Morphological Evolution of TiB2 and TiAl3 in Al-Ti-B Master Alloy Using Different Ti Adding Routes

被引:3
作者
Zhao, Yanjun [1 ,2 ]
Lu, Zepeng [1 ]
Mi, Li [3 ]
Hu, Zhiliu [1 ]
Yang, Wenchao [1 ,2 ]
机构
[1] Guangxi Univ, Coll Resources Environm & Mat, Nanning 530004, Peoples R China
[2] Guangxi Univ, Guangxi Key Lab Proc Nonferrous Met & Featured Ma, Nanning 530004, Peoples R China
[3] AECC South Ind Co Ltd, Zhuzhou 412002, Peoples R China
关键词
Al-Ti-B Master Alloy; TiB2; TiAl3; halide salt route; Ti-sponge" route; partial Ti-sponge" route; Ti-TiAlx mechanism; GRAIN-REFINEMENT; IN-SITU; PARTICLES; PERFORMANCE; MECHANISM;
D O I
10.3390/ma15061984
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Three different Ti addition routes were used to prepare an Al-5Ti-B Master Alloy: the halide salt route, the Ti-sponge route, and the partial Ti-sponge route. In the halide salt route, the raw materials were Al + KBF4 + K2TiF6; K2TiF6 was completely replaced by pure titanium for the Ti-sponge route versus the halide salt route; in the partial Ti-sponge route, K2TiF6 was partially replaced by pure titanium. Here, 30% Ti-sponge or 60% Ti-sponge route means that 30% or 60% K2TiF6 was replaced by pure titanium, respectively. The above Ti addition routes have a significant influence on the growth pattern and morphological evolution of TiAl3 and TiB2, which greatly affect the refining performance of Al-Ti-B Master Alloy. When using the halide salt route, a streamlined "rich Ti, B area" exists in the aluminum melt, which is a complex compound of (Ti-x, Al1-x) B-y. The "rich Ti, B area" is essential for the nucleation and growth of TiAl3 and TiB2. Blocky TiAl3 was obtained and its average size was 4.7 mu m based on the halide salt route. In the Ti-sponge route, the nucleation of TiAl3 mainly depends on the mutual diffusion of Al and Ti, and TiAlx forms around pure Ti particles, i.e., the so-called Ti-TiAlx mechanism. The average size of the blocky TiAl3 was 9.8 mu m based on the Ti-TiAlx mechanism. For the partial Ti-sponge route, the "rich Ti, B area" gradually decreases with the increase in Ti powder's contents, and large TiAl3 coexists with the small TiAl3. Compared with the Ti-sponge route, the halide salt route can form smaller TiAl3. In the Ti-sponge route, there is a small amount of "rich Ti, B area" due to the influence of the Ti-TiAlx mechanism, which does not meet the requirements of TiB2 growth. In the halide salt route, there is sufficient "rich Ti, B area", which is conducive to the formation of TiB2. Both the crystal defects and the crowded growth environment caused by the "rich Ti, B area" are fundamental reasons for the fragility and the irregular shape of the TiB2. The refining effect of the Al-Ti-B Master Alloy prepared by the halide salt route is better than the Ti-sponge route. The refining effect of 30% Ti-sponge route is better than that of Ti-sponge route and worse than that of halide salt route.
引用
收藏
页数:15
相关论文
共 50 条
[41]   Semisolid Microstructure Evolution of AZ91D Magnesium Alloy Refined by Al-Ti-B [J].
Chen, Ti Jun ;
Wang, Rui Quan ;
Ma, Ying ;
Hao, Yuan .
MATERIALS RESEARCH-IBERO-AMERICAN JOURNAL OF MATERIALS, 2011, 14 (04) :532-540
[42]   Anisotropic microstructures and mechanical properties of textured Ti3AlC2/TiAl3/Al composite [J].
Wang, Zhijun ;
Zhang, Qiang ;
Ju, Boyu ;
Liu, Hao ;
Zhang, Ningbo ;
Zhou, Yongxiao ;
Shao, Puzhen ;
Xiu, Ziyang ;
Wu, Gaohui .
CERAMICS INTERNATIONAL, 2022, 48 (22) :32955-32965
[43]   Preparation of submicrocrystal Al-Ti-B master alloy and its influence on microstructure and properties of AZ91D [J].
Dong, Tian-shun ;
Zheng, Xiao-dong ;
Li, Xiao-bing ;
Li, Guo-lu ;
Wang, Tuo ;
Cui, Chun-xiang .
CHINA FOUNDRY, 2017, 14 (06) :513-518
[44]   The Microstructure and Compressive Properties of Aluminum Alloy (A356) Foams with Different Al-Ti-B Additions [J].
Zhang, Zan ;
Wang, Jing ;
Xia, Xingchuan ;
Zhao, Weimin ;
Liao, Bo ;
Hur, Boyoung .
MATERIALS SCIENCE-MEDZIAGOTYRA, 2016, 22 (03) :337-342
[45]   Influence of Sintering Temperature on the Microstructure of TiB2 Sintered with Al3Ti Additive [J].
Yoshida, Masashi .
MATERIALS TRANSACTIONS, 2012, 53 (09) :1648-1651
[46]   Synergistically enhancing the strength and ductility of TiAl alloy through in-situ precipitation of Ti2AlC and TiB2 nanoparticles [J].
Sun, Dingbang ;
Guo, Yingchao ;
Wang, Huijun ;
Liang, Yongfeng ;
Lin, Junpin ;
Xue, Hui .
INTERMETALLICS, 2025, 184
[47]   In situ synthesis of TiB2/Mg composite by self-propagating high-temperature synthesis reaction of the Al-Ti-B system in molten magnesium [J].
Wang, HY ;
Jiang, QC ;
Zhao, YG ;
Zhao, F .
JOURNAL OF ALLOYS AND COMPOUNDS, 2004, 379 (1-2) :L4-L7
[48]   Effect of Ce in Al-Ti-B-Ce Refiner on TiAl3/a-Al Heterogeneous Nucleation Interface by First-Principles Study [J].
Song, Lili ;
Fu, Gaosheng ;
Li, Longze ;
Chen, Hongling ;
Wang, Huosheng .
JOURNAL OF MATERIALS ENGINEERING AND PERFORMANCE, 2023, 32 (19) :8585-8592
[49]   Effect of Al-Ti-B Based Master Alloys on Grain Refinement and Hot Tearing Susceptibility of AZ91E Magnesium Alloy [J].
Elsayed, Abdallah ;
Ravindran, Comondore ;
Murty, B. S. .
LIGHT METALS TECHNOLOGY V, 2011, 690 :351-+
[50]   Statistical analysis of parameters of the process analysis of grain refinement of the aluminum cast alloy by Al-Ti-B and Al-La-B master alloys [J].
Kosovich, A. A. ;
Belyaev, S. V. ;
Bogdanova, T. A. ;
Partyko, E. G. ;
Stepanenko, N. A. ;
Tanachev, L. E. ;
Dombrovskiy, N. S. .
METALLURGIST, 2025, 68 (12) :1891-1905