Prediction of High Temperature Plastic Deformation Variables on Al 6061 Alloy

Al 6061 합금의 고온 소성변형 조건의 예측

  • Published : 1999.12.01

Abstract

The high temperature behavior of Al 6061 alloy was characterized by the hot torsion test in the temperature ranges of 400∼550℃ and the strain rate ranges of 0.05∼5/sec. To decide optimum deformation condition, three types of deformation maps were individually made from the critical strain (εc). deformation resistance(σp) and deformation efficiency (η). The critical strain(εc) for dynamic recrystallization (DRX) which was decided from the inflection point of strain hardening rate(θ) - effective stress (σ) curve was about 0.65 times of peak strain (εp). The relationship among deformation resistance (peak stress, σp), strain rate (ε), and temperature (T) could be expressed by ε=2.9×1013[sinh(0.0256σp]7.3exp (-216,000/RT). The deformation efficiency (η)which was calculated on the basis of the dynamic materials model (DMM) showed high values at the condition of 500∼550℃, 5/sec for 100% strain. The results from three deformation maps were compared with microstructures. The best condition of plastic deformation could be determined as 500℃ and 5/sec.

Keywords

References

  1. Mater. Sci. Tech. v.6 C.M.Sellars
  2. Metall. Trans. v.16A A.J.Ardell
  3. Material Science Forum v.217 Hot Deformation and Dynamic Recrystallization of SiCw/AA2124 Composites Y.C.Yoo;J.S.Jeon;B.C.Ko
  4. Comp. Sci. Technol. v.57 The Effect of SiCw on The Hot Deformation Behavior of SiCw/AA2124 Composites Y.C.Yoo;J.S.Jeon;H.I.Lee
  5. 대한금속학회지 v.35 no.6 304 오스테나이트계 스테인리스강의 고온연화 조상현;김성일;유연철;노광섭;이경종;권오준
  6. Mater. Sci. Tech. v.14 no.8 Hot Deformation Behavior of SiCp/A12024 Composites Reinforced with Various Sizes of SiCp B.C.Ko;K.S.PARK;Y.C.YOO
  7. J. of Mater. Sci. Lett. v.16 Determination of No-Recrystallization Temperature of Invar Alloy by Fractional Softening Measurement during the multistage Deformation S.H.CHO;S.I.KIM;Y.C.YOO
  8. Metals and Materials v.4 no.4 The Effects of Determination Variables on Hot Workability of Austenitic Stainless Steel S.H.CHO;S.I.KIM;Y.C.YOO
  9. Mater. Sci. Tech. v.7 L.N.Pussegoda;S.Yue;J.J.Jonas
  10. Mater. Sci. Technol. v.6 C.C.Anya;T.N.Baker
  11. 대한금속학회지 v.36 no.4 A16061 합금의 고온변형시 변형저항 예측 조상현;김유승;유연철;임성한;오수익
  12. Acta Mater. v.44 no.1 A One-Parameter Approach to Determining the Critical Conditions for the Initiation of Dynamic Recrystallization E.I.Poliak;J.J.Jonas
  13. Metall. Trans. v.26A H.J.McQueen;E.Evangelista;N.Jin;M.E.Kassner
  14. Metall. Trans. v.25A Softening and Microstructural Change Following the Dynamic Recrystallization of Austenite C.Roucoules;P.D.Hodgson;S.Yue;J.J.Jonas
  15. Metall. Trans. v.26A C.Roucoules;S.Yue;J.J.Jonas
  16. Metall. Trans. v.A27A Modelling of Dynamic Material Behavior: A Critical Evaluation of the Dissipator Power Co-content Approach F.Montheillet;J.J.Jonas;K.W.Neale
  17. Metall. Trans. v.27A Author's Reply: Dynamic Materials Model : Basis and Principles Y.V.R.K.Prasad
  18. J. Mater. Sci. v.30 Optimization of Hot Workability of An Al-Mg-Si alloy Using Processing Maps J.Sarkar;Y.V.R.K.Prasad;M.K.Surappa
  19. Metall. Trans. v.23A S.Venugopal;S.L.Mannan;Y.V.R.K.Prasad
  20. Mater. Sci. Tech. v.8 N.Srinivasan;Y.V.R.K.Prasad
  21. MS Thesis. Indian Institute of Science A.K.S.Kalyan Kumar
  22. Mater. Sci. Tech. v.11 B.V.Radhakrishna Bhat;Y.R.Mahajan;H.Md.Roshan;Y.V.R.K.Prasad
  23. Acta. Metall v.25 F.J.Humphreys
  24. ISIJ International v.35 no.7 W.P.Sun;E.B.Hawbolt