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首页> 外文期刊>Materials Science and Engineering >Microstructure transformation and mechanical properties of TiC-TiB_2 ceramics prepared by combustion synthesis in high gravity field
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Microstructure transformation and mechanical properties of TiC-TiB_2 ceramics prepared by combustion synthesis in high gravity field

机译:高重力场燃烧合成制备的TiC-TiB_2陶瓷的组织转变和力学性能

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摘要

By conducting combustion synthesis in high-gravity field, the solidified TiC-TiB2 with a series of TiB_2 mole content were prepared through adjusting the mole ratio of C and B elements in combustion system. XRD, FESEM and EDS results showed that with increasing TiB_2 mole content, the matrix of TiC-TiB_2 composite ceramics transformed a number of fine TiB2 platelets from the TiC spherical grains, and fine-grained even ultrafine-grained microstructures were achieved in solidified TiC-50%TiB_2 due to the coupled quasi-eutectic growth under rapid solidification of the ceramic. Properties showed that relative density, Vickers hardness and flexural strength of TiC-50%TiB_2 simultaneously reached the maximum values of 98.7%, 21.5 ± 1.5 GPa and 860 ± 35 MPa, whereas the maximum fracture toughness of 13.5 ± 1.5 MPa m~(0.5) was achieved in TiC-66.7%TiB_2. FESEM fractography analyses of the solidified ceramics indicated that the highest flexural strength achieved in TiC-50%TiB_2 benefits from not only the lowest content of Al_2O_3 inclusions and Cr-W-Ti borides, but also the achievements of fine-grained microstructure in the near-full-density ceramic and high fracture toughness contributed from a intensive coupled mechanism of crack deflection, crack-bridging and pull-out by a large number of fine TiB_2 platelets.
机译:通过在高重力场中进行燃烧合成,通过调节燃烧系统中C和B元素的摩尔比,制备了一系列TiB_2摩尔含量的凝固TiC-TiB2。 XRD,FESEM和EDS结果表明,随着TiB_2摩尔含量的增加,TiC-TiB_2复合陶瓷基体从TiC球形晶粒转变为许多细小的TiB2薄片,并在凝固的TiC-中获得了细晶粒甚至超细晶粒的组织。 50%TiB_2是由于在陶瓷快速凝固下耦合的准共晶生长所致。性能表明,TiC-50%TiB_2的相对密度,维氏硬度和抗弯强度同时达到最大值98.7%,21.5±1.5 GPa和860±35 MPa,而最大断裂韧性为13.5±1.5 MPa m〜(0.5 )是在TiC-66.7%TiB_2中获得的。凝固陶瓷的FESEM断口分析表明,在TiC-50%TiB_2中获得的最高弯曲强度不仅得益于最低的Al_2O_3夹杂物和Cr-W-Ti硼化物的含量,而且还得益于附近细晶粒组织的成就。全密度陶瓷和高断裂韧性归因于大量细小的TiB_2薄片的裂纹偏转,裂纹桥接和拉拔的强烈耦合机制。

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