Orientation evolution in Hadfield steel single crystals under combined slip and twinning

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

Autoren

  • D. Canadinc
  • H. Sehitoglu
  • H. J. Maier
  • D. Niklasch
  • Y. I. Chumlyakov

Externe Organisationen

  • University of Illinois Urbana-Champaign (UIUC)
  • Universität Paderborn
  • Tomsk State University
Forschungs-netzwerk anzeigen

Details

OriginalspracheEnglisch
Seiten (von - bis)34-50
Seitenumfang17
FachzeitschriftInternational Journal of Solids and Structures
Jahrgang44
Ausgabenummer1
PublikationsstatusVeröffentlicht - 1 Jan. 2007
Extern publiziertJa

Abstract

The tensile deformation response and texture evolution of aluminum alloyed Hadfield steel single crystals oriented in the 〈1 6 9〉 direction is investigated. In this material, the strain hardening response is governed by the high-density dislocation walls (HDDWs) that interact with glide dislocations. A microstructure-based visco-plastic self-consistent model was modified to account for mechanical twinning in addition to the prevailing contribution of the HDDWs. Simulations revealed the contribution of twinning to the overall work hardening at the later stages of deformation. Moreover, both the deformation response and the rotation of the loading axis associated with plastic flow are successfully predicted even at the high-strain levels attained (0.53). Predicting the texture evolution serves as a separate check for validating the model, motivating its utilization in single and polycrystals of other alloys that exhibit combined HDDWs and twinning.

ASJC Scopus Sachgebiete

Zitieren

Orientation evolution in Hadfield steel single crystals under combined slip and twinning. / Canadinc, D.; Sehitoglu, H.; Maier, H. J. et al.
in: International Journal of Solids and Structures, Jahrgang 44, Nr. 1, 01.01.2007, S. 34-50.

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

Canadinc, D, Sehitoglu, H, Maier, HJ, Niklasch, D & Chumlyakov, YI 2007, 'Orientation evolution in Hadfield steel single crystals under combined slip and twinning', International Journal of Solids and Structures, Jg. 44, Nr. 1, S. 34-50. https://doi.org/10.1016/j.ijsolstr.2006.04.011
Canadinc, D., Sehitoglu, H., Maier, H. J., Niklasch, D., & Chumlyakov, Y. I. (2007). Orientation evolution in Hadfield steel single crystals under combined slip and twinning. International Journal of Solids and Structures, 44(1), 34-50. https://doi.org/10.1016/j.ijsolstr.2006.04.011
Canadinc D, Sehitoglu H, Maier HJ, Niklasch D, Chumlyakov YI. Orientation evolution in Hadfield steel single crystals under combined slip and twinning. International Journal of Solids and Structures. 2007 Jan 1;44(1):34-50. doi: 10.1016/j.ijsolstr.2006.04.011
Canadinc, D. ; Sehitoglu, H. ; Maier, H. J. et al. / Orientation evolution in Hadfield steel single crystals under combined slip and twinning. in: International Journal of Solids and Structures. 2007 ; Jahrgang 44, Nr. 1. S. 34-50.
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title = "Orientation evolution in Hadfield steel single crystals under combined slip and twinning",
abstract = "The tensile deformation response and texture evolution of aluminum alloyed Hadfield steel single crystals oriented in the 〈1 6 9〉 direction is investigated. In this material, the strain hardening response is governed by the high-density dislocation walls (HDDWs) that interact with glide dislocations. A microstructure-based visco-plastic self-consistent model was modified to account for mechanical twinning in addition to the prevailing contribution of the HDDWs. Simulations revealed the contribution of twinning to the overall work hardening at the later stages of deformation. Moreover, both the deformation response and the rotation of the loading axis associated with plastic flow are successfully predicted even at the high-strain levels attained (0.53). Predicting the texture evolution serves as a separate check for validating the model, motivating its utilization in single and polycrystals of other alloys that exhibit combined HDDWs and twinning.",
keywords = "Crystal plasticity, Dislocation walls, Hadfield steel, Strain hardening, Texture evolution",
author = "D. Canadinc and H. Sehitoglu and Maier, {H. J.} and D. Niklasch and Chumlyakov, {Y. I.}",
note = "Funding Information: This work was supported by the National Science Foundation grant DMR-0313489. The authors are grateful to Dr. Armand J. Beaudoin for his suggestions.",
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TY - JOUR

T1 - Orientation evolution in Hadfield steel single crystals under combined slip and twinning

AU - Canadinc, D.

AU - Sehitoglu, H.

AU - Maier, H. J.

AU - Niklasch, D.

AU - Chumlyakov, Y. I.

N1 - Funding Information: This work was supported by the National Science Foundation grant DMR-0313489. The authors are grateful to Dr. Armand J. Beaudoin for his suggestions.

PY - 2007/1/1

Y1 - 2007/1/1

N2 - The tensile deformation response and texture evolution of aluminum alloyed Hadfield steel single crystals oriented in the 〈1 6 9〉 direction is investigated. In this material, the strain hardening response is governed by the high-density dislocation walls (HDDWs) that interact with glide dislocations. A microstructure-based visco-plastic self-consistent model was modified to account for mechanical twinning in addition to the prevailing contribution of the HDDWs. Simulations revealed the contribution of twinning to the overall work hardening at the later stages of deformation. Moreover, both the deformation response and the rotation of the loading axis associated with plastic flow are successfully predicted even at the high-strain levels attained (0.53). Predicting the texture evolution serves as a separate check for validating the model, motivating its utilization in single and polycrystals of other alloys that exhibit combined HDDWs and twinning.

AB - The tensile deformation response and texture evolution of aluminum alloyed Hadfield steel single crystals oriented in the 〈1 6 9〉 direction is investigated. In this material, the strain hardening response is governed by the high-density dislocation walls (HDDWs) that interact with glide dislocations. A microstructure-based visco-plastic self-consistent model was modified to account for mechanical twinning in addition to the prevailing contribution of the HDDWs. Simulations revealed the contribution of twinning to the overall work hardening at the later stages of deformation. Moreover, both the deformation response and the rotation of the loading axis associated with plastic flow are successfully predicted even at the high-strain levels attained (0.53). Predicting the texture evolution serves as a separate check for validating the model, motivating its utilization in single and polycrystals of other alloys that exhibit combined HDDWs and twinning.

KW - Crystal plasticity

KW - Dislocation walls

KW - Hadfield steel

KW - Strain hardening

KW - Texture evolution

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DO - 10.1016/j.ijsolstr.2006.04.011

M3 - Article

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VL - 44

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EP - 50

JO - International Journal of Solids and Structures

JF - International Journal of Solids and Structures

SN - 0020-7683

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ER -

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