J. Mater. Sci. Technol. ›› 2019, Vol. 35 ›› Issue (6): 1017-1026.DOI: 10.1016/j.jmst.2018.11.024
Previous Articles Next Articles
Lingyang Yuana, Liming Pengab*(), Jingyu Hana, Baoliang Liub, Yujuan Wuab, Juan Chenab
Received:
2018-09-03
Revised:
2018-10-21
Accepted:
2018-11-08
Online:
2019-06-20
Published:
2019-06-19
Contact:
Peng Liming
About author:
1The authors contributed equally to this work.
Lingyang Yuan, Liming Peng, Jingyu Han, Baoliang Liu, Yujuan Wu, Juan Chen. Effect of Cu addition on microstructures and tensile properties of high-pressure die-casting Al-5.5Mg-0.7Mn alloy[J]. J. Mater. Sci. Technol., 2019, 35(6): 1017-1026.
Alloy | Mg | Mn | Fe | Ti | Cu | Si | Other | Al |
---|---|---|---|---|---|---|---|---|
Al-5.5Mg-0.7 Mn | 5.42 | 0.68 | 0.12 | 0.15 | 0.03 | <0.15 | <0.3 | Bal. |
Al-5.5Mg-0.7 Mn-0.5Cu | 5.38 | 0.67 | 0.13 | 0.13 | 0.46 | <0.15 | <0.3 | Bal. |
Al-5.5Mg-0.7 Mn-0.8Cu | 5.40 | 0.65 | 0.11 | 0.14 | 0.78 | <0.15 | <0.3 | Bal. |
Al-5.5Mg-0.7 Mn-1.5Cu | 5.27 | 0.71 | 0.13 | 0.15 | 1.43 | <0.15 | <0.3 | Bal. |
Table 1 Actual chemical compositions of Al-5.5Mg-0.7 Mn-xCu alloys (wt%).
Alloy | Mg | Mn | Fe | Ti | Cu | Si | Other | Al |
---|---|---|---|---|---|---|---|---|
Al-5.5Mg-0.7 Mn | 5.42 | 0.68 | 0.12 | 0.15 | 0.03 | <0.15 | <0.3 | Bal. |
Al-5.5Mg-0.7 Mn-0.5Cu | 5.38 | 0.67 | 0.13 | 0.13 | 0.46 | <0.15 | <0.3 | Bal. |
Al-5.5Mg-0.7 Mn-0.8Cu | 5.40 | 0.65 | 0.11 | 0.14 | 0.78 | <0.15 | <0.3 | Bal. |
Al-5.5Mg-0.7 Mn-1.5Cu | 5.27 | 0.71 | 0.13 | 0.15 | 1.43 | <0.15 | <0.3 | Bal. |
Alloy | Identified Phase | Al | Mg | Mn | Fe | Si | Cu |
---|---|---|---|---|---|---|---|
0Cu | Matrix | 94.65 | 4.7 | 0.65 | --- | --- | 0 |
(Fe, Mn)rich | 63.5 | 5.40 | 9.3 | 15.3 | 6.5 | --- | |
(Al, Mg)rich | 84.43 | 10.2 | 5.37 | --- | --- | --- | |
0.5Cu | Matrix | 94.48 | 4.64 | 0.63 | --- | --- | 0.25 |
(Fe,Mn)rich | 59.38 | 7.2 | 11.32 | 14.3 | 7.8 | --- | |
(Al,Mg)rich | 80.42 | 13.38 | 6.28 | --- | --- | --- | |
(Al,Cu,Mg)rich | 62.63 | 20.76 | --- | --- | --- | 16.61 | |
0.8Cu | Matrix | 94.46 | 4.6 | 0.61 | --- | --- | 0.33 |
(Fe,Mn)rich | 57.1 | 6.9 | 10.15 | 18.32 | 7.62 | --- | |
(Al,Mg)rich | 81.93 | 13.0 | 5.07 | --- | --- | --- | |
(Al,Cu,Mg)rich | 68.23 | 17.00 | --- | --- | --- | 14.77 | |
1.5Cu | Matrix | 94.53 | 4.51 | 0.61 | --- | --- | 0.35 |
(Fe,Mn)rich | 61.04 | 6.1 | 9.2 | 16.36 | 7.3 | --- | |
(Al,Mg)rich | 81.64 | 12.06 | 6.3 | --- | --- | --- | |
(Al,Cu,Mg)rich | 63.46 | 19.98 | --- | --- | --- | 16.56 |
Table 2 SEM-EDX analysis of average chemical compositions of each phase in as-cast Al-5.5Mg-0.7 Mn-xCu alloys (wt%).
Alloy | Identified Phase | Al | Mg | Mn | Fe | Si | Cu |
---|---|---|---|---|---|---|---|
0Cu | Matrix | 94.65 | 4.7 | 0.65 | --- | --- | 0 |
(Fe, Mn)rich | 63.5 | 5.40 | 9.3 | 15.3 | 6.5 | --- | |
(Al, Mg)rich | 84.43 | 10.2 | 5.37 | --- | --- | --- | |
0.5Cu | Matrix | 94.48 | 4.64 | 0.63 | --- | --- | 0.25 |
(Fe,Mn)rich | 59.38 | 7.2 | 11.32 | 14.3 | 7.8 | --- | |
(Al,Mg)rich | 80.42 | 13.38 | 6.28 | --- | --- | --- | |
(Al,Cu,Mg)rich | 62.63 | 20.76 | --- | --- | --- | 16.61 | |
0.8Cu | Matrix | 94.46 | 4.6 | 0.61 | --- | --- | 0.33 |
(Fe,Mn)rich | 57.1 | 6.9 | 10.15 | 18.32 | 7.62 | --- | |
(Al,Mg)rich | 81.93 | 13.0 | 5.07 | --- | --- | --- | |
(Al,Cu,Mg)rich | 68.23 | 17.00 | --- | --- | --- | 14.77 | |
1.5Cu | Matrix | 94.53 | 4.51 | 0.61 | --- | --- | 0.35 |
(Fe,Mn)rich | 61.04 | 6.1 | 9.2 | 16.36 | 7.3 | --- | |
(Al,Mg)rich | 81.64 | 12.06 | 6.3 | --- | --- | --- | |
(Al,Cu,Mg)rich | 63.46 | 19.98 | --- | --- | --- | 16.56 |
Fig. 5. Area fraction (a) and relationship between Al2CuMg size and proportion of as-cast Al-5.5Mg-0.7 Mn-xCu alloys with Cu contents of 0.5 wt% (b), 0.8 wt% (c) and 1.5 wt% (d).
Fig. 7. Backscattered SEM micrographs of Al-5.5Mg-0.7 Mn-0.8Cu alloys aged at 175 °C for 8 h (a), area fraction of Al12Mg17 phase (b), Fe-containing phase (c) and Al2CuMg phase (d).
Fig. 10. Effect of ageing time on YS, UTS and elongation of Al-5.5Mg-0.7 Mn-xCu alloys at 175 °C: (a) YS; (b) elongation; (c) UTS; (d) variation of tensile properties of Al-5.5Mg-0.7 Mn-xCu alloys at 175 °C for 8 h.
Fig. 12. SEM images of longitudinal sections nearby room-temperature tensile fracture of as-cast Al-5.5Mg-0.7 Mn-xCu alloys with Cu contents of (a) 0, (b) 0.5 wt%, (c) 0.8 wt%, (d) 1.5 wt% and high magnification observation of images in (e) Fig. 12(a) and (f) (d).
|
[1] | B.N. Du, Z.Y. Hu, L.Y. Sheng, D.K. Xu, Y.X. Qiao, B.J. Wang, J. Wang, Y.F. Zheng, T.F. Xi. Microstructural characteristics and mechanical properties of the hot extruded Mg-Zn-Y-Nd alloys [J]. J. Mater. Sci. Technol., 2021, 60(0): 44-55. |
[2] | X.Y. Jiao, C.F. Liu, Z.P. Guo, G.D. Tong, S.L. Ma, Y. Bi, Y.F. Zhang, S.M. Xiong. The characterization of Fe-rich phases in a high-pressure die cast hypoeutectic aluminum-silicon alloy [J]. J. Mater. Sci. Technol., 2020, 51(0): 54-62. |
[3] | Sharafadeen Kunle Kolawole, Wang Hai, Shuyuan Zhang, Ziqing Sun, Muhammad Ali Siddiqui, Ihsan Ullah, Wei Song, Frank Witte, Ke Yang. Preliminary study of microstructure, mechanical properties and corrosion resistance of antibacterial Ti-15Zr-xCu alloy for dental application [J]. J. Mater. Sci. Technol., 2020, 50(0): 31-43. |
[4] | Xiru Hua, Qiang Yang, Dongdong Zhang, Fanzhi Meng, Chong Chen, Zihao You, Jinghuai Zhang, Shuhui Lv, Jian Meng. Microstructures and mechanical properties of a newly developed high-pressure die casting Mg-Zn-RE alloy [J]. J. Mater. Sci. Technol., 2020, 53(0): 174-184. |
[5] | Qiuju Zheng, Lili Zhang, Hongxiang Jiang, Jiuzhou Zhao, Jie He. Effect mechanisms of micro-alloying element La on microstructure and mechanical properties of hypoeutectic Al-Si alloys [J]. J. Mater. Sci. Technol., 2020, 47(0): 142-151. |
[6] | S.G. Wang, M. Sun, S.Y. Liu, X. Liu, Y.H. Xu, C.B. Gong, K. Long, Z.D. Zhang. Synchronous optimization of strengths, ductility and corrosion resistances of bulk nanocrystalline 304 stainless steel [J]. J. Mater. Sci. Technol., 2020, 37(0): 161-172. |
[7] | Huiting Zheng, Ruirun Chen, Gang Qin, Xinzhong Li, Yanqing Su, Hongsheng Ding, Jingjie Guo, Hengzhi Fu. Microstructure evolution, Cu segregation and tensile properties of CoCrFeNiCu high entropy alloy during directional solidification [J]. J. Mater. Sci. Technol., 2020, 38(0): 19-27. |
[8] | Chao Cai, Xu Wu, Wan Liu, Wei Zhu, Hui Chen, Jasper Chua Dong Qiu, Chen-Nan Sun, Jie Liu, Qingsong Wei, Yusheng Shi. Selective laser melting of near-α titanium alloy Ti-6Al-2Zr-1Mo-1V: Parameter optimization, heat treatment and mechanical performance [J]. J. Mater. Sci. Technol., 2020, 57(0): 51-64. |
[9] | Ruifeng Dong, Jinshan Li, Hongchao Kou, Jiangkun Fan, Yuhong Zhao, Hua Hou, Li Wu. ω-Assisted refinement of α phase and its effect on the tensile properties of a near β titanium alloy [J]. J. Mater. Sci. Technol., 2020, 44(0): 24-30. |
[10] | Ruoxian Wang, Gaowu Qin, Erlin Zhang. Effect of Cu on Martensite Transformation of CoCrMo alloy for biomedical application [J]. J. Mater. Sci. Technol., 2020, 52(0): 127-135. |
[11] | B. Zhou, D. Wu, R.S. Chen, En-hou Han. Enhanced tensile properties in a Mg-6Gd-3Y-0.5Zr alloy due to hot isostatic pressing (HIP) [J]. J. Mater. Sci. Technol., 2019, 35(9): 1860-1868. |
[12] | Zihao Yuan, Zhipeng Guo, S.M. Xiong. Skin layer of A380 aluminium alloy die castings and its blistering during solution treatment [J]. J. Mater. Sci. Technol., 2019, 35(9): 1906-1916. |
[13] | X.Y. Jiao, J. Wang, C.F. Liu, Z.P. Guo, G.D. Tong, S.L. Ma, Y. Bi, Y.F. Zhang, S.M. Xiong. Characterization of high-pressure die-cast hypereutectic Al-Si alloys based on microstructural distribution and fracture morphology [J]. J. Mater. Sci. Technol., 2019, 35(6): 1099-1107. |
[14] | Wenyuan Li, Zhiyong Chen, Jianrong Liu, Shaoxiang Zhu, Guoxin Sui, Qingjiang Wang. Rolling texture and its effect on tensile property of a near-α titanium alloy Ti60 plate [J]. J. Mater. Sci. Technol., 2019, 35(5): 790-798. |
[15] | Yaoli Zhang, Jinguo Li, Xinguang Wang, Yiping Lu, Yizhou Zhou, Xiaofeng Sun. The interaction and migration of deformation twin in an eutectic high-entropy alloy AlCoCrFeNi2.1 [J]. J. Mater. Sci. Technol., 2019, 35(5): 902-906. |
Viewed | ||||||
Full text |
|
|||||
Abstract |
|
|||||