Research and Application of Materials Science

Effects of Si Content on Microstructure and Mechanical Properties of 8079 Aluminum Alloy

ZHANGLinhui, KANGXiaoshu, ZHONGBinnian

Abstract


Because of high strength and low breaking rate, 8079 aluminum alloy has become the main material of double zero aluminum foil. However, there are still many problems in the manufacturing process, such as broken belt, pinhole and so on. As the main influencing element, Si has a great influence on the alloy. In this work, the influences of Si with various contents on microstructural evolution and mechanical properties of 8079 aluminum alloy were analyzed by energy dispersive spectrometer (EDS), optical microscope (OM), X-Ray diffraction analyzer (XRD), universal testing machine and Vickers hardness tester. The results showed that the primary Si phase was tiny and dispersed in the alloy when the content of Si is less than 1.3%. As the second phases dispersion strengthening, the Si phase can improve the strength of the alloy. However, when the Si content was too high, the Si phase increased and coarsened. Meanwhile, Fe-rich phase which increased by Si decreased the fine grain strengthening and the second phases strengthening mechanism. The coarse Si phase and the Fe-rich phase are brittle phase, which are easy to become the crack source in the process of material deformation and reduce the strength and toughness of the alloy. The mechanical property test shows that the performance of 8079 aluminum alloy is the best when the Si content is 1.3%.

Keywords


8079 aluminum alloy; Si; microstructure; mechanical properties

Full Text:

PDF

References


Roy. R. K, Kar. S, Das. K, et al. A study of precipitation and recrystallization behavior of aluminum alloy AA1235[J]. Journal of Materials Science, 2006, 41 (4): 1039-1045.

Lentz, M., G. Laptyeva, and O. Engler, Characterization of second-phase particles in two aluminium foil alloys. Journal of Alloys and Compounds, 2016. 660: 276-288.

Schmidt C W, Mortensen D, and Harryhausen K, Influence of Process Conditions on Segregation Behavior in Twin-Roll Casting of an Al-Fe-Si-Alloy[J]. Light Metals, 2017: 811-819.

Zhang J, Pan F, Zuo R, et al. The low temperature precipitation in commercial-purity aluminum sheets for foils[J]. Journal of Materials Processing Technology, 2008, 206(1-3): 382-387.

Lentz M, Laptyeva G, and Engler O, Characterization of second-phase particles in two aluminum foil alloys, Journal of Alloys and Compounds, 2016, 660(5): 276-288.

Birol Y, Formation of pinch marks on pack rolled aluminum foil[J], Engineering Failure Analysis,2013, 28(3): 82-89.

Wei C, Pizhi Z, Qi Z, et al. Effect of degreasing annealing temperature on mechanical properties of continuous casting and rolling AA8079 aluminum alloy foil[J]. heat treatment of metals, 2015, 40(7):155-159.

Qinglin Li, Yuqian Zhu, Shang Zhao, et al. Influences of Fe, Mn and Y additions on microstructure and mechanical properties of hypoeutectic Al–7%Si alloy[J]. Intermetallics, 2020, 120: 106768.

Schmidt C. W, Mortensen. D, and Karhausen. K, Influence of Process Conditions on Segregation Behavior in Twin-Roll Casting of an Al-Fe-Si-Alloy[J]. Light Metals, 2017, 811-819.

Zhang J, Pan F, Zuo R, et al. The low temperature precipitation in commercial-purity aluminum sheets for foils[J]. Journal of Materials Processing Technology, 2008, 206(1-3): 382-387.

Roy. R. K, Kar. S, Das. K, et al. A study of precipitation and recrystallization behavior of aluminum alloy AA1235[J]. Journal of Materials Science, 2006, 41 (4): 1039-1045.

D. Liang, W. Jie, H. Jones. The effect of growth velocity on primary spacing of Al3Fe dendrites in hypereutectic Al-Fe alloys[J]. Journal of Crystal Growth, 1994, 135(3-4): 561-564.

C.-Y. Ban, Y. Han, Q.-X. Ba, et al. Effect of magnetic field on the morphology and distribution of Al3Fe phase in hypereutectic Al-Fe alloy[J]. Journal of Northeastern University, 2010, 31(9): 1278-1282.

Belmares-Perales S, M. Castro-Román, Herrera-Trejo M, et al. Effect of cooling rate and Fe/Mn weight ratio on volume fractions of α-AlFeSi and β-AlFeSi phases in Al7.3Si3.5Cu alloy[J]. Metals & Materials International, 2008, 14(3): 307-314.

V. Stefániay, á. Griger, Turmezey T. Intermetallic phases in the aluminium-side corner of the AlFeSi-alloy system[J]. Journal of Materials Science, 1987, 22(2): 539-546.

Kuijpers N C W, Vermolen F J, Vuik C, et al. The dependence of the β-AlFeSi to α-Al(FeMn)Si transformation kinetics in Al-Mg-Si alloys on the alloying elements[J]. Materials Science & Engineering A Structural Materials, 2005, A394(1/2): 9-19.

V. Stefániay, Á. Griger, T. Turmezey. Intermetallic phases in the aluminium-side corner of the AlFeSi-alloy system[J]. Journal of Materials Science volume,1987, 22: 539–546.

R.J.Davues, V.Randle, G.J.Marshall. Continuous recrystallization-related phenomena in a commercial Al-Fe-Si alloy[J]. Acta Materialia, 1998, 46(17): 6021-6032.

Ahmet Can, Hüseyin Arikan, Kadir Çýnar. ANALYSIS OF TWIN-ROLL CASTING AA8079 ALLOY 6.35-μm FOIL ROLLING PROCESS[J]. Materials and technology,2016, 50 (6): 861–868.

Christoph Heering, Xiaoli Li, Markus Bambach, et al. Physical and Numerical Simulation of Cold Rolling of an AlFeSi Alloy in Consideration of Static Recovery[J]. Advanced Engineering Materials, 2010, 12(3): 141-146.

Wei C, Pizhi Z, Qi Z, et al. Effect of degreasing annealing temperature on mechanical properties of continuous casting and rolling AA8079 aluminum alloy foil[J]. Heat Treatment of Metals, 2015, 40(7): 155-159.




DOI: https://doi.org/10.33142/msra.v2i1.1978

Refbacks

  • There are currently no refbacks.


Copyright (c) 2020 Linhui ZHANG, Xiaoshu KANG, Binnian ZHONG

Creative Commons License
This work is licensed under a Creative Commons Attribution-NonCommercial 4.0 International License.