Microstructure characterization and hardness of Al-Cu-Mn eutectic alloy

The composition of Al-Cu-Mn ternary eutectic alloy was chosen to be Al-32.5wt.%Cu-0.6wt.%Mn to the Al2Cu and Al12CuMn2 solid phases within an aluminum matrix (α-Al) from its melt. The Al-32.5wt.%Cu-0.6wt.%Mn alloy was directionally solidifi ed at a constant temperature gradient (G=8.1 K·mm-1) with...

Full description

Bibliographic Details
Main Author: Yusuf Kaygısız
Format: Article
Language:English
Published: Foundry Journal Agency 2018-09-01
Series:China Foundry
Subjects:
Online Access:http://ff.foundryworld.com/uploadfile/2018092030382265.pdf
id doaj-46f649afc7954b8586e43f8ae1ee10bf
record_format Article
spelling doaj-46f649afc7954b8586e43f8ae1ee10bf2020-11-24T23:46:38ZengFoundry Journal AgencyChina Foundry1672-64211672-64212018-09-0115539039610.1007/s41230-018-7225-0Microstructure characterization and hardness of Al-Cu-Mn eutectic alloyYusuf Kaygısız0Department of Electricity and Energy, Technical Vocational School of Sciences, Aksaray University, Aksaray, TurkeyThe composition of Al-Cu-Mn ternary eutectic alloy was chosen to be Al-32.5wt.%Cu-0.6wt.%Mn to the Al2Cu and Al12CuMn2 solid phases within an aluminum matrix (α-Al) from its melt. The Al-32.5wt.%Cu-0.6wt.%Mn alloy was directionally solidifi ed at a constant temperature gradient (G=8.1 K·mm-1) with different growth rates, 8.4 to 166.2 μm·s-1,by using a Bridgman-type furnace. The eutectic temperature (the melting point) of 547.85 °C for the Al-32.5wt.%Cu-0.6wt.%Mn alloy was obtained from the DTA curve of the temperature difference between the test sample and the inert reference sample versus temperature or time. The lamellar spacings (λ) were measured from transverse sections of the samples. The dependencies of lamellar spacings (λAl-Al2Cu) and microhardness on growth rates were obtained as, λAl-Al2Cu=3.02V -0.36, HV=153.2(V)0.035 , HV=170.6(λ)-0.09 and HV=144.3+0.82(λAl- Al2Cu)-0.50, HV=149.9+53.48V0.25 , respectively, for the Al-Cu-Mn eutectic alloy. The bulk growth rates were determined as λ2 Al-Al2Cu·V = 25.38 μm3·s-1 by using the measured values of λAl-Al2Cu and V. A comparison of present results was also made with the previous similar experimental results.http://ff.foundryworld.com/uploadfile/2018092030382265.pdfdirectional solidifi cationaluminum alloysmicrostructurehardness test
collection DOAJ
language English
format Article
sources DOAJ
author Yusuf Kaygısız
spellingShingle Yusuf Kaygısız
Microstructure characterization and hardness of Al-Cu-Mn eutectic alloy
China Foundry
directional solidifi cation
aluminum alloys
microstructure
hardness test
author_facet Yusuf Kaygısız
author_sort Yusuf Kaygısız
title Microstructure characterization and hardness of Al-Cu-Mn eutectic alloy
title_short Microstructure characterization and hardness of Al-Cu-Mn eutectic alloy
title_full Microstructure characterization and hardness of Al-Cu-Mn eutectic alloy
title_fullStr Microstructure characterization and hardness of Al-Cu-Mn eutectic alloy
title_full_unstemmed Microstructure characterization and hardness of Al-Cu-Mn eutectic alloy
title_sort microstructure characterization and hardness of al-cu-mn eutectic alloy
publisher Foundry Journal Agency
series China Foundry
issn 1672-6421
1672-6421
publishDate 2018-09-01
description The composition of Al-Cu-Mn ternary eutectic alloy was chosen to be Al-32.5wt.%Cu-0.6wt.%Mn to the Al2Cu and Al12CuMn2 solid phases within an aluminum matrix (α-Al) from its melt. The Al-32.5wt.%Cu-0.6wt.%Mn alloy was directionally solidifi ed at a constant temperature gradient (G=8.1 K·mm-1) with different growth rates, 8.4 to 166.2 μm·s-1,by using a Bridgman-type furnace. The eutectic temperature (the melting point) of 547.85 °C for the Al-32.5wt.%Cu-0.6wt.%Mn alloy was obtained from the DTA curve of the temperature difference between the test sample and the inert reference sample versus temperature or time. The lamellar spacings (λ) were measured from transverse sections of the samples. The dependencies of lamellar spacings (λAl-Al2Cu) and microhardness on growth rates were obtained as, λAl-Al2Cu=3.02V -0.36, HV=153.2(V)0.035 , HV=170.6(λ)-0.09 and HV=144.3+0.82(λAl- Al2Cu)-0.50, HV=149.9+53.48V0.25 , respectively, for the Al-Cu-Mn eutectic alloy. The bulk growth rates were determined as λ2 Al-Al2Cu·V = 25.38 μm3·s-1 by using the measured values of λAl-Al2Cu and V. A comparison of present results was also made with the previous similar experimental results.
topic directional solidifi cation
aluminum alloys
microstructure
hardness test
url http://ff.foundryworld.com/uploadfile/2018092030382265.pdf
work_keys_str_mv AT yusufkaygısız microstructurecharacterizationandhardnessofalcumneutecticalloy
_version_ 1725493064846278656