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Effects of cobalt and solidification cooling rate on intermetallic phases and tensile properties of a -Cu, -Zn, -Fe containing Al-Si alloy

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Abstract

Tensile properties of recycled Al–Si alloys are reduced in the presence of high iron (Fe) content. Until nowadays, the addition of manganese (Mn) is the only way permitting to transform the deleterious β-Al5FeSi phase. Alternatively, for the first time, the effects of cobalt (Co) and solidification cooling rate on the neutralization of the β-Al5FeSi phase are reported. The Al5FeSi phase changes into the Al5(Fe,Co)Si phase. In the present study, recycled Al-7 wt%Si alloys are investigated. Their compositions were established guided by some typical scrap compositions (in wt%) having small impurities such as iron (0.6% Fe), zinc (0.25% Zn), and copper (0.35% Cu). The attempt is made in order to enhance the mechanical strength of the Al-7%Si-0.6%Fe-0.35%Cu-0.25%Zn alloy by means of modification with Co. Two directionally solidified (DS) alloy castings are generated, which are the Al-7%Si-0.6%Fe-0.35%Cu-0.25%Zn and Al-7%Si-0.6%Fe-0.35%Cu-0.25%Zn-0.5%Co alloys, in which samples solidified at different cooling rates have been generated. Tensile strength and ductility are reported for both tested alloys and their respective samples. The strength increases owing to the addition of Co, which is promising if small alloying scraps are considered in the production of Fe-rich Al-Si alloys. The presence of Co induces mechanical strengthening by the formation of higher fractions of intermetallics. The ductility, however, showed some loss with almost 25% of decrease caused by Co.

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References

  1. Maung KN, Yoshida T, Liu G, Lwin CM, Muller DB, Hashimoto S (2017) Assessment of secondary aluminum reserves of nations. Resour Conserv Recycl 126:34–41

    Article  Google Scholar 

  2. Sverdrup HU, Ragnarsdottir K, Koca D (2015) Aluminium for the future: modelling the global production, market supply, demand, price and long term development of the global reserves. Resour Conserv Recycl 103:139–154

    Article  Google Scholar 

  3. Gaustad G, Olivetti E, Kirchain R (2010) Design for recycling: evaluation and efficient alloy modification. J Ind Ecol 14:286–308

    Article  Google Scholar 

  4. IAI (International Aluminium Institute) (2005) Sustainability update 2005. IAI, London

    Google Scholar 

  5. Gaustad G, Olivetti E, Kirchain R (2012) Improving aluminum recycling: a survey of sorting and impurity removal technologies. Resour Conserv Recycl 58:79–87

    Article  Google Scholar 

  6. Taylor JA (2012) Iron-containing intermetallic phases in Al-Si based casting alloys. Proc Math Sci 1:19–33

    Google Scholar 

  7. Taylor JA, Schaffer GB, Stjohn DH (1999) The role of iron in the formation of porosity in Al-Si-Cu–based casting alloys: part I. Initial Experimental Observations Metall Mater Trans A 30A:1643–1650

    Article  Google Scholar 

  8. Basak CB, Babu NH (2017) Influence of Cu on modifying the beta phase and enhancing the mechanical properties of recycled Al-Si-Fe cast alloys. Sci Rep 7:5779

    Article  Google Scholar 

  9. Wen KY, Hu W, Gottstein G (2003) Intermetallic compounds in thixoformed aluminium alloy A356. Mater Sci Technol 19:762–768

    Article  Google Scholar 

  10. Couture A (1981) Iron in aluminum casting alloys - a literature survey. AFS Int Cast Met J 6:9–17

    Google Scholar 

  11. Wnming J, Chen X, Wang B, Zitian F, Hebao H (2015) Effects of vibration frequency on microstructure, mechanical properties, and fracture behavior of A356 aluminum alloy obtained by expendable pattern shell casting. Int J Adv Manuf Technol 83:167–175

    Google Scholar 

  12. Ji S, Yang W, Gao F, Watson D, Fan Z (2013) Effect of iron on the microstructure and mechanical property of Al-Mg-Si-Mn and Al-Mg-Si diecast alloys. Mater Sci Eng A 564:130–139

    Article  Google Scholar 

  13. Wang L, Makhlouf M, Apelian D (1995) Aluminium die casting alloys: alloy composition, microstructure, and properties-performance relationships. Int Mater Rev 40:221–238

    Article  Google Scholar 

  14. Shabestari SG (2004) The effect of iron and manganese on the formation of intermetallic compounds in aluminum–silicon alloys. Mater Sci Eng A Sci Eng A 383:289–298

    Article  Google Scholar 

  15. Kund NK (2018) Effect of tilted plate vibration on solidification and microstructural and mechanical properties of semisolid cast and heat-treated A356 Al alloy. Int J Adv Manuf Technol 97:1617–1626

    Article  Google Scholar 

  16. Jiang W, Fan Z, Liu D, Wu H (2013) Influence of gas flowrate on filling ability and internal quality of A356 aluminum alloy castings fabricated using the expendable pattern shell casting with vacuum and low pressure. Int J Adv Manuf Technol 67:2459–2468

    Article  Google Scholar 

  17. Jiang W, Fan Z, Liu D, Liao D, Dong X, Zong X (2013) Correlation of microstructure with mechanical properties and fracture behavior of A356-T6 aluminum alloy fabricated by expendable pattern shell casting with vacuum and low-pressure, gravity casting and lost foam casting. Mater Sci Eng A 560:396–403

    Article  Google Scholar 

  18. Jiang W, Chen X, Wang B, Fan Z, Wu H (2016) Effects of vibration frequency on microstructure, mechanical properties, and fracture behavior of A356 aluminum alloy obtained by expendable pattern shell casting. Int J Adv Manuf Technol 83:167–175

    Article  Google Scholar 

  19. Zolotorevsk VS, Belov NA, Glazoff MV (2007) Casting aluminum alloys. Elsevier Ltd.

  20. Rana RS, Purohit R, Das S (2012) Reviews on the influences of alloying elements on the microstructure and mechanical properties of aluminum alloys and aluminum alloy composites. Int J Sci Res Publ 2:1–7

    Google Scholar 

  21. Meng S, Shusen W, Li W (2012) Combined effects of cobalt addition and ultrasonic vibration on microstructure and mechanical properties of hypereutectic Al–Si alloys with 0.7% Fe. Mater. Sci. Eng. A 554: 142–148

  22. Canté MV, Brito C, Spinelli JE, Garcia A (2013) Interrelation of cell spacing, intermetallic compounds and hardness on a directionally solidified Al-1.0Fe-1.0Ni alloy. Mater Des 51:342–346

    Article  Google Scholar 

  23. Reyes RV, Bello TS, Kakitani R, Costa TA, Garcia A, Cheung N, Spinelli JE (2017) Tensile properties and related microstructural aspects of hypereutectic Al-Si alloys directionally solidified under different melt superheats and transient heat flow conditions. Mater Sci Eng A 685:235–243

    Article  Google Scholar 

  24. Rosa D, Spinelli JE, Garcia A (2006) Tertiary dendrite arm spacing during downward transient solidification of Al Cu and Al Si alloys. Mater Lett 60:1871–1874

    Article  Google Scholar 

  25. Çadirli E, Büyük U, Engin S, Kaya H (2017) Effect of silicon content on microstructure, mechanical and electrical properties of the directionally solidified Al-based quaternary alloys. J Alloys Compd 694:471–479

    Article  Google Scholar 

  26. Gunduz M, Çadirli E (2002) Directional solidification of aluminium-copper alloys. Mater Sci Eng A 327:167–185

    Article  Google Scholar 

  27. ASTM E562: ASTM International (2011) West Conshohocken, PA. https://doi.org/10.1520/E0562-11

  28. Abràmoff MD, Magalhães PJ, Ram SJ (2004) Image processing with ImageJ second edition. Biophoton Int 11:36–42

    Google Scholar 

  29. ASTM E8/E8M-16a: ASTM International (2016) West Conshohocken, PA. https://doi.org/10.1520/E0008_E0008M-16A

  30. T Software: TCAL5: TCS Al-based alloy database, (accessed 21 August 2019)

  31. Meng W, Wilson X, Qingyou H (2016) Study of refinement and morphology change of AlFeSi phase in A380 alloy due to addition of Ca, Sr/ Ca, Mn and Mn, Sr. Mater Trans 57:1509–1513

    Article  Google Scholar 

  32. Brito CC, Reinhart G, Nguyen-Thi H, Mangelinck-Noël N, Cheung N, Spinelli JE, Garcia A (2015) High cooling rate cells, dendrites, microstructural spacings and microhardness in a directionally solidified Al-Mg-Si alloy. J Alloys Compd 636:145–149

    Article  Google Scholar 

  33. Brito CC, Vida T, Freitas E, Cheung N, Spinelli JE, Garcia A (2016) Cellular/dendritic arrays and intermetallic phases affecting corrosion and mechanical resistances of an Al-Mg-Si alloy. J Alloys Compd 673:220–230

    Article  Google Scholar 

  34. Freitas BJM, Otani LB, Kiminami CS, Botta WJ, Bolfarini C (2019) Effect of iron on the microstructure and mechanical properties of the spray-formed and rotary-swaged 319 aluminum alloy. Int J Adv Man Tecn 102:3879–3894

    Article  Google Scholar 

  35. Wu X, Zhang H, Ma Z, Tao T, Gui J, Song W, Yang B, Zhang H (2019) Interactions between Fe-rich intermetallics and Mg-Si phase in Al-7Si-xMg alloys. J Alloys Compd 786:205–214

    Article  Google Scholar 

  36. Hwang JY, Doty HW, Kaufman MJ (2008) The effects of Mn additions on the microstructure and mechanical properties of Al-Si-Cu casting alloys. Mater Sci Eng A 488:496–504

    Article  Google Scholar 

  37. Jackson KA, Hunt JD (1966) Lamellar and rod eutectic growth. Trans Metall Soc AIME 236:1129–1142

    Google Scholar 

  38. Mondolfo LF (1976) Aluminum alloys: structure and properties. Butterworths, London - Boston, 971 p

    Google Scholar 

  39. Kassen AG (2018) Exploration of alnico permanent magnet microstructure and processing for near final shape magnets with solid-state grain alignment for improved properties. Iowa State University, Dissertation

    Book  Google Scholar 

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Acknowledgments

Thanks are due to MSc. Guilherme Lisboa de Gouveia for drawing Fig. 1.

Funding

The authors are grateful to FAPESP (São Paulo Research Foundation, Brazil: grant 2017/12741-6), Capes-Coordenação de Aperfeiçoamento de Pessoal de Nível Superior, Brazil (Funding Code 001), and CNPq- National Council for Scientific and Technological Development, Brazil (grant 400506/2016-5).

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Correspondence to José E. Spinelli.

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Xavier, M.G.C., Souza, T.M.G., Cheung, N. et al. Effects of cobalt and solidification cooling rate on intermetallic phases and tensile properties of a -Cu, -Zn, -Fe containing Al-Si alloy. Int J Adv Manuf Technol 107, 717–730 (2020). https://doi.org/10.1007/s00170-020-05077-4

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