The Structural and Phase State of the TiAl System Alloyed with Rare-Earth Metals of the Controlled Composition Synthesized by the "Hydride Technology"

被引:8
作者
Belgibayeva, Akbayan [1 ,2 ]
Abzaev, Yuri [1 ,3 ]
Karakchieva, Natalia [1 ]
Erkasov, Rakhmetulla [2 ]
Sachkov, Victor [1 ]
Kurzina, Irina [1 ]
机构
[1] Natl Res Tomsk State Univ, Chem Technol Lab, Lenin 36, Tomsk 634050, Russia
[2] Eurasian Natl Univ, Dept Chem, Kazhymukan 13, Nur Sultan 010008, Kazakhstan
[3] Tomsk State Univ Architecture & Bldg, Mat Res Ctr Collect Use, Solyanaya 2, Tomsk 634003, Russia
关键词
intermetallides; phase composition; microstructure; hydrides; TiAl system; POPULATION ANALYSIS; ISOTHERMAL SECTION; TA-AL; MICROSTRUCTURE; BEHAVIOR; GROWTH;
D O I
10.3390/met10070859
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The structural state and the quantitative phase analysis of the TiAl system, alloyed with rare-earth metals synthesized using hydride technology, were studied in this work. Using the Rietveld method, the content of the major phases in the initial system Ti(50 at.%)-Al(50 at.%), as well as Ti(49 at.%)-Al(49 at.%), with alloying additions Ta, Y and Dy having a high accuracy was determined. The methods of scanning electron microscopy, transmission electron microscope and X-ray spectral microanalysis of the local areas of the structure for studying the distribution of alloying elements were used. The energies of lattices of separate phases were also determined after the full-profile specification. All the lattices of the identified structures (about 30) turned out to be stable. It was established that in the Ti(49 at.%)-Al(49 at.%) systems under study with alloying additions of metals Ta, Y and Dy, there were intermetallides composed of AlTi3, TiAl in the hexagonal, tetragonal and triclinic units. It is known that after microalloying alloys by Y and Dy metals, the mass fraction of TiAl phases increases significantly (>70%).
引用
收藏
页码:1 / 17
页数:17
相关论文
共 48 条
[1]  
ABDELHAMID AA, 1991, Z METALLKD, V82, P383
[2]   Simulation of the structural state of amorphous phases in nanoscale SiO2 synthesized via different methods [J].
Abzaev, Yu. A. ;
Syzrantsev, V. V. ;
Bardakhanov, S. P. .
PHYSICS OF THE SOLID STATE, 2017, 59 (09) :1874-1878
[3]   Formation of alloys in the Ti-Nb system by hydride cycle method and synthesis of their hydrides in self-propagating high-temperature synthesis [J].
Aleksanyan, A. G. ;
Dolukhanyan, S. K. ;
Shekhtman, V. Sh. ;
Khasanou, S. S. ;
Ter-Galstyan, O. P. ;
Martirosyan, M. V. .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2012, 37 (19) :14234-14239
[4]   Modeling concepts for intermetallic titanium aluminides [J].
Appel, F. ;
Clemens, H. ;
Fischer, F. D. .
PROGRESS IN MATERIALS SCIENCE, 2016, 81 :55-124
[5]  
Appel F., 2011, SCI TECHNOLOGY
[6]  
Belgibaeva A.A., 2018, P C NEW MAT TECHN BA, P62
[7]  
Braun J, 1994, Z FUER MET, V82, P355
[8]   Isothermal section at 850 °C of the Ti-Dy-Al system in the Ti-TiAl-DyAl2-Dy region [J].
Bulanova, M. ;
Fartushna, I. ;
Meleshevich, K. ;
Samelyuk, A. .
JOURNAL OF ALLOYS AND COMPOUNDS, 2014, 598 :61-67
[9]  
Clemens H, 2008, STRUCTURAL ALUMINIDES FOR ELEVATED TEMPERATURES: GAMMA TITANIUM AND OTHER: METALLIC ALUMINIDES, P217
[10]   Light-weight Intermetallic Titanium Aluminides - Status of Research and Development [J].
Clemens, Helmut ;
Smarsly, Wilfried .
EURO SUPERALLOYS 2010, 2011, 278 :551-+