因科镍合金
材料科学
高温合金
多孔性
微观结构
合金
基质(水族馆)
沉积(地质)
激光功率缩放
功率密度
复合材料
激光器
冶金
光学
功率(物理)
生物
海洋学
物理
地质学
古生物学
量子力学
沉积物
作者
Prveen Bidare,Aldi Mehmeti,Amaia Jiménez,Sheng Li,Chris Garman,Stefan Dimov,Khamis Essa
标识
DOI:10.1007/s00170-022-09289-8
摘要
Abstract Nickel-based alloys are known as non-weldable materials due to their complex characteristics. Consequently, additive manufacturing of these alloys is particularly challenging. In this paper, the influence of process parameters on the porosity, crack formation and microstructure of additively manufactured CM247LC nickel-based alloy is analysed. The feasibility of the direct laser deposition (DLD) process to manufacture crack-free and low-porosity CM247LC samples is studied. CM247LC samples were built on Inconel 718 that has similar chemical composition, to form hybrid superalloy parts. It was shown that crack-free and high-density CM247LC samples can be obtained through DLD without significant substrate preheating for certain parameter combinations: laser power in the range of 800–1000 W and powder feed rates between 6 and 8 g/min. High-cost and complex preheating was avoided that was commonly reported as necessary to achieve similar densities. For hybrid parts, a large beam diameter and slow scan speeds were employed to achieve optimal conditions as it was evident from the achieved bonding between the Inconel 718 substrate and the deposited layers. It was observed that good bonding between the two materials can be obtained with laser power values between 800 and 1000 W, scanning speed higher than 300 mm/min and powder flow rates of 6–8 g/min.
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