Literature DB >> 36246780

Enhanced age-hardening response and creep resistance of an Al-0.5Mn-0.3Si (at.%) alloy by Sn inoculation.

Amir R Farkoosh1, David C Dunand1, David N Seidman1,2.   

Abstract

Precipitation-strengthening at ambient and high temperatures is examined in Al-0.5Mn-0.3Si (at.%) alloys with and without 0.02 at.% Sn micro-additions. Isochronal aging experiments reveal that Sn inoculation results in a pronounced age-hardening response: a hardening increment of 125 MPa is achieved at peak-aging (475 °C), which is five times greater than that of a Sn-free alloy. Scanning electron microscopy and synchrotron x-ray diffraction analyses demonstrate that, while the structure of the α-Al(Mn,Fe)Si precipitates formed in the peak-aged alloys is identical, their mean radius is smaller (R ~ 25 vs. 100-500 nm) and their number density is greater (~1021 vs. ~1019-20 m -3) in the Sn-modified alloy. Atom-probe tomography analyses reveal that the enhanced dispersion of the α-precipitates is related primarily to the formation of Sn-rich nanoprecipitates at intermediate temperatures, which act as nucleation sites for Mn-Si-rich nanoprecipitates. High-resolution transmission electron microscopy analyses demonstrate that these Mn-Si-rich nanoprecipitates exhibit icosahedral quasicrystal ordering (I-phase), which transform into the cubic-approximant α-phase upon peak aging. Significant Sn segregation at the semi-coherent interfaces of the α-precipitates in the peak-aged Sn-modified alloy is observed via APT, which promotes homogeneous nucleation of the I/α-precipitates at aging temperatures > 400 °C. At 300 °C, creep threshold stresses are observed in both alloys in the peak-aged state, which increases from ~30 MPa in the Sn-free alloy to ~52 MPa in the Sn-modified alloy. This boost in creep resistance is consistent with the enhanced aging response (higher Orowan stress).

Entities:  

Keywords:  Creep resistance; Heterogeneous nucleation; High-temperature aluminum alloys; Icosahedral and approximant phases; Precipitation strengthening; Tin micro-alloying

Year:  2022        PMID: 36246780      PMCID: PMC9565714          DOI: 10.1016/j.actamat.2022.118344

Source DB:  PubMed          Journal:  Acta Mater        ISSN: 1359-6454            Impact factor:   9.209


  8 in total

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Journal:  Microsc Microanal       Date:  2000-09       Impact factor: 4.127

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Journal:  Microsc Res Tech       Date:  2004-08       Impact factor: 2.769

3.  Simultaneous segregation at coherent and semicoherent heterophase interfaces.

Authors:  Aniruddha Biswas; Donald J Siegel; David N Seidman
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4.  Pb nanoprecipitates in Al: magic-shape effects due to elastic strain.

Authors:  J C Hamilton; F Léonard; E Johnson; U Dahmen
Journal:  Phys Rev Lett       Date:  2007-06-05       Impact factor: 9.161

5.  Formation of icosahedral Al-Mn by ion implantation into oriented crystalline films.

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Journal:  Phys Rev B Condens Matter       Date:  1986-02-15

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Authors: 
Journal:  Phys Rev B Condens Matter       Date:  1996-09-01

7.  Mackay icosahedron explaining orientation relationship of dispersoids in aluminium alloys.

Authors:  Astrid Marie F Muggerud; Yanjun Li; Randi Holmestad; Sigmund J Andersen
Journal:  Acta Crystallogr B Struct Sci Cryst Eng Mater       Date:  2014-10-01

8.  Solute-induced strengthening during creep of an aged-hardened Al-Mn-Zr alloy.

Authors:  Amir R Farkoosh; David C Dunand; David N Seidman
Journal:  Acta Mater       Date:  2021-08-26       Impact factor: 9.209

  8 in total

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