用激光直接生长法制备金属基复合材料的结构和性能研究

V. Promakhov, A. Matveev, N. Schulz, V. Bakhmat, F. Dronov, Timur E. Turanov
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引用次数: 0

摘要

由于其机械性能,铬镍铁合金被证明是一种功能材料,可以在高温、化学腐蚀性环境和高负荷下使用。增材技术的发展揭示了这些合金作为增材制造机器的初始粉末原料的潜力。本文研究了金属基复合材料在激光直接生长技术中的应用。采用自传播高温合成技术制备复合材料。研究结果表明,金属基材料在直接激光生长技术中的应用可以提高陶瓷颗粒的润湿性。改善了颗粒-基体边界质量,降低了孔隙率,提高了颗粒在基体中分布的均匀性。所得材料的组织为Inconel 625基体合金和TiB2陶瓷夹杂物。陶瓷颗粒的平均尺寸小于300纳米。结果表明,在Inconel 625粉末中添加5 wt%的NiTi-TiB2复合金属基SHS粉末,可使材料的显微硬度比纯Inconel 625提高1.5倍。与纯Inconel 625合金试样相比,材料的极限强度提高到920mpa,塑性降低15%。
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A study of the structure and properties of the metal matrix composite materials obtained by a method of direct laser growing
Due to mechanical properties, Inconel family alloys are proven to be functional materials that are used at elevated temperatures in chemically aggressive environments and under high loads. Development of additive technologies has revealed a potential of these alloys as an initial powder raw material for additive manufacturing machines. In this work, the application of metal matrix composite materials in a direct laser growing technology is studied. The technology of self-propagating high-temperature synthesis is used to manufacture the composite material. The study results show that the application of metal matrix materials in the technology of direct laser growing allows one to increase wettability of ceramic particles by a matrix metal. As a result, the quality of particle-matrix borders is improved, the porosity is decreased, and the uniformity of the distribution of particles in the matrix is increased. The structure of the obtained materials is represented by Inconel 625 matrix alloy and inclusions of TiB2 ceramics. The average size of the ceramic particles is less than 300 nm. It is shown that adding to Inconel 625 powder of a composite metal matrix SHS powder of NiTi-TiB2 in an amount of 5 wt% leads to an increase in the microhardness of the material by 1.5 times relative to the materials obtained from pure Inconel 625. At the same time, there is an increase in the ultimate strength of the materials up to 920 MPa and a decrease in the ductility by 15% relative to the samples made of pure Inconel 625 alloy.
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