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Crossing Axes of Workpiece and Tool at Grinding of the Circular Trough with Variable Profile


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1. Abidi H., Rezaei S.M., Sarhan A.A.D. (2013), Analitycal modeling of grinding wheel loading phenomena, International Journal of Advanced Manufacturing Technology, 68(1-4), 473-485.10.1007/s00170-013-4745-zSearch in Google Scholar

2. Anderson D., Warkentin A., Bauer R. (2011), Experimental and numerical investigations of single abrasive-grain cutting, International Journal of Machine Tools & Manufacture, 51, 898-910.10.1016/j.ijmachtools.2011.08.006Search in Google Scholar

3. Chang H.-C., Wang J.-J.J. (2008), A stochastic grinding force model considering random grit distribution, International Journal of Machine Tools & Manufacture, 48, 1335-1344.10.1016/j.ijmachtools.2008.05.012Search in Google Scholar

4. Chi Y., Li H. (2012), Simulation and analysis of grinding wheel based on Gaussian mixture model, Frontiers of Mechanical Engineering, 7(4), 427-432.10.1007/s11465-012-0350-3Search in Google Scholar

5. Cong S., Yansheng D., Dongxue L., Shichao X.. (2018), Modeling and predicting ground surface topography on grinding chatter, Procedia CIRP, 71, 364-369.10.1016/j.procir.2018.05.042Search in Google Scholar

6. Grabchenko A.I., Kalchenko V.I., Kalchenko V.V. (2016), Grinding with crossed axes of tool and workpice (in Russian), Chernihiv, CHNTU.Search in Google Scholar

7. Gu W.B., Yao Z.Q., Li H.L. (2011), Investigation of grinding modes in horizontal surface grinding of optical glass BK7, J Mater Process Technol., 211(10), 1629-1636.10.1016/j.jmatprotec.2011.05.006Search in Google Scholar

8. Kacalak W., Budniak Z. (2015), Modelowanie i analizy szlifowania powierzchni śrubowych wzintegrowanym środowisku cad/cae cad/cae, Inżynieria Maszyn, R. 20, z. 1, 19-32.Search in Google Scholar

9. Kacalak W., Tandecka K., Sempruch R., (2013), Modeling research of Microcutting process, Mechanik, 8-9, 189-202/702 (in Polish).Search in Google Scholar

10. Kalchenko V., Yeroshenko A., Boyko S., Sira N. (2017), Determination of cutting forces in grinding with crossed axes of tool and workpiece, Acta Mechanica et Automatica, 11(1),58-63.10.1515/ama-2017-0009Search in Google Scholar

11. Kalchenko V., Yeroshenko A., Sira N. (2016), Theoretical and experimental study of the process of removal allowance, wear wheel, precision shaping and thermal stress during grinding of cylindrical and staircase shafts with crossed axes of wheel and workpiece (in Ukrainian), Technical sciences and technology, 4(6), 35-43.Search in Google Scholar

12. Kalpana K., Arunachalam N. (2018), Grinding wheel redress life estimation using force and surface texture analysis. Procedia CIRP, 72, 1439-1444.10.1016/j.procir.2018.03.031Search in Google Scholar

13. Li H.N., Axinte D. (2016), Textured grinding wheels: A review, International Journal of Machine Tools and Manufacture, 109, 8-35.10.1016/j.ijmachtools.2016.07.001Search in Google Scholar

14. Peng Y., Dai Y., Song C., Shi F. (2016), Tool deflection model and profile error control in helix path contour grinding, International Journal of Machine Tools and Manufacture, 111, 1-8.10.1016/j.ijmachtools.2016.08.005Search in Google Scholar

15. Rabiey M., Joseph Lee Z.W. (2018), Simulation of workpiece surface roughness after flat grinding by electroplated wheel, Procedia CIRP, 77, 303-306.10.1016/j.procir.2018.09.021Search in Google Scholar

16. Stepien P. (2009). A probabilistic model of the grinding process. Applied Mathematical Modelling, 33, 3863-3884.10.1016/j.apm.2009.01.005Search in Google Scholar

17. Tian L., Fu Y., Xu J., Li H., Ding W. (2015), The influence of speed on material removal mechanism in high speed grinding with single grit, International Journal of Machine Tools and Manufacture, 89, 192-201.10.1016/j.ijmachtools.2014.11.010Search in Google Scholar

18. Uhlmann E., Koprowski S., Weingaertner W.L., Rolon D.A. (2016), Modelling and Simulation of Grinding Processes with Mounted Points: Part II of II - Fast Modelling Method for Workpiece Surface Prediction. Procedia CIRP, 46, 603-606.10.1016/j.procir.2016.03.202Search in Google Scholar

19. Yan L., Rong Y.M., Jiang F., Zhou Z.X. (2011), Three-dimension surface characterization of grinding wheel using white light interferometer. International Journal of Advanced Manufacturing Technology, 55, 133-141.10.1007/s00170-010-3054-zSearch in Google Scholar

20. Yanlong C., Jiayan G., Bo L., Xiaolong C., Jiangxin Y., Chunbiao G.. (2013), Modeling and simulation of grinding surface topography considering wheel vibration. The International Journal of Advanced Manufacturing Technology, 66(5–8), 937-945.10.1007/s00170-012-4378-7Search in Google Scholar