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In-situ carbide-reinforced CoCrFeMnNi high-entropy alloy matrix nanocomposites manufactured by selective laser melting: Carbon content effects on microstructure, mechanical properties, and deformation mechanism

机译:通过选择性激光熔化:通过选择性激光熔化制造的原位碳化物增强COCRFEMNI高熵合金基质纳米复合材料:碳含量对微观结构,机械性能和变形机制的影响

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The fabrication of high-entropy alloy (HEA) matrix nanocomposites by additive manufacturing (AM) is challenging due to that the control of defect-low sample having even distribution of reinforcement via AM is extremely hard. In this study, we investigated the effect of carbon content on the microstructure evolution, tensile properties, and deformation mechanisms of C-x(Co20Cr20Fe20Mn20Ni20)(100-x) (x = 0.5, 1.0, and 1.5 at.%) HEA matrix nanocomposites additively manufactured by selective laser melting (hereafter referred to as SLM-built C-HEAs). SLM-built C-HEAs showed epitaxial growth grains, dislocation networks, and nano-sized carbides. In addition, with an increase in carbon content, the number density of nano-sized carbides, and the average grain sizes and columnar widths increased. In addition, the strength, work hardening rate, and elongation of SLM-built C-HEAs were enhanced as the carbon content increased. Dislocation networks in the as-built samples hindered the dislocation motion in the early to later stages of deformation, thus leading to high back stresses in SLM-built C-HEAs. Deformation twins were also formed in the three samples, because the critical stress for twinning was similar to the flow stresses at an early stage of deformation of SLM-built C-HEAs. Further, the yield strengths of SLM-built C-HEAs were predicted using six strengthening mechanisms that considered the microstructural factors. Based on the above findings, we discussed the correlations between the microstructure, mechanical properties, and deformation mechanisms of SLM-built C-HEAs with different carbon contents.
机译:通过添加制造(AM)高熵合金(HEA)基质纳米复合材料的制造中是具有挑战性由于经由AM具有增强的均匀分布的缺陷低样品的控制是极其困难的。在这项研究中,我们调查的组织演变,拉伸性能和CX(Co20Cr20Fe20Mn20Ni20)(100-x)的变形机制碳含量的效果(X = 0.5,1.0,以及1.5原子%)HEA基质纳米复合材料添加制造通过选择性激光熔化(以下简称SLM-内置C-HEA与)。 SLM-内置C-HEA与表现外延生长的谷物,错位网络和纳米尺寸的碳化物。此外,与增加碳含量,纳米尺寸的碳化物的数密度,平均晶粒尺寸和柱状宽度增加。此外,SLM-内置C-HEA与的强度,加工硬化率,和伸长率提高作为碳含量增加。已建成的样品中的位错网阻碍位错运动的早期变形的后期阶段,从而导致在SLM-内置C-HEA与高背应力。也形成三个样品在变形孪晶,因为对于孪晶的临界应力是在SLM-内置C-HEA与变形的早期阶段类似于流动应力。此外,SLM-内置C-HEA与的屈服强度使用所考虑的微观结构因素6和强化机制进行了预测。基于上述发现,我们讨论的微观结构之间的机械性能的变形机制SLM-内置C-HEA与具有不同碳含量的相关性,和。

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