材料科学
微观结构
纹理(宇宙学)
复合材料
变形(气象学)
融合
延展性(地球科学)
位错
打滑(空气动力学)
高熵合金
冶金
蠕动
语言学
哲学
物理
图像(数学)
人工智能
计算机科学
热力学
作者
Yanfang Liu,Jie Ren,Shuai Guan,Chenyang Li,Yin Zhang,Saideep Muskeri,Zhiyuan Liu,Dunji Yu,Yan Chen,Ke An,Yang Cao,Wei Liu,Yuntian Zhu,Wei Chen,Sundeep Mukherjee,Ting Zhu,Wen Chen
出处
期刊:Acta Materialia
[Elsevier]
日期:2023-03-27
卷期号:250: 118884-118884
被引量:49
标识
DOI:10.1016/j.actamat.2023.118884
摘要
CoCrFeMnNi high-entropy alloys (HEAs) are additively manufactured by laser directed energy deposition (L-DED) and laser powder bed fusion (L-PBF) processes. Comparative studies are conducted for the microstructures and deformation mechanisms of L-DED and L-PBF samples. In both types of samples, highly heterogeneous microstructures are formed, consisting of columnar grains, solidification cells, and dislocation networks. However, substantial differences are measured in the crystallographic texture, cell size, and elemental distribution. Deeper melt pools in the L-DED samples promote a mixed crystallographic texture of <101>/<111> as opposed to <001> along the build direction in the L-PBF samples. The <101>/<111> texture elevates the flow stresses and facilitates the activation of deformation twins in the L-DED samples. Moreover, their larger solidification cell sizes and associated chemical segregation across cell walls increase the dislocation storage capability and resistance to dislocation motion, leading to profuse planar slip bands and microbands during plastic deformation. The enhanced plastic deformation capabilities in the L-DED samples give rise to more sustained strain hardening and thus higher ductility compared to the L-PBF samples. Our work not only provides fundamental insights into the deformation mechanisms of additively manufactured HEAs, but also underscores the critical impact of processing conditions on the solidification microstructure and material design by additive manufacturing.
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