Yakang Kong, Wang Cheng, Chen Xiancong, Qu Yi, Yu Jiabo, Ju Haijuan, Yilei Xiao
Fundamental Department, Air Force Engineering University, Xi'an 710051, China.
Materials (Basel). 2023 Aug 7;16(15):5495. doi: 10.3390/ma16155495.
Mo-Si-B alloys are a crucial focus for the development of the next generation of ultra-high-temperature structural materials. They have garnered significant attention over the past few decades due to their high melting point and superior strength and oxidation resistance compared to other refractory metal alloys. However, their low fracture toughness at room temperature and poor oxidation resistance at medium temperature are significant barriers limiting the processing and application of Mo-Si-B alloys. Therefore, this review was carried out to compare the effectiveness of doped metallic elements and second-phase particles in solving these problems in detail, in order to provide clear approaches to future research work on Mo-Si-B alloys. It was found that metal doping can enhance the properties of the alloys in several ways. However, their impact on oxidation resistance and fracture toughness at room temperature is limited. Apart from B-rich particles, which significantly improve the high-temperature oxidation resistance of the alloy, the doping of second-phase particles primarily enhances the mechanical properties of the alloys. Additionally, the application of additive manufacturing to Mo-Si-B alloys was discussed, with the observation of high crack density in the alloys prepared using this method. As a result, we suggest a future research direction and the preparation process of oscillatory sintering, which is expected to reduce the porosity of Mo-Si-B alloys, thereby addressing the noted issues.
钼硅硼合金是下一代超高温结构材料发展的关键重点。在过去几十年里,它们因其高熔点以及与其他难熔金属合金相比具有卓越的强度和抗氧化性而备受关注。然而,它们在室温下的低断裂韧性以及在中温下的抗氧化性较差是限制钼硅硼合金加工和应用的重大障碍。因此,开展本综述以详细比较掺杂金属元素和第二相粒子在解决这些问题方面的有效性,以便为未来钼硅硼合金的研究工作提供明确的方法。研究发现,金属掺杂可以通过多种方式提高合金的性能。然而,它们对室温下的抗氧化性和断裂韧性的影响有限。除了富硼粒子能显著提高合金的高温抗氧化性外,第二相粒子的掺杂主要增强合金的力学性能。此外,还讨论了增材制造在钼硅硼合金中的应用,观察到用这种方法制备的合金中裂纹密度较高。因此,我们提出了未来的研究方向以及振荡烧结的制备工艺,有望降低钼硅硼合金的孔隙率,从而解决上述问题。