等轴晶
材料科学
成核
极限抗拉强度
延伸率
晶界
冶金
延展性(地球科学)
粒度
脉冲激光沉积
钛合金
图层(电子)
晶粒生长
复合材料
薄膜
微观结构
纳米技术
合金
蠕动
化学
有机化学
作者
Hui Chang,Min Jin,Zhonggang Sun,Wenshu Zhang,Hui Chang,Yuanfei Han
标识
DOI:10.1016/j.compositesb.2021.108667
摘要
A new laser melting deposition (LMD) method was employed for Ti6Al4V to stimulate the columnar to equiaxed transition (CET) via adding 1 wt% ~ 5 wt% nano-sized B4C particles. Results indicate that the grains were signifcantly refined from 600 μm to 11 μm with the increasing content of B4C; When the B4C content was 3 wt%, the B4C/Ti6Al4V composite achieved CET; TiB and TiC reinforcements were produced by in-situ reaction between the Ti6Al4V and B4C, which not only precipitated at the grain boundaries to restrict the grain growth, but also acted as nucleation sites to accelerate the non-spontaneous nucleation of β grains to achieve fine grain strengthening. Tensile tests show that adding 3 wt% B4C particles results in a signifcantly increased yield strength (1235 MPa) and tensile strength (1310 MPa) and maintains a certain amount of ductility (2.4% elongation). And the epitaxial growth of β grains in the underlying deposited layer and the CET mechanism with successive layer-upon-layer deposition were analyzed.
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