Acta Metallurgica Sinica (English Letters) ›› 2024, Vol. 37 ›› Issue (12): 2106-2120.DOI: 10.1007/s40195-024-01767-0
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Hui Feng1, Shu Yang1, Shengyuan Yang1, Li Zhou1, Junfan Zhang2, Zongyi Ma2()
Received:
2024-04-17
Revised:
2024-06-11
Accepted:
2024-06-20
Online:
2024-12-10
Published:
2024-09-15
Contact:
Zongyi Ma, About author:
Hui Feng and Shu Yang have contributed equally to this work.
Hui Feng, Shu Yang, Shengyuan Yang, Li Zhou, Junfan Zhang, Zongyi Ma. Strengthening Mechanisms and Mechanical Characteristics of Heterogeneous CNT/Al Composites by Finite Element Simulation[J]. Acta Metallurgica Sinica (English Letters), 2024, 37(12): 2106-2120.
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Fig. 1 Microstructure models: a detailed microstructure model for numerical analysis, b locally enlarged model, c microstructure observed in experiment
Parameter | Value | |
---|---|---|
Basic parameters for 2009Al matrix [28] | Empirical coefficient, α | 0.3 |
Taylor factor, m | 3.06 | |
Shear modulus, G | 28,195 MPa | |
Magnitude of the Burgers vector, b | 0.286 nm | |
Nye factor, | 1.9 | |
Material parameters for CG | Material constant, A | 235 MPa |
Material constant, B | 290 MPa | |
Material constant, n | 0.45 | |
Failure strain, εf | 1.4 | |
Material parameters for UFG | Material constant, A | 500 MPa |
Material constant, B | 300 MPa | |
Material constant, n | 0.38 | |
Failure strain, εf | 1.2 | |
Material parameters for grain boundary | Yield stress, σ0 | 900 MPa |
Failure strain, εf | 0.3 |
Table 1 Parameters for 2009Al matrix
Parameter | Value | |
---|---|---|
Basic parameters for 2009Al matrix [28] | Empirical coefficient, α | 0.3 |
Taylor factor, m | 3.06 | |
Shear modulus, G | 28,195 MPa | |
Magnitude of the Burgers vector, b | 0.286 nm | |
Nye factor, | 1.9 | |
Material parameters for CG | Material constant, A | 235 MPa |
Material constant, B | 290 MPa | |
Material constant, n | 0.45 | |
Failure strain, εf | 1.4 | |
Material parameters for UFG | Material constant, A | 500 MPa |
Material constant, B | 300 MPa | |
Material constant, n | 0.38 | |
Failure strain, εf | 1.2 | |
Material parameters for grain boundary | Yield stress, σ0 | 900 MPa |
Failure strain, εf | 0.3 |
Specimen | YS (MPa) | El (%) |
---|---|---|
Uniform | 637 | 4.6 |
Bimodal-10% CGs | 576 | 4.8 |
Bimodal-15% CGs | 575 | 5.1 |
Bimodal-20% CGs | 560 | 5.8 |
Bimodal-25% CGs | 510 | 4.8 |
Bimodal-30% CGs | 501 | 5.0 |
Table 2 Mechanical properties for models with various contents of CGs
Specimen | YS (MPa) | El (%) |
---|---|---|
Uniform | 637 | 4.6 |
Bimodal-10% CGs | 576 | 4.8 |
Bimodal-15% CGs | 575 | 5.1 |
Bimodal-20% CGs | 560 | 5.8 |
Bimodal-25% CGs | 510 | 4.8 |
Bimodal-30% CGs | 501 | 5.0 |
Fig. 9 Distribution of the effective stress for models with various contents of CGs under the macroscopic applied strain of 2.0%: a 10%, b 15%, c 20%, d 25%, e 30%
Specimen | YS (MPa) | El (%) |
---|---|---|
Uniform | 637 | 4.6 |
Random | 560 | 5.8 |
Parallel | 547 | 5.0 |
Vertical | 557 | 5.3 |
Dispersed | 553 | 5.2 |
Gathered | 553 | 5.3 |
Table 4 Mechanical properties for models with various distributions of CGs
Specimen | YS (MPa) | El (%) |
---|---|---|
Uniform | 637 | 4.6 |
Random | 560 | 5.8 |
Parallel | 547 | 5.0 |
Vertical | 557 | 5.3 |
Dispersed | 553 | 5.2 |
Gathered | 553 | 5.3 |
Fig. 14 Distribution of the effective stress for models with various distributions of CGs under the macroscopic applied strain of 3.0%: a random, b parallel, c vertical, d dispersed, e gathered
[1] | S.M.A.K. Mohammed, D.L. Chen, Z.Y. Liu, D.R. Ni, Q.Z. Wang, B.L. Xiao, Z.Y. Ma, Mater. Sci. Eng. A 817, 141370 (2021) |
[2] | S.M.A.K. Mohammed, D.L. Chen, Z.Y. Liu, Q.Z. Wang, D.R. Ni, B.L. Xiao, Z.Y. Ma, Mater. Sci. Eng. A 840, 142881 (2022) |
[3] | K. Ma, Z.Y. Liu, B.S. Liu, B.L. Xiao, Z.Y. Ma, Compos. Pt. A- Appl. Sci. Manuf. 140, 106198 (2021) |
[4] | L.K. Singh, A. Bhadauria, T. Laha, J. Mater. Sci. 56, 1 (2021) |
[5] | D.K.Q. Mu, Z. Zhang, Y.H. Xie, J.M. Liang, J. Wang, D.L. Zhang, Mater. Charact. 175, 111090 (2021) |
[6] | H. Sun, F. Saba, G.L. Fan, Z.Q. Tan, Z.Q. Li, Scr. Mater. 217, 114774 (2022) |
[7] |
H. Ding, X.P. Cui, Z.Q. Wang, T. Zhao, Y.C. Wang, Y.Y. Zhang, H.T. Chen, L.J. Huang, L. Geng, J.F. Chen, J. Mater. Sci. Technol. 107, 70 (2022)
DOI |
[8] | X.L. Zhang, Y. Jiang, S.P. Wang, S. Wang, Z.Q. Wang, Z.L. Yu, Z.H. Zhang, L.Q. Ren, Acta Metall. Sin. -Engl. Lett. 36, 926 (2023) |
[9] | M.H. Li, L.W. Lu, Y.H. Wei, M. Ma, W.Y. Huang, Acta Metall. Sin. -Engl. Lett. 36, 1317 (2023) |
[10] | Q.Y. Jia, Y.M. Wang, X. Zhang, G.X. Zhang, Q. Yang, L.N. Yang, X. Kong, X.F. Li, R. Yang, Acta Metall. Sin. -Engl. Lett. 36, 1007 (2023) |
[11] | X. Guo, R. Ji, G.J. Weng, L.L. Zhu, J. Lu, Mater. Sci. Eng. A 618, 479 (2014) |
[12] | X. Guo, G. Yang, G.J. Weng, J. Lu, Acta Mech. 229, 3475 (2018) |
[13] | X. Guo, Y. Liu, G.J. Weng, L.L. Zhu, J. Lu, G. Chen, Adv. Eng. Mater. 22, 2000097 (2020) |
[14] | S. Nelson, L. Ladani, T. Topping, E. Lavernia, Acta Mater. 59, 3550 (2011) |
[15] | M. Yadollahpour, H. Hosseini-Toudeshky, Eng. Comput. 33, 1 (2017) |
[16] | Y. Zhang, H. Chen, Y.F. Jia, D.F. Li, G.J. Yuan, X.C. Zhang, S.T. Tu, Int. J. Mech. Sci. 191, 106068 (2021) |
[17] | K. Ma, Z.Y. Liu, K. Liu, X.G. Chen, B.L. Xiao, Z.Y. Ma,Carbon 178, 190 (2021) |
[18] | P.Y. Li, X.N. Li, Z.Y. Dong, Z.Y. Liu, L.Q. Chen, B.L. Xiao, Z.Y. Ma, J. Alloy. Compd. 948, 169764 (2023) |
[19] | P.Y. Li, X.N. Li, K. Ma, F.C. Liu, Z.Y. Liu, L.Q. Chen, B.L. Xiao, Z.Y. Ma, Compos. Commun. 37, 101462 (2023) |
[20] | J.Y. Zheng, J.Q. Ran, M.W. Fu, Int. J. Mech. Sci. 216, 106992 (2022) |
[21] | Q. Zhao, M.A. Wahab, Y. Ling, Z.Y. Liu, J. Mater. Sci. Technol. 126, 275 (2022) |
[22] | R. Geng, Q.L. Zhao, F. Qiu, Q.C. Jiang, Mater. Res. Let. 8, 225 (2020) |
[23] | S.M.A.K. Mohammed, D.L. Chen, Adv. Eng. Mater. 22, 1901176 (2020) |
[24] | J.G. Park, D.H. Keum, Y.H. Lee,Carbon 95, 690 (2015) |
[25] | K. Xie, G. Zhang, H. Huang, J. Zhang, Z. Liu, B. Cai, Mater. Sci. Eng. 804, 140780 (2021) |
[26] | K. Zhao, Z.Y. Duan, J.L. Liu, G.Z. Kang, L.N. An, Acta Metall. Sin. -Engl. Lett. 35, 915 (2022) |
[27] | J.F. Zhang, X.X. Zhang, Q.Z. Wang, B.L. Xiao, Z.Y. Ma, Mech. Mater. 122, 96 (2018) |
[28] | J.F. Zhang, H. Andra, X.X. Zhang, Q.Z. Wang, B.L. Xiao, Z.Y. Ma, Compos. Struc. 226, 111281 (2019) |
[29] | M.J. Wang, J.H. Shen, B. Chen, U. Junko, K. Kondoh, Y.L. Li, Acta Metall. Sin. -Engl. Lett. 36, 127 (2023) |
[30] | F. Zhang, Y. Huang, K. Hwang, S. Qu, C. Liu, Mater. Manuf. Processes 22, 140 (2007) |
[31] | H. Salavati, Y. Alizadeh, F. Berto, Acta Metall. Sin. -Engl. Lett. 28, 164 (2015) |
[32] | Y. Huang, S. Qu, K.C. Hwang, M. Li, H. Gao, Int. J.Plasticity 20, 753 (2024) |
[33] | M.S. Park, Y.S. Suh, S. Song, Finite Elem. Anal. Des. 59, 35 (2012) |
[34] |
B. Flipon, C. Keller, R. Quey, F. Barbe, Int. J. Solids Struct. 184, 178 (2020)
DOI |
[35] | F.J. Meng, W.B. Du, N. Ding, J. Sun, X. Du, K. Liu, S.B. Li, Acta Metall. Sin. -Engl. Lett. 37, 577 (2024) |
[36] | H. Ding, X.P. Cui, Y.Y. Zhang, Z.Q. Wang, N.N. Gao, T.Q. Zhang, J.W. Luo, X.X. Zhai, J.F. Chen, L. Geng, L.J. Huang, Int. J.Plasticity 171, 103805 (2023) |
[37] | D.D. Phuong, P.V. Trinh, N.V. An, N.V. Luan, P.N. Minh, R.K. Khisamov, K.S. Nazarov, L.R. Zubairov, R.R. Mulyukov, A.A. Nazarov, J. Alloys Compd. 613, 68 (2014) |
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