Ghadami S, Taheri-Nassaj E, Baharvandi H R, Ghadami F
Department of Materials Science and Engineering, Tarbiat Modares University, PO Box 14115-143, Tehran, Iran.
School of Metallurgy and Materials, College of Engineering, University of Tehran, Tehran, Iran.
Sci Rep. 2021 May 10;11(1):9835. doi: 10.1038/s41598-021-88566-0.
HfB, Si, and activated carbon powders were selected to fabricate 0-30 vol% SiC reinforced HfB-based composite. Pressureless sintering process was performed at 2050 °C for 4 h under a vacuum atmosphere. Microstructural studies revealed that in situ SiC reinforcement was formed and distributed in the composite according to the following reaction: Si + C = SiC. A maximum relative density of 98% was measured for the 20 vol% SiC containing HfB composite. Mechanical investigations showed that the hardness and the fracture toughness of these composites were increased and reached up to 21.2 GPa for HfB-30 vol% SiC and 4.9 MPa.m for HfB-20 vol% SiC, respectively. Results showed that alpha-SiC reinforcements were created jagged, irregular, and elongated in shape which were in situ formed between HfB grains and filled the porosities. Formation of alpha-SiC contributed to improving the relative density and mechanical properties of the composite samples. By increasing SiC content, an enhanced trend of thermal conductivity was observed as well as a reduced trend for electrical conductivity.
选用HfB、Si和活性炭粉末来制备含0 - 30体积% SiC增强的HfB基复合材料。在真空气氛下于2050℃进行4小时的无压烧结工艺。微观结构研究表明,通过Si + C = SiC反应在复合材料中原位形成并分布了SiC增强相。对于含20体积% SiC的HfB复合材料,测得的最大相对密度为98%。力学性能研究表明,这些复合材料的硬度和断裂韧性均有所提高,对于含30体积% SiC的HfB复合材料,硬度达到21.2 GPa,对于含20体积% SiC的HfB复合材料,断裂韧性达到4.9 MPa·m。结果表明,α - SiC增强相呈锯齿状、不规则且细长的形状,在HfB晶粒之间原位形成并填充了孔隙。α - SiC的形成有助于提高复合材料样品的相对密度和力学性能。随着SiC含量的增加,观察到热导率呈增强趋势,而电导率呈降低趋势。