Effects of Al-Mn-Ti-P-Cu master alloy on microstructure and properties of Al-25Si alloy

To obtain a higher microstructural refining efficiency, and improve the properties and processing ability of hypereutectic Al-25Si alloy, a new environmentally friendly Al-20.6Mn-12Ti-0.9P-6.1Cu (by wt.%) master alloy was fabricated; and its modification and strengthening mechanisms on the Al-25Si a...

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Main Authors: Xu Chunxiang, Zhao Gaozhan, Zhang Jinshan
Format: Article
Language:English
Published: Foundry Journal Agency 2013-09-01
Series:China Foundry
Subjects:
Online Access:http://www.foundryworld.com/uploadfile/2013101756218849.pdf
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spelling doaj-c3143de4889e420b80eb4b66bc72b9a92020-11-24T21:10:36ZengFoundry Journal AgencyChina Foundry1672-64212013-09-01105325330Effects of Al-Mn-Ti-P-Cu master alloy on microstructure and properties of Al-25Si alloy Xu ChunxiangZhao GaozhanZhang JinshanTo obtain a higher microstructural refining efficiency, and improve the properties and processing ability of hypereutectic Al-25Si alloy, a new environmentally friendly Al-20.6Mn-12Ti-0.9P-6.1Cu (by wt.%) master alloy was fabricated; and its modification and strengthening mechanisms on the Al-25Si alloy were studied. The mechanical properties of the unmodified, modified and heat treated alloys were investigated. Results show that the optimal addition amount of the Al-20.6Mn-12Ti-0.9P-6.1Cu master alloy is 4wt.%. In this case, primary Si and eutectic Si as well as メ-Al phase were clearly refined, and this refining effect shows an excellent long residual action as it can be heat-retained for at least 5 h. After being T6 heat treated, the morphology of primary and eutectic Si in the Al-25Si alloys with the addition of 4wt.% Al-20.6Mn-12Ti-0.9P-6.1Cu alloy changes into particles and short rods. The average grain size of the primary and eutectic Si decreases from 250 レm (unmodified) to 13.83 レm and 35 レm (unmodified) to 7 レm; the メ-Al becomes obviously finer and the distribution of Si phases tends to be uniform and dispersed. Meanwhile, the tensile properties are improved obviously; the tensile strengths at room temperature and 300 ìC reach 241 MPa and 127 MPa, increased by 153.7% and 67.1%, respectively. In addition, the tensile fracture mechanism changes from brittle fracture for the alloy without modification to ductile fracture after modification. Modifying the morphology of Si phase and strengthening the matrix can effectively block the initiation and propagation of cracks, thus improving the strength of the hypereutectic Al-25Si alloy. http://www.foundryworld.com/uploadfile/2013101756218849.pdfAl-25Si alloyAl-Mn-Ti-P-Cu master alloymodificationmicrostructureproperties
collection DOAJ
language English
format Article
sources DOAJ
author Xu Chunxiang
Zhao Gaozhan
Zhang Jinshan
spellingShingle Xu Chunxiang
Zhao Gaozhan
Zhang Jinshan
Effects of Al-Mn-Ti-P-Cu master alloy on microstructure and properties of Al-25Si alloy
China Foundry
Al-25Si alloy
Al-Mn-Ti-P-Cu master alloy
modification
microstructure
properties
author_facet Xu Chunxiang
Zhao Gaozhan
Zhang Jinshan
author_sort Xu Chunxiang
title Effects of Al-Mn-Ti-P-Cu master alloy on microstructure and properties of Al-25Si alloy
title_short Effects of Al-Mn-Ti-P-Cu master alloy on microstructure and properties of Al-25Si alloy
title_full Effects of Al-Mn-Ti-P-Cu master alloy on microstructure and properties of Al-25Si alloy
title_fullStr Effects of Al-Mn-Ti-P-Cu master alloy on microstructure and properties of Al-25Si alloy
title_full_unstemmed Effects of Al-Mn-Ti-P-Cu master alloy on microstructure and properties of Al-25Si alloy
title_sort effects of al-mn-ti-p-cu master alloy on microstructure and properties of al-25si alloy
publisher Foundry Journal Agency
series China Foundry
issn 1672-6421
publishDate 2013-09-01
description To obtain a higher microstructural refining efficiency, and improve the properties and processing ability of hypereutectic Al-25Si alloy, a new environmentally friendly Al-20.6Mn-12Ti-0.9P-6.1Cu (by wt.%) master alloy was fabricated; and its modification and strengthening mechanisms on the Al-25Si alloy were studied. The mechanical properties of the unmodified, modified and heat treated alloys were investigated. Results show that the optimal addition amount of the Al-20.6Mn-12Ti-0.9P-6.1Cu master alloy is 4wt.%. In this case, primary Si and eutectic Si as well as メ-Al phase were clearly refined, and this refining effect shows an excellent long residual action as it can be heat-retained for at least 5 h. After being T6 heat treated, the morphology of primary and eutectic Si in the Al-25Si alloys with the addition of 4wt.% Al-20.6Mn-12Ti-0.9P-6.1Cu alloy changes into particles and short rods. The average grain size of the primary and eutectic Si decreases from 250 レm (unmodified) to 13.83 レm and 35 レm (unmodified) to 7 レm; the メ-Al becomes obviously finer and the distribution of Si phases tends to be uniform and dispersed. Meanwhile, the tensile properties are improved obviously; the tensile strengths at room temperature and 300 ìC reach 241 MPa and 127 MPa, increased by 153.7% and 67.1%, respectively. In addition, the tensile fracture mechanism changes from brittle fracture for the alloy without modification to ductile fracture after modification. Modifying the morphology of Si phase and strengthening the matrix can effectively block the initiation and propagation of cracks, thus improving the strength of the hypereutectic Al-25Si alloy.
topic Al-25Si alloy
Al-Mn-Ti-P-Cu master alloy
modification
microstructure
properties
url http://www.foundryworld.com/uploadfile/2013101756218849.pdf
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