Structure, properties and oxidation resistance of prospective HfB2–SiC based ceramics

Y. Pogozhev, A. Potanin, S. Rupasov, E. Levashov, V. Volkova, V. Tashev, A. Timofeev
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引用次数: 1

Abstract

The paper focuses on obtaining a heterophase powdered and sintered ceramics based on hafnium diboride and silicon carbide by combined self-propagating high-temperature synthesis (SHS) and hot pressing (HP). The structure of the synthesized SHS powder consists of hafnium diboride grains and agglomerated polyhedral 2–6 μm silicon carbide grains. The powders obtained had an average particle size of ~10 μm with a maximum value of 30 μm. Phase compositions were identical for the ceramics sintered by hot pressing and the synthesized powder. The resulting compact featured by a high degree of structural and chemical uniformity, porosity of 3.8 %, hardness of 19.8±0.4 GPa, strength of 597±59 MPa, and fracture toughness of 8.8±0.4 MPa·m1/2. Plasma torch testing (PTT) was carried out to determine the oxidation resistance under the influence of a high-enthalpy gas flow. The phase composition and surface microstructure of the compact after testing were investigated. The HP compact demonstrated an outstanding resistance to the high-temperature gas flow at 2150 °С and heat flow density of 5.6 MW/m2 for 300 s. A dense protective oxide layer 30–40 μm thick was formed on the surface of HfB2–SiC ceramics during the plasma torch testing. The layer consisted of a scaffold formed by HfO2 oxide grains with a space between them filled with SiO2–B2O3 amorphous borosilicate glass. The HfB2–SiC SHS composite powder was hot pressed to produce experimental samples of model bushings for the combustion chamber of a low thrust liquid rocket engine designed for PTT in the environment close to actual operating conditions.
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未来HfB2-SiC基陶瓷的结构、性能和抗氧化性
采用自蔓延高温合成(SHS)和热压(HP)相结合的方法制备了基于二硼化铪和碳化硅的异相粉末烧结陶瓷。合成的SHS粉体由二硼化铪晶粒和2-6 μm多面体碳化硅晶粒组成。所得粉末的平均粒径为~10 μm,最大粒径为30 μm。热压烧结陶瓷的相组成与合成粉体完全一致。所制得的致密材料具有高度的结构和化学均匀性,孔隙率为3.8%,硬度为19.8±0.4 GPa,强度为597±59 MPa,断裂韧性为8.8±0.4 MPa·m1/2。采用等离子炬测试(PTT)测定了高焓气流影响下材料的抗氧化性能。对试样的相组成和表面组织进行了研究。HP紧凑型在2150°С高温气流和5.6 MW/m2热流密度300 s下表现出出色的抵抗能力。等离子炬测试过程中,在HfB2-SiC陶瓷表面形成了一层30 ~ 40 μm厚的致密氧化保护层。该层由HfO2氧化物颗粒形成的支架组成,它们之间的空间填充了SiO2-B2O3无定形硼硅酸盐玻璃。在接近实际工况的环境下,对HfB2-SiC SHS复合粉末进行热压制备PTT低推力液体火箭发动机燃烧室模型衬套的实验样品。
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