Microstructure and properties of A2017 alloy strips processed by a novel process by combining semisolid rolling, deep rolling, and heat treatment

Ren-guo Guan , Xiang Wang , Zhan-yong Zhao , Wei-wei Wang , Fu-rong Cao , Chun-ming Liu

International Journal of Minerals, Metallurgy, and Materials ›› 2013, Vol. 20 ›› Issue (8) : 770 -778.

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International Journal of Minerals, Metallurgy, and Materials ›› 2013, Vol. 20 ›› Issue (8) : 770 -778. DOI: 10.1007/s12613-013-0795-3
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Microstructure and properties of A2017 alloy strips processed by a novel process by combining semisolid rolling, deep rolling, and heat treatment

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Abstract

A novel short process for producing A2017 alloy strips with notable features of near net shape, saving energy, low cost, and high product performance was developed by combining semisolid rolling, deep rolling, and heat treatment. The microstructure and properties of the A2017 alloy strips were investigated by metallographic microscopy, scanning electron microscopy, transmission electron microscopy, X-ray diffraction, tensile testing, and hardness measurement. The cross-sectional microstructure of the A2017 alloy strips is mainly composed of near-spherical primary grains. Many eutectic phases CuAl2 formed along primary grain boundaries during semisolid rolling are crushed and broken into small particles. After solution treatment at 495°C for 2 h the eutectic phases at grain boundaries have almost dissolved into the matrix. When the solution treatment time exceeds 2 h, grain coarsening happens. More and more grain interior phases precipitate with the aging time prolonging to 8 h. The precipitated particles are very small and distribute homogenously, and the tensile strength reaches its peak value. When the aging time is prolonged to 12 h, there is no obvious variation in the amount of precipitated phases, but the size and spacing of precipitated phases increase. The tensile strength of the A2017 alloy strips produced by the present method can reach 362.78 MPa, which is higher than that of the strips in the national standard of China.

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aluminum alloys / semisolid rolling / heat treatment / microstructure / mechanical properties

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Ren-guo Guan, Xiang Wang, Zhan-yong Zhao, Wei-wei Wang, Fu-rong Cao, Chun-ming Liu. Microstructure and properties of A2017 alloy strips processed by a novel process by combining semisolid rolling, deep rolling, and heat treatment. International Journal of Minerals, Metallurgy, and Materials, 2013, 20(8): 770-778 DOI:10.1007/s12613-013-0795-3

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References

[1]

Zhao H, Li PJ, He LJ. Kinetics of recrystallization for twin-roll casting AZ31 magnesium alloy during homogenization. Int. J. Miner. Metall. Mater., 2011, 18, 570.

[2]

Chen ZZ, Mao WM, Wu ZC. Preparation of semisolid aluminum alloy slurry poured through a water-cooled serpentine channel. Int. J. Miner. Metall. Mater., 2012, 19, 48.

[3]

Ji S, Fan Z, Bevis MJ. Semi-solid processing of engineering alloys by a twin-screw rheomoulding process. Mater. Sci. Eng. A, 2001, 299, 210.

[4]

Kang CG, Lee SM. Development of a new rheology forming process with a vertical-type sleeve with electromagnetic stirring. Int. J. Adv. Manuf. Technol., 2008, 39, 462.

[5]

Kang YL, Yang XF, Song RB, Mao WM, Yang MS. Microstructure study on semi-solid 60Si2Mn during compressing. J. Univ. Sci. Technol. Beijing, 2001, 8, 115.

[6]

Midson SP. Rheocasting processes for semi-solid casting of aluminum alloys. Die Cast. Eng., 2006, 50, 48.

[7]

Haga T, Tkahshi K, Ikawaand M, Watari H. Twin roll casting of aluminum alloy strips. J. Mater. Process. Technol., 2004, 153–154, 42.

[8]

Czerwinski F. Near-liquidus molding of Mg-Al and Mg-Al-Zn alloys. Acta. Mater., 2005, 53, 1973.

[9]

Haghayeghi R, Zoqui EJ, Green NR, Bahai H. An investigation on DC casting of a wrought aluminium alloy at below liquidus temperature by using melt conditioner. J. Alloys Compd., 2010, 502, 382.

[10]

Haghayeghi R, Liu Y, Fan ZY. Melt conditioned direct chill casting (MC-DC) of wrought Al-alloys. Solid State Phenom., 2008, 141–143, 403.

[11]

Kaufmann H, Mundl A, Uggowitzer PJ, Potzinger R, Ishibashi N. An update on the new rheocastingdevelopment work for Al-and Mg-alloys. Die Cast. Eng., 2002, 46, 16.

[12]

Motegi T. Continuous casting of semisolid Al-Si-Mg alloy. Int. J. Mater. Prod. Technol., 2001, 2, 468.

[13]

Nakamura R, Saito M, Kumai S, Watari H. Roll casting of Al-25mass%Si. Adv. Mater. Res., 2010, 97–101, 1057.

[14]

Grimmig T, Ovcharov A, Afrath C, Bünck M, Bührig-Polaczek A. Potential of the rheocasting process, demonstrated on different aluminum based alloy systems. Solid State Phenom., 2006, 116–117, 484.

[15]

Babaghorbani P, Salarfar S, Nili-Ahmadabadi M. Kinetics of coarsening and solid sphericity during reheating of ductile iron and Al alloys. Solid State Phenom., 2006, 116–117, 205.

[16]

Kapranos P, Nakamura R, Bertoli E, Pola A, Azpilgain Z, Hurtado I. Thixo-extrusion of 5182 aluminum alloy. Solid State Phenom., 2008, 141–143, 115.

[17]

Cai WH, Yang XJ, Guo HM, Wen RJ, Zhang Y, Li HC. Study in process parameter of preparing rheocasting slurry by the method of cooling slope tube. J. Nanchang Univ. Eng. Technol., 2003, 25, 13.

[18]

Guan RG, Chen LQ, Cao FR, Zhao ZY, Ren Y. Semisolid die forging process, microstructures and properties of AZ31 magnesium alloy mobile telephone shells. Int. J. Miner. Metall. Mater., 2011, 18, 665.

[19]

Ruan YM, Liu JC, Richmond O. A deforming finite element method for analysis of alloy solidification problems. Finite Elem. Anal. Des., 1993, 13, 49.

[20]

Guan RG, Zhao ZY, Zhang H, Lian C, Lee CS, Liu CM. Microstructure evolution and properties of Mg-3Sn-1Mn (wt%) alloy strip processed by semisolid rheorolling. J. Mater. Process. Technol., 2012, 212, 1430.

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