个人信息
Personal information
教授 博士生导师 硕士生导师
性别:男
在职信息:在职
所在单位:材料科学与工程学院
学历:研究生(博士)毕业
学位:博士学位
毕业院校:华中科技大学
学科:材料加工工程学术荣誉:
2016 华中学者
曾获荣誉:
2017 华中科技大学学术前沿青年团队负责人
2017 黄鹤英才“专项”计划
2016 江苏省双创人才
2016 华中科技大学师德三育人奖
论文类型:期刊论文
发表刊物:Materials Science and Engineering: A
收录刊物:SCI
文献类型:J
关键字:High-entropy alloys;Laser powder bed fusion (LPBF);Microstructure;Mechanical properties;Ni3Ti nanophase
发表时间:2023-09-01
影响因子:6.4
摘要:In this study, CoCrFeNiTi0.3 high-entropy alloy (HEA) was designed and prepared via the in-situ laser powder bed fusion (LPBF) of CoCrFeNi and Ti powders to improve the undesirable tensile strength of CoCrFeNi HEA. With the introduction of Ti, semi-elliptic melt pool characteristics became blurred with the concentration of Ti at melt pool boundaries, which was correlated with a Marangoni-convection-driven chaotic flow and insufficient diffusion of Ti during the rapid melting/solidification process of LPBF. During the solidification process, Ti acted as nucleation sites and triggered a columnar-to-equiaxed transition of grains in the printed CoCrFeNiTi0.3 HEA. Partial diffused Ti combined with Ni to form nanoscale Ni3Ti precipitates because Ti and Ni had the most negative mixing enthalpy compared with Co, Cr, and Fe. The nanoscale Ni3Ti precipitates were located at the sub-grains and showed a network structure. This was associated with the sub-grain boundary segregation driven by severe lattice distortion. The yield strength of the Ti-modified CoCrFeNi was enhanced from 509 MPa to 796 MPa, which suggested a 56.4% increase obtained by adding a small amount of Ti. The theoretical calculation was deduced to validate the strengthening mechanism mainly stemming from dislocation hardening and precipitation hardening. This study is anticipated to provide insights into the enhancement in the mechanical performance of HEA through composition modification via the in-situ alloying during LPBF.
发布期刊链接:https://doi.org/10.1016/j.msea.2023.145649