Manufacturing Technology 2016, 16(1):243-247 | DOI: 10.21062/ujep/x.2016/a/1213-2489/MT/16/1/243

Effect of Nickel on the Properties of the AlSi10MgMn Alloy with Increased Iron Content

Ján ©čury, Dana Bolibruchová, Mária ®ihalová
Department of Technological Engineering, Faculty of Mechanical Engineering, University of ®ilina. Univerzitná 8215/1, 010 26 ®ilina. Slovak Republic

The article deals with the issue of secondary aluminum alloys with higher iron content and the possibility of reducing the negative impact of the iron by adding certain elements (correctors of iron). This paper evaluated the impact of nickel on amount of gas and mechanical properties of AlSi10MgMn alloy with increased iron content. For evaluation purposes master alloy AlNi20 with concentrations of 0.1, 0.3 and 0.5 wt. % was used. The main conclusion is that the addition of nickel corrector appears to have positive influence on reducing the negative effects of iron. The next conclusion is that the addition of 0.5 wt. % AlNi20 according to the results in the paper seem to be most benefical.

Keywords: AlSi10MgMn alloy, mechanical properties, intermetallic phase based on iron content, nickel

Published: February 1, 2016  Show citation

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©čury J, Bolibruchová D, ®ihalová M. Effect of Nickel on the Properties of the AlSi10MgMn Alloy with Increased Iron Content. Manufacturing Technology. 2016;16(1):243-247. doi: 10.21062/ujep/x.2016/a/1213-2489/MT/16/1/243.
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References

  1. BOLIBRUCHOVÁ, D., PASTIRČÁK, R. SLÁDEK, A. (2005). Zlievarenská metalurgia - neľelezné kovy, pp. 88, EDIS, ®ilina.
  2. BOLIBRUCHOVÁ, D., TILLOVÁ, E. (2005). Zlievarenské zliatiny Al-Si, pp. 88, EDIS, ®ilina.
  3. MICHNA, ©. a kol. (2005). Encyklopedie hliníku, pp. 15, Adin, Preąov.
  4. RICHTÁREK, L., BOLIBRUCHOVÁ, D. (2014). Effect of Selected Elements on the Microstructure of Secondary Al-Si Alloys. In: Manufacturing Technology, Vol. 14, No. 3, pp. 431-437. J. E. Purkyne University in Ústi nad Labem, Ústi nad Labem, ČR.
  5. TILLOVÁ, E., CHALUPOVÁ, M. (2009). ©truktúrna analýza zliatin Al-Si, pp. 191, EDIS, ®ilina.
  6. PASTIRČÁK, R. (2014). Effect of Low Pressure Application during Solidification on Microstructure of Al-Si Alloys. In: Manufacturing Technology, Vol. 14, No. 3, pp. 397-400. J. E. Purkyne University in Ústi nad Labem, Ústi nad Labem, ČR.
  7. DINNIS, C.M., TAYLOR, J.A., DAHLE, A.K. (2005). As-cast morphology of iron-intermetallics in Al-Si foundry alloys. In: Scripta Materialia 53, Vol. 53, pp. 955-958. Go to original source...
  8. BOLIBRUCHOVÁ, D., ®IHALOVÁ, M. (2013). Possibilities of iron elimination in aluminium alloys by vanadium. In: Manufacturing Technology, Vol. 13, No. 3, pp. 289-296. J. E. Purkyne University in Ústi nad Labem, Ústi nad Labem, ČR. Go to original source...
  9. TAYLOR, J. A. (2004). The effect of iron in Al-Si casting alloys. In: 35th Australian Foundry Institute National Conference, Adelaide, South Australia, pp. 148-157.
  10. HURTALOVÁ, L., TILLOVÁ, E. (2013). Elimination of the negative effect of Fe-rich intermetallic phases in secondary (recycled) aluminium cast alloy. In: Manufacturing Technology, Vol. 13, No. 1, pp. 44-50. J. E. Purkyne University in Ústi nad Labem, Ústi nad Labem, ČR. Go to original source...
  11. PETRÍK, J., HORVÁTH, M. (2011). The iron correctors in Al-Si alloys. In: Annals of Faculty Engineering Hunedoara - International Journal of Engineering, Vol. 9, No. 3, pp. 401-405. University Politehnica Timisoara, Romania.
  12. BOLIBRUCHOVÁ, D., RICHTÁREK, L. (2013). Effect of adding iron to the AlSi7Mg0.3 (EN AC 42 100, A356) alloy. In: Manufacturing Technology, Vol. 13, No. 3, pp. 276-281. J. E. Purkyne University in Ústi nad Labem, Ústi nad Labem, ČR. Go to original source...