Affiliation:
1. Koszalin University of Technology
Abstract
The shearing process such as the blanking of sheet metals has been used often to prepare workpieces for subsequent forming operations. The use of FEM simulation is increasing for investigation and optimizing the blanking process. In the current literature a blanking FEM simulations for the limited capability and large computational cost of the three dimensional (3D) analysis has been largely limited to two dimensional (2D) plane axis-symmetry problems. However, a significant progress in modelling which takes into account the influence of real material (e.g. microstructure of the material), physical and technological conditions can be obtained by using 3D numerical analysis methods in this area. The objective of this paper is to present 3D finite element analysis of the ductile fracture, strain distribution and stress in blanking process with the assumption geometrical and physical nonlinearities. The physical, mathematical and computer model of the process are elaborated. Dynamic effects, mechanical coupling, constitutive damage law and contact friction are taken into account. The application in ANSYS/LS-DYNA program is elaborated. The effect of the main process parameter a blanking clearance on the deformation of 1018 steel and quality of the blanks sheared edge is analyzed. The results of computer simulations can be used to forecasting quality of the final parts optimization.
Publisher
Trans Tech Publications, Ltd.
Reference16 articles.
1. P. Demmel, T. Kopp, R. Golle, W. Volk, H. Hoffmann, Experimental investigation on the temperature distribution in the shearing zone during sheet metal blanking, Steel Research International, Special Edition on Metal Forming, (2012) 291-294.
2. T.S. Kwak, Y.J. Kim, W.B. Bae, Finite element analysis on the effect of die clearance on shear planes in fine blanking, J. of Mat. Proc. Tech. 462-8 (2002) 130-131.
3. R. Hambli, Finite element model fracture prediction during sheet-metal blanking process, Eng. Fract. Mech. 68 (2001) 365-378.
4. M. Murakawa, Advanced Technology of Plasticity, vol. II, Tokyo (1984) 805.
5. B. Bösch, F. Büzer, K. Hayashi, Advanced Technology of Plasticity, vol. II, Tokyo (1984) 815.
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