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
学科门类:工学
一级学科:材料科学与工程
文献类型:J
卷号:855
关键字:Hot isostatic pressing (HIP);Cu–15Ni–8Sn alloy;Microstructural evolution;Mechanical properties;Sn segregation;Discontinuous precipitation (DP)
DOI码:10.1016/j.msea.2022.143866
发表时间:2022-08-28
影响因子:6.044
摘要:Sn macro-segregation and coarse grains easily occur in the conventional casting process of the Cu–15Ni–8Sn alloy with a high Sn content. Here, hot isostatic pressing (HIP), an advanced powder metallurgy technique, was introduced to explore feasibility in alleviating or eliminating such defects. The gas–atomized powder with high homogeneity of composition was used, which was solidified rapidly. The microstructural evolution, mechanical properties, deformation mechanisms and strengthening mechanisms were deeply and systematically revealed and discussed. Nearly fully dense samples were fabricated by HIP with no Sn macro-segregation, and simultaneous strength-plasticity enhancement was obtained. The content of harmful discontinuous precipitation colonies was controlled to only ∼3.11 vol%. This was attributed to the fine grain size of the powder and the preferential complete recrystallization process during the HIP. That is, the γ nucleation sites were occupied by numerous grain boundaries provided by fine grains, and the driving force of γ growth was consumed by recrystallization. Furthermore, enhanced mechanical properties were related to the Sn macro-segregation suppression, grain refinement (∼11.0 μm), dislocation density continuous increase, and dispersion distribution of γ precipitates, etc. These encouraging findings validate the advantages and potential of HIP in the fabrication of Cu–15Ni–8Sn alloy with enhanced mechanical properties for structural applications.
发布期刊链接:https://doi.org/10.1016/j.msea.2022.143866