Improving local and global mechanical properties of friction stir welded thick AA7075-T6 joints by optimizing pin-tip profile

  • Yuqing Mao
  • Liming Ke
  • Yuhua Chen
  • Fencheng Liu
  • Li Xing
ORIGINAL ARTICLE
  • 127 Downloads

Abstract

Four tools with taper (TA), triangular (TB), three-grooves (TC), and square (TD) pin-tip profiles were designed to friction stir weld (FSW) thick AA7075-T6 alloy plates aiming at improving the local and overall mechanical properties of the joints. The microstructure evolution, hardness, and mechanical properties of the FSW joints were studied by scanning election microscope (SEM), X-ray diffractometer (XRD), and transmission electron microscope (TEM). The results show that equiaxed grains in the bottom nugget zone (BNZ) obtained by using TC are noticeably refined compared to in the case of other tools. Also, finer and more dispersive precipitates are distributed in this BNZ, and higher contents of η phase and dislocations are observed. A similar trend is found in the middle of weld. The bottom slices welded by employing TC show superior strength and ductility with a highest ultimate tensile strength of 388 MPa, yield strength of 315 MPa, and elongation of 7.9 %, which are in agreement with the hardness profiles. This is owing to ultrafine grains, more high-angle grain boundaries, more dispersive and higher contents of precipitates, and optimum hardness distribution. Accordingly, the global mechanical properties of the overall joints prepared by using TC significantly improve.

Keywords

Friction stir welding Pin-tip profile AA7075-T6 alloy Thick plates Microstructure Mechanical properties 

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References

  1. 1.
    Sharma C, Dwivedi DK, Kumar P (2013) Effect of post weld heat treatments on microstructure and mechanical properties of friction stir welded joints of Al-Zn-Mg alloy AA7039. Mater Des 43:134–143CrossRefGoogle Scholar
  2. 2.
    Su JQ, Nelson TW, Mishra R, Mahoney M (2003) Microstructural investigation of friction stir welded 7050-T651 aluminium. Acta Mater 51:713–729CrossRefGoogle Scholar
  3. 3.
    Bahemmat P, Haghpanahi M, BesharatiGivi M, Reshad Seighalani K (2012) Study on dissimilar friction stir butt welding of AA7075-O and AA2024-t4 considering the manufacturing limitation. Int J Adv Manuf Technol 59(9–12):939–953CrossRefGoogle Scholar
  4. 4.
    Fu RD, Sun ZQ, Sun RC, Li Y, Liu HJ, Liu L (2011) Improvement of weld temperature distribution and mechanical properties of 7050 aluminum alloy butt joints by submerged friction stir welding. Mater Des 32:4825–4831CrossRefGoogle Scholar
  5. 5.
    Fuller CB, Mahoney MW, Calabrese M, Micona L (2010) Evolution of microstructure and mechanical properties in naturally aged 7050 And 7075 Al friction stir welds. Mater Sci Eng A 527:2233–2240CrossRefGoogle Scholar
  6. 6.
    Balasubramanian V, Ravisankar V, Madhusudhan RG (2008) Effect of postweld aging treatment on fatigue behavior of pulsed current welded AA7075 aluminum alloy joints. J Mater Eng Perform 7:224–233CrossRefGoogle Scholar
  7. 7.
    Feng AH, Chen DL, Ma ZY (2010) Microstructure and cyclic deformation behavior of a friction-stir- welded 7075 Al alloy. Metall Mater Trans A 41:957–971CrossRefGoogle Scholar
  8. 8.
    Singh R, Sharma C, Dwivedi D, Mehta N, Kumar P (2011) The microstructure and mechanical properties of friction stir welded Al–Zn–Mg alloy in as welded and heat treated conditions. Mater Des 32(2):682–687CrossRefGoogle Scholar
  9. 9.
    Sivaraj P, Kanagarajan D, Balasubramanian V (2014) Effect of post-weld heat treatment on tensile properties and microstructure characteristics of friction stir welded armour grade AA7075-T651 aluminium alloy. Def Technol Bus 10(1):1–8CrossRefGoogle Scholar
  10. 10.
    Mao YQ, Ke LM, Liu FC, Huang CP, Chen YH, Liu Q (2015) Effect of welding parameters on microstructure and mechanical properties of friction stir welded joints of 2060 aluminum lithium alloy. Int J Adv Manuf Technol 81(5):1419–1431CrossRefGoogle Scholar
  11. 11.
    Mironov S, Masaki K, Sato YS, Kokawa H (2012) Relation between material flow and abnormal grain growth in friction-stir welds. Scr Mater 67:983–986CrossRefGoogle Scholar
  12. 12.
    Krishnan KN (2002) On the formation of onion rings in friction stir welds. Mater Sci Eng A 327:246–251CrossRefGoogle Scholar
  13. 13.
    Scialpi A, De Filippis LAC, Cavaliere P (2007) Influence of shoulder geometry on microstructure and mechanical properties of friction stir welded 6082 aluminum alloy. Mater Des 28:1124–1129CrossRefGoogle Scholar
  14. 14.
    Fujii H, Cui L, Maeda M, Nogi K (2006) Effect of tool shape on mechanical properties and microstructure of friction stir welded aluminum alloys. Mater Sci Eng A 419:25–31CrossRefGoogle Scholar
  15. 15.
    Zhou CZ, Yang XQ (2006) Effect of kissing bond on fatigue behavior of friction stir welds on Al 5083 alloy. J Mater Sci 41:2771–2777CrossRefGoogle Scholar
  16. 16.
    Paglia CS, Buchheit RG (2008) A look in the corrosion of aluminum alloy friction stir welds. Scr Mater 58:383–387CrossRefGoogle Scholar
  17. 17.
    Avettand Fenoel M, Taillard R (2015) Heterogeneity of the nugget microstructure in a thick 2050 Al friction-stirred weld. Metall Mater Trans A 46A:300–314CrossRefGoogle Scholar
  18. 18.
    Canaday Clinton T, Moore Matthew A, Tang W, Reynolds AP (2013) Through thickness property variations in a thick plate AA7050 friction stir welded joint. Mater Sci Eng A 559:678–682CrossRefGoogle Scholar
  19. 19.
    Srinivasa Rao T, Madhusudhan Reddy G, Koteswara Rao SR (2015) Microstructure and mechanical properties of friction stir welded AA7075T651 aluminum alloy thick plates. Trans Nonferrous Metals Soc China 25:1770–1778CrossRefGoogle Scholar
  20. 20.
    Xu WF, Liu JH, Luan GH, Dong CL (2009) Temperature evolution, microstructure and mechanical properties of friction stir welded thick 2219-O aluminum alloy joints. Mater Des 30:1886–1893CrossRefGoogle Scholar
  21. 21.
    Mishra RS, Ma ZY (2005) Friction stir welding and processing. Mater Sci Eng R 50:1–78CrossRefGoogle Scholar
  22. 22.
    Nandan R, Deb Roy T, Bhadeshia HKDH (2008) Recent advances in friction stir welding-process, weldment structure and properties. Prog Mater Sci 53:980–1023CrossRefGoogle Scholar
  23. 23.
    Liu H, Chen Y, Feng J (2006) Effect of zigzag line on the mechanical properties of friction stir welded joints of an Al-Cu alloy. Scr Mater 55:231–234CrossRefGoogle Scholar
  24. 24.
    Thomas WM, Nicolash ED, Smith SD (2001) Friction stir welding-Tool developments. In: Das SK, Kaufman JG, Lienert TJ, editors. Aluminium 2001 proceedings of the TMS 2001 aluminum automotive and joining session, TMS; 213–224.Google Scholar
  25. 25.
    Zhang YN, Cao X, Larose S, Wanjara P (2012) Review of tools for friction stir welding and processing. Can Metall Q 51(3):250–261CrossRefGoogle Scholar
  26. 26.
    Thomas WM, Nicholas ED (1997) Friction stir welding for the transportation industries. Mater Des 18:269–273CrossRefGoogle Scholar
  27. 27.
    Elangovan K, Balasubramanian V (2008) Influences of tool pin profile and tool shoulder diameter on the formation of friction stir processing zone in AA6061 aluminum alloy. Mater Des 29:362–373CrossRefGoogle Scholar
  28. 28.
    Dawood HI, Mohammed KS, Rahmat A, Uday MB (2015) Effect of small tool pin profiles on microstructures and mechanical properties of 6061 aluminum alloy by friction stir welding. Trans Nonferrous Metals Soc China 25:2856–2865CrossRefGoogle Scholar
  29. 29.
    Khodaverdizadeh H, Heidarzadeh A, Saeid T (2013) Effect of tool pin profile on microstructure and mechanical properties of friction stir welded pure copper joints. Mater Des 45:265–270CrossRefGoogle Scholar
  30. 30.
    Heidarzadeh A, Kazemi-Choobi K, Hanifian H, Asadi P (2014) Microstructural evolution. In: Givi MKB, Asadi P (eds) Advances in friction-stir welding and processing. Woodhead Publishing, Cambridge, pp 65–140. doi: 10.1533/9780857094551.65 CrossRefGoogle Scholar
  31. 31.
    Mao YQ, Ke LM, Liu FC, Liu Q, Huang CP, Xing L (2014) Effect of tool pin eccentricity on microstructure and mechanical properties in friction stir welded 7075 aluminum alloy thick plate. Mater Des 62:334–343CrossRefGoogle Scholar
  32. 32.
    McNelley TR, Swaminathan S, Su JQ (2008) Recrystallization mechanisms during friction stir welding/processing of aluminum alloys. Scr Mater 58(5):349–354CrossRefGoogle Scholar
  33. 33.
    Zhao YH, Zhu YT, Lavernia EJ (2010) Preparation of nanostructured materials having improved ductility. Adv Eng Mater 12:769–788CrossRefGoogle Scholar
  34. 34.
    Chinh NQ, Szommer P, Horita Z, Langdon TG (2006) Experimental evidence for grain-boundary sliding in ultrafine-grained aluminum processed by severe plastic deformation. Adv Mater 18:34–39CrossRefGoogle Scholar
  35. 35.
    Mao YQ, Ke LM, Liu FC, Chen YH, Xing L (2015) Investigations on temperature distribution, microstructure evolution and property variations along thickness in friction stir welded joints for thick AA7075-T6 plates. Int J Adv Manuf Technol. doi: 10.1007/s00170-015-8182-z Google Scholar
  36. 36.
    Feng ZQ, Yang YQ, Huang B, Han M, Luo X, Ru JG (2010) Precipitation process along dislocations in Al–Cu–Mg alloy during artificial aging. Mater Sci Eng A 528:706–714CrossRefGoogle Scholar
  37. 37.
    Feng AH, Chen DL, Ma ZY (2010) Microstructure and low-cycle fatigue of a friction-stir-welded 6061 aluminum alloy. Metall Mater Trans A 41:2626–2641CrossRefGoogle Scholar
  38. 38.
    Mironov S, Masaki K, Sato YS, Kokawa H (2012) Relationship between material flow and abnormal grain growth in friction-stir welds. Scr Mater 67(12):983–986CrossRefGoogle Scholar
  39. 39.
    Starink MJ, Deschamps A, Wang SC (2008) The strength of friction stir welded and friction stir processed aluminium alloys. Scr Mater 58:377–382CrossRefGoogle Scholar
  40. 40.
    Hu ZL, Wang XS, Yuan SJ (2012) Quantitative investigation of the tensile plastic deformation characteristic and microstructure for friction stir welded 2024 aluminum alloy. Mater Charact 73:114–123CrossRefGoogle Scholar
  41. 41.
    Sato YS, Urata M, Kokawa H, Ikeda K (2003) Hall–Petch relationship in friction stir welds of equal channel angular-pressed aluminium alloys. Mater Sci Eng A 354:298–305CrossRefGoogle Scholar
  42. 42.
    Sharma C, Dwivedi DK, Kumar P (2013) Effect of welding parameters on microstructure and mechanical properties of friction stir welded joints of AA7039 aluminum alloy. Mater Des 36:379–390CrossRefGoogle Scholar
  43. 43.
    Mahoney MW, Rhodes CG, Flintoff JG, Spurling RA, Bingel WH (1998) Properties of friction stir welded 7075 T651 aluminum. Metall Mater Trans A 29A:1955–1964CrossRefGoogle Scholar
  44. 44.
    Nielsen KL, Pardoen T, Tvergaard V, de Meester B, Simar A (2010) Modelling of plastic flow localisation and damage development in friction stir welded 6005A aluminium alloy using physics based strain hardening law. Int J Solids Struct 47(18–19):2359–2370CrossRefMATHGoogle Scholar

Copyright information

© Springer-Verlag London 2016

Authors and Affiliations

  • Yuqing Mao
    • 1
  • Liming Ke
    • 1
    • 2
  • Yuhua Chen
    • 2
  • Fencheng Liu
    • 2
  • Li Xing
    • 2
  1. 1.State Key Laboratory of Solidification ProcessingNorthwestern Polytechnical UniversityXi’anChina
  2. 2.National Defence Key Discipline Laboratory of Light Alloy Processing Science and TechnologyNanchang Hangkong UniversityNanchangChina

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