Fayed Eslam M, Saadati Mohammad, Shahriari Davood, Brailovski Vladimir, Jahazi Mohammad, Medraj Mamoun
Department of Mechanical, Industrial and Aerospace Engineering, Concordia University, 1515 Sainte-Catherine Street West, Montreal, QC, H3G 2W1, Canada.
Department of Mechanical Engineering, École de technologie supérieure, 1100 Notre-Dame Street West, Montreal, QC, H3C 1K3, Canada.
Sci Rep. 2021 Jan 21;11(1):2020. doi: 10.1038/s41598-021-81618-5.
In the present study, the effect of homogenization and solution treatment times on the elevated-temperature (650 °C) mechanical properties and the fracture mechanisms of Inconel 718 (IN718) superalloy fabricated by laser powder bed fusion (LPBF) was investigated. Homogenization times between 1 and 7 h at 1080 °C were used, while solution treatments at 980 °C were performed in the range from 15 to 60 min. The as-printed condition showed the lowest strength but the highest elongation to failure at 650 °C, compared to the heat-treated conditions. After heat treatments, the strength of the IN718 alloy increased by 20.3-31% in relation to the as-printed condition, depending on the treatment time, whereas the ductility decreased significantly, by 67.4-80%. Among the heat treatment conditions, the 1 h homogenized conditions at 1080 °C (HSA1 and HSA2) exhibited the highest strength and ductility due to the combined effects of the precipitation hardening and sub-structural changes. Further increases in the homogenization time to 4 and 7 h led to a decrease in the strength and significant ductility loss of the LPBF IN718 due to the considerable annihilation of the dislocation tangles and a greater precipitation of coarse MC carbide particles. Furthermore, it was found that the solution treatment duration had a crucial influence on the mechanical properties at 650 °C due to the increase in the grain boundary strength through the pinning effect of the intergranular δ-phase. In addition, the fracture mechanism of the LPBF IN718 was found to be dependent on the heat treatment time. Finally, this investigation provides a map that summarizes the effect of homogenization and solution treatment times on the high-temperature mechanical behavior of LPBF IN718 by relating it to the corresponding microstructural evolution. This effort strives to assist in tailoring the mechanical properties of LPBF IN718 based on the design requirements for some specific applications.
在本研究中,研究了均匀化和固溶处理时间对激光粉末床熔融(LPBF)制备的Inconel 718(IN718)高温合金在650°C下的力学性能和断裂机制的影响。采用了在1080°C下1至7小时的均匀化时间,同时在980°C下进行15至60分钟的固溶处理。与热处理状态相比,打印态在650°C时强度最低,但断裂伸长率最高。热处理后,根据处理时间的不同,IN718合金的强度相对于打印态提高了20.3 - 31%,而延展性显著下降,下降了67.4 - 80%。在热处理条件中,由于沉淀硬化和亚结构变化的综合作用,1080°C下1小时的均匀化处理条件(HSA1和HSA2)表现出最高的强度和延展性。将均匀化时间进一步增加到4小时和7小时,由于位错缠结的大量湮灭和粗大MC碳化物颗粒的大量析出,导致LPBF IN718的强度降低和延展性显著损失。此外,由于晶界δ相的钉扎作用提高了晶界强度,发现固溶处理持续时间对650°C下的力学性能有至关重要的影响。此外,发现LPBF IN718的断裂机制取决于热处理时间。最后,本研究提供了一个图谱,通过将均匀化和固溶处理时间与相应的微观结构演变相关联,总结了它们对LPBF IN718高温力学行为的影响。这项工作致力于根据某些特定应用的设计要求,协助定制LPBF IN718的力学性能。