Microstructure and mechanical properties of heterogeneous double fibers reinforced TiAl composites

Mi Zhou, Rui Hu, Jinguang Li, Keren Zhang, Xian Luo

科研成果: 期刊稿件文章同行评审

摘要

Nb fibers with excellent plastic, toughness and similar coefficient of thermal expansion with TiAl alloy have extremely advantageous in toughening TiAl alloy, which could be a potential structural material to satisfy the service requirements in space industry. But the unstable interfacial reaction between Nb fiber/TiAl matrix, and limited bearing capacity of reinforced fiber hinder a significant improvement in performance of Nbf/TiAl composite. Therefore, in this paper, the ceramic coating was used to prevent the interfacial reaction between Nb fibers and TiAl matrix, and the high-strength Al2O3 fibers were introduced to offset the insufficient carrying capacity for further strengthening and toughening of Nbf/TiAl composite. By combining the experiments and the finite element simulation, the formation mechanism of interfacial microstructure and collaborative toughening mechanism of (Nb + Al2O3)f/TiAl composite were elucidated. The results show that the ceramic coating on the Nb fiber prevents the interfacial reaction, and repairs the interfacial defects between Nb fiber and TiAl matrix. The combination between Al2O3 fiber and TiAl matrix is strong, with no defects at the interface. The fracture toughness of the (coated-Nb + Al2O3)f/TiAl composite reaches 20.87 MPa·m, which increased by 55 % than Nbf/TiAl composite, and the improvement can be attributed to two reasons. For one thing, the coating on Nb fiber increases the interfacial bonding strength between Nb fiber and TiAl matrix, which effectively improves interfacial loading transfer capability, as well as promotes the crack deflection. The stress on coated-Nb fiber has enhanced by 75 % than before, and crack propagation length has obvious increase. The second reason is resulted from the Al2O3 fibers, which are the main bearing structure, and the stress is 1.8 times of the TiAl matrix.

源语言英语
页(从-至)291-304
页数14
期刊Journal of Manufacturing Processes
136
DOI
出版状态已出版 - 28 2月 2025

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