<p>Twinning-induced plasticity (TWIP) steel shows great potential in engineering due to its excellent strength and ductility synergy, and strengthening research on its corrosion resistance and high-temperature oxidation resistance is critical for broader applications. Herein, the effect of annealing temperature on the high-temperature oxidation and corrosion behavior of Fe–Mn–Cr–Al–Cu–C TWIP steel is investigated. The results show that increasing the annealing temperature from 700&#xa0;°C to 1100&#xa0;°C reduced the mass gain of the TWIP steel oxidized at 800&#xa0;°C for 8&#xa0;h from 1.93 to 0.58&#xa0;mg·cm<sup>−2</sup>. Additionally, the self-corrosion current density decreases from 6.52 × 10<sup>−6</sup> to 1.32 × 10<sup>−6</sup> A·cm<sup>−2</sup>, while charge transfer resistance increases from 1461 to 3339&#xa0;Ω·cm<sup>−2</sup>. The reduction in grain boundaries and dislocation density in the TWIP steel attributed to the increase in annealing temperature inhibits short-circuit diffusion, local galvanic corrosion and pitting, ultimately improving both oxidation and corrosion resistance. Moreover, high-temperature annealing prevents the formation of carbon-rich compounds and ensures uniform element distribution. The accumulation of Cu and Cu-rich products formed at the interface further protects against Cl<sup>−</sup> erosion, inhibiting pitting and local corrosion, thus enhancing the corrosion resistance of the TWIP steel.</p>

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Achieving High-Temperature Oxidation and Corrosion Resistance in Fe–Mn–Cr–Al–Cu–C TWIP Steel via Annealing Control

  • Yang Feng,
  • Shuai Wang,
  • Yang Zhao,
  • Li-Qing Chen

摘要

Twinning-induced plasticity (TWIP) steel shows great potential in engineering due to its excellent strength and ductility synergy, and strengthening research on its corrosion resistance and high-temperature oxidation resistance is critical for broader applications. Herein, the effect of annealing temperature on the high-temperature oxidation and corrosion behavior of Fe–Mn–Cr–Al–Cu–C TWIP steel is investigated. The results show that increasing the annealing temperature from 700 °C to 1100 °C reduced the mass gain of the TWIP steel oxidized at 800 °C for 8 h from 1.93 to 0.58 mg·cm−2. Additionally, the self-corrosion current density decreases from 6.52 × 10−6 to 1.32 × 10−6 A·cm−2, while charge transfer resistance increases from 1461 to 3339 Ω·cm−2. The reduction in grain boundaries and dislocation density in the TWIP steel attributed to the increase in annealing temperature inhibits short-circuit diffusion, local galvanic corrosion and pitting, ultimately improving both oxidation and corrosion resistance. Moreover, high-temperature annealing prevents the formation of carbon-rich compounds and ensures uniform element distribution. The accumulation of Cu and Cu-rich products formed at the interface further protects against Cl erosion, inhibiting pitting and local corrosion, thus enhancing the corrosion resistance of the TWIP steel.