TY - JOUR
T1 - Uncovering the effects of neutralizing elements (Co, Mn and Cr) on the Fe-rich intermetallic formation in Al–Si–Cu alloys
AU - Wang, Bing
AU - Wang, Junsheng
AU - Liu, Xinxiu
AU - Li, Quan
AU - Liu, Xiaoguang
N1 - Publisher Copyright:
© 2022 Elsevier B.V.
PY - 2022/11/14
Y1 - 2022/11/14
N2 - As Fe impurity in recycled Al–Si–Cu alloys always form Fe-rich intermetallics which is detrimental to the mechanical properties, many studies have been searching for the effective neutralizing elements for transforming the brittle β-AlFeSi intermetallics into less harmful α-AlFeSi. In this study, three transition metals (Co, Mn, and Cr) have been studied systemically by comparing not only their percentage in 3D using X-ray computed tomography but also the elemental mapping using scanning electron microscopy equipped with energy dispersive spectrometer. It was found that the morphology and the amount transformation from β-AlFeSi to other phases largely depends on the neutralizing element additions. The addition of Co forms a high melting point intermetallic compound, Al7CoCu2, and adsorbs a large amount of Fe elements to form Al7(FeCo)Cu2 increasing plate-like intermetallics, leading to a decrease in mechanical properties from 385.7 MPa to 309.6 MPa. The addition of Mn reduces the size of Fe-rich phase and transform structure of Fe-rich phase from β to α, leading to the improvement of mechanical properties from 385.7 to 427.9 MPa. The addition of Cr forms the Al13Cr4 compound and absorb Fe atoms to reduce the β-AlFeSi by forming the Al7(FeCr) compound. However, its effect is much lower than that of the Mn element, improving the mechanical properties by only 3.1%.
AB - As Fe impurity in recycled Al–Si–Cu alloys always form Fe-rich intermetallics which is detrimental to the mechanical properties, many studies have been searching for the effective neutralizing elements for transforming the brittle β-AlFeSi intermetallics into less harmful α-AlFeSi. In this study, three transition metals (Co, Mn, and Cr) have been studied systemically by comparing not only their percentage in 3D using X-ray computed tomography but also the elemental mapping using scanning electron microscopy equipped with energy dispersive spectrometer. It was found that the morphology and the amount transformation from β-AlFeSi to other phases largely depends on the neutralizing element additions. The addition of Co forms a high melting point intermetallic compound, Al7CoCu2, and adsorbs a large amount of Fe elements to form Al7(FeCo)Cu2 increasing plate-like intermetallics, leading to a decrease in mechanical properties from 385.7 MPa to 309.6 MPa. The addition of Mn reduces the size of Fe-rich phase and transform structure of Fe-rich phase from β to α, leading to the improvement of mechanical properties from 385.7 to 427.9 MPa. The addition of Cr forms the Al13Cr4 compound and absorb Fe atoms to reduce the β-AlFeSi by forming the Al7(FeCr) compound. However, its effect is much lower than that of the Mn element, improving the mechanical properties by only 3.1%.
KW - 3D characterization
KW - Neutralizing elements
KW - Recycled aluminum
KW - Solidification
KW - U-net CNN image Segmentation
KW - X-ray tomography
UR - http://www.scopus.com/inward/record.url?scp=85139832082&partnerID=8YFLogxK
U2 - 10.1016/j.msea.2022.144090
DO - 10.1016/j.msea.2022.144090
M3 - Article
AN - SCOPUS:85139832082
SN - 0921-5093
VL - 858
JO - Materials Science and Engineering: A
JF - Materials Science and Engineering: A
M1 - 144090
ER -