Suppressing negative natural aging effect in automotive AlMgSiCu alloys via Sn microalloying

Xuemei Xiang , Yuxiang Lai , Guisen Chen , Cuilan Wu , Jianghua Chen

International Journal of Minerals, Metallurgy, and Materials ›› 2026, Vol. 33 ›› Issue (6) : 2006 -2015.

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International Journal of Minerals, Metallurgy, and Materials ›› 2026, Vol. 33 ›› Issue (6) :2006 -2015. DOI: 10.1007/s12613-025-3254-z
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Suppressing negative natural aging effect in automotive AlMgSiCu alloys via Sn microalloying
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Abstract

Although Sn has been established as an effective microalloying element for suppressing the negative natural aging (NA) effect in Al–Mg–Si alloys, its potential to mitigate the negative NA effect in Al–Mg–Si–Cu alloys remains to be confirmed. This study systematically investigated the role of Sn in the NA of Al–Mg–Si–Cu alloys through hardness measurements, differential scanning calorimetry, and atomic-resolution high-angle annular dark-field scanning transmission electron microscopy. Our results demonstrate that the addition of Sn significantly suppresses the adverse impact of NA on the peak-aged hardening capacity during subsequent artificial aging and substantially alleviates early-stage hardening kinetics degradation. Our findings suggest that Sn modifies the nature of the NA clusters in Al–Mg–Si–Cu alloys. A significant proportion of NA clusters in the Sn-added alloy effectively served as heterogeneous nucleation sites for strengthening the precipitates during artificial aging, thereby preserving the precipitate nucleation rates and preventing coarsening at the peak-aging stage. Atomic-resolution energy-dispersive X-ray spectroscopy revealed preferential occupation of Si atomic sites by Sn atoms within the β′ and C/Q′ phases. This investigation provides critical theoretical insights for optimizing alloy design in automotive-body aluminum applications.

Keywords

AlMgSiCu alloys / microalloying / natural aging / precipitation / transmission electron microscopy

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Xuemei Xiang, Yuxiang Lai, Guisen Chen, Cuilan Wu, Jianghua Chen. Suppressing negative natural aging effect in automotive AlMgSiCu alloys via Sn microalloying. International Journal of Minerals, Metallurgy, and Materials, 2026, 33 (6) : 2006-2015 DOI:10.1007/s12613-025-3254-z

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References

[1]

Henriksson F, Johansen K. On material substitution in automotive BIWs–from steel to aluminum body sides. Procedia CIRP, 2016, 50: 683

[2]

Miller WS, Zhuang L, Bottema J, et al. . Recent development in aluminium alloys for the automotive industry. Mater. Sci. Eng. A, 2000, 280(1): 37

[3]

Zandbergen MW, Xu Q, Cerezo A, Smith GDW. Study of precipitation in Al–Mg–Si alloys by Atom Probe Tomography I. Microstructural changes as a function of ageing temperature. Acta Mater., 2015, 101: 136

[4]

Murayama M, Hono K, Miao WF, Laughlin DE. The effect of Cu additions on the precipitation kinetics in an Al–Mg–Si alloy with excess Si. Metall. Mater. Trans. A, 2001, 32(2): 239

[5]

Buha J, Lumley RN, Crosky AG. Precipitation and solute distribution in an interrupted-aged Al–Mg–Si–Cu alloy. Philos. Mag., 2008, 88(3): 373

[6]

L.P. Ding, C. Ji, C. Lu, et al., Study of the precipitate evolution mechanism in an Al–Mg–Si–Cu alloy with Si-rich and low Cu composition, Mater. Charact., 191(2022), art. No. 112167.

[7]

Esmaeili S, Lloyd DJ. The role of copper in the precipitation kinetics of 6000 series Al alloys. Mater. Sci. Forum, 2006, 519–521: 169

[8]

Kim JH, Kobayashi E, Sato T. Effects of Cu addition on behavior of nanoclusters during multi-step aging in Al–Mg–Si alloys. Mater. Trans., 2011, 52(5): 906

[9]

Liu CH, Zhang XM, Tang JG, Liu XX, Chen L. Effect of copper on precipitation and baking hardening behavior of Al–Mg–Si alloys. Trans. Nonferrous Met. Soc. China, 2014, 24(7): 2289

[10]

Miao WF, Laughlin DE. Effects of Cu content and pre-aging on precipitation characteristics in aluminum alloy 6022. Metall. Mater. Trans. A, 2000, 31(2): 361

[11]

Marioara CD, Andersen SJ, Røyset J, et al. . Improving thermal stability in Cu-containing Al–Mg–Si alloys by precipitate optimization. Metall. Mater. Trans. A, 2014, 45(7): 2938

[12]

Marioara CD, Andersen SJ, Stene TN, et al. . The effect of Cu on precipitation in Al–Mg–Si alloys. Philos. Mag., 2007, 87(23): 3385

[13]

Andersen SJ, Marioara CD, Vissers R, Frøseth A, Zandbergen HW. The structural relation between precipitates in Al–Mg–Si alloys, the Al-matrix and diamond silicon, with emphasis on the trigonal phase U1-MgAl2Si2. Mater. Sci. Eng. A, 2007, 444(1–2): 157

[14]

Andersen SJ, Zandbergen HW, Jansen J, TrÆholt C, Tundal U, Reiso O. The crystal structure of the β″ phase in Al–Mg–Si alloys. Acta Mater., 1998, 46(9): 3283

[15]

Chen JH, Costan E, van Huis MA, Xu Q, Zandbergen HW. Atomic pillar-based nanoprecipitates strengthen AlMgSi alloys. Science, 2006, 312(5772): 416

[16]

Liu M, Čížek J, Chang CST, Banhart J. Early stages of solute clustering in an Al–Mg–Si alloy. Acta Mater., 2015, 91: 355

[17]

Vissers R, van Huis MA, Jansen J, Zandbergen HW, Marioara CD, Andersen SJ. The crystal structure of the β′ phase in Al–Mg–Si alloys. Acta Mater., 2007, 55(11): 3815

[18]

Andersen SJ, Marioara CD, Frøseth A, Vissers R, Zandbergen HW. Crystal structure of the orthorhombic U2-Al4Mg4Si4 precipitate in the Al–Mg–Si alloy system and its relation to the β′ and β″ phases. Mater. Sci. Eng. A, 2005, 390(1–2): 127

[19]

Marioara CD, Andersen SJ, Jansen J, Zandbergen HW. The influence of temperature and storage time at RT on nucleation of the β″ phase in a 6082 Al–Mg–Si alloy. Acta Mater., 2003, 51(3): 789

[20]

Cuniberti A, Tolley A, Castro Riglos MV, Giovachini R. Influence of natural aging on the precipitation hardening of an AlMgSi alloy. Mater. Sci. Eng. A, 2010, 527(20): 5307

[21]

Poznak A, Marceau RKW, Sanders PG. Composition dependent thermal stability and evolution of solute clusters in Al–Mg–Si analyzed using atom probe tomography. Mater. Sci. Eng. A, 2018, 721: 47

[22]

Aruga Y, Kim S, Kozuka M, Kobayashi E, Sato T. Effects of cluster characteristics on two-step aging behavior in Al–Mg–Si alloys with different Mg/Si ratios and natural aging periods. Mater. Sci. Eng. A, 2018, 718: 371

[23]

Liu CH, Lai YX, Chen JH, et al. . Natural-aging-induced reversal of the precipitation pathways in an Al–Mg–Si alloy. Scripta Mater., 2016, 115: 150

[24]

Lai YX, Jiang BC, Liu CH, Chen ZK, Wu CL, Chen JH. Low-alloy-correlated reversal of the precipitation sequence in Al–Mg–Si alloys. J. Alloy. Compd., 2017, 701: 94

[25]

Tao GH, Liu CH, Chen JH, Lai YX, Ma PP, Liu LM. The influence of Mg/Si ratio on the negative natural aging effect in Al–Mg–Si–Cu alloys. Mater. Sci. Eng. A, 2015, 642: 241

[26]

Zurob HS, Seyedrezai H. A model for the growth of solute clusters based on vacancy trapping. Scripta Mater., 2009, 61(2): 141

[27]

Pogatscher S, Antrekowitsch H, Ebner T, Uggowitzer PJ. Suarez CE. The role of co-clusters in the artificial aging of AA6061 and AA6060. Light Metals 2012, 2012, Cham, Springer: 415

[28]

Aruga Y, Kozuka M, Takaki Y, Sato T. Formation and reversion of clusters during natural aging and subsequent artificial aging in an Al–Mg–Si alloy. Mater. Sci. Eng. A, 2015, 631: 86

[29]

M. Torsæter, H.S. Hasting, W. Lefebvre, et al., The influence of composition and natural aging on clustering during preaging in Al–Mg–Si alloys, J. Appl. Phys., 108(2010), No. 7, art. No. 073527.

[30]

C.D. Marioara, S.J. Andersen, C. Hell, et al., Atomic structure of clusters and GP-zones in an Al–Mg–Si alloy, Acta Mater., 269(2024), art. No. 119811.

[31]

Cheng T, Jia ZH, Weng YY, Hao LL, Liu Q. Effects of Sn/In additions on natural and artificial ageing of Al–Mg–Si alloys. Mater. Sci. Technol., 2018, 34(17): 2136

[32]

M. Liu, X.P. Zhang, B. Körner, et al., Effect of Sn and in on the natural ageing kinetics of Al–Mg–Si alloys, Materialia, 6(2019), art. No. 100261.

[33]

S. Pogatscher, H. Antrekowitsch, M. Werinos, et al., Diffusion on demand to control precipitation aging: Application to Al–Mg–Si alloys, Phys. Rev. Lett., 112(2014), No. 22, art. No. 225701.

[34]

W.B. Tu, J.G. Tang, Y. Zhang, et al., Influence of Sn on the precipitation and hardening response of natural aged Al–0.4Mg–1.0Si alloy artificial aged at different temperatures, Mater. Sci. Eng. A, 765(2019), art. No. 138250.

[35]

Werinos M, Antrekowitsch H, Ebner T, et al. . Design strategy for controlled natural aging in Al–Mg–Si alloys. Acta Mater., 2016, 118: 296

[36]

Shishido H, Takaki Y, Kozuka M, Matsumoto K, Aruga Y. Effects of Sn addition on clustering and age-hardening behavior in a pre-aged Al–Mg–Si alloy. Mater. Sci. Forum, 2016, 877: 455

[37]

X.M. Xiang, S. Zhan, Y.X. Lai, et al., Enhanced age-hardening in automotive AlMgSi(Sn) alloys led by Sn-atomic-pillar-based precipitates, Mater. Today Nano, 29(2025), art. No. 100562.

[38]

W.B. Tu, J.G. Tang, Y. Zhang, et al., Effect of Sn and Cu addition on the precipitation and hardening behavior of Al–1.0Mg–0.6Si alloy, Mater. Sci. Eng. A, 770(2020), art. No. 138515.

[39]

Kohn W, Sham LJ. Self-consistent equations including exchange and correlation effects. Phys. Rev., 1965, 140(4A): A1133

[40]

Kresse G. Ab initio molecular dynamics for liquid metals. J. Non-Cryst. Solids, 1995, 192–193: 222

[41]

Kresse G, Joubert D. From ultrasoft pseudopotentials to the projector augmented-wave method. Phys. Rev. B, 1999, 59(3): 1758

[42]

Blöchl P. Projector augmented-wave method. Phys. Rev. B, 1994, 50(24): 17953

[43]

Perdew JP, Burke K, Ernzerhof M. Generalized gradient approximation made simple. Phys. Rev. Lett., 1996, 77(18): 3865

[44]

van Huis MA, Chen JH, Zandbergen HW, Sluiter MHF. Phase stability and structural relations of nanometer-sized, matrix-embedded precipitate phases in Al–Mg–Si alloys in the late stages of evolution. Acta Mater., 2006, 54(11): 2945

[45]

Sanders PG, Youngdahl CJ, Weertman JR. The strength of nanocrystalline metals with and without flaws. Mater. Sci. Eng. A, 1997, 234: 77

[46]

Zhang P, Li SX, Zhang ZF. General relationship between strength and hardness. Mater. Sci. Eng. A, 2011, 529: 62

[47]

Ding LP, Jia ZH, Nie JF, et al. . The structural and compositional evolution of precipitates in Al–Mg–Si–Cu alloy. Acta Mater., 2018, 145: 437

[48]

Weng YY, Sun QC, Ding LP, et al. . Effect of Cu/Sn additions on the precipitation and property in Al–Mg–Si alloys. Mater. Sci. Technol., 2023, 39(17): 2756

[49]

Aruga Y, Kozuka M, Takaki Y, Sato T. Evaluation of solute clusters associated with bake-hardening response in isothermal aged Al–Mg–Si alloys using a three-dimensional atom probe. Metall. Mater. Trans. A, 2014, 45(13): 5906

[50]

Serizawa A, Hirosawa S, Sato T. Three-dimensional atom probe characterization of nanoclusters responsible for multistep aging behavior of an Al–Mg–Si alloy. Metall. Mater. Trans. A, 2008, 39(2): 243

[51]

Bryant JD. The effects of preaging treatments on aging kinetics and mechanical properties in AA6111 aluminum autobody sheet. Metall. Mater. Trans. A, 1999, 30(8): 1999

[52]

Chang CST, Banhart J. Low-temperature differential scanning calorimetry of an Al–Mg–Si alloy. Metall. Mater. Trans. A, 2011, 42(7): 1960

[53]

Birol Y. Restoration of the bake hardening response in a naturally aged twin-roll cast AlMgSi automotive sheet. Scripta Mater., 2006, 54(12): 2003

[54]

Murayama M, Hono K, Saga M, Kikuchi M. Atom probe studies on the early stages of precipitation in Al–Mg–Si alloys. Mater. Sci. Eng. A, 1998, 250(1): 127

[55]

W.B. Tu, J.G. Tang, L.Y. Ye, et al., Effect of the natural aging time on the age-hardening response and precipitation behavior of the Al–0.4Mg–1.0Si–(Sn) alloy, Mater. Des., 198(2021), art. No. 109307.

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