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논문 기본 정보

자료유형
학술저널
저자정보
Jeyong Yu (Korea Institute of Materials Science) In Yong Moon (Korea Institute of Materials Science) Hi Won Jeong (Korea Institute of Materials Science) Ho Won Lee (Korea Institute of Materials Science) Ji Hoon Kim (Pusan National University) Seong‑Hoon Kang (Korea Institute of Materials Science)
저널정보
대한금속·재료학회 Metals and Materials International Metals and Materials International Vol.28 No.12
발행연도
2022.12
수록면
3,016 - 3,032 (17page)
DOI
10.1007/s12540-022-01194-9

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초록· 키워드

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The stress–strain curves and recrystallization behavior of materials during high-temperature deformation can generallybe modeled using the Zener–Hollomon parameters expressed as a function of strain, temperature, and activation energy.However, reports of the effects of the activation energy with respect to the variation in the strain rate during hot deformationon the modeled stress–strain curves are limited. Therefore, in this study, the effect of the activation energy on the stress–strain curves was analyzed. For this purpose, uniaxial compression tests at temperatures of 900–1200 °C and strain rates of0.001–1 s−1 were performed using a nickel-based A230 alloy. Using the measured stress–strain curves, constitutive modelingbased on the Zener–Hollomon parameters was performed. To analyze the effect of the activation energy at different strainrates on the modeling accuracy, two types of models derived using the strain-rate-dependent and strain-rate-independentactivation energies were established. Then, two types of flow stresses were calculated using the models, and their accuracieswere compared using the average absolute relative error. In addition, the dynamic recrystallization (DRX) behavior wasmodeled by applying the derived Zener–Hollomon parameters. Finally, the established DRX kinetic model was applied tofinite element simulations to predict the microstructure of the deformed specimen. As a result, it was found that the volumefraction of DRX grains and the grain size, which greatly affect the mechanical properties of the material, can be predicted.

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