Cooling curve thermal analysis of Al–Mg2Si–Cu–xSr composite

In situ composites are today being considered for industrial use, owing to the fewer production steps involved, lower production cost, and better wetting of reinforcements. This study emphasises the characteristic features of an Al–Mg2Si–Cu in situ composite, with the addition of different amounts o...

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Main Authors: Farahany, Saeed, Nordin, Nur Azmah, Ghandvar, Hamidreza
Format: Article
Published: Springer Netherlands 2020
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Online Access:http://eprints.utm.my/id/eprint/93672/
http://dx.doi.org/10.1007/s10973-019-09100-z
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Institution: Universiti Teknologi Malaysia
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spelling my.utm.936722021-12-31T08:46:11Z http://eprints.utm.my/id/eprint/93672/ Cooling curve thermal analysis of Al–Mg2Si–Cu–xSr composite Farahany, Saeed Nordin, Nur Azmah Ghandvar, Hamidreza TJ Mechanical engineering and machinery In situ composites are today being considered for industrial use, owing to the fewer production steps involved, lower production cost, and better wetting of reinforcements. This study emphasises the characteristic features of an Al–Mg2Si–Cu in situ composite, with the addition of different amounts of Sr (0.01–0.1 mass%) as a modifier reagent, by employing computer-aided cooling curve thermal analysis. The identification of microstructures and phases was carried out using a scanning electron microscope equipped with an energy dispersive spectrometer. The results show that the nucleation temperature of the primary Mg2Si, eutectic Mg2Si, and Al5FeSi phases initially increased with the addition of 0.01 mass% Sr, and subsequently decreased with further addition of the element. Two new Sr-containing phases were detected after the precipitation of primary Mg2Si phase and prior to the formation of eutectic Mg2Si phase. A relationship between the cooling rate (CR) and solidification rate (SR) was established. Based on cell coherency point, it was found that the eutectic Al–Mg2Si cell required a longer time to grow with the increment of Sr. The solid fraction of Al5FeSi and Al5Cu2Mg8Si6 + Al2Cu phases remained constant at 8 ± 1% and 3 ± 1%, respectively. The increase in the terminal freezing range and the cracking susceptibility coefficient, by 182% and 16%, respectively, shows that Sr increases the probability of hot tearing. Springer Netherlands 2020-08-01 Article PeerReviewed Farahany, Saeed and Nordin, Nur Azmah and Ghandvar, Hamidreza (2020) Cooling curve thermal analysis of Al–Mg2Si–Cu–xSr composite. Journal of Thermal Analysis and Calorimetry, 141 (3). pp. 1109-1122. ISSN 1388-6150 http://dx.doi.org/10.1007/s10973-019-09100-z DOI:10.1007/s10973-019-09100-z
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
topic TJ Mechanical engineering and machinery
spellingShingle TJ Mechanical engineering and machinery
Farahany, Saeed
Nordin, Nur Azmah
Ghandvar, Hamidreza
Cooling curve thermal analysis of Al–Mg2Si–Cu–xSr composite
description In situ composites are today being considered for industrial use, owing to the fewer production steps involved, lower production cost, and better wetting of reinforcements. This study emphasises the characteristic features of an Al–Mg2Si–Cu in situ composite, with the addition of different amounts of Sr (0.01–0.1 mass%) as a modifier reagent, by employing computer-aided cooling curve thermal analysis. The identification of microstructures and phases was carried out using a scanning electron microscope equipped with an energy dispersive spectrometer. The results show that the nucleation temperature of the primary Mg2Si, eutectic Mg2Si, and Al5FeSi phases initially increased with the addition of 0.01 mass% Sr, and subsequently decreased with further addition of the element. Two new Sr-containing phases were detected after the precipitation of primary Mg2Si phase and prior to the formation of eutectic Mg2Si phase. A relationship between the cooling rate (CR) and solidification rate (SR) was established. Based on cell coherency point, it was found that the eutectic Al–Mg2Si cell required a longer time to grow with the increment of Sr. The solid fraction of Al5FeSi and Al5Cu2Mg8Si6 + Al2Cu phases remained constant at 8 ± 1% and 3 ± 1%, respectively. The increase in the terminal freezing range and the cracking susceptibility coefficient, by 182% and 16%, respectively, shows that Sr increases the probability of hot tearing.
format Article
author Farahany, Saeed
Nordin, Nur Azmah
Ghandvar, Hamidreza
author_facet Farahany, Saeed
Nordin, Nur Azmah
Ghandvar, Hamidreza
author_sort Farahany, Saeed
title Cooling curve thermal analysis of Al–Mg2Si–Cu–xSr composite
title_short Cooling curve thermal analysis of Al–Mg2Si–Cu–xSr composite
title_full Cooling curve thermal analysis of Al–Mg2Si–Cu–xSr composite
title_fullStr Cooling curve thermal analysis of Al–Mg2Si–Cu–xSr composite
title_full_unstemmed Cooling curve thermal analysis of Al–Mg2Si–Cu–xSr composite
title_sort cooling curve thermal analysis of al–mg2si–cu–xsr composite
publisher Springer Netherlands
publishDate 2020
url http://eprints.utm.my/id/eprint/93672/
http://dx.doi.org/10.1007/s10973-019-09100-z
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