Effects of Mg/Si Ratio and Post-Quench Natural Aging on Hardness Evolution and the Retained Response to Artificial Aging in Al–Mg–Si Alloys

Post-quench natural aging can alter the response of Al–Mg–Si alloys to further artificial aging, while post-artificial-aging hardness, Hpost-AA, may obscure changes in the retained artificial-aging response. Five high-purity alloys containing 0.95–0.99 mol% Mg + Si, with Mg/Si ratios of 0.52, 1.1, 1.9, 3.0, and 4.0, were solution-treated at 848 K for 3.6 ks, quenched, and artificially aged at 473 K. Under direct artificial aging, after a minimum practical delay of approximately 0.1 ks, the Mg/Si = 1.1 alloy showed the highest Hpeak of approximately 72–73 HV0.1, whereas Mg/Si = 4.0 reached approximately 53–55 HV0.1. The precipitate areal density was highest near Mg/Si = 1 and decreased markedly in Mg-rich alloys. Operational HRTEM classification indicated that β″-related precipitates predominated in the Si-excess alloys, whereas β′-like and parallelogram-type precipitates were more prominent in the Mg-rich alloy. For Mg/Si ratios of 0.52, 1.9, and 4.0, quench-to-aging delays of up to 6000 ks produced non-monotonic changes in Hpost-AA. However, the additional hardening increment, ΔHAA, decreased from 38.5 to 26.1 HV0.1 at Mg/Si = 0.52 and from 33.5 to 26.9 HV0.1 at Mg/Si = 1.9. These results show that both Hpost-AA and ΔHAA are required to evaluate quench-to-aging delays.

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Journal
Journal of Manufacturing and Materials Processing
Published
2026-09-21
DOI
https://doi.org/10.3390/jmmp10090369
Primary Topic
Magnesium Alloys: Properties and Applications
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article
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article

Effects of Mg/Si Ratio and Post-Quench Natural Aging on Hardness Evolution and the Retained Response to Artificial Aging in Al–Mg–Si Alloys

Seungwon Lee, Jiaming Wang, Abrar Ahmed, Kenji Matsuda et al.
Journal of Manufacturing and Materials Processing
Magnesium Alloys: Properties and Applications
article

Effects of Mg/Si Ratio and Post-Quench Natural Aging on Hardness Evolution and the Retained Response to Artificial Aging in Al–Mg–Si Alloys

Seungwon Lee, Jiaming Wang, Abrar Ahmed, Kenji Matsuda, Taiki Tsuchiya
article en

Abstract

Post-quench natural aging can alter the response of Al–Mg–Si alloys to further artificial aging, while post-artificial-aging hardness, Hpost-AA, may obscure changes in the retained artificial-aging response. Five high-purity alloys containing 0.95–0.99 mol% Mg + Si, with Mg/Si ratios of 0.52, 1.1, 1.9, 3.0, and 4.0, were solution-treated at 848 K for 3.6 ks, quenched, and artificially aged at 473 K. Under direct artificial aging, after a minimum practical delay of approximately 0.1 ks, the Mg/Si = 1.1 alloy showed the highest Hpeak of approximately 72–73 HV0.1, whereas Mg/Si = 4.0 reached approximately 53–55 HV0.1. The precipitate areal density was highest near Mg/Si = 1 and decreased markedly in Mg-rich alloys. Operational HRTEM classification indicated that β″-related precipitates predominated in the Si-excess alloys, whereas β′-like and parallelogram-type precipitates were more prominent in the Mg-rich alloy. For Mg/Si ratios of 0.52, 1.9, and 4.0, quench-to-aging delays of up to 6000 ks produced non-monotonic changes in Hpost-AA. However, the additional hardening increment, ΔHAA, decreased from 38.5 to 26.1 HV0.1 at Mg/Si = 0.52 and from 33.5 to 26.9 HV0.1 at Mg/Si = 1.9. These results show that both Hpost-AA and ΔHAA are required to evaluate quench-to-aging delays.

Journal of Manufacturing and Materials ProcessingVol. 10(9)
University of Toyama (JP)
Openalex Percentile: Top 22%
Magnesium Alloys: Properties and Applications
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Effects of Mg/Si Ratio and Post-Quench Natural Aging on Hardness Evolution and the Retained Response to Artificial Aging in Al–Mg–Si Alloys — Seungwon Lee, Jiaming Wang, et al. · Journal of Manufacturing and Materials Processing (2026) | TGRS Research Map | TGRS