A Study on the Characteristics for the Blanking of Lead Frame with the Rectangular Shape Blanking

사각형 블랭킹을 통한 리드프레임의 블랭킹 특성에 관한 기초연구

  • 임상헌 (영남이공대학 금속금형설계과) ;
  • 서의권 (영남대학교 공업기술연구소) ;
  • 심현보 (영남대학교 기계공학부)
  • Published : 2001.03.01

Abstract

An experiment is carried out to investigate the characteristics of blanking for copper alloy C194 (t=0.254mm), a kind of IC lead frame material. By varying clearance between die and punch, the shapes of shear profile are examined. Finite element analysis with element deletion algorithm for ductile fracture mode is also carried out to study the effect of clearance theoretically and to compare with experimental results. The rectangular shape specimen with four different corner radius is used to study the characteristics of blanking for straight side and corner region simultaneously. As the result, the ratios measured from the experiment of roll over, burnish, and fracture zone based on intial blank thickness are compared with those of FE analysis. Both experiment and FE analysis show that the amount of roll over and fracture is increased as the clearance increases. It has been found that larger clearance is required than that of straight region when the radius of corner is less than thickness of blank, in order to maintain same quality of shear profile at the corner region.

Keywords

References

  1. Freudenthal A. M., 'The inelastic behaviour of engineering materials and structures,' Wiley, New York, 1950
  2. Cockroft M. G. and Latham D. J., 'Ductility and the workability of metals,' J. Inst. Metals, Vol. 96, pp. 33-39, 1968
  3. Brazzo P., Deluca B. and Rendina R., 'A new method for the prediction of formability limits of metal sheets,' Proceedings of the 7th Biennial Conference of the IDDRG, 1972
  4. Ghosh A. K., 'A criterion for ductile fracture in sheets under biaxial loading,' Metallurgical Transactions, Vol. 7 A, pp. 523-533, 1976
  5. Oyane M., 'Criteria of ductile fracture strain,' Bulletin of the JSME, Vol. 105, pp. 1507-1513, 1972
  6. McClintock F. A., 'A criterion for ductile fracture by the growth of holes,' J. Appl. Mech. Vol. 35, pp. 363-371, 1968
  7. Jeong S. H., Kang J. J., and Oh S. I, 'A study on shearing mechanism by FEM simulation,' Proceed. 5th Int. Con. on Tech. of Plasticity, Vol. 2, pp. 631-634, 1996
  8. Oh S. I., Wu W. T., Tang J. P., and Vedhana-yagam A., 'Capabilities and applications of FEM code DEFORM: Perspective of the developer,' J. Mat. Proc. Tech., Vol. 27, pp. 25-42, 1991
  9. Taupin E, Breitling J., Wu W. T., and Altan T., 'Meterial fracture and burr formation in blanking results of FEM simulations and comparison with experiments,' J. Mat. Proc. Tech., Vol. 59, pp. 68-78, 1996 https://doi.org/10.1016/0924-0136(96)02288-1
  10. Ceretti E., Taupin E., and Altan T., 'Simulation of metal flow and fracture applications in orthogonal cutting, blanking, and cold extrusion,' Annals of the CIRP, Vol. 46 No. 1, pp. 187-190, 1997 https://doi.org/10.1016/S0007-8506(07)60805-1
  11. 고대철, 김철, 김병민, 최재찬, '요소제거기법에 의한 판재 전단가공의 유한요소 시뮬레이션,' 한국정밀공학회지, 제13권, 제11호, pp.114-123, 1996
  12. 김윤주, 곽태수, 배원병, '파인 블랭킹에서 전단면에 미치는 다이 틈새의 영향에 관한 유한 요소 해석,' 한국소성가공학회지, 제9권, 제2호, pp.152-158, 2000
  13. Oeform$^{TM}$, Scientific Forming Technology. Co., 'Deform 20 Ver. 6.0 Users Manual,' 1998