Modified material constitutive models for serrated chip formation simulations and experimental validation in machining of titanium alloy Ti–6Al–4V, International Journal of Machine Tools & Manufacture, 50, 943-960.
  • [18] BAK P.A., JEMIELNIAK K., 2015, Numerical simulation of self-excited vibrations under variable cutting conditions, Journal of Machine Engineering, 15/1, 36-45.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-d54963f6-0cb4-4118-877e-5fae2d5db97b
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