Niu Haiyan, Zhu Yu, You Ning, Wang Yangwei, Cheng Huanwu, Luo Dujun, Tang Mengying, Zhang Jiamin
Science and Technology on Complex and System Simulation Laboratory, Beijing 100072, China.
Beijing Institute of Aerospace Control Devices, Beijing 100039, China.
Materials (Basel). 2021 Sep 11;14(18):5227. doi: 10.3390/ma14185227.
BC/TiB ceramic composites reinforced with three size scales (average particle size: 7 μm, 500 nm, and 50 nm) of TiB were prepared by using a pressureless sintering furnace at 2100 °C under Ar atmosphere for 60 min. The results demonstrated that during the sintering process, TiB located on the boundaries between different BC grains could inhibit the grain growth which improved the mass transport mechanism and sintering driving force. A semi-coherent interface between BC and SiC was found, which is supposed to help to reduce the interface energy and obtain good mechanical properties of the BC/TiB ceramic composite. On sample cooling from sintering temperature to room temperature, the residual tensile stress fields formed at the TiB interfaces owning to the thermo-elastico properties mismatched, which might have contributed to increase the ability of the sample to resist crack propagation. The results showed that the relative density, Vickers hardness, and fracture toughness of the composite with 20 wt.% submicron and 10 wt.% nano-TiB were significantly improved, which were 98.6%, 30.2 GPa, and 5.47 MPa·m, respectively.
采用无压烧结炉在2100℃、氩气气氛下保温60分钟制备了用三种尺寸尺度(平均粒径:7μm、500nm和50nm)的TiB增强的BC/TiB陶瓷复合材料。结果表明,在烧结过程中,位于不同BC晶粒之间边界处的TiB能够抑制晶粒生长,这改善了质量传输机制和烧结驱动力。发现BC与SiC之间存在半共格界面,这应该有助于降低界面能并获得BC/TiB陶瓷复合材料良好的力学性能。在样品从烧结温度冷却至室温的过程中,由于热弹性性能不匹配,在TiB界面处形成了残余拉应力场,这可能有助于提高样品抵抗裂纹扩展的能力。结果表明,含有20wt.%亚微米TiB和10wt.%纳米TiB的复合材料的相对密度、维氏硬度和断裂韧性显著提高,分别为98.6%、30.2GPa和5.47MPa·m。