<p>The serrated flow behavior, known as the Portevin–Le Chatelier (PLC) effect, is commonly observed during high-temperature deformation. In this study, we report a serrated flow behavior in FeCoCrNiMo0.2 high-entropy alloy (HEA), which is mediated by nano-twinning and phase transformation at cryogenic temperatures. During uniaxial tensile deformation at 77&#xa0;K, the alloy exhibited the formation of high-density deformation nano-twinning, cross-twinning, stacking faults (SFs) and Lomer–Cottrell locks (L-C locks). Additionally, the lower stacking fault energy (SFE) at low temperatures promotes the formation of the 9R phase. The high-density twin boundaries effectively hinder dislocation movement, leading to the instability of plastic deformation and promoting the serrated flow behavior. Furthermore, the rapid and unstable transformation of the 9R phase contributes to the pronounced serrated flow behavior. Nano-twinning, SFs, cross-twinning, L-C locks and 9R phase collectively induce a dynamic Hall–Petch effect, enhancing the strength-ductility synergy and strain-hardening ability of deformed alloy at 77&#xa0;K. Our work provides valuable insights into the mechanism of tensile deformation at cryogenic temperatures in single-phase FCC HEA.</p> Graphical abstract <p></p>

错误:搜索内容不能为空,请输入英文关键词
错误:关键词超出字数限制,请精简
高级检索

Serrated flow behavior mediated via nano-twinning and phase transformation in FeCoCrNiMo0.2 high-entropy alloy at cryogenic temperatures

  • Fei Chen,
  • Fei Liu,
  • Yuan-Biao Tan,
  • Wei Shi,
  • Xuan-Ming Ji,
  • Hao Fu,
  • Si-Yuan Wei,
  • Song Xiang

摘要

The serrated flow behavior, known as the Portevin–Le Chatelier (PLC) effect, is commonly observed during high-temperature deformation. In this study, we report a serrated flow behavior in FeCoCrNiMo0.2 high-entropy alloy (HEA), which is mediated by nano-twinning and phase transformation at cryogenic temperatures. During uniaxial tensile deformation at 77 K, the alloy exhibited the formation of high-density deformation nano-twinning, cross-twinning, stacking faults (SFs) and Lomer–Cottrell locks (L-C locks). Additionally, the lower stacking fault energy (SFE) at low temperatures promotes the formation of the 9R phase. The high-density twin boundaries effectively hinder dislocation movement, leading to the instability of plastic deformation and promoting the serrated flow behavior. Furthermore, the rapid and unstable transformation of the 9R phase contributes to the pronounced serrated flow behavior. Nano-twinning, SFs, cross-twinning, L-C locks and 9R phase collectively induce a dynamic Hall–Petch effect, enhancing the strength-ductility synergy and strain-hardening ability of deformed alloy at 77 K. Our work provides valuable insights into the mechanism of tensile deformation at cryogenic temperatures in single-phase FCC HEA.

Graphical abstract