首页> 外文期刊>Russian Journal of Non-Ferrous Metals >Synthesis Features, Structure, and Properties of Promising High-Temperature Ceramics in the Hf-Ta-B-Ti-Si System
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Synthesis Features, Structure, and Properties of Promising High-Temperature Ceramics in the Hf-Ta-B-Ti-Si System

机译:HF-TA-B-Ti-Si系统中有希望的高温陶瓷的合成特征,结构和性能

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Abstarct This study covers the elemental synthesis features of Hf-Ta-B-Ti-Si ceramic materials used to obtain promising high-temperature ceramics and analyze its structure and properties. The macrokinetics of self-propagating high-temperature synthesis (SHS) are studied. Combustion temperature and velocity as a function of initial temperature are plotted. It is established that chemical interactions occurring in the liquid phase play a pivotal role in the combustion process. Structure and phase formation processes are studied using the stopped combustion front technique. The mechanism of phase formation in the combustion wave is determined. The primary crystals of hafnium, titanium, and tantalum diborides are precipitated from the super-saturated melt after the Si and Ti contact melting and B, Hf, and Ta dissolution in the melt through the reactive diffusion process. A two-phase structure consisting of complex solid solutions based on diboride and borosilicide is formed due to the similarity of the crystal lattices. Porous synthesis products of the specified composition are milled into powders with the required particle-size distribution for subsequent hot pressing (HP) or spark plasma sintering (SPS). It is found that specimens produced by HP, SPS, and SHS pressing feature a similar phase composition containing solid solutions based on diboride (Hf,Ti,Ta)B-2 and borosilicide (Hf,Ti,Ta)(5)Si3B. Specimens of ceramics produced using the above technologies for physical-mechanical testing are made. It is found that the hardness and elastic modulus of the (Hf,Ti,Ta)B-2 solid solution are 2-3 times higher than that of (Hf,Ti,Ta)(5)Si3B borosilicide. Depending on the composition, the density of the ceramics varies from 8 to 6.5 g/cm(3), which corresponds to a porosity of less than 5%. Temperature dependences of heat capacity and diffusivity are determined. The heat conductivity of ceramics produced by HP and SPS is 24.05 and 23.1 W/(m K), respectively.
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