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Effect of Ti on Selected Properties of AlSi7Mg0.3Cu0.5 Alloy with Constant Addition of Zr

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Języki publikacji
EN
Abstrakty
EN
The article is focused on the synergic effect of constant content of Zr and higher content of Ti on mechanical properties Al-Si alloy. The Ti additions were in proportions of 0.1, 0.2 and 0.3 wt.% Ti. The casting process was carried out in ceramic molds, created for the investment casting technology. Half of the experimental samples were processed by precipitation curing T6. The measured results were compared with primary alloy AlSi7Mg0.3 and experimental alloy AlSi7Mg0.3Cu0.5Zr0.15. In variant with addition 0.1 wt. %, the tensile strength Rm increased by 1,5% but the elongation AM decreased to 40%. Variants with 0.2 and 0.3 wt. % addition of Ti achieved similar Rm but approximately 40% decrease in AM. However, it is interesting that yield strength Rp0.2 increased for all variants by approximately 14 to 20%. The results point out the possibility of developing a more sophisticated alloy for automotive industry.
Twórcy
  • University of Žilina, Faculty of Mechanical Engineering, Department of Technological Engineering, Žilina, Slovakia
autor
  • University of Žilina, Faculty of Mechanical Engineering, Department of Technological Engineering, Žilina, Slovakia
autor
  • University of Žilina, Faculty of Mechanical Engineering, Department of Technological Engineering, Žilina, Slovakia
  • AGH University of Science and Technology, Faculty of Foundry Engineering, Department of Moulding Materials, Mould Technology and Non-Ferrous Metals Casting, Al. Mickiewicza 30, 30-059 Kraków, Poland
autor
  • University of Žilina, Faculty of Mechanical Engineering, Department of Material Engineering, Žilina, Slovakia
Bibliografia
  • [1] E. Tillová, M. Chalupová, Štruktúrna analýza zliatin Al-Si, EDIS, Žilina (2009).
  • [2] B. Pisarek, P. Rapiejko, C. Szymczak. Arch. Foundry Eng. 137 (17), 1897-3310 (2017).
  • [3] H. Sandoval, S. Valtiierra. Int. J. of Metalcast. 11 (3), 1939-5981 (2017).
  • [4] T. Shaokun, L. Jingyuan, Z. Junlong, W. Zhumabieke, L. Dan, J. Mater. Res. Technol. 8 (5), 4130-4140 (2019), DOI: 10.1016/j.jmrt.2019.07.022
  • [5] D. Bolibruchová, M. Kuriš, M. Matejka. Manuf. J. 49 (11), 552-558 (2018).
  • [6] F. Wang, D. Qiu, D. Liu, J. Taylor, M. Easton, M. Zhang. Acta Mater. 42 (5), 5636-5645 (2013).
  • [7] D. Tsivoulas, J. Robson, Acta Mater. 93, 73-86 (July 2015), DOI: 10.1016/j.actamat.2015.03.057
  • [8] A.M. Nabawy, A.M. Samuel, F.H Samuel, H.W. Doty, Int. J. Cast Metal. Res. 308 (26), 308-317 (2013). DOI 10.1179/1743133613Y.0000000068
  • [9] M. Vončina, M. Medved, S. Kores, P. Xie, A. Czeglier, P. Schumacher, Livarski Vestnik 65 (1), 36-48 (2018).
  • [10] J. Rakhmonov, G. Timelli, F. Bonollo, Mater. Charact. 128, 100-108 (2017), DOI: https://doi.org/10.1016/j.matchar.2017.03.039
  • [11] M. Medved, S. Kores, M. Vončina, In: Light Metals 373-380 (2018), DOI: 10.1007/978-3-319-72284-9_50
  • [12] J. Li, H. Oberdorfer, B. Wurster, J. Mater. Sci. 49 (17), 5961-5977 (2014).
  • [13] B. Baradarani, R. Raiszadeh, Mater. Des. 32 (2), 935-940 (2011).
  • [14] R. Podrocká, D. Bolibruchová, Arch. Foundry Eng. 17 (3), 2299-2944 (2017).
  • [15] E. Fischer, C. Colinet, J. Phase Equilib. Diffus. 36 (5), 1547-7037 (2015).
  • [16] J. Hernandez-Sandoval, A.M. Samuel, S. Valtierra, F.H. Samuel. Int. J. Metalcast. 11, 428-439, (2017), DOI: 10.1007/s40962-016-0080-0
  • [17] D. Bolibruchová, D. Richtárek, S. Dobosz, K. Major-Garyś, Arch. Metall. Mater. 62 (1), 1733-3490 (2017).
  • [18] Ch. Fuller, D. Seidman, D. Dunand, Acta Mater. 52 (11), 4803-4814 (2003).
  • [19] W.K. Krajewski, J. Buraś, P.K. Krajewski, A.L. Greer, K. Faerber, P. Schumacher, Mater. Today: Proc. 2, 4978-4983 (2015).
  • [20] W.K. Krajewski, A.L. Greer, J. Buraś, G. Piwowarski, P.K. Krajewski. Mater. Today: Proc. 10, 306-311 (2019).
  • [21] A. Kozlov, R. Schmid-Fetzer. IOP Conf. Series: Materials Science and Engineering 27 (2011) 012001, doi:10.1088/1757-899X/27/1/012001
  • [22] A.M. Bunn, P. Schumacher, M.A. Kearns, C.B. Boothroyd, A.L. Greer. Mater. Sci. Technol. 15, 1115-1123 (1999).
  • [23] J.A. Spittle, S.B. Sadli. Cast Met. 7, 247-253 (1994).
  • [24] D. Qiu, J.A. Taylor, M.-X. Zhang, P.M. Kelly, Acta Mater. 55, 1447-1456 (2007).
  • [25] Yang Li, Bin Hu, Qinfen Gu, Bin Liu, Qian Li, Scripta Mater. 160, 75-80 (2019).
  • [26] Yang Li, Bin Hu, Bin Liu, Anmin Nie, Qinfen Gu, Jianfeng Wang, Qian Li, Acta Mater 187, 51-65 (2020).
Uwagi
1. The article was written as part of the VEGA 1/0494/17 Grant Agency project.
2. Opracowanie rekordu ze środków MNiSW, umowa Nr 461252 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2021).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-d66c4e09-3400-4dcc-87ca-ac33d05cd7b8
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