Numerical modelling of 3D hard turning using arbitrary Lagrangian Eulerian finite element method

被引:16
作者
Arrazola, P.J. [1 ]
Özel, T. [2 ]
机构
[1] Mondragón University, Mondragón 20500
[2] Department of Industrial and Systems Engineering, Rutgers University, Piscataway
关键词
Arbitrary Lagrangian Eulerian method; Cutting; Finite element modelling; Hard turning;
D O I
10.1504/IJMMM.2008.020907
中图分类号
学科分类号
摘要
In this paper, 3D Finite Element Method (FEM)-based numerical modelling of precision hard turning has been studied to investigate the effects of chamfered edge geometry on tool forces, temperatures and stresses in machining of AISI 52100 steel using low-grade Polycrystalline Cubic Boron Nitrite (PCBN) inserts. An Arbitrary Lagrangian Eulerian (ALE)-based numerical modelling is employed for 3D precision hard turning. The Johnson-Cook plasticity model is used to describe the work material behaviour. A detailed friction modelling at the tool-chip and tool-work interfaces is also carried. Work material flow around the chamfer geometry of the cutting edge is carefully modelled with adaptive meshing simulation capability. In process simulations, feed rate and cutting speed were kept constant and analysis was focused on forces, temperatures and tool stresses. Results revealed good agreements between FEM results and those reported in literature about experimental ones. © 2008, Inderscience Publishers.
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页码:14 / 25
页数:11
相关论文
共 30 条
  • [11] Haglund A.J., Kishawy H.A., Rogers R.J., On friction modeling in orthogonal machining: An arbitrary Lagrangian-Eulerian finite element model, Transactions of NAMRI/SME, 33, pp. 589-596, (2005)
  • [12] Johnson G.R., Cook W.H., A constitutive model and data for metals subjected to large strains, high strain rates and high temperatures, Proceedings of the 7th International Symposium on Ballistics, pp. 541-547, (1983)
  • [13] Karpat Y., Ozel T., 3D FEA of hard turning: Investigation of PCBN cutting tool micro-geometry effects, Transactions of NAMRI/SME, 35, pp. 9-16, (2007)
  • [14] Karpat Y., Ozel T., Sockman J., Shaffer W., Design and analysis of variable micro-geometry tooling for machining using 3D process simulations, Proceedings of International Conference on Smart Machining Systems, (2007)
  • [15] Klocke F., Kratz H., Advanced tool edge geometry for high precision hard turning, Annals of the CIRP, 54, 1, pp. 47-50, (2005)
  • [16] Klocke F., Raedt H.-W., Hoppe S., 2D-FEM simulation of the orthogonal high speed cutting process, Machining Science and Technology, 5, 3, pp. 323-340, (2001)
  • [17] Koenig W.A., Komanduri R., Toenshoff H.K., Ackeshott G., Machining of hard metals, Annals of the CIRP, 33, 2, pp. 417-427, (1984)
  • [18] Leopold J., Semmler U., Hoyer K., Applicability, robustness and stability of the finite element analysis in metal cutting operations, Proceedings of the 2nd CIRP International Workshop on Modeling of Machining Operations, pp. 81-94, (1999)
  • [19] Liu M., Takagi J., Tsukuda A., Effect of tool nose radius and tool wear on residual stress distribution in hard turning of bearing steel, Journal of Materials Processing Technology, 150, pp. 234-241, (2004)
  • [20] Madhavan V., Chandrasekar S., Farris T.N., Machining as a wedge indentation, Journal of Applied Mechanics, 67, pp. 128-139, (2000)