Araştırma Makalesi

Investigation of Fracture Behavior in an Ultra-Ductile FCC Single-Crystal Alloy

Cilt: 7 Sayı: 2 30 Ağustos 2026
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Investigation of Fracture Behavior in an Ultra-Ductile FCC Single-Crystal Alloy

Öz

The tensile deformation behavior of a single-crystalline multi-principal alloy system was systematically investigated at room temperature along three crystallographic orientations [111], [110], and [100] to elucidate the orientation dependence of the fracture surface behavior. Previous studies demonstrated that the initial hardening response in the [100]-oriented crystal is governed by dislocation-mediated deformation. However, the tensile response in the [111]- and [110]-oriented crystals is accompanied by the progressive formation of mechanical twins and multi-slip activation. The interplay of these mechanisms results in a pronounced enhancement in strain hardening and overall plastic deformability. Moreover, the secondary or tertiary twinning activation in these orientations contributes an additional hardening stage, effectively suppressing strain localization and extending the regime of uniform plastic deformation. Scanning electron microscopy (SEM) analysis reveals an apparent paradox: while the [100]-oriented specimens, which exhibit the lowest ductility, fail via a ductile fracture mode, the more ductile [111]- and [110]-oriented crystals display features characteristic of brittle fracture. This seemingly contradictory behavior is rationalized by considering the enhanced stability against necking in the [111]- and [110]-oriented crystals, which promotes strain accumulation to higher levels and ultimately leads to brittle fracture.

Anahtar Kelimeler

Kaynakça

  1. S. Picak, P. Singh, D. Salas, M.A. Tunes, X. Fang, L. Zhou, M.J. Kramer, Y.I. Chumlyakov, D.D. Johnson, R. Arroyave, Y. Ren, I. Karaman, Orientation dependence of the effect of short-range ordering on the plastic deformation of a medium entropy alloy, Mater. Sci. Eng. A. (2023) 145309.
  2. S. Picak, T. Wegener, S. V Sajadifar, C. Sobrero, J. Richter, H. Kim, T. Niendorf, I. Karaman, On the low cycle fatigue response of CoCrNiFeMn high entropy alloy with ultra-fine grain structure, Acta Mater. 205 (2021) 116540.
  3. S. Picak, H.C. Yilmaz, I. Karaman, Simultaneous deformation twinning and martensitic transformation in CoCrFeMnNi high entropy alloy at high temperatures, Scr. Mater. 202 (2021) 113995.
  4. S. Picak, The role of stair-rod dislocations on the twinning and martensitic transformation in single crystalline NiCoCr, Scr. Mater. 258 (2025) 116522.
  5. S. Picak, J. Liu, C. Hayrettin, W. Nasim, D. Canadinc, K. Xie, Y.I. Chumlyakov, I. V Kireeva, I. Karaman, Anomalous work hardening behavior of Fe40Mn40Cr10Co10 high entropy alloy single crystals deformed by twinning and slip, Acta Mater. 181 (2019) 555–569.
  6. P. Singh, S. Picak, A. Sharma, Y.I. Chumlyakov, R. Arroyave, I. Karaman, D.D. Johnson, Martensitic Transformation in FexMn80−xCo10Cr10 High-Entropy Alloy, Phys. Rev. Lett. 127 (2021) 115704.
  7. B. Uzer, S. Picak, J. Liu, T. Jozaghi, D. Canadinc, I. Karaman, I. Kireeva, On the mechanical response and microstructure evolution of NiCoCr single crystalline medium entropy alloys, Mater. Res. Lett. 6 (2018) 442–449.
  8. S. Picak, Deformation Mechanisms in Single Crystalline and Ultrafine Polychrystalline Medium and High Entropy Alloys, Texas A&M University, 2021. http://hdl.handle.net/1969.1/195273.

Ayrıntılar

Birincil Dil

İngilizce

Konular

Malzeme Karekterizasyonu

Bölüm

Araştırma Makalesi

Yayımlanma Tarihi

30 Ağustos 2026

Gönderilme Tarihi

7 Haziran 2026

Kabul Tarihi

31 Temmuz 2026

Yayımlandığı Sayı

Yıl 2026 Cilt: 7 Sayı: 2

Kaynak Göster

APA
Pıçak, S. (2026). Investigation of Fracture Behavior in an Ultra-Ductile FCC Single-Crystal Alloy. Manufacturing Technologies and Applications, 7(2), 93-101. https://doi.org/10.52795/mateca.1965706
AMA
1.Pıçak S. Investigation of Fracture Behavior in an Ultra-Ductile FCC Single-Crystal Alloy. MATECA. 2026;7(2):93-101. doi:10.52795/mateca.1965706
Chicago
Pıçak, Sezer. 2026. “Investigation of Fracture Behavior in an Ultra-Ductile FCC Single-Crystal Alloy”. Manufacturing Technologies and Applications 7 (2): 93-101. https://doi.org/10.52795/mateca.1965706.
EndNote
Pıçak S (01 Ağustos 2026) Investigation of Fracture Behavior in an Ultra-Ductile FCC Single-Crystal Alloy. Manufacturing Technologies and Applications 7 2 93–101.
IEEE
[1]S. Pıçak, “Investigation of Fracture Behavior in an Ultra-Ductile FCC Single-Crystal Alloy”, MATECA, c. 7, sy 2, ss. 93–101, Ağu. 2026, doi: 10.52795/mateca.1965706.
ISNAD
Pıçak, Sezer. “Investigation of Fracture Behavior in an Ultra-Ductile FCC Single-Crystal Alloy”. Manufacturing Technologies and Applications 7/2 (01 Ağustos 2026): 93-101. https://doi.org/10.52795/mateca.1965706.
JAMA
1.Pıçak S. Investigation of Fracture Behavior in an Ultra-Ductile FCC Single-Crystal Alloy. MATECA. 2026;7:93–101.
MLA
Pıçak, Sezer. “Investigation of Fracture Behavior in an Ultra-Ductile FCC Single-Crystal Alloy”. Manufacturing Technologies and Applications, c. 7, sy 2, Ağustos 2026, ss. 93-101, doi:10.52795/mateca.1965706.
Vancouver
1.Sezer Pıçak. Investigation of Fracture Behavior in an Ultra-Ductile FCC Single-Crystal Alloy. MATECA. 01 Ağustos 2026;7(2):93-101. doi:10.52795/mateca.1965706