Revealing the Mechanisms for the Nucleation and Formation of Equiaxed Grains in Commercial Purity Aluminum by Fluid-Solid Coupling Induced by a Pulsed Magnetic Field

J. Jie, S. Yue, J. Liu, D. StJohn, Y. Zhang, E. Guo, T. Wang, T.J. Li
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引用次数: 20

Abstract

This study considers the factors controlling the grain structure of commercially pure aluminium when a Pulsed Magnetic Field (PMF) is applied during solidification. It is revealed that PMF of pure metal forms equiaxed grains by two different nucleation and growth mechanisms depending on the casting conditions. One mechanism is nucleation of the columnar grains that grow into a shell on the walls of the mold before PMF is applied and once applied fluid-solid coupling develops due to the Lorenz force. Depending on the shell thickness, this fluid-solid coupling detaches the columnar shell or, for thicker shells, only the top few millimeters of the shell from the mold wall. The detached shell is then fragmented into large blocky grains due to a lower melting point iron-rich liquid phase on the grain boundaries. The other mechanism occurs on the mold wall when PMF is applied from above the melting point or on the exposed mold wall after detachment of the initially formed solidified shell as in the case above. In these conditions copious nucleation occurs on the mold wall and these fine grains are detached by pulses occurring every few milliseconds creating a bimodal structure of refined grains between the much fewer large blocky grains. The optimal condition for uniform refinement is when PMF is applied from above the melting point ensuring that a refined equiaxed grain structure forms throughout the casting.
揭示脉冲磁场诱导的流固耦合作用下工业纯铝等轴晶形核形成机制
本文研究了在脉冲磁场作用下铝的凝固过程中控制其晶粒结构的因素。结果表明,在不同的铸造条件下,纯金属PMF通过两种不同的形核和长大机制形成等轴晶粒。一种机制是柱状颗粒的成核,在施加PMF之前,柱状颗粒在模具壁上生长成壳,一旦施加,由于洛伦兹力,流固耦合就会发生。根据外壳厚度的不同,这种流固耦合可以分离柱状外壳,或者对于较厚的外壳,仅将外壳的顶部几毫米与模具壁分离。由于晶界上熔点较低的富铁液相,分离的壳随后破碎成大块的块状颗粒。另一种机制发生在模壁上,当PMF从熔点以上施加时,或在剥离最初形成的固化壳后暴露在模壁上,如上述情况。在这些条件下,模壁上发生了大量的形核,这些细晶粒通过每隔几毫秒发生一次的脉冲分离,在数量少得多的大块晶粒之间形成了细晶粒的双峰结构。均匀细化的最佳条件是从熔点以上施加PMF,确保在整个铸件中形成精细的等轴晶粒结构。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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