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Microstructures and Compressive Properties of Al Matrix Composites Reinforced with Bimodal Hybrid In-Situ Nano-/Micro-Sized TiC Particles

机译:双峰杂化原位纳米/微米TiC颗粒增强Al基复合材料的组织和压缩性能

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摘要

Bimodal hybrid in-situ nano-/micro-size TiC/Al composites were prepared with combustion synthesis of Al-Ti-C system and hot press consolidation. Attempt was made to obtain in-situ bimodal-size TiC particle reinforced dense Al matrix composites by using different carbon sources in the reaction process of hot pressing forming. Microstructure showed that the obtained composites exhibited reasonable bimodal-sized TiC distribution in the matrix and low porosity. With the increasing of the carbon nano tube (CNT) content from 0 to 100 wt. %, the average size of the TiC particles decreases and the compressive strength of the composite increase; while the fracture strain increases first and then decreases. The compressive properties of the bimodal-sized TiC/Al composites, especially the bimodal-sized composite synthesized by Al-Ti-C with 50 wt. % CNTs as carbon source, were improved compared with the composites reinforced with single sized TiC. The strengthening mechanism of the in-situ bimodal-sized particle reinforced aluminum matrix composites was revealed.
机译:通过Al-Ti-C体系的燃烧合成和热压固结,制备了双峰混合原位纳米/微米级TiC / Al复合材料。尝试通过在热压成型反应过程中使用不同的碳源,获得原位双峰尺寸的TiC颗粒增强致密Al基复合材料。显微组织表明,所得复合材料在基体中表现出合理的双峰尺寸TiC分布,且孔隙率低。随着碳纳米管(CNT)含量从0到100 wt。 %,TiC颗粒的平均尺寸减小,并且复合材料的抗压强度增加。断裂应变先增大后减小。双峰尺寸的TiC / Al复合材料的压缩性能,特别是Al-Ti-C与50 wt。%的Al / Ti-C合成的双峰尺寸的复合材料。与用单一尺寸的TiC增强的复合材料相比,%CNTs作为碳源得到了改善。揭示了原位双峰尺寸颗粒增强铝基复合材料的强化机理。

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