材料科学
非晶态金属
高熵合金
合金
原位
融合
原材料
选择性激光熔化
冶金
复合材料
微观结构
化学
有机化学
气象学
哲学
物理
语言学
作者
Sepide Hadibeik,Florian Spieckermann,Martin Nosko,F. Khodabakhshi,M. Heydarzadeh Sohi,J. Eckert
标识
DOI:10.1002/adem.202200764
摘要
In situ alloying and fabricating glassy structures through a layer‐by‐layer fashion approach are challenging but have high potential to develop novel‐graded materials. For the first time, this cost‐effective approach is applied to additive manufacturing (AM) of a Zr‐based bulk metallic glass (BMG) from high‐entropy alloys (HEAs). A newly developed composition of Zr 40 Al 20 Cu 20 Ti 20 is fabricated through laser powder bed fusion (LPBF). Process parameters are optimized within a wide range of laser power (50–200 W) as well as scanning speed (50–800 mm s −1 ). In all printed samples, microscopic and compositional examinations reveal no glass formation, but very fine grains and CuTi and AlTi nanocrystals. Some glassy transitions at the interfaces may be encouraged to occur with proper melting and mixing. However, the main reason for not obtaining a glassy matrix is the substantial proportion of unmelted Zr raw powder throughout the structure as spherical particles. Consequently, glass formation can be hindered by a considerable amount of compositional deviation. During LPBF, in situ alloying poses significant challenges to developing BMGs. Hence, the various stages of the process, including raw material specifications, laser settings, and process parameters, should be investigated further.
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