The influence of orientation and aluminium content on the deformation mechanisms of Hadfield steel single crystals

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

Autoren

  • Elena G. Astafurova
  • Irina V. Kireeva
  • Yuriy I. Chumlyakov
  • Hans J. Maier
  • Huseyin Sehitoglu

Externe Organisationen

  • Tomsk State University
  • Universität Paderborn
  • University of Illinois Urbana-Champaign (UIUC)
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Details

OriginalspracheEnglisch
Seiten (von - bis)144-149
Seitenumfang6
FachzeitschriftZeitschrift fuer Metallkunde/Materials Research and Advanced Techniques
Jahrgang98
Ausgabenummer2
PublikationsstatusVeröffentlicht - Feb. 2007
Extern publiziertJa

Abstract

The low stacking fault energy and high carbon content in Hadfield steel make twinning the basic deformation mechanism from the onset of plastic deformation in [111] and [011] oriented single crystals in tension at T = 77-300 K. Alloying with aluminium (2.7 Al in wt.%) results in an increase of stacking fault energy from 0.03 J m2 to 0.05 J m-2 and moves twinning to higher degrees of deformation (ϵpl > 15%). In aluminium-free [1-23] crystals twinning starts after 20% strain. For [123], [001] orientations, aluminiumadditions change the dislocation arrangement from a uniform distribution to a planar dislocation arrangment and also suppress twinning. Intersections of dislocation pile-ups were found to be the governing factor for hardening in the aluminium-Alloyed [001] crystals.

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The influence of orientation and aluminium content on the deformation mechanisms of Hadfield steel single crystals. / Astafurova, Elena G.; Kireeva, Irina V.; Chumlyakov, Yuriy I. et al.
in: Zeitschrift fuer Metallkunde/Materials Research and Advanced Techniques, Jahrgang 98, Nr. 2, 02.2007, S. 144-149.

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

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abstract = "The low stacking fault energy and high carbon content in Hadfield steel make twinning the basic deformation mechanism from the onset of plastic deformation in [111] and [011] oriented single crystals in tension at T = 77-300 K. Alloying with aluminium (2.7 Al in wt.%) results in an increase of stacking fault energy from 0.03 J m2 to 0.05 J m-2 and moves twinning to higher degrees of deformation (ϵpl > 15%). In aluminium-free [1-23] crystals twinning starts after 20% strain. For [123], [001] orientations, aluminiumadditions change the dislocation arrangement from a uniform distribution to a planar dislocation arrangment and also suppress twinning. Intersections of dislocation pile-ups were found to be the governing factor for hardening in the aluminium-Alloyed [001] crystals.",
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T1 - The influence of orientation and aluminium content on the deformation mechanisms of Hadfield steel single crystals

AU - Astafurova, Elena G.

AU - Kireeva, Irina V.

AU - Chumlyakov, Yuriy I.

AU - Maier, Hans J.

AU - Sehitoglu, Huseyin

PY - 2007/2

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AB - The low stacking fault energy and high carbon content in Hadfield steel make twinning the basic deformation mechanism from the onset of plastic deformation in [111] and [011] oriented single crystals in tension at T = 77-300 K. Alloying with aluminium (2.7 Al in wt.%) results in an increase of stacking fault energy from 0.03 J m2 to 0.05 J m-2 and moves twinning to higher degrees of deformation (ϵpl > 15%). In aluminium-free [1-23] crystals twinning starts after 20% strain. For [123], [001] orientations, aluminiumadditions change the dislocation arrangement from a uniform distribution to a planar dislocation arrangment and also suppress twinning. Intersections of dislocation pile-ups were found to be the governing factor for hardening in the aluminium-Alloyed [001] crystals.

KW - Hadfield steel

KW - Microstructure

KW - Single crystal

KW - Stacking fault energy

KW - Twinning

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