Metals Advances ›› 2026, Vol. 46: 75-85.DOI: 10.1016/j.metadv.2026.04.003
• Research Article • Previous Articles Next Articles
Cui-Ju Wanga, Ao-Hua Sub, Kun-Kun Dengb,*(
), Xue-Jian Lic,*(
), Zi-Long Zhengb, Kai-Bo Nieb
Received:2025-11-07
Revised:2026-03-15
Accepted:2026-03-18
Online:2026-08-10
Published:2026-05-04
Contact:
*E-mail addresses: dengkunkun@tyut.edu.cn (K.-K. Deng),lixuejian@hit.edu.cn (X.-J. Li).
Cui-Ju Wang, Ao-Hua Su, Kun-Kun Deng, Xue-Jian Li, Zi-Long Zheng, Kai-Bo Nie. Microstructure and mechanical properties of SiCp/AZ91 composites prepared by freeze casting and hot extrusion[J]. Metals Advances, 2026, 46: 75-85.
Add to citation manager EndNote|Ris|BibTeX
| Al | Zn | Mn | Fe | Si | Cu | Ni | Mg |
|---|---|---|---|---|---|---|---|
| 8.500 | 0.800 | 0.300 | 0.004 | 0.050 | 0.025 | 0.010 | Bal. |
Table 1. Main chemical composition of AZ91 alloy.
| Al | Zn | Mn | Fe | Si | Cu | Ni | Mg |
|---|---|---|---|---|---|---|---|
| 8.500 | 0.800 | 0.300 | 0.004 | 0.050 | 0.025 | 0.010 | Bal. |
Fig. 2. (a-c) SEM microstructures and (d-f) ceramic layer thickness statistics of freeze casting SiCp/AZ91 composites: (a, d) 20 vol.% SiCp, (b, e) 25 vol.% SiCp, (c, f) 30 vol.% SiCp.
Fig. 3. (a-c) SEM microstructure and (d-f) EDS microstructure of the as-extruded SiCp/AZ91 composites by freeze casting: with the SiCp of (a, d) 20 vol.%, (b, e) 25 vol.%, (c, f) 30 vol.%.
Fig. 6. TEM images of SiCp/AZ91 composites by freeze casting: (a) microstructure in the particle-dense region; (b) DRXed grains and dislocations around SiCp; (c) DRXed grains at the sharp corners of SiCp.
Fig. 7. HRTEM images of as-extruded SiCp/AZ91 composite: (a) HREM image at the interface of SiCp and Mg; (b) and (c) IFFT images of Mg and SiCp, respectively.
| Composite | Temperature (°C) | ROM (×10−6/℃) | Turne (×10−6/℃) | Kerner (×10−6/℃) | Actual value (×10−6/°C) |
|---|---|---|---|---|---|
| 20 vol.% SiCp/AZ91 | 100 | 20.728 | 13.523 | 20.822 | 16.601 |
| 200 | 21.207 | 13.875 | 21.301 | 18.016 | |
| 300 | 22.381 | 14.233 | 21.976 | 19.574 | |
| 25 vol.% SiCp/AZ91 | 100 | 19.639 | 12.277 | 19.749 | 14.353 |
| 200 | 20.086 | 12.586 | 20.196 | 15.671 | |
| 300 | 20.716 | 12.892 | 20.826 | 17.199 | |
| 30 vol.% SiCp/AZ91 | 100 | 18.650 | 11.233 | 18.738 | 13.501 |
| 200 | 19.229 | 11.498 | 19.317 | 14.596 | |
| 300 | 19.804 | 11.759 | 19.892 | 16.094 |
Table 2. CTE of SiCp/AZ91 composites.
| Composite | Temperature (°C) | ROM (×10−6/℃) | Turne (×10−6/℃) | Kerner (×10−6/℃) | Actual value (×10−6/°C) |
|---|---|---|---|---|---|
| 20 vol.% SiCp/AZ91 | 100 | 20.728 | 13.523 | 20.822 | 16.601 |
| 200 | 21.207 | 13.875 | 21.301 | 18.016 | |
| 300 | 22.381 | 14.233 | 21.976 | 19.574 | |
| 25 vol.% SiCp/AZ91 | 100 | 19.639 | 12.277 | 19.749 | 14.353 |
| 200 | 20.086 | 12.586 | 20.196 | 15.671 | |
| 300 | 20.716 | 12.892 | 20.826 | 17.199 | |
| 30 vol.% SiCp/AZ91 | 100 | 18.650 | 11.233 | 18.738 | 13.501 |
| 200 | 19.229 | 11.498 | 19.317 | 14.596 | |
| 300 | 19.804 | 11.759 | 19.892 | 16.094 |
Fig. 9. Compressive stress-strain curves and properties of SiCp/AZ91 composites before and after extrusion: (a, b) before extrusion, (c, d) after extrusion.
Fig. 10. As-extruded tensile properties of freeze-cast SiCp/AZ91 composites: (a) tensile stress-strain curve, (b) elastic modulus, (c) comparison of mechanical properties between this study and other SiCp reinforced Mg matrix composites [7], [22], [23], [24], [25], [26], [27].
Fig. 11. Tensile fracture morphology of SiCp/AZ91 composites at room temperature after extrusion: with the volume fraction of SiCp (a, d, g) 20 vol.%, (b, e, h) 25 vol.%, (c, f, i) 30 vol.%.
Fig. 12. Flexural properties of freeze casting SiCp/AZ91 composites before and after deformation: (a) flexural stress-strain curve before deformation, (b) flexural stress-strain curve after deformation.
Fig. 13. Fracture toughness of freeze-cast SiCp/AZ91 composites before and after deformation was tested: (a) unilateral notch stress-displacement curve before deformation, (b) unilateral notch stress-displacement curve after deformation.
| Composites | Particle content (vol.%) | Flexural strength (MPa) | KIc (MPa m1/2) | KJc (MPa m1/2) | W (J m−2) |
|---|---|---|---|---|---|
| As-cast | 20% | 464.1 | 12.737 | 24.95 | 1590 |
| 25% | 526.8 | 11.738 | 20.94 | 786 | |
| 30% | 460.4 | 9.864 | 17.72 | 513 | |
| As-extruded | 20% | 709.8 | 16.328 | ||
| 25% | 750.4 | 14.636 | |||
| 30% | 735.6 | 10.66 |
Table 3. Flexural properties of SiCp/AZ91 composites before and after extrusion with different particle contents.
| Composites | Particle content (vol.%) | Flexural strength (MPa) | KIc (MPa m1/2) | KJc (MPa m1/2) | W (J m−2) |
|---|---|---|---|---|---|
| As-cast | 20% | 464.1 | 12.737 | 24.95 | 1590 |
| 25% | 526.8 | 11.738 | 20.94 | 786 | |
| 30% | 460.4 | 9.864 | 17.72 | 513 | |
| As-extruded | 20% | 709.8 | 16.328 | ||
| 25% | 750.4 | 14.636 | |||
| 30% | 735.6 | 10.66 |
Fig. 14. Crack propagation path, local microcracks and fracture morphology with the volume fraction of SiCp (a-d) 20 vol.%, (e-h) 25 vol.% and (i-l) 30 vol.% composites.
| [1] |
Y. Liu, K.K. Deng, X.C. Zhang, C.J. Wang, K.B. Nie, W.M. Gan, Q.X. Shi, Mater. Sci. Eng. A 856 (2022) 143997.
DOI URL |
| [2] | K.B. Nie, X.J. Wang, K.K. Deng, X.S. Hu, K. Wu, J. Magnes. Alloy. 9 (2021) 57-77. |
| [3] | B.H. Cai, J.K. Fan, R.F. Shi, P.F. Gao, D.Q. Yang, L.Y. Wang, Y. Peng, K.H. Wang, J. Magnes. Alloy. 13 (2025) 5267-5312. |
| [4] | H.W. Xiong, L.D. Gu, J.Y. Wang, L.P. Zhou, T. Ying, S.W. Wang, H.T. Zhou, J.B. Li, Y. Gao, X.Q. Zeng, J. Magnes. Alloy. 12 (2024) 2595-2623. |
| [5] | A. Jolokhani, A. Razaghian, A. Moharami, M. Emamy, J. Mater. Res. Technol. 27 (2023) 7823-7838. |
| [6] |
F.F. Cao, K.K. Deng, C.J. Wang, K.B. Nie, Q.X. Shi, Mater. Sci. Eng. A 908 (2024) 146723.
DOI URL |
| [7] | W. Li, K.B. Nie, K.K. Deng, Z.L. Liu, Q.X. Shi, J. Mater. Res. Technol. 26 (2023) 4282-4295. |
| [8] |
R.F. Guo, H.C. Lv, P. Shen, Z.J. Hu, Q.C. Jiang, Ceram. Int. 43 (2017) 3292-3297.
DOI URL |
| [9] | Z.X. Bai, K.K. Deng, Z.Q. Du, K.B. Nie, C. Xu, Q.X. Shi, Acta Metall. Sin. -Engl. Lett. 37 (2024) 1819-1829. |
| [10] |
Z.L. Zheng, K.K. Deng, K.B. Nie, C.J. Wang, C. Xu, Q.X. Shi, Ceram. Int. 50 (2024) 42015-42025.
DOI URL |
| [11] |
Z.Q. Du, K.K. Deng, K.B. Nie, C.J. Wang, C. Xu, Q.X. Shi, Mater. Sci. Eng. A 891 (2024) 145977.
DOI URL |
| [12] |
Y. Wang, P. Shen, R.F. Guo, Z.J. Hu, Q.C. Jiang, Ceram. Int. 43 (2017) 3831-3838.
DOI URL |
| [13] |
X.J. Wang, X.S. Hu, K. Wu, L.Y. Wang, Y.D. Huang, Mater. Sci. Eng. A 636 (2015) 138-147.
DOI URL |
| [14] |
D.J. Lloyd, Acta Metall. Mater. 39 (1991) 59-71.
DOI URL |
| [15] | Z.Q. Du, K.K. Deng, K.B. Nie, C.J. Wang, C. Xu, Q.X. Shi, Materials 16 (2023) 6168. |
| [16] |
U. Kolitsch, H.J. Seifert, T. Ludwig, F. Aldinger, J. Mater. Res. 14 (1999) 447-455.
DOI URL |
| [17] |
K.K. Deng, C.J. Wang, X.J. Wang, K. Wu, M.Y. Zheng, Mater. Des. 38 (2012) 110-114.
DOI URL |
| [18] |
X.F. Sun, C.J. Wang, K.K. Deng, K.B. Nie, X.C. Zhang, X.Y. Xiao, J. Alloy. Compd. 732 (2018) 328-335.
DOI URL |
| [19] |
M.X. Zhang, P.M. Kelly, M.A. Easton, J.A. Taylor, Acta Mater. 53 (2005) 1427-1438.
DOI URL |
| [20] |
A. Hayoune, D. Hamana, Mater. Sci. Eng. A 527 (2010) 7261-7264.
DOI URL |
| [21] |
V.V. Ganesh, N. Chawla, Mater. Sci. Eng. A 391 (2005) 342-353.
DOI URL |
| [22] |
K.K. Deng, K. Wu, Y.W. Wu, K.B. Nie, M.Y. Zheng, J. Alloy. Compd. 504 (2010) 542-547.
DOI URL |
| [23] |
K.K. Deng, J.Y. Shi, C.J. Wang, X.J. Wang, Y.W. Wu, K.B. Nie, K. Wu, Compos Part A-Appl. Sci. Manuf. 43 (2012) 1280-1284.
DOI URL |
| [24] |
A. Martín, J. Llorca, Mater. Sci. Eng. A 201 (1995) 77-87.
DOI URL |
| [25] | S. Aravindan, P.V. Rao, K. Ponappa, J. Magnes. Alloy. 3 (2015) 52-62. |
| [26] |
M.J. Shen, X.J. Wang, C.D. Li, M.F. Zhang, X.S. Hu, M.Y. Zheng, K. Wu, Mater. Des. 54 (2014) 436-442.
DOI URL |
| [27] |
C.S. Goh, J. Wei, L.C. Lee, M. Gupta, Acta Mater. 55 (2007) 5115-5121.
DOI URL |
| [28] | R.M. Aikin, L. Christodoulou, Scr. Metall. Mater. 25 (1991) 9-14. |
| [29] | C.J. Wang, J.K. Zhang, K.B. Nie, C. Xu, K.K. Deng, J. Magnes. Alloy. 13 (2025) 2752-2768. |
| [30] |
Z.L. Zheng, K.K. Deng, K.B. Nie, C.J. Wang, C. Xu, Q.X. Shi, J. Alloy. Compd. 1022 (2025) 179891.
DOI URL |
| [1] | Keqiang Su, Kaiyang Li, Kai Zhao, Tongzheng Xin, Enyu Guo, Zhirou Zhang, Huanyue Zhang, Huijun Kang, Zongning Chen, Tongmin Wang. Synergistic control of texture and strength-ductility balance in extruded dual-phase Mg-Li alloys via Al-mediated precipitation and dynamic recrystallization [J]. Metals Advances, 2026, 46(8): 62-74. |
| [2] | Jie Song, Chang Zhu, Hucheng Pan, Sen Wang, Sheng Wang, Zhen Pan, Zhihao Zeng, Gaowu Qin. Microstructure and mechanical property of large-diameter and low-alloyed Mg-Mn-Ca-Ce-Al alloy [J]. Metals Advances, 2026, 46(8): 102-109. |
| [3] | Xuerui Xia, Jiayi Chen, Lei Zhang, Shiyu Zhong, Jun Song, Congrui Yang, Jianbao Gao, Gan Li, Shuo Wang, Zhi Zhang, Lei Yang, Fanrong Ai, Bo Song, Yusheng Shi. Bambusa ventricosa-inspired strut topology for mechanical-transport-thermal performance in laser powder bed fused microlattice metamaterials [J]. Metals Advances, 2026, 45(7): 25-41. |
| [4] | Yuhua Li, Qian Zhang, Yuxin He, Hongming Zhang, Haojie Wang, Yujing Liu, Shijie Liang, Pei Wang. Strengthening porous titanium fabricated by powder metallurgy via multi-step pressing technique [J]. Metals Advances, 2026, 45(7): 67-76. |
| [5] | Dezheng Sun, Shuaixian Yu, Siran Wang, Dongdong Zhao, Zhihang Xu, Lihua Dang, Lizhuang Yang, Hao Wang, Chunsheng Shi, Chunnian He, Naiqin Zhao, Junwei Sha. In-situ synergistic strengthening strategy of Ni eutectic and Ti peritectic phases to high-performance crack-free 6061 Al alloy through laser powder-bed fusion [J]. Metals Advances, 2026, 43(5): 12-20. |
| [6] | Zhao-Jing Han, Pei-Kai Gu, Qing-Lian Huang, Ze-Yu Chen, Bo-Yang Ren, Yu-Hui Li, Can Cui, Wei-Wei Xu, Xing-Jun Liu. Interpretable machine learning for intrinsic mechanical properties of γ′ phase in cobalt-based superalloys [J]. Metals Advances, 2026, 43(5): 31-43. |
| [7] | Huan Liu, Yinyuan Chen, Lifeng Ye, Xiaoyu Qin, Chao Sun, Zhangwei Yang, Yuna Wu, Jia Ju, Wenkai Wang. Achieving high strength and excellent ductility in a Zn-3Cu-1Mg alloy through minor Nd addition and multi-pass ECAP [J]. Metals Advances, 2026, 42(4): 23-33. |
| [8] | Shusheng Guo, Changri Xiong, Wen Peng, Yudong Huang, Heng Rao, Yang Liu, Yiguo Yan, Sheng Cao, Xiaojian Wang. Mechanical property, in vitro biodegradable behavior and biocompatibility of additive manufactured biomedical Zn-0.8Cu alloy [J]. Metals Advances, 2026, 41(3): 94-108. |
| [9] | X.L. Wang, J.Y. Li, Q.S. Mei. Recent progress in Zn matrix composites for biomedical applications [J]. Metals Advances, 2026, 39(1): 26-37. |
| [10] | Yuanyuan Feng, Jianchao Pang, Xiaoyuan Teng, Chenglu Zou, Jingjing Liang, Yuping Zhu, Shouxin Li, Jinguo Li, Zhefeng Zhang. Quasi-in-situ EBSD Study on the Microstructure and Tensile Properties of Selective Laser Melted Inconel 718 Alloy Processed by Different Heat Treatments [J]. Acta Metallurgica Sinica (English Letters), 2025, 38(9): 1499-1512. |
| [11] | F. S. Li, L. H. Wu, Y. Kan, H. B. Zhao, D. R. Ni, P. Xue, B. L. Xiao, Z. Y. Ma. Microstructure Evolution and Fracture Mechanisms in Electron Beam Welded Joint of Ti-6Al-4V ELI Alloy Ultra-thick Plates [J]. Acta Metallurgica Sinica (English Letters), 2025, 38(8): 1317-1330. |
| [12] | Haoyu Cheng, Chenyang Hou, Jianlei Zhang, Xiaodong Mao, Yuanxiang Zhang, Yanyun Zhao, Chulun Shen, Changjiang Song. An Innovative Large-Scale Preparation Method for ODS Steel: Zone Melting with Built-In Precursor Powder [J]. Acta Metallurgica Sinica (English Letters), 2025, 38(8): 1397-1409. |
| [13] | Haoran Pang, Liwei Lu, Gongji Yang, Xiaojun Wang, Wen Wang, Hua Zhang, Yujuan Wu. Amelioration of Mechanical Properties of Rolled Mg-4.5Al-2.5Zn Alloy by Cryogenic Cycling Treatment [J]. Acta Metallurgica Sinica (English Letters), 2025, 38(8): 1436-1452. |
| [14] | Qi Zhou, Yufeng Xia, Yu Duan, Baihao Zhang, Yuqiu Ye, Peitao Guo, Lu Li. Microstructure and Mechanical Properties of Yb-Containing AZ80 Cast Alloys [J]. Acta Metallurgica Sinica (English Letters), 2025, 38(7): 1095-1108. |
| [15] | Mengjun Chen, Tingping Hou, Shi Cheng, Feng Hu, Tao Yu, Xianming Pan, Yuanyuan Li, Kaiming Wu. A Comprehensive Exploration of the Relationship between Microstructure Optimization and Strength Enhancement in Low-Density 5Al-5Mn Steel [J]. Acta Metallurgica Sinica (English Letters), 2025, 38(7): 1219-1236. |
| Viewed | ||||||
|
Full text |
|
|||||
|
Abstract |
|
|||||
WeChat
