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The present study employs in-situ high-energy X-ray diffraction (HEXRD) to investigate the β-AlFeSi→α-Al(Fe,Mn)Si transformation in a 6063 Al alloy during homogenization heat treatment. The characteristics of HEXRD, combined with the experimental setup, enable an evaluation of the evolution of individual diffraction peaks as a function of temperature and time. The diffraction intensity evolution is then used to quantify the transformation into phase fractions using the reference intensity ratio (RIR) method. The β-AlFeSi→α-Al(Fe,Mn)Si transformation is measured at the homogenization temperatures: 540, 550, 560, 570, 580, 590, and 600 °C. In addition, three heating rates (4, 50, 100 °C/min) are studied to observe the influence of the heating stage on the transformation onset. The growth of α at the expense of β dissolution is faster at higher temperatures, and is limited by the diffusion of Mn. At the same time, during the heating ramp, the evolution of α and β fractions indicates a two-stage transformation, characterized by different growth rates of α. • This work presents a comprehensive analysis of the β-Al 4.5 FeSi→α-Al 15 (Fe,Mn) 3 Si 2 phase transformation of an EN AW-6063 aluminium alloy during the homogenization treatment. The highlights of the work are the following: • The use of in-situ high-energy X-ray diffraction (HEXRD) to obtain a highly accurate dataset with a time resolution per diffractogram of four seconds. • The tracking of specific diffraction peaks to determine the evolution from α and β during the heat treatment. • The analysis of the heating stage from the as-cast state to the homogenization temperature, where the β→α phase transformation begins. For this purpose, three heating rates are studied. • The analysis of the homogenization temperature and its effect on the β→α transformation was conducted using seven distinct homogenization temperatures. • The study of α and β kinetics. • The quantification of the transformation in terms of the relative α fraction (α / α + β) using the reference intensity ratio method (RIR).
Arango et al. (Thu,) studied this question.