Investigation of isothermal continuous hot deformation behavior of the new as-cast alumina-forming austenitic alloy

Multi-pass isothermal continuous hot deformation experiments were designed for homogenization and recrystallization in the as-cast alumina-forming austenite (AFA) heat-resistant alloy. Flow curves and microstructure characterization were used to study the grain evolution with different deformation p...

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Published inJournal of alloys and compounds Vol. 928; p. 167236
Main Authors Wang, Qian, Liu, Tian, Tan, Li, Cheng, Xiaonong, Yuan, Zhizhong, Ju, Yulin, Cao, Fuyang, Ding, Hengnan, Chen, Leli, Zhang, Baosen, Luo, Rui
Format Journal Article
LanguageEnglish
Published Lausanne Elsevier B.V 20.12.2022
Elsevier BV
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Summary:Multi-pass isothermal continuous hot deformation experiments were designed for homogenization and recrystallization in the as-cast alumina-forming austenite (AFA) heat-resistant alloy. Flow curves and microstructure characterization were used to study the grain evolution with different deformation parameters in each pass. In particular, attention was paid to the dendrites and segregated phase. Under different hot deformation conditions, the alloys show significant work-hardening characteristics, which result from the strengthening effect of the primary segregated MC-type carbide. The increase in deformation temperature contributes significantly to dynamic recrystallization (DRX), and the main mechanism of DRX is discontinuous DRX (DDRX). The continuous DRX (CDRX) is less occurring. Static recrystallization (SRX) occurs during the isothermal holding time between deformation passes. SRX becomes more and more apparent with temperature and the holding time. The increase in the deformation passes leads to a gradual disappearance of the alloy dendrites and an increase in the recrystallization volume fraction. Meanwhile, the segregated phase gradually decomposes into particles and partially dissolves. However, the segregated phase particles eventually show band-like distribution. SRX grains around the segregated phase will exhibit similar orientations due to particle-stimulated nucleation (PSN) mechanisms. Until the grain size increases to the point that it can escape from particle restraint, it will transform to random orientation. The above study confirms that multi-pass isothermal continuous hot deformation can improve the as-cast microstructure and guide practical industrial production. •The isothermal multi-pass hot deformation promotes recrystallization and segregated phase dissolution in as-cast AFA alloy.•MC-type primary carbide segregated phase is partially dissolved, the remaining particles are distributed as bands.•DDRX is the dominant dynamic recrystallization mechanism, with CDRX playing a lesser role.•Static recrystallized grains will have approximate orientation due to the particle-stimulated nucleation mechanism.
ISSN:0925-8388
1873-4669
DOI:10.1016/j.jallcom.2022.167236