4.7 Article

Heating rate effect on particle stimulated nucleation and grains structure during non-isothermal annealing of multi-directionally forged solution treated AA2024

期刊

MATERIALS CHARACTERIZATION
卷 127, 期 -, 页码 317-324

出版社

ELSEVIER SCIENCE INC
DOI: 10.1016/j.matchar.2017.03.025

关键词

Non-isothermal annealing; Recrystallization; Particle stimulated nucleation; Texture; AA2024; Multi-directional forging

资金

  1. Sharif University of Technology, Iran

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Particle stimulated nucleation (PSN) is one of the important mechanisms of recrystallization which is investigated in this research during non-isothermal annealing of multi-directionally forged solution treated aluminum alloy 2024. Non-isothermal annealing is performed up to temperatures of 380 degrees C and 450 degrees C at heating rates of 10, 100 and 200 K.min(-1) using a Gleeble 3800 thermo-mechanical simulator. In order to investigate the microstructure, field emission gun scanning electron microscope (FEG-SEM) equipped with electron backscatter diffractometer (EBSD) and differential scanning calorimetry (DSC) are utilized. The results show that the heating rate has a significant effect on the PSN and grain structure. An increase in the heating rate decreases the relative frequency and misorientations of high-angle grain boundaries (HAGBs), and suppresses PSN during non-isothermal annealing up to 380 degrees C, but it promotes PSN during annealing up to 450 degrees C. This controversy effect is related to the Zener pinning effect of fine particles of S'/S (Al2CuMg) during recrystallization. In non-isothermal annealing up to 450 degrees C, increasing the heating rate leads to smaller average recrystallized grain size and narrower grain size distribution due to the suppression of recovery; the driving pressure of recrystallization is high, and the critical diameter of coarse particles for PSN is decreased. Texture measurement shows that the recrystallization front migrates and consumes the surrounding Copper component 012) (111) which is developed during deformation. The final microstructure is approximately randomly oriented and this suggests that the governing nucleation mechanism is PSN. (C) 2017 Elsevier Inc. All rights reserved.

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