过冷
悬浮
成核
材料科学
磁悬浮
工作(物理)
热力学
合金
液态金属
水准点(测量)
机械工程
机械
化学物理
冶金
物理
磁铁
地质学
工程类
大地测量学
作者
Markus Mohr,Yue Dong,G. P. Bracker,R. W. Hyers,Douglas M. Matson,Robert Zboray,Ruggero Frison,Alex Dommann,A. Neels,Xiao Xiao,Jürgen Brillo,Ralf Busch,R. Novaković,P. Srirangam,H.‐J. Fecht
标识
DOI:10.1038/s41526-023-00281-4
摘要
Transitions from the liquid to the solid state of matter are omnipresent. They form a crucial step in the industrial solidification of metallic alloy melts and are greatly influenced by the thermophysical properties of the melt. Knowledge of the thermophysical properties of liquid metallic alloys is necessary in order to gain a tight control over the solidification pathway, and over the obtained material structure of the solid. Measurements of thermophysical properties on ground are often difficult, or even impossible, since liquids are strongly influenced by earth's gravity. Another problem is the reactivity of melts with container materials, especially at high temperature. Finally, deep undercooling, necessary to understand nucleus formation and equilibrium as well as non-equilibrium solidification, can only be achieved in a containerless environment. Containerless experiments in microgravity allow precise benchmark measurements of thermophysical properties. The electromagnetic levitator ISS-EML on the International Space Station (ISS) offers perfect conditions for such experiments. This way, data for process simulations is obtained, and a deeper understanding of nucleation, crystal growth, microstructural evolution, and other details of the transformation from liquid to solid can be gained. Here, we address the scientific questions in detail, show highlights of recent achievements, and give an outlook on future work.
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