Investigation into the Fabrication Possibility of the Boron–Aluminum Sheet Rolling of Increased Strength without Using Homogenization and Quenching
- Authors: Chervyakova K.Y.1, Belov N.A.1, Samoshina M.E.1, Yakovlev A.A.1
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Affiliations:
- National University of Science and Technology “MISiS”
- Issue: Vol 59, No 2 (2018)
- Pages: 200-206
- Section: Physical Metallurgy and Heat Treatment
- URL: https://journals.rcsi.science/1067-8212/article/view/226480
- DOI: https://doi.org/10.3103/S1067821218020025
- ID: 226480
Cite item
Abstract
Al–Cu–Mn (Zr) aluminum alloys possess high strength and manufacturability without operations of thermal treatment (TT). In order to investigate the fabrication possibility of the aluminum boron-containing alloy in the form of sheet rolling with an increased strength without TT, Al–2% Cu–1.5% Mn–2% B and Al–2% Cu–1.5% Mn–0.4% Zr–2% B alloys are prepared. To exclude the precipitation of refractory boride particles, smelting is performed in a RELTEK induction furnace providing intense melt stirring. The smelting temperature is 950–1000°C. Pouring is performed into graphite molds 40 × 120 × 200 mm in size. It is established using computational methods (Thermo-Calc) that manganese forms complex borides with aluminum and zirconium at the smelting temperature; herewith, a sufficient amount of manganese remains in liquid, while zirconium is almost absent. The formation of AlB2Mn2 complex boride is proven; however, the amount of manganese remaining in the solid solution is sufficient to form the particles of the Al20Cu2Mn3 phase in amounts of up to 7 wt %. Boron stimulates the isolation of Al3Zr primary crystals in the alloy with zirconium; in connection with this, an amount of zirconium insufficient for hardening remains in the aluminum solid solution. The possibility of fabricating thin-sheet rolling with a thickness smaller than 0.3 mm with homogeneously distributed accumulations of the boride phase with a particle size smaller than 10 μm is shown. A high strength level (up to 543 MPa) is attained without using quenching and aging due to the precipitation of dispersoids of the Al20Cu2Mn3 phase during hot deformation (t = 450°C).
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About the authors
K. Yu. Chervyakova
National University of Science and Technology “MISiS”
Author for correspondence.
Email: kse-chervyakova@yandex.ru
Russian Federation, Moscow, 119049
N. A. Belov
National University of Science and Technology “MISiS”
Email: kse-chervyakova@yandex.ru
Russian Federation, Moscow, 119049
M. E. Samoshina
National University of Science and Technology “MISiS”
Email: kse-chervyakova@yandex.ru
Russian Federation, Moscow, 119049
A. A. Yakovlev
National University of Science and Technology “MISiS”
Email: kse-chervyakova@yandex.ru
Russian Federation, Moscow, 119049
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