Use of Acoustic Energy in the Processing of Molten Aluminium Alloys

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Abstract:

During the last years aluminium alloys have been gaining increased acceptance as structural materials in the automotive and aeronautical industries, mainly due to their light weight, good formability and corrosion resistance. However, improvement of mechanical properties is a constant in research activities, either by the development of new alloys or by microstructure manipulation. This presentation focuses a novel effective dynamic methodology to perform microstructural refinement / modification and degassing of light alloys, namely aluminium alloys, by applying acoustic energy to the melts. High intensity acoustic energy significantly improves the microstructure, therefore the mechanical properties of those alloys, avoiding the use of traditional chemically based degassing and refining techniques which are less effective and present significant environmental impact. Ultrasonic (US) vibration has proven to be extremely effective in degassing, controlling columnar dendritic structure, reducing the size of equiaxed grains and, under some conditions, producing globular grains and modifying the eutectic silicon cells in Al-Si alloys. The mechanisms of US processing of aluminium melts are discussed and experimental results on this field are presented.

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Materials Science Forum (Volumes 730-732)

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895-900

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November 2012

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© 2013 Trans Tech Publications Ltd. All Rights Reserved

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[1] M. Merlin et al., Impact behaviour of A356 alloy for low-pressure die casting automotive wheels. J. Mat. Proc. Tech. 209 (2009) 1060-1073.

DOI: 10.1016/j.jmatprotec.2008.03.027

Google Scholar

[2] K.G. Basavakumar et al., Influence of grain refinement and modification on microstructure and mechanical properties of Al-7Si and Al-7Si-2.5Cu cast alloys. Mat. Char. 59 (2008) 283-289.

DOI: 10.1016/j.matchar.2007.01.011

Google Scholar

[3] Q.G. Wang et al., Fatigue behaviour of A356-T6 aluminium cast alloys. Part I. Effect of casting defects. J. Lig. Met. 1 (2001) 73-84.

DOI: 10.1016/s1471-5317(00)00008-0

Google Scholar

[4] G.K. Sigworth, Grain Refinement of Aluminium Casting Alloys AFS Trans. 67 (2) (2007) 1-12

Google Scholar

[5] J.A. García-Hinojosa et al., Structure and properties of Al-7Si-Ni and Al-7Si-Cu cast alloys non-modified and modified with Sr. J. Mat. Proc. Tech. 143-144 (2003) 306-310.

DOI: 10.1016/s0924-0136(03)00479-5

Google Scholar

[6] S.D. Mcdonald et al., Modification-related porosity formation in hypoeutectic aluminium-silicon alloys. Met. Mat. Trans. B 35B (2004) 1097-1106.

Google Scholar

[7] K.E. Knipling et al., Precipitation evolution in Al–Zr and Al–Zr–Ti alloys during aging at 450–600 °C. Acta Mat. 56 (2008) 1182-119.

DOI: 10.1016/j.actamat.2007.11.011

Google Scholar

[8] M.S. Kaisera et al., Effect of scandium on the microstructure and ageing behaviour of cast Al–6Mg alloy.  Mat. Char. 59 (2008) 1661-1666.

DOI: 10.1016/j.matchar.2008.03.006

Google Scholar

[9] D. Apelian. Aluminium cast alloys: Enabling tools for improved performance. NADCA, Wheeling, Illinois, 2009.

Google Scholar

[10] G.I. Eskin, Ultrasonic treatment of light alloy melts, 1st edition. Gordon and Breach Science Publishers, Amsterdam, 1998.

Google Scholar

[11] S. Zang et al., High-energy ultrasonic field effects on the microstructure and mechanical behaviours of A356 alloy. J. All. Comp. 470 (2009) 168-172.

Google Scholar

[12] H. Puga et al., The influence of processing parameters on the ultrasonic degassing of molten AlSi9Cu3 aluminium alloy. Mat. Letters 63 (2009) 806-808.

DOI: 10.1016/j.matlet.2009.01.009

Google Scholar

[13] M. Prokic, European Patent Application EP 1238715A1, 2001.

Google Scholar

[14] H. Puga et al., The combined effect of melt stirring and ultrasonic agitation on the degassing efficiency of AlSi9Cu3 alloy. Mat. Letters 63 (2009) 2089-2092.

DOI: 10.1016/j.matlet.2009.06.059

Google Scholar

[15] X. Jian et al., Refinement of eutectic silicon phase of aluminium A356 alloy using high-intensity vibration. Scr. Mat. 54 (2006) 893-896.

DOI: 10.1016/j.scriptamat.2005.11.004

Google Scholar

[16] H. Puga et al., Influence of Ultrasonic Melt Treatment on Microstructure and Mechanical Properties of AlSi9Cu3 alloy. J. Mat. Proc. Tech. (2011). Submitted.

Google Scholar