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Research on Microstructure and Fatigue Properties of 7050-T6 High-Strength Aluminum Alloy Cold Metal Transfer Welded Joint

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Abstract

In this paper, 7050-T6 high-strength aluminum alloy with 3-mm-thickness is taken as the research object, and it is welded by CMT Advanced 4000R NC welding system. The microstructure, mechanical properties, evolution of joint phase and fatigue properties are studied, and the tensile and fatigue fracture are observed and analyzed. It is found that the fusion zone is dominated by columnar crystal structure and typical epitaxial solidification; the structure of weld zone is mainly equiaxed crystal and dendrite. After 360 h of natural aging, the hardness distribution of the joint is not uniform, and the hardness of the weld zone is the smallest. The hardness of the overaging softening zone is 10 HV lower than that of the solid solution zone, and a softening zone with a width of about 5 mm appears in the joint. The HAZ softens obviously, and the fracture surface shows typical dimple fracture morphology. The results show that the conditional fatigue limits of the specimens are 166.4 and 109.3 MPa respectively under the condition of setting Nf = 107 fatigue cycle. The fatigue initiation area of the joint is mainly welding porosity, and the fatigue striation spacing of the extension area is different. In the process of crack propagation, the striation tends to bypass the second phase particles; The instantaneous fracture area consists of dimples of different sizes. The thermal simulation test of the weld is carried out through the moving Gaussian heat source model in ANSYS software. In addition to the plate-like Mg2Si phase observed in the weld, FeAl3 and (FeMn)Al6 impurity phases are also found, only a weak diffraction peak of MgZn2 phase is found in the solid solution zone. The microstructure evolution of HAZ is analyzed by HRTEM images. It is found that there are tiny GP zone precipitates in the solution zone.

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source zone, (c,d) fatigue stable extension zone, (e,f) fatigue transient fracture zone

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source zone, (b-d) fatigue stable extension zone

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References

  1. J.C. Benedyk, Magnesium Advances in Automotive Applications, Light Metal Age, 2005, 63(3), p 36–38.

    Google Scholar 

  2. C.G. Rhodes, M.W. Mahoney, W.H. Bingel et al., Effects of Friction Stir Welding on Microstructure of 7075 Aluminum, Scripta Mater., 1997, 36(1), p 69–75.

    Article  CAS  Google Scholar 

  3. T. Dursun and C. Soutis, Recent Developments in Advanced Aircraft Aluminium Alloys, Mater. Des., 2014, 56, p 862–871.

    Article  CAS  Google Scholar 

  4. W. Pengjian, Q. Jisen, Z. Yangyang et al., Development of Microstructures and Mechanical Properties of Laser Welded Joint for Spray Formed 7055 High Strength Aluminum Alloy, Chin. J. Rare Metals, 2017, 41(07), p 733–738.

    Google Scholar 

  5. D. Bardel, M. Perez, D. Nelias et al., Cyclic Behaviour of a 6061 Aluminium Alloy: Coupling Precipitation and Elastoplastic Modelling, Acta Mater., 2015, 83, p 256–268.

    Article  CAS  Google Scholar 

  6. S. Selvi, A. Vishvaksenan and E. Rajasekar, Cold Metal Transfer (CMT) Technology: An Overview, Def. Technol., 2018, 14(01), p 30–46.

    Article  Google Scholar 

  7. X. Yin, G. He, W. Meng et al., Comparison Study of Low-Heat-Input Wire Arc-Fabricated Nickel-Based Alloy by Cold Metal Transfer and Plasma Arc, J. Mater. Eng. Perform., 2020, 29(07), p 4222–4232.

    Article  Google Scholar 

  8. J. Pang, S. Hu, J. Shen et al., Arc Characteristics and Metal Transfer Behavior of CMT Plus P Welding Process, J. Mater. Process. Technol., 2016, 238(01), p212–217.

    Article  CAS  Google Scholar 

  9. S. Niu, S. Chen, H. Dong et al., Microstructure and Properties of Lap Joint Between Aluminum Alloy and Galvanized Steel by CMT, J. Mater. Eng. Perform., 2016, 25(5), p 1839–1847.

    Article  CAS  Google Scholar 

  10. J.K. Park and A.J. Ardell, Effect of retrogression and reaging treatments on the microstructure of Ai-7075-T651, Metall. Mater. Trans. A, 1984, 15(8), p 1531–1543.

    Article  Google Scholar 

  11. G. Waterloo, V. Hansen, J. Gjønnes et al., Effect of predeformation and preaging at room temperature in Al–Zn–Mg–(Cu, Zr) alloys, Mater. Scie. Eng. A, 2001, 303(1–2), p 226–233.

    Article  Google Scholar 

  12. L.K. Berg, J. Gjønnes, V. Hansen et al., GP-zones in Al–Zn–Mg alloys and their role in artificial aging, Acta Mater., 2001, 49(17), p 3443–3451.

    Article  CAS  Google Scholar 

  13. G. Sha and A. Cerezo, Early-Stage Precipitation in Al–Zn–Mg–Cu Alloy (7050), Acta Mater., 2004, 52(15), p 4503–4516.

    Article  CAS  Google Scholar 

  14. L. Chao, L. Heng, F. Jin et al., Damage in Creep Aging Process of an Al-Zn-Mg-Cu Alloy: Experiments and Modeling, Metals Open Access Metall. J., 2018, 8(4), p 285.

    Google Scholar 

  15. J. Andersson, Welding Metallurgy and Weldability of Superalloys, Metals - Open Access Metall. J., 2020, 10(1), p 143.

    CAS  Google Scholar 

  16. E.E. Underwood and K. Banerji, Fractals in Fractography, Mater. Sci. Eng., 1986, 80(1), p 1–14.

    Article  Google Scholar 

  17. M. Dong, Y. Zhao, Q. Li et al., Microstructure Evolution and Mechanical Property Anisotropy of Wire and Arc-Additive-Manufactured Wall Structure Using ER2319 Welding Wires, J. Mater. Eng. Perform., 2020, 30(01), p 258–268.

    Article  Google Scholar 

  18. Y. Wang, S. Yang, C. Xie et al., Microstructure and Ratcheting Behavior of Additive Manufactured 4043 Aluminum Alloy, J. Mater. Eng. Perform., 2018, 27(09), p 4582–4592.

    Article  CAS  Google Scholar 

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Acknowledgment

The authors gratefully acknowledge financial support received from the National Natural Science Foundation of China: (Grant No.51971129).

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Correspondence to Shanglei Yang.

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Zhu, M., Yang, S., Xie, C. et al. Research on Microstructure and Fatigue Properties of 7050-T6 High-Strength Aluminum Alloy Cold Metal Transfer Welded Joint. J. of Materi Eng and Perform 30, 7461–7471 (2021). https://doi.org/10.1007/s11665-021-05885-z

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  • DOI: https://doi.org/10.1007/s11665-021-05885-z

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