Description of grain growth in metastable materials prepared by non-equilibrium solidification

Z. Chen, F. Liu, K. Zhang, Y. Z. Ma, G. C. Yang, Y. H. Zhou

Research output: Contribution to journalArticlepeer-review

16 Scopus citations

Abstract

How to explore an inherent linkage between non-equilibrium liqulid/solid transformation (LST) and subsequent solid-state transition (SST) is becoming more and more important for material preparation. Applying highly undercooled solidification and melting spinning, single-phase supersaturated solid solution (SSSS) was prepared for immiscible FeCu and low-solid-solubility FeB alloys, respectively. By performing isothermal annealings at temperatures for the above SSSS, an inherent linkage between non-equilibrium LST and solid-state grain growth has been studied, in terms of an extended dendrite growth model and solute trapping model (for non-equilibrium solidification) and a numerical and an analytical thermo-kinetic model (for solid-state grain growth). For FeCu SSSS, a relation between the metastable equilibrium grain size and the initial melt undercooling was derived, whereas, for FeB SSSS, a relation between the metastable equilibrium grain size and the ribbon thickness/rotational speed (in melt spinning) was deduced. The model prediction is consistent with the experimental result, indicating that the solid-state grain growth stops as a result of decrease in GB energy due to solute segregation to GBs. This further certifies that, for the alloys considered, the final microstructure is determined by both the non-equilibrium LST and the solid-state grain growth including GB segregation.

Original languageEnglish
Pages (from-to)81-93
Number of pages13
JournalJournal of Crystal Growth
Volume313
Issue number1
DOIs
StatePublished - 15 Dec 2010

Keywords

  • A1. Diffusion
  • A1. Interfaces
  • A1. Segregation
  • A1. Solidification
  • A1. Supersaturated solutions
  • B1. Nanomaterials

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