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Development and characterization of 316L/Inconel625 functionally graded material fabricated by laser direct metal deposition

机译:通过激光直接金属沉积制造的316L / Inconel625的开发和表征316L / Inconel625的功能渐变材料

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摘要

Functionally graded material (FGM) is a composite with innovative structure and function, which has the good overall performance and meets working requirements in harsh environments. FGM has been widely used in aerospace, biological, nuclear, and photoelectric engineering fields. Laser direct metal deposition (LDMD) is an advanced manufacturing method that is excellent at fabricating objects with optimized geometries and minimizing weight using far less material and energy. In this paper, FGM with the constitution varying from 100% 316L stainless steel to 100% Inconel625 alloy was successfully fabricated using LDMD technology. Grain morphology, composition, mechanical properties and abrasive resistance were obtained to investigate the microstructure and mechanical performance of FGM. With the Inconel625 content increasing, primary dendrite arm spacing gradually increased, and white second phases began to precipitate along dendrites boundary when the content of Inconel625 exceeded 80%. Micro-hardness gradually increased from 216.47 HV at the bottom of FGM to 355.7 HV at the top. With micro-hardness and the hard phase volume increasing, the wear rate of FGM declined and the wear resistance was improved. The fracture element analysis showed that a large number of small and uneven distributed second phases led to the graded material fracture and the tensile fracture mechanism was of typical micro-porous aggregation toughness fracture.
机译:功能梯度材料(FGM)是具有创新结构和功能的复合材料,具有良好的整体性能,并满足恶劣环境中的工作要求。 FGM已广泛用于航空航天,生物,核和光电工程领域。激光直接金属沉积(LDMD)是一种先进的制造方法,其在制造具有优化几何形状的物体和使用远更少的材料和能量的重量最小化。本文使用LDMD技术成功地制造了从100%316L不锈钢到100%Inconel625合金的构造变化的FGM。获得谷物形态,组成,机械性能和耐磨性,以研究FGM的微观结构和机械性能。随着Inconel625内容的增加,初级枝晶臂间距逐渐增加,当Inconel625的含量超过80%时,白色第二阶段开始沿树枝状边界沉淀。微硬度从FGM底部的216.47 HV逐渐增加到顶部355.7HV。通过微硬度和硬相体积增加,FGM的磨损率下降,耐磨性得到改善。断裂元件分析表明,大量的小和不均匀分布的第二阶段导致分级材料骨折,拉伸骨折机理是典型的微孔聚集韧性骨折。

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