DOI QR코드

DOI QR Code

A Study on the Experimental and Theoretical Analysis About the Elastic Deflections of Die for Cold Forging

냉간 단조용 금형의 탄성 변형에 관한 실험 및 이론적 연구

  • Published : 2002.04.01

Abstract

The elastic deflections of the cold forging die influence the dimensional accuracy of forged parts. The die dimension is continuously changed during the loading, unloading, and ejecting stage. In this paper, we evaluated the elastic deflections of cold forging die during the loading, unloding and ejecting stage with experimental and FEM analysis. Uni-axial strain gages are used to measure elastic strain of die during each forging stage. Strain gages are attached un the upper surface of die. A commercial F.E.M. code, DEFORM$-2D^{TM}$ is used to predict the elastic strains of die, to be compared those by experiments. Two modelling approaches are used to define the reasonable analysis method. The first of the two modelling approaches is to regard the die as rigid body over forging cycle. And then, the die stress is analyzed by loading the die with pressure from the deformed part. The other is to regard the die as elastic body from forging cycle. The elastic strain of tool is calculated and the tool is elastically deformed at each strep. The calculated results under the elastic die assumption are well agreed wish experimental data using the strain gages.

Keywords

References

  1. S.Matsubara, H.Kudo, 1991, "Nonuniform pressure distribution on punch nose surface in axisymmetric cold forging processes". J. JSTP Vol.32 (366) pp.874-879.
  2. M.T.Hillery and S. Griffin. 1994, "An embedded -strain- gauge technique of stress analysis in rod drawing", J. of Material Processing Technology, Vol.47 pp.1-12. https://doi.org/10.1016/0924-0136(94)90081-7
  3. 이강희, 박용복, 2001, “전방압출 공정에서의 제품 변형 이력”, 한국소성가공학회지, 제10권, 제1호, pp.75-79.
  4. M. H. Sadeghi. T. A. Dean, 1991, "Analysis of dimensional accuracy of precision forged axisymmetic components", Proc. Instn. Mech. Engrs., Vol.205, pp.171-178. https://doi.org/10.1243/PIME_PROC_1991_205_066_02
  5. B.Raddad, A.Kocanda, 1993, "On the strength criteria for high stressed ring shaped dies, Proceedings of the Fourth International Conference on Technology of Plasticity, Beijing, China, Sep. pp.5-9.
  6. Geun-An Lee, Yong-Taek Im, 1999, "Finite-element investigation of the wear and elastic deformation of dies in metal forming", J. of Materials Processing Technology, Vol.89-90 pp.123-127. https://doi.org/10.1016/S0924-0136(99)00148-X
  7. X. Lu, R. Balendra, 1996, "Evaluation of FE models for the calculation of die-cavity compensation", J. of Materials Processing Technology, Vol.58, pp.212-216. https://doi.org/10.1016/0924-0136(95)02097-7
  8. R.Balendrd, Y.Qin, X.Lu, 2000, "Analysis, evaluation and compensation of component-errors in the nett-forming of engineering components", J. of Materials Processing Technology, Vol.106, pp.204-211. https://doi.org/10.1016/S0924-0136(00)00615-4
  9. Xian Lu, Raj Balendra, 2001, "Pressure contours on forming dies Part II : Finite element simulation", J. of Materials Processing Technology, Vol.115 pp.220-226. https://doi.org/10.1016/S0924-0136(01)00809-3
  10. Y.S.Lee, J.Choi, J.H.Lee, 2000, "The prediction of elastic deformation for cold forging die", 2nd JSTP International Seminar on Precision Forging, pp. 213-218.
  11. 이대근, 이영선, 김원일, 이정환, 2001, “단조형식에 따른 단조품과 금형의 탄성변형에 관한 연구”, '01 대한기계학회 춘계학술대회 논문집 C, pp.586-591.

Cited by

  1. Numerical and experimental evaluation for elastic deformation of a cold forging tool and workpiece for a sleeve cam of an automobile start motor vol.222, pp.2, 2008, https://doi.org/10.1243/09544054JEM929