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Development of cube recrystallization textures in high-purity Al

  • Atsushi Umezawa und Hirosuke Inagaki EMAIL logo
Veröffentlicht/Copyright: 7. Januar 2022
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Abstract

High-purity (99.99 wt.%) Al containing 50 wt. ppm Cu was cold rolled to 98% reduction in thickness and annealed by varying the heating rate of annealing and annealing cycles. Textures developed at various stages of annealing were investigated with the orientation distribution function analysis. The observed results were compared with those obtained on standard high purity (99.99 wt.%) Al without Cu addition. In slow heating rate annealing, it was found that in high purity Al the addition of 50 wt.ppm Cu significantly enhanced the development of {100}<001> recrystallization textures. Intensities of {100}<001> developed in high purity Al with 50 wt. ppm Cu were about twice as high as those observed in high purity Al without Cu addition. {123}<634> R orientations were completely eliminated by the addition of 50 wt. ppm Cu. In rapid heating annealing, on the other hand, annealing at temperatures above 325 °C resulted in the formation of very coarse recrystallized grains with weak {100}<001> recrystallization textures irrespective of Cu content. Such grain coarsening could be suppressed by pre-annealing at temperatures between 225 and 300 °C. In the specimens subjected to this pre-annealing, strong {100}<001> recrystallization textures could be obtained, even if they were annealed with a rapid heating rate in final annealing.


Prof. Hirosuke Inagaki Shonan Institute of Technology 251-8511 Fujisawashi, Tsujidou-nishikaigan 1-1-25, Japan Tel.: +466 30 0154 Fax: +466 34 9527

References

[1] F.R. Boutin: Japanese Patent No. B2-45-11242 (1979).Suche in Google Scholar

[2] G. Ibe, B. Grzemba, W.D. Hannibal, G. Scharf, in: C.M. Brackman, P. Jogenberger, E.J. Mittemeijer (Eds.), Proc. 7th ICOTOM, Netherlands Soc. for Materials Science. Zwijndrecht (1984) 503.Suche in Google Scholar

[3] X.M. Zhang, Y.Q. Xiao, J.G. Tang, Z.Y. Chen, S.D. Liu, Z.P. Zhou: Mater. Sci. Forum 408–412 (2002) 1443.10.4028/www.scientific.net/MSF.408-412.1443Suche in Google Scholar

[4] S. Endou, H. Inagaki: Mater. Sci. Forum 396– 402 (2002) 327.10.4028/www.scientific.net/MSF.396-402.327Suche in Google Scholar

[5] J. Hasenclever, G. Scharf: Mater. Sci. Forum 217–222 (1996) 565.10.4028/www.scientific.net/MSF.217-222.565Suche in Google Scholar

[6] K. Ikeda, K. Tsumagari, F. Yoshida, H. Nakashima, H. Abe: J. Japan Inst. Light Metals 51 (2001) 119.10.2464/jilm.51.119Suche in Google Scholar

[7] K. Kajihara, K. Tokuda, Y. Sugizaki, Y. Seki: Mater. Sci. J. Japan Inst. Light Metals 51 (2001) 182.10.2464/jilm.51.182Suche in Google Scholar

[8] K. Kajihara, K. Tokuda, Y. Sugizaki, Y. Seki: Mater. Sci. Forum 408–412 (2002) 791.10.4028/www.scientific.net/MSF.408-412.791Suche in Google Scholar

[9] N. Takata, K. Ikeda, F. Yoshida, H. Nakashima, H. Abe: J. Japan Inst. Light Metals 53 (2003) 218.10.2464/jilm.53.218Suche in Google Scholar

[10] N. Takata, K. Ikeda, F. Yoshida, H. Nakashima, H. Abe: Mater. Trans. 45 (2004) 1687.10.2320/matertrans.45.1687Suche in Google Scholar

[11] O. Engler, M.Y. Huh: Mater. Sci. Eng. A 271 (1999) 371.10.1016/S0921-5093(99)00254-3Suche in Google Scholar

[12] M.Y. Huh, H. Kim, K.Y. Ha, S. Lee: Mater. Sci. Forum 217–222 (1996) 571.10.4028/www.scientific.net/MSF.217-222.571Suche in Google Scholar

[13] M.Y. Huh, J. K. Kim, H. Jang, K. Ito,W. Y. Jeung: Mater. Sci. Forum 408–412 (2002) 1449.Suche in Google Scholar

[14] J.R. Roe: J. Appl. Phys. 37 (1965) 2069.10.1063/1.1708672Suche in Google Scholar

[15] S. Endou, H. Inagaki: Z. Metallkd. 94 (2003) 1206.10.3139/146.031206Suche in Google Scholar

[16] K. Arai, T. Suzuki: J. Japan Inst. Light Metals 31 (1981) 334.10.2464/jilm.31.334Suche in Google Scholar

[17] G. Abbruzzesse, K. Lücke: Acta metal. 34 (1986) 905.10.1016/0001-6160(86)90064-7Suche in Google Scholar

[18] A. Yamanoi: Paper # 104 presented at 92 th Spring Meeting, Japan Inst. of Light Metals (1997).Suche in Google Scholar

[19] P.M.B. Rodrigues, H. Bichsel, P. Furrer, in: H.D. Merchant, J.G. Morris (Eds.), Textures in Non-Ferrous Metals, The Metallurgical Soc., Warrendale (1985) 45.Suche in Google Scholar

[20] X.M. Zhang, J.G. Tang, Y.X. Du, Z.P. Zhou, Z.Y. Chen, C.M. Liu, in: G. Gottstein, D.A. Molodov (Eds.), Recrystallization and Grain Growth, Springer Verlag, Berlin (2001) 1341.Suche in Google Scholar

[21] Y. Xiao, C. Liu, S. Jiang, Z. Chen, X. Zhang: Mater. Sci. Forum 408–412 (2002) 1449.10.4028/www.scientific.net/MSF.408-412.1449Suche in Google Scholar

[22] B. v. Pokrzywniski, E. Langer: Aluminium 42 (1996) 301.Suche in Google Scholar

[23] E. Cyrener, U. Richling, U. Tremzer: Neue Hütte 35 (1990) 54.Suche in Google Scholar

[24] D. Altenpohl: Aluminium 33 (1957) 306.Suche in Google Scholar

[25] T.L. Richards, S.F. Pugh: J. Inst. Metals 88 (1959/60) 399.Suche in Google Scholar

[26] G. Ibe: Metallwirtschaft u. Technik 23 (1969) 13.Suche in Google Scholar

[27] P. Zhao, M. Katano: Paper #68 presented at 100th Fall Meeting, Japan Inst. of Light Metals (1997).Suche in Google Scholar

Received: 2004-12-17
Accepted: 2005-08-02
Published Online: 2022-01-07

© 2006 Carl Hanser Verlag, München

Artikel in diesem Heft

  1. Frontmatter
  2. Editorial
  3. The Pd-rich part of the Pd–B phase diagram
  4. Thermodynamic optimizing of the Li–Sn system
  5. Thermodynamic analysis of high-temperature heazlewoodite
  6. Diffusion of chromium in β-Ti under high pressure
  7. Density and surface tension of liquid ternary Ni–Cu–Fe alloys
  8. Influence of electric field strength applied during the solution heat treatment of the Al–Mg–Si–Cu Alloy AA6111
  9. Development of cube recrystallization textures in high-purity Al
  10. Formation of cube recrystallized grains in high-purity Al
  11. Effect of various niobium additions on microstructure and mechanical behavior of a NiAl–Cr–Mo eutectic alloy
  12. The effect of exposure to elevated temperatures on the microstructure and hardness of Mg–Ca–Zn alloy
  13. Kinetics studies of hydrogen reduction of Cu2O
  14. Decomposition kinetics of expanded austenite with high nitrogen contents
  15. Estimation of the viscosity for Ag–In and In–Sb liquid alloys using different models
  16. Elevated temperature tensile properties of an extruded aluminium alloy reinforced with SiCp
  17. Richtlinien für Autoren
  18. Instructions for authors
  19. Personal/ personelles
  20. Press/ Presse
  21. Conferences /Konferenzen
  22. Frontmatter
  23. Editorial
  24. Editorial
  25. Articles Basic
  26. The Pd-rich part of the Pd–B phase diagram
  27. Thermodynamic optimizing of the Li–Sn system
  28. Thermodynamic analysis of high-temperature heazlewoodite
  29. Diffusion of chromium in β-Ti under high pressure
  30. Density and surface tension of liquid ternary Ni–Cu–Fe alloys
  31. Influence of electric field strength applied during the solution heat treatment of the Al–Mg–Si–Cu Alloy AA6111
  32. Articles Applied
  33. Development of cube recrystallization textures in high-purity Al
  34. Formation of cube recrystallized grains in high-purity Al
  35. Effect of various niobium additions on microstructure and mechanical behavior of a NiAl–Cr–Mo eutectic alloy
  36. The effect of exposure to elevated temperatures on the microstructure and hardness of Mg–Ca–Zn alloy
  37. Kinetics studies of hydrogen reduction of Cu2O
  38. Decomposition kinetics of expanded austenite with high nitrogen contents
  39. Estimation of the viscosity for Ag–In and In–Sb liquid alloys using different models
  40. Elevated temperature tensile properties of an extruded aluminium alloy reinforced with SiCp
  41. Notifications/Mitteilungen
  42. Richtlinien für Autoren
  43. Instructions for authors
  44. Personal/ personelles
  45. Press/ Presse
  46. Conferences /Konferenzen
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