Acta Metallurgica Sinica (English Letters) ›› 2025, Vol. 38 ›› Issue (3): 449-464.DOI: 10.1007/s40195-024-01796-9
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Jian Dong1, Jufu Jiang1(), Ying Wang2(
), Minjie Huang1, Jingbo Cui1, Tao Song1
Received:
2024-08-04
Revised:
2024-09-11
Accepted:
2024-09-13
Online:
2025-03-10
Published:
2024-11-30
Contact:
Jufu Jiang, jiangjufu@hit.edu.cn;Ying Wang, wangying1002@hit.edu.cn
Jian Dong, Jufu Jiang, Ying Wang, Minjie Huang, Jingbo Cui, Tao Song. Effect of Solution and Aging Treatment on Microstructure and Mechanical Properties of Al-14Si-5Cu-1.1Mg-2.3Ni-0.3La Alloy[J]. Acta Metallurgica Sinica (English Letters), 2025, 38(3): 449-464.
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Si | Cu | Ni | Mg | La | Ti | Sr | Al |
---|---|---|---|---|---|---|---|
14.18 | 5.52 | 2.46 | 0.096 | 0.23 | 0.08 | 0.035 | Bal. |
Table 1 Composition of Al-Si-Cu alloy (wt%)
Si | Cu | Ni | Mg | La | Ti | Sr | Al |
---|---|---|---|---|---|---|---|
14.18 | 5.52 | 2.46 | 0.096 | 0.23 | 0.08 | 0.035 | Bal. |
Alloy | Solution temperature | Aging | Time |
---|---|---|---|
Al-14Si-5Cu-1.1Mg-2.3Ni-0.3La | 490 °C, 500 °C, 510 °C, 520 °C, 530 °C | 2 h | |
500 °C | 1 h, 2 h, 4 h, 6 h, 8 h | ||
500 °C × 4 h | 175 °C; 190 °C; 205 °C; 220 °C | 4 h | |
500 °C × 4 h | 190 °C | 2 h, 4 h, 6 h, 8 h |
Table 2 Heat treatment process parameters
Alloy | Solution temperature | Aging | Time |
---|---|---|---|
Al-14Si-5Cu-1.1Mg-2.3Ni-0.3La | 490 °C, 500 °C, 510 °C, 520 °C, 530 °C | 2 h | |
500 °C | 1 h, 2 h, 4 h, 6 h, 8 h | ||
500 °C × 4 h | 175 °C; 190 °C; 205 °C; 220 °C | 4 h | |
500 °C × 4 h | 190 °C | 2 h, 4 h, 6 h, 8 h |
Fig. 1 Microstructure of squeeze casting Al-14Si-5Cu-1.1Mg-2.3Ni-0.3La alloy without heat treatment: a OM image of squeeze casting Al-14Si-5Cu-1.1Mg-2.3Ni-0.3La alloy; b SEM image of squeeze casting Al-14Si-5Cu-1.1Mg-2.3Ni-0.3La alloy; c elemental distribution of Al-14Si-5Cu-1.1Mg-2.3Ni-0.3La alloy
Fig. 3 OM of Al-14Si-5Cu-1.1Mg-2.3Ni-0.3La at different solution temperatures and time: a1-e1 OM of Al-14Si-5Cu-1.1Mg-2.3Ni-0.3La alloy at different solution temperatures for 4 h; a2-e2 OM of Al-14Si-5Cu-1.1Mg-2.3Ni-0.3La alloy with solution time at 500 °C
Fig. 4 SEM images of Al-14Si-5Cu-1.1Mg-2.3Ni-0.3La alloy at different solution temperatures and solution time: a 490 °C × 4 h; b 500 °C × 4 h; c 520 °C × 4 h; d 500 °C × 2 h; e 500 °C × 4 h; f 500 °C × 8 h
Fig. 6 Mechanical properties at different solution temperatures and solution time: a ultimate tensile strength (UTS) and elongation (EL) at different solution temperatures; b UTS and EL at different solution time
Fig. 7 OM images of Al-14Si-5Cu-1.1Mg-2.3Ni-0.3La alloy with different aging temperatures and aging time: a-d the microstructure of the alloy aging at 175-220 °C for 4 h; e-g the microstructure of the alloy aging at 190 °C for 2-8 h
Fig. 8 SEM images of Al-14Si-5Cu-1.1Mg-2.3Ni-0.3La alloy with different aging temperatures and aging time: a 175 °C × 4 h; b 190 °C × 4 h; c 205 °C × 4 h; d 190 °C × 2 h; e 190 °C × 8 h
Fig. 10 Partial enlarged SEM image and EDS of Al-14Si-5Cu-1.1Mg-2.3Ni-0.3La alloy at 190 °C × 4 h: a and c SEM images; b and d elements mapping images
Phases | Al | Si | Cu | Ni | Mg | La | Ti |
---|---|---|---|---|---|---|---|
Al3Ti | 52.47 | 10.26 | 4.31 | 0.45 | 12.68 | 0.05 | 18.88 |
Al3CuNiLa | 45.53 | 17.68 | 9.08 | 14.44 | 0.00 | 12.08 | 0.00 |
Table 3 Element composition of different precipitation phases (at.%)
Phases | Al | Si | Cu | Ni | Mg | La | Ti |
---|---|---|---|---|---|---|---|
Al3Ti | 52.47 | 10.26 | 4.31 | 0.45 | 12.68 | 0.05 | 18.88 |
Al3CuNiLa | 45.53 | 17.68 | 9.08 | 14.44 | 0.00 | 12.08 | 0.00 |
Fig. 11 Mechanical properties at different aging temperatures and aging time: a ultimate tensile strength (UTS) and elongation (EL) at different aging temperatures; b UTS and EL at different aging time
Fig. 12 TEM BF image, HRTEM image, SADP image and elements mapping of Al-14Si-5Cu-1.1Mg-2.3Ni-0.3La alloy: a BF image; b elements mapping image; c and d BF images of dislocations and precipitated phases; e BF morphology of eutectic Si; f HRTEM of SF
[1] | Y. Zou, H. Yan, B. Yu, Z. Hu, Intermetallics 110, 106487 (2019) |
[2] | S. Zhu, H.C. Shih, X. Cui, C.Y. Yu, S.P. Ringer, Acta Mater. 203, 116455 (2021) |
[3] | L.Z. Wu, J. Hu, J. Mater. Eng. Perform. 27, 483 (2018) |
[4] | M.S. Khan, M.H. Razmpoosh, A. Macwan, E. Biro, Y. Zhou, J. Mater. Process. Technol. 293, 117093 (2021) |
[5] | J. Wu, S.B. Xue, W.P. Fei, Y.L. Han, P. Zhang, Mater. Rep. 33, 3533 (2019) |
[6] | Z. Shi, R. He, Y. Chen, H. Yan, H. Song, C. Luo, Q. Nie, Z. Hu, Mater. Sci. Eng. A 853, 143738 (2022) |
[7] | D. Li, S. Cai, J. Gu, S. Liu, J. Si, Mater. Today Commun. 36, 106666 (2023) |
[8] | M. Qi, B. Li, P. Zhang, Y. Kang, G. Zhang, J. Wang, Q. Deng, W. Jiang, B. Hao, J. Li, Mater. Sci. Eng. A 861, 144312 (2022) |
[9] | H. Cao, Q. Sun, Q. Pu, L. Wang, M. Huang, Z. Luo, J. Che, Vacuum 172, 109063 (2020) |
[10] | H. Yang, S. Ji, Z. Fan, Mater. Des. 85, 823 (2015) |
[11] | Y. Jin, H. Fang, R. Chen, J. Wang, S. Sun, S. Wang, B. Shao, J. Guo, J. Mater. Sci. Technol. 159, 151 (2023) |
[12] | C.N. Ekaputra, J.U. Rakhmonov, D. Weiss, J.E. Mogonye, D.C. Dunand, Acta Mater. 240, 118354 (2022) |
[13] | E.A. Marquis, D.N. Seidman, Acta Mater. 49, 1909 (2001) |
[14] | C.B. Fuller, D.N. Seidman, D.C. Dunand, Acta Mater. 51, 4803 (2003) |
[15] | S.P. Wen, K.Y. Gao, Y. Li, H. Huang, Z.R. Nie, Scr. Mater. 65, 592 (2011) |
[16] | A. De Luca, D.C. Dunand, D.N. Seidman, Acta Mater. 144, 80 (2018) |
[17] | H.C. Fang, P.J. Shang, L.P. Huang, K.H. Chen, G. Liu, X. Xiong, Mater. Lett. 75, 192 (2012) |
[18] | S.M. Amer, M.V. Glavatskikh, R.Y. Barkov, M.G. Khomutov, A.V. Pozdniakov, Mater. Lett. 320, 132320 (2022) |
[19] | H. Yi, D. Zhang, Mater. Lett. 57, 2523 (2003) |
[20] | B. Zhao, S. Xing, A. Shan, G. Yan, X. Jiang, Intermetallics 153, 107783 (2023) |
[21] | Q. Luo, X. Li, Q. Li, L. Yuan, L. Peng, F. Pan, W. Ding, J. Mater. Sci. Technol. 135, 97 (2023) |
[22] | Y. Cao, X. Chen, Z. Wang, K. Chen, S. Pan, Y. Zhu, Y. Wang, J. Alloy. Compd. 902, 163829 (2022) |
[23] | J. Dong, J. Jiang, Y. Wang, M. Huang, Y. Liu, Y. Zhang, Mater. Lett. 352, 135129 (2023) |
[24] | P. Tan, Y. Yang, Y. Sui, Q. Wang, Y. Jiang, J. Alloy. Compd. 809, 151856 (2019) |
[25] | D.C. Zhang, Dissertation, Huazhong University of Science & Technology, 2019. |
[26] | B. Dang, C.C. Liu, F. Liu, T. Nonferr. Metal. Soc. 26, 634 (2016) |
[27] | H.B. Aaron, G.R. Kotler, Metal. Trans. 2, 393 (1971) |
[28] | D. Himmler, P. Randelzhofer, C. Körner, J. Alloy. Compd. 904, 163984 (2022) |
[29] | L. Ceschini, I. Boromei, A. Morri, S. Seifeddine, I.L. Svensson, J. Mater. Process. Technol. 209, 5669 (2009) |
[30] | L. Ceschini, A. Morri, A. Morri, S. Toschi, S. Johansson, S. Seifeddine, Mater. Des. 83, 626 (2015) |
[31] | A.M.A. Mohamed, A.M. Samuel, F.H. Samuel, H.W. Doty, Mater. Des. 30, 3943 (2009) |
[32] | D. Li, C. Cui, X. Wang, Q. Wang, C. Chen, S. Liu, Mater. Des. 90, 820 (2016) |
[33] | X. Zhang, L. Li, Z. Wang, H. Peng, J. Gao, Z. Peng, J. Mater. Sci. Technol. 137, 205 (2023) |
[34] | K. Li, A. Béché, M. Song, G. Sha, X. Lu, K. Zhang, Y. Du, S.P. Ringer, D. Schryvers, Scr. Mater. 75, 86 (2014) |
[35] | W.C. Yang, M.P. Wang, R.R. Zhang, Q. Zhang, Scr. Mater. 62, 705 (2010) |
[36] | S. Bahl, J.U. Rakhmonov, C. Kenel, D.C. Dunand, A. Shyam, Mater. Sci. Eng. A 840, 142946 (2022) |
[37] | J. Chen, X. Cheng, L. Ding, Y. Weng, J. Yin, H. Yao, H. Yu, Mater. Charact. 190, 112004 (2022) |
[38] | B. Guo, M. Song, X. Zhang, Y. Liu, X. Cen, B. Chen, W. Li, Compos. Part B-Eng. 211, 108646 (2021) |
[39] | X.L. Cui, Y.Y. Wu, T. Gao, X.F. Liu, J. Alloy. Compd. 615, 906 (2014) |
[40] | L. Zuo, B. Ye, J. Feng, X. Xu, X. Kong, H. Jiang, J. Alloy. Compd. 791, 1015 (2019) |
[41] | E. Rincon, H.F. Lopez, M.M. Cisneros, H. Mancha, Mater. Sci. Eng. A 519, 128 (2009) |
[42] | B.T. Lee, H.A. Kim, J.L. Williamson, J.F. Ranville, Chemosphere 143, 115 (2016) |
[43] | W.X. Zhang, Y.Z. Chen, L. Zhou, T.T. Zhao, W.Y. Wang, F. Liu, X.X. Huang, Mater. Sci. Eng. A 869, 144792 (2023) |
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