铀基非晶复合材料的相分离与凝固序列研究
收稿日期: 2020-12-09
修回日期: 2021-05-05
网络出版日期: 2021-06-29
基金资助
国家重点研发计划项目(2016YFB0700403);国家自然科学基金项目(51701191);基础加强计划项目(JCJQ20190415);中国工程物理研究院规划项目(TCGH071601)
Phase Separation and Solidification Sequence of Uranium-Based Amorphous Composites
Received date: 2020-12-09
Revised date: 2021-05-05
Online published: 2021-06-29
Supported by
National Key Research and Development Program of China(2016YFB0700403);National Natural Science Foundation of China(51701191);Strengthening Fundamental Foundation Project(JCJQ20190415);Planning Foundation of China Academy of Engineering Physics(TCGH-071601)
张雷 , 施韬 , 黄火根 , 张培 , 张鹏国 , 吴敏 , 法涛 . 铀基非晶复合材料的相分离与凝固序列研究[J]. 金属学报, 2022 , 58(2) : 225 -230 . DOI: 10.11900/0412.1961.2020.00497
The microstructure and composition distribution of U30.03Zr28.83Ti9.66Ni7.00Cu8.75Be15.73 uranium-based amorphous composites were characterized using TEM and SEM in this study. The composite is a biphasic composite of α-U and amorphous phases dominated by zirconium and titanium. Both phases form a multilevel nested structure in the form of spherical precipitated phases. During cooling of the composite material, the phase separation of uranium and copper phases dominated by the nucleation-growth mechanism occurs first, and the other alloying elements are then preferably distributed according to the mixing enthalpy. The subsequent solidification is a two-step process: α-U solidification and amorphous transformation. A special structure with a transition layer is formed in the area where the amorphous phase is the spherical precipitated phase. These results provide new insights for the composition design and heat treatment adjustment of amorphous composite materials.
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