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
[31]   Effects of Ti/Al Ratio on Formation of Ti-Al Intermetallics/TiB2 Composites by SHS from Ti-Al-B Powder Mixtures [J].
Yeh, Chun-Liang ;
Chan, Yi-Cheng .
PROCESSES, 2024, 12 (06)
[32]   In-Situ Synthesis and Characterization of TiB2 and Ti-Al-B Composites [J].
Ramachandran, Muralidharan ;
Reddy, Ramana G. .
TMS 2014 SUPPLEMENTAL PROCEEDINGS, 2014, :57-64
[33]   Influence of Reaction Temperature and Reaction Time for the Manufacturing of Al-Ti-B (Ti:B=5:1, 1:3) Master Alloys and Their Grain Refining Efficiency on Al-7Si Alloys [J].
Auradi, V. ;
Kori, S. A. .
TRANSACTIONS OF THE INDIAN INSTITUTE OF METALS, 2012, 65 (06) :637-645
[34]   Fabrication of Al-5Ti-1B master alloy using machining Ti chips and dissolution kinetics of Ti chips [J].
Wang, Fei ;
Hu, Maoliang ;
Jiang, Bo ;
Ji, Zesheng .
MATERIALS LETTERS, 2021, 297
[35]   Production of Al-Ti-B grain refining master alloys from B2O3 and K2TiF6 [J].
Birol, Yuecel .
JOURNAL OF ALLOYS AND COMPOUNDS, 2007, 443 (1-2) :94-98
[36]   Morphology evolution and growth mechanism of TiB2 in Ti-54Al-xB alloys [J].
Zhang, H ;
Gao, WL ;
Zhang, EL ;
Zeng, SY .
ACTA METALLURGICA SINICA, 2002, 38 (07) :699-702
[37]   Atomic insights into heterogeneous nucleation and growth kinetics of Al on TiB2 particles in undercooled Al-5Ti-1B melt [J].
Feng, Jing ;
Han, Yanfeng ;
Han, Xiaocang ;
Wang, Xiaodong ;
Song, Shuangxi ;
Sun, Baode ;
Chen, Mingwei ;
Liu, Pan .
JOURNAL OF MATERIALS SCIENCE & TECHNOLOGY, 2023, 156 :72-82
[38]   Reconstruction of 2D Al3Ti on TiB2 in an aluminium melt [J].
Qin, T. ;
Fan, Z. .
3RD INTERNATIONAL CONFERENCE ON ADVANCES IN SOLIDIFICATION PROCESSES, 2012, 27
[39]   PHASE CONSTITUENTS AND MICROSTRUCTURE OF Ti3Al/Fe3Al + TiN/TiB2 COMPOSITE COATING ON TITANIUM ALLOY [J].
Li, Jianing ;
Chen, Chuanzhong ;
Zhang, Cuifang .
SURFACE REVIEW AND LETTERS, 2011, 18 (3-4) :103-108
[40]   Solidification Microstructure Evolution and Mechanical Properties of Casting Ti-48Al-2Cr-2Nb-(Ni,TiB2) Alloy [J].
Wang Hao ;
Xie Guangming ;
Jia Yi ;
Yao Haoming ;
Xiao Shulong ;
Chen Yuyong ;
Han Jianchao ;
Wang Tao .
RARE METAL MATERIALS AND ENGINEERING, 2022, 51 (06) :2316-2322