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具有高抗弯强度的连续碳化硅骨架增强反应烧结碳化硼复合材料

Continuous SiC Skeleton-Reinforced Reaction-Bonded Boron Carbide Composites with High Flexural Strength.

作者信息

Xia Qian, Sun Shihao, Ye Jun, Zhang Cuiping, Ru Hongqiang

机构信息

Institute of Advanced Ceramics, School of Materials Science and Engineering, Northeastern University, Shenyang 110004, China.

Key Laboratory for Anisotropy and Texture of Materials (MOE), Northeastern University, Shenyang 110004, China.

出版信息

Materials (Basel). 2023 Jul 21;16(14):5153. doi: 10.3390/ma16145153.

Abstract

Reaction-bonded boron carbide (RBBC) composites have broad application prospects due to their low cost and net size sintering. The microstructure, reaction mechanism of boron carbide with molten silicon (Si), and mechanical properties have been substantially studied. However, the mechanical properties strengthening mechanism of reaction-bonded boron carbide composites are still pending question. In this study, dense boron carbide ceramics were fabricated by liquid Si infiltration of BC-C preforms with dispersed carbon black (CB) as the carbon source. Polyethyleneimine (PEI) with a molecular weight of 1800 was used as the dispersant. CB powders uniformly distributed around boron carbide particles and efficiently protected them from reacting with molten Si. The uniformly distributed CB powders in situ reacted with molten Si and formed uniformly distributed SiC grains, thus forming a continuous boron carbide-SiC ceramic skeleton. Meanwhile, the Si content of the composites was reduced. Using PEI-dispersed CB powders as additional carbon source, the composites' flexural strength, fracture toughness, and Vickers hardness reach up to 470 MPa, 4.6 MPa·m, and 22 GPa, which were increased by 44%, 15%, and 10%, respectively. The mechanisms of mechanical properties strengthening were also discussed.

摘要

反应烧结碳化硼(RBBC)复合材料因其低成本和净尺寸烧结而具有广阔的应用前景。碳化硼与熔融硅(Si)的微观结构、反应机理以及力学性能已得到大量研究。然而,反应烧结碳化硼复合材料的力学性能强化机制仍是一个悬而未决的问题。在本研究中,以分散的炭黑(CB)为碳源,通过对BC-C预制体进行液态硅浸渗制备了致密的碳化硼陶瓷。使用分子量为1800的聚乙烯亚胺(PEI)作为分散剂。CB粉末均匀分布在碳化硼颗粒周围,有效地保护它们不与熔融硅发生反应。均匀分布的CB粉末与熔融硅原位反应,形成均匀分布的SiC晶粒,从而形成连续的碳化硼-SiC陶瓷骨架。同时,复合材料中的Si含量降低。使用PEI分散的CB粉末作为额外碳源,复合材料的抗弯强度、断裂韧性和维氏硬度分别达到470 MPa、4.6 MPa·m和22 GPa,分别提高了44%、15%和10%。还讨论了力学性能强化的机制。

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