Borisov Artem, Shamshurin Aleksey, Kovalev Mark, Popovich Anatoliy, Sufiiarov Vadim
Institute of Machinery, Materials, and Transport, Peter the Great St. Petersburg Polytechnic University, 195251 St. Petersburg, Russia.
Institute of Advanced Manufacturing Technologies, Peter the Great St. Petersburg Polytechnic University, 195251 St. Petersburg, Russia.
Materials (Basel). 2024 Oct 16;17(20):5050. doi: 10.3390/ma17205050.
This paper investigated the influence of titanium carbide (TiC) content on the processing, microstructure, mechanical and tribological properties of Inconel 718/TiC composites produced by binder jetting additive manufacturing. It was found that increasing the amount of TiC required an increase of the drying intensity during printing due to a decrease in the thermal conductivity of the powder mixture. The sintering process also depended on the TiC content. The most optimal modes were 1270 °C for 10 h for samples with 0 and 3% TiC and 1280 °C for 5 h for samples with 5 and 10% TiC. The hardness of the materials increased as the proportion of reinforcement increased. The best tensile properties, also at high temperatures, were possessed by samples with 3% TiC, showing high strength and, in addition, satisfactory plasticity. The maximum wear resistance was achieved by the composite material containing 5% TiC.
本文研究了碳化钛(TiC)含量对通过粘结剂喷射增材制造生产的Inconel 718/TiC复合材料的加工、微观结构、力学和摩擦学性能的影响。研究发现,由于粉末混合物的热导率降低,增加TiC的含量需要在打印过程中提高干燥强度。烧结过程也取决于TiC的含量。最优化的模式是,含0%和3%TiC的样品在1270°C下烧结10小时,含5%和10%TiC的样品在1280°C下烧结5小时。材料的硬度随着增强相比例的增加而提高。含3%TiC的样品具有最佳的拉伸性能,即使在高温下也是如此,表现出高强度,此外,还具有令人满意的塑性。含5%TiC的复合材料具有最大的耐磨性。