Effect of the eutectic Al-(Ce,La) phase morphology on microstructure, mechanical properties, electrical conductivity and heat resistance of Al-4.5(Ce,La) alloy after SPD and subsequent annealing

This paper reports on a crucial role of the morphology of intermetallic Al11RE3 phase and Al/Al11RE3 interphase (where RE – Rare Earth) surface area, before plastic deformation, on the electrical and mechanical properties and the thermostability of aluminium alloys. Cast Al-4.5 (Ce + La) alloy sampl...

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Published in:Journal of alloys and compounds Vol. 796; pp. 321 - 330
Main Authors: Medvedev, Andrey E., Murashkin, Maxim Y., Enikeev, Nariman A., Bikmukhametov, Ilyas, Valiev, Ruslan Z., Hodgson, Peter D., Lapovok, Rimma
Format: Journal Article
Language:English
Published: Lausanne Elsevier B.V 05-08-2019
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Abstract This paper reports on a crucial role of the morphology of intermetallic Al11RE3 phase and Al/Al11RE3 interphase (where RE – Rare Earth) surface area, before plastic deformation, on the electrical and mechanical properties and the thermostability of aluminium alloys. Cast Al-4.5 (Ce + La) alloy samples, processed with and without spheroidization treatment (ST), were subjected to high pressure torsion (HPT) at room temperature (RT) followed by annealing at 230 °C, 280 °C and 400 °C for 1 h. It is demonstrated, that the changes of initial alloy structure (particles shape/size) and the decrease of interphase surface area affect the distribution of intermetallic particles after HPT, the distribution of ultrafine grains and the dislocation density, as well as the formation of a supersaturated solid solution of Ce and La in aluminium. The optimal combination of strength (ultimate tensile stress (σUTS) 430 MPa) and conductivity (55.9% International Annealed Copper Standard, IACS) was obtained after ST, HPT and an annealing temperature of 230 °C. [Display omitted] •Influence intermetallic morphology on structure and properties of Al alloys is studied.•The alloys were subjected to severe plastic deformation in different initial state.•HPT of Al-4.5(Ce,La) alloy results in supersaturated solid solution formation.•Application of pre-HPT heat treatment prevents the solid solution formation during HPT.•The diffusion of Ce and La in Al is provided by extra vacancy concentration.
AbstractList This paper reports on a crucial role of the morphology of intermetallic Al11RE3 phase and Al/Al11RE3 interphase (where RE – Rare Earth) surface area, before plastic deformation, on the electrical and mechanical properties and the thermostability of aluminium alloys. Cast Al-4.5 (Ce + La) alloy samples, processed with and without spheroidization treatment (ST), were subjected to high pressure torsion (HPT) at room temperature (RT) followed by annealing at 230 °C, 280 °C and 400 °C for 1 h. It is demonstrated, that the changes of initial alloy structure (particles shape/size) and the decrease of interphase surface area affect the distribution of intermetallic particles after HPT, the distribution of ultrafine grains and the dislocation density, as well as the formation of a supersaturated solid solution of Ce and La in aluminium. The optimal combination of strength (ultimate tensile stress (σUTS) 430 MPa) and conductivity (55.9% International Annealed Copper Standard, IACS) was obtained after ST, HPT and an annealing temperature of 230 °C.
This paper reports on a crucial role of the morphology of intermetallic Al11RE3 phase and Al/Al11RE3 interphase (where RE – Rare Earth) surface area, before plastic deformation, on the electrical and mechanical properties and the thermostability of aluminium alloys. Cast Al-4.5 (Ce + La) alloy samples, processed with and without spheroidization treatment (ST), were subjected to high pressure torsion (HPT) at room temperature (RT) followed by annealing at 230 °C, 280 °C and 400 °C for 1 h. It is demonstrated, that the changes of initial alloy structure (particles shape/size) and the decrease of interphase surface area affect the distribution of intermetallic particles after HPT, the distribution of ultrafine grains and the dislocation density, as well as the formation of a supersaturated solid solution of Ce and La in aluminium. The optimal combination of strength (ultimate tensile stress (σUTS) 430 MPa) and conductivity (55.9% International Annealed Copper Standard, IACS) was obtained after ST, HPT and an annealing temperature of 230 °C. [Display omitted] •Influence intermetallic morphology on structure and properties of Al alloys is studied.•The alloys were subjected to severe plastic deformation in different initial state.•HPT of Al-4.5(Ce,La) alloy results in supersaturated solid solution formation.•Application of pre-HPT heat treatment prevents the solid solution formation during HPT.•The diffusion of Ce and La in Al is provided by extra vacancy concentration.
Author Bikmukhametov, Ilyas
Medvedev, Andrey E.
Valiev, Ruslan Z.
Murashkin, Maxim Y.
Enikeev, Nariman A.
Lapovok, Rimma
Hodgson, Peter D.
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  givenname: Peter D.
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  fullname: Lapovok, Rimma
  organization: Institute for Frontier Materials, Deakin University, Waurn Ponds, Victoria 3216, Australia
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Keywords Electrical conductivity
Rare earth
Mechanical strength
Intermetallic particles
Atom probe tomography
High-pressure torsion
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Snippet This paper reports on a crucial role of the morphology of intermetallic Al11RE3 phase and Al/Al11RE3 interphase (where RE – Rare Earth) surface area, before...
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SubjectTerms Alloys
Aluminum base alloys
Annealing
Atom probe tomography
Cerium
Dislocation density
Earth surface
Electrical conductivity
Electrical resistivity
Heat resistance
High-pressure torsion
Intermetallic particles
Lanthanum
Mechanical properties
Mechanical strength
Morphology
Plastic deformation
Rare earth
Solid solutions
Spheroidizing
Surface area
Tensile stress
Thermal resistance
Thermal stability
Ultrafines
Title Effect of the eutectic Al-(Ce,La) phase morphology on microstructure, mechanical properties, electrical conductivity and heat resistance of Al-4.5(Ce,La) alloy after SPD and subsequent annealing
URI https://dx.doi.org/10.1016/j.jallcom.2019.05.006
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Volume 796
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