Acta Metallurgica Sinica (English Letters) ›› 2024, Vol. 37 ›› Issue (7): 1186-1200.DOI: 10.1007/s40195-024-01707-y
Previous Articles Next Articles
Yujing Zhou1, Siyi Peng1, Yueling Guo1(), Xiaoxiang Wu2, Changmeng Liu1, Zhiming Li3
Received:
2023-11-02
Revised:
2024-01-09
Accepted:
2024-02-07
Online:
2024-05-06
Published:
2024-05-06
Contact:
Yueling Guo
Yujing Zhou, Siyi Peng, Yueling Guo, Xiaoxiang Wu, Changmeng Liu, Zhiming Li. Microstructure Modification and Ductility Improvement for TaMoNbZrTiAl Refractory High Entropy Alloys via Increasing Ti Content[J]. Acta Metallurgica Sinica (English Letters), 2024, 37(7): 1186-1200.
Add to citation manager EndNote|Ris|BibTeX
Alloys | Ta | Mo | Nb | Zr | Ti | Al | |
---|---|---|---|---|---|---|---|
RHEA-Ti | Nominal | 35.36 | 18.76 | 18.16 | 17.83 | 9.36 | 0.53 |
Wet-chemical | Bal. | 18.1 | 17.8 | 18.6 | 9.8 | 0.6 | |
RHEA-1.5Ti | Nominal | 33.79 | 17.92 | 17.35 | 17.04 | 13.41 | 0.50 |
Wet-chemical | Bal. | 17.5 | 17.4 | 15.5 | 13.3 | 0.5 |
Table 1 Nominal and measured compositions of RHEA-Ti and RHEA-1.5Ti alloys by wet-chemical analysis (wt%)
Alloys | Ta | Mo | Nb | Zr | Ti | Al | |
---|---|---|---|---|---|---|---|
RHEA-Ti | Nominal | 35.36 | 18.76 | 18.16 | 17.83 | 9.36 | 0.53 |
Wet-chemical | Bal. | 18.1 | 17.8 | 18.6 | 9.8 | 0.6 | |
RHEA-1.5Ti | Nominal | 33.79 | 17.92 | 17.35 | 17.04 | 13.41 | 0.50 |
Wet-chemical | Bal. | 17.5 | 17.4 | 15.5 | 13.3 | 0.5 |
Fig. 1 a Phase evolution and b partition of elements during equilibrium solidification for the RHEA-Ti alloys predicted by Thermo-Calc simulations; c XRD spectra of the as-cast and annealed RHEA-Ti alloys
Fig. 2 a Phase evolution and b partition of elements during equilibrium solidification for the RHEA-1.5Ti alloys predicted by Thermo-Calc simulations; c XRD spectra of the as-cast and annealed RHEA-1.5Ti alloys
Fig. 3 EPMA-WDS mapping of a selected region for the as-cast RHEA-Ti alloy including Ta, Mo, Nb, Zr, Ti and Al. The points of P1-P3 are the representaive positions where quantitative measurements are performed
Alloys | Position | Ta | Mo | Nb | Zr | Ti | Al |
---|---|---|---|---|---|---|---|
RHEA-Ti | P1 | 29.3 | 21.3 | 21.1 | 9.8 | 17.6 | 0.9 |
P2 | 11.4 | 13.5 | 14.5 | 33.1 | 23.6 | 3.9 | |
P3 | 9.0 | 11.6 | 12.9 | 39.5 | 21.9 | 5.1 | |
RHEA-1.5Ti | P4 | 28.1 | 20.2 | 19.3 | 8.1 | 23.5 | 0.8 |
P5 | 20.1 | 18.6 | 18.9 | 13.0 | 28.1 | 1.3 | |
P6 | 6.8 | 10.7 | 11.4 | 34.4 | 32.1 | 4.6 |
Table 2 EPMA-WDS measured compositions of the representative locations in the RHEA-Ti and RHEA-1.5Ti alloys (at.%). The positions of P1, P2 and P3 are labeled in Fig. 3. The positions of P4, P5 and P6 are labeled in Fig. 4
Alloys | Position | Ta | Mo | Nb | Zr | Ti | Al |
---|---|---|---|---|---|---|---|
RHEA-Ti | P1 | 29.3 | 21.3 | 21.1 | 9.8 | 17.6 | 0.9 |
P2 | 11.4 | 13.5 | 14.5 | 33.1 | 23.6 | 3.9 | |
P3 | 9.0 | 11.6 | 12.9 | 39.5 | 21.9 | 5.1 | |
RHEA-1.5Ti | P4 | 28.1 | 20.2 | 19.3 | 8.1 | 23.5 | 0.8 |
P5 | 20.1 | 18.6 | 18.9 | 13.0 | 28.1 | 1.3 | |
P6 | 6.8 | 10.7 | 11.4 | 34.4 | 32.1 | 4.6 |
Fig. 4 EPMA-WDS mapping of selected regions for the as-cast RHEA-1.5Ti alloy including Ta, Mo, Nb, Zr, Ti and Al. The points of P4-P6 are the representative positions where quantitative measurements are performed
Fig. 5 a Selected positions for nanoindentation testing on the as-cast RHEA-Ti alloy; b reduced modulus and c hardness mapping of the tested region; d reduced modulus, e hardness values of all testing points
Fig. 7 a, b STEM-HAADF imaging of the edge of the dendrite trunk for the annealed RHEA-Ti alloy; c selected area electron diffraction (SAED) patterns taken from the dendrite trunk; d EDS mapping of a including Ta, Mo, Nb, Zr, Ti and Al, respectively. The deeper the color, the lower content of the elements
Fig. 8 a STEM-HAADF imaging of the interdendritic microstructure of the annealed RHEA-Ti alloy; b selected area electron diffraction (SAED) patterns taken from a; c EDS mapping of a including Ta, Mo, Nb, Zr, Ti and Al, respectively. The deeper the color, the lower content of the elements
Fig. 10 a STEM-HAADF imaging of the edge of the grain boundary microstructures of the annealed RHEA-1.5Ti alloy; b and c zoom-in images of a; d EDS mapping of a including Ta, Mo, Nb, Zr, Ti and Al, respectively. The deeper the color, the lower content of the elements
Fig. 12 Compressive stress-strain curves of a as-cast, b annealed RHEAs at room temperature. Both as-cast and annealed alloy specimens are tested for each type of alloy
[1] | A.K. Sinha, V.K. Soni, R. Chandrakar, A. Kumar, Trans. Indian Inst. Met. 74, 2953 (2021) |
[2] | C.M. Liu, H.M. Wang, S.Q. Zhang, H.B. Tang, A.L. Zhang, J. Alloys Compd. 583, 162 (2014) |
[3] | D.X. Qiao, H. Jiang, W.N. Jiao, Y.P. Lu, Z.Q. Cao, T.J. Li, Acta Metall. Sin. -Engl. Lett. 32, 925 (2019) |
[4] | X. Ren, Y. Li, Y. Qi, B. Wang, Materials 15, 2931 (2022) |
[5] | L.K. Iroc, O.U. Tukac, B.B. Tanrisevdi, O. El-Atwani, M.A. Tunes, Y.E. Kalay, E. Aydogan, Mater. Des. 223, 111239 (2022) |
[6] | Y. Wan, J. Mo, X. Wang, Z. Zhang, B. Shen, X. Liang, Acta Metall. Sin. -Engl. Lett. 34, 1585 (2021) |
[7] | L. Xiang, W. Guo, B. Liu, A. Fu, J. Li, Q. Fang, Y. Liu, Entropy 22, 282 (2020) |
[8] | H.W. Yao, J.W. Qiao, M.C. Gao, J.A. Hawk, S.G. Ma, H.F. Zhou, Y. Zhang, Mater. Sci. Eng. A 674, 203 (2016) |
[9] | X. Yin, Y.K. Dou, X.F. He, K. Jin, C.L. Wang, Y.G. Dong, C.Y. Wang, Y.F. Xue, W. Yang, Acta Metall. Sin. -Engl. Lett. 36, 405 (2023) |
[10] | J. Wen, X. Chu, Y. Cao, N. Li, Metals 11, 514 (2021) |
[11] | Y. Cao, Y. Liu, B. Liu, W. Zhang, J. Wang, M. Du, Trans. Nonferrous Met. Soc. China 29, 1476 (2019) |
[12] | S. Lu, X. Li, X. Liang, W. Shao, W. Yang, J. Chen, Int. J. Refract. Met. H. 105, 105812 (2022) |
[13] | S.H. Chen, J.S. Zhang, S. Guan, T. Li, J.Q. Liu, F.F. Wu, Y.C. Wu, Mater. Sci. Eng. A 835, 142701 (2022) |
[14] | C. Li, S.H. Chen, Z.W. Wu, Z.F. Zhang, Y.C. Wu, J. Mater. Res. 37, 1664 (2022) |
[15] | S. Zhang, R. Li, Y. Xu, Mater. Res. Express 9, 096510 (2022) |
[16] | T. Li, J. Miao, Y. Lu, T. Wang, T. Li, Int. J. Refract. Met. H. 103, 105762 (2022) |
[17] | H. Liu, L. Liu, C. Xin, AIP Adv. 11, 025044 (2021) |
[18] | T. Huang, S. Wu, H. Jiang, Y. Lu, T. Wang, T. Li, Int. J. Miner. Metall. Mater. 27, 1318 (2020) |
[19] | Z.D. Han, H.W. Luan, X. Liu, N. Chen, X.Y. Li, Y. Shao, K.F. Yao, Mater. Sci. Eng. A 712, 380 (2018) |
[20] | H. Yao, J. Miao, Y. Liu, E. Guo, H. Huang, Y. Lu, T. Wang, T. Li, Adv. Eng. Mater. 23, 2100225 (2021) |
[21] | Y.G. Dong, S. Chen, N.N. Jia, Q.H. Zhang, L. Wang, Y.F. Xue, K. Jin, Tungsten 3, 406 (2021) |
[22] | S. Wu, D. Qiao, H. Zhao, J. Wang, Y. Lu, J. Alloys Compd. 889, 161800 (2021) |
[23] | M. Zhang, X. Zhou, W. Zhu, J. Li, Metall. Mater. Trans. A 49, 1313 (2018) |
[24] | Y. Wang, S. Ma, X. Chen, J. Shi, Y. Zhang, J. Qiao, Acta Metall. Sin. -Engl. Lett. 26, 277 (2013) |
[25] | Y. Yu, P. Shi, K. Feng, J. Liu, J. Cheng, Z. Qiao, J. Yang, J. Li, W. Liu, Acta Metall. Sin. -Engl. Lett. 33, 1077 (2020) |
[26] | C. Zhu, Z. Li, C. Hong, P. Dai, J. Chen, Int. J. Refract. Met. H. 93, 105357 (2020) |
[27] | B. Gorr, M. Azim, H.J. Christ, T. Mueller, D. Schliephake, M. Heilmaier, J. Alloys Compd. 624, 270 (2015) |
[28] | O.N. Senkov, S.V. Senkova, C. Woodward, Acta Mater. 68, 214 (2014) |
[29] | G. Dirras, H. Couque, L. Lilensten, A. Heczel, D. Tingaud, J.P. Couzinié, L. Perrière, J. Gubicza, I. Guillot, Mater. Charact. 111, 106 (2016) |
[30] | S. Barzilai, C. Toher, S. Curtarolo, O. Levy, Acta Mater. 120, 255 (2016) |
[31] | Z.D. Han, N. Chen, S.F. Zhao, L.W. Fan, G.N. Yang, Y. Shao, K.F. Yao, Intermetallics 84, 153 (2017) |
[32] | Y. Guo, J. He, W. Lu, L. Jia, Z. Li, Mater. Charact. 172, 110836 (2021) |
[33] | J. Yi, L. Wang, M. Xu, L. Yang, Mater. Tehnol. 55, 305 (2021) |
[34] | Y. Guo, J. He, Z. Li, X. Wu, W. Lu, C. Liu, Mater. Charact. 194, 112495 (2022) |
[35] | T.E. Whitfield, E.J. Pickering, C.E. Talbot, C.N. Jones, H.J. Stone, N.G. Jones, Scr. Mater. 180, 71 (2020) |
[36] | N. Hua, W. Wang, Q. Wang, Y. Ye, S. Lin, L. Zhang, Q. Guo, J. Brechtl, P.K. Liaw, J. Alloys Compd. 861, 157997 (2021) |
[37] | L. Liu, Y. Zhang, G. Wu, Y. Yu, Y. Ma, J. Ma, I. Baker, Z. Zhang, J. Alloys Compd. 906, 164291 (2022) |
[38] | T. Xiang, M. Zhao, P. Du, G. Xie, J. Alloys Compd. 930, 167408 (2023) |
[39] | D. Cui, Z. Yang, B. Guo, L. Liu, Z. Wang, J. Li, J. Wang, F. He, Intermetallics 151, 107727 (2022) |
[40] | K.Y. Tsai, M.H. Tsai, J.W. Yeh, Acta Mater. 61, 4887 (2013) |
[41] | R. Wang, Y. Tang, S. Li, Y. Ai, Y. Li, B. Xiao, L. Zhu, X. Liu, S. Bai, J. Alloys Compd. 825, 154099 (2020) |
[42] | Y. Liu, T. Pan, L. Zhang, D. Yu, Y. Ge, J. Alloys Compd. 476, 429 (2009) |
[43] | O.N. Senkov, J.K. Jensen, A.L. Pilchak, D.B. Miracle, H.L. Fraser, Mater. Des. 139, 498 (2018) |
[44] | W. Xiong, A.X.Y. Guo, S. Zhan, C.T. Liu, S.C. Cao, J. Mater. Sci. Technol. 142, 196 (2023) |
[45] | C. Jiang, R.D. Mariani, C.A. Adkins, Materialia 10, 100701 (2020) |
[46] | Y. Gao, L. Qiao, D. Wu, Y. Zhang, Y. Zou, Vacuum 179, 109459 (2020) |
[47] | K.K. Tseng, C.C. Juan, S. Tso, H.C. Chen, C.W. Tsai, J.W. Yeh, Entropy 21, 15 (2018) |
[48] | A. Roy, P. Sreeramagiri, T. Babuska, B. Krick, P.K. Ray, G. Balasubramanian, Mater. Charact. 172, 110877 (2021) |
[49] | C.S. Wu, P.H. Tsai, C.M. Kuo, C.W. Tsai, Entropy 20, 967 (2018) |
[50] | S.P. Wang, J. Xu, Mater. Sci. Eng. C 73, 80 (2017) |
[51] | A. Takeuchi, A. Inoue, Intermetallics 18, 1779 (2010) |
[52] | Y. Cao, Y. Liu, B. Liu, W. Zhang, Intermetallics 100, 95 (2018) |
[53] | N.N. Guo, L. Wang, L.S. Luo, X.Z. Li, Y.Q. Su, J.J. Guo, H.Z. Fu, Mater. Des. 81, 87 (2015) |
[54] | X.W. Nie, M.D. Cai, S. Cai, Int. J. Refract. Met. H. 98, 105568 (2021) |
[55] | H. Li, S. Zeng, Y.K. Zhou, H.L. Li, H.W. Zhang, H.F. Zhang, Z.W. Zhu, Acta Metall. Sin. -Engl. Lett. 35, 1583 (2022) |
[56] | N. Li, C.L. Jia, Z.W. Wang, L.H. Wu, D.R. Ni, Z.K. Li, H.M. Fu, P. Xue, B.L. Xiao, Z.Y. Ma, Y. Shao, Y.L. Chang, Acta Metall. Sin. -Engl. Lett. 33, 947 (2020) |
[57] | K. Han, V. Toplosky, N. Min, J. Lu, Y. Xin, R. Walsh, IEEE Trans. Appl. Supercond. 28, 1 (2018) |
[58] | K. Han, V. Toplosky, N. Min, Y. Xin, R. Walsh, J. Lu, IEEE Trans. Appl. Supercond. 29, 1 (2019) |
[59] | X. Zhou, Y. Chen, Y. Jiang, Y. Li, Mater. Res. Express 6, 1265i7 (2020) |
[1] | Ze-Song Wei, Zi-You Ding, Lei Cai, Shao-Xia Ma, Dong-Qing Zhao, Lan-Yue Cui, Cheng-Bao Liu, Yuan-Sheng Yang, Yuan-Ding Huang, Rong-Chang Zeng. Exfoliation Corrosion of As-Extruded Mg-1Li-1Ca: the Influence of the Superficial Layer [J]. Acta Metallurgica Sinica (English Letters), 2024, 37(8): 1339-1353. |
[2] | Linwei Li, Donghu Zhou, Kai Zhao, Lifeng Jiang, Huijun Kang, Enyu Guo, Feng Mao, Zongning Chen, Tongmin Wang. Effects of Reinforcement Content and Homogenization Treatment on the Microstructure and Mechanical Properties of in-situ TiB2/2219Al Composites [J]. Acta Metallurgica Sinica (English Letters), 2024, 37(8): 1421-1437. |
[3] | Shasha Qu, Yingju Li, Bingyu Lu, Cuiping Wang, Yuansheng Yang. Effects of Boron Addition on the Microstructure and Mechanical Properties of γ′-Strengthened Directionally Solidified CoNi-Base Superalloy [J]. Acta Metallurgica Sinica (English Letters), 2024, 37(8): 1438-1452. |
[4] | Long Liu, Zijian Zhou, Jie Yu, Xinguang Wang, Chuanyong Cui, Rui Zhang, Yizhou Zhou, Xiaofeng Sun. Hot Deformation Behavior and Workability of a New Ni-W-Cr Superalloy for Molten Salt Reactors [J]. Acta Metallurgica Sinica (English Letters), 2024, 37(8): 1453-1466. |
[5] | Qi-Yu Liao, Da-Zhi Zhao, Qi-Chi Le, Wen-Xin Hu, Yan-Chao Jiang, Wei-Yang Zhou, Liang Ren, Dan-Dan Li, Zhao-Yang Yin. Effect of Artificial Cooling Extrusion on Microstructure and Mechanical Properties of Mg-Zn-Y Alloys [J]. Acta Metallurgica Sinica (English Letters), 2024, 37(7): 1115-1127. |
[6] | Qian Wang, Peng Yu, Haoran Lin, Chongzhi Guo, Xiaoqiang Hu. Joined AZ31B Magnesium Alloys with Ag Interlayer by Ultrasonic-Induced Transient Liquid Phase Bonding in Air [J]. Acta Metallurgica Sinica (English Letters), 2024, 37(7): 1177-1185. |
[7] | Chunyu Yue, Bowen Zheng, Ming Su, Yuxiang Wang, Xiaojiao Zuo, Yinxiao Wang, Xiaoguang Yuan. Effect of Y and Ce Micro-alloying on Microstructure and Hot Tearing of As-Cast Al-Cu-Mg Alloy [J]. Acta Metallurgica Sinica (English Letters), 2024, 37(6): 939-952. |
[8] | Xiaofeng Ding, Zehao Wu, Tong Li, Jianxun Chen, Yuanhua Shuang, Baosheng Liu. Effect of Three-High Rotary Piercing Process on Microstructure, Texture and Mechanical Properties of Magnesium Alloy Seamless Tube [J]. Acta Metallurgica Sinica (English Letters), 2024, 37(6): 953-968. |
[9] | Sen Wang, Hucheng Pan, Caixia Jiang, Zhihao Zeng, Zhen Pan, Weineng Tang, Chubin Yang, Yuping Ren, Gaowu Qin. Microstructure and Mechanical Property of the Large Cross-Sectioned Mg-Gd-Y-Zn-Zr Alloy Produced by Small Extrusion Ratio [J]. Acta Metallurgica Sinica (English Letters), 2024, 37(6): 999-1006. |
[10] | Hong-Wei Zhang, Li-Wei Lan, Zhe-Yu Yang, Chang-Chun Li, Wen-Xian Wang. Microstructure Evolution and Nanomechanical Behavior of Micro-Area in Molten Pool of Selective Laser Melting (CoCrNi)82Al9Ti9 High-Entropy Alloy [J]. Acta Metallurgica Sinica (English Letters), 2024, 37(6): 1019-1033. |
[11] | Jinpeng Hu, Tao Sun, Fujun Cao, Yifu Shen, Zhiyuan Yang, Chan Guo. Enhanced Strength-Ductility Synergy in Submerged Friction Stir Processing ER2319 Alloy Manufactured by Wire-Arc Additive Manufacturing via Creating Ultrafine Microstructure [J]. Acta Metallurgica Sinica (English Letters), 2024, 37(5): 793-807. |
[12] | Peng Chen, Wenhao Chen, Jiaxin Chen, Zhiyu Chen, Yang Tang, Ge Liu, Bensheng Huang, Zhiqing Zhang. Microstructure Evolution and Mechanical Properties of Friction Stir Welded Al-Cu-Li Alloy [J]. Acta Metallurgica Sinica (English Letters), 2024, 37(5): 855-871. |
[13] | Keke Lu, Congjiang Zhang, Xiaotan Yuan, Hongbin Yu, Weili Ren, Biao Ding, Haibiao Lu, Yunbo Zhong, Zuosheng Lei, Hui Wang, Qiuliang Wang, Peter K. Liaw, Xuezhi Qin, Lanzhang Zhou. Effect of Magnetic Field Configuration on Stray-Crystal Formation with Different Platform Sizes during Directional Solidification of Single-Crystal Superalloy [J]. Acta Metallurgica Sinica (English Letters), 2024, 37(5): 904-914. |
[14] | Rashad A. Al-Hammadi, Rui Zhang, Chuanyong Cui, Zijian Zhou, Yizhou Zhou. Revealing the Void Formation Mechanism during Superplastic Deformation of a Fine-Grained Ni-Co-Base Superalloy [J]. Acta Metallurgica Sinica (English Letters), 2024, 37(5): 915-920. |
[15] | Zhenghong Liu, Zhigang Wu, Ying Han, Xiaolei Song, Guoqing Zu, Weiwei Zhu, Xu Ran. Combination of High Yield Strength and Improved Ductility of 21Cr Lean Duplex Stainless Steel by Tailoring Cold Deformation and Low-Temperature Short-Term Aging [J]. Acta Metallurgica Sinica (English Letters), 2024, 37(4): 695-702. |
Viewed | ||||||
Full text |
|
|||||
Abstract |
|
|||||