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Nonequilibrium solidification behavior and microstructural evolution of SiC fiber/TC17 composites under rapid solidification conditions

  • Hongwen Deng
  • , Xingjia Ma
  • , Lingyi Cao
  • , Dongsheng Zhang
  • , Chunxia Yao
  • , Bingbing Zhang
  • , Xu Cheng*
  • *此作品的通讯作者
  • Beihang University
  • CAS - Institute of High Energy Physics
  • University of Chinese Academy of Sciences

科研成果: 期刊稿件文章同行评审

摘要

Hybrid additive manufacturing is an efficient method for fabricating complicated structures on fiber-reinforced titanium matrix composite workpieces. However, the laser thermal input can remelt the involved substrate, causing considerable interactions between the Ti-alloy matrix and SiC fibers (SiCfs). Therefore, it is difficult to characterize nonequilibrium-solidification behaviors and the corresponding microstructural evolution under extreme rapid-solidification conditions. Herein, in-situ synchrotron radiation X-ray diffraction was employed to investigate the microstructural evolution mechanisms of SiCf/TC17 composites in real-time under different laser remelting conditions. Results indicated that in different regions within the melt pool, the phase precipitation behaviors were different, which were influenced by the Si and C concentrations in the melt due to the decomposition of fibers. Solidification begins near the melt pool boundaries, where low Si and C concentrations results in the β-Ti phase precipitating first, followed by the precipitation of TiCx phases in the dendritic regions between the β-Ti phases. In the middle region of the melt pool, increasing solidification time causes decomposition of more SiCfs. Increasing the Si and C concentrations in the melt enhances TiCx precipitation, which should be prioritized, followed by the formation of Ti5Si3 phases and (β-Ti + Ti5Si3) eutectic phases. Further solidification induces Ti3SiC2 precipitation. The top region of the melt pool solidifies during the last solidification stage. High Si and C concentrations promote the preferential precipitation of Ti5Si3 dendrites and (Ti5Si3 + TiSi2) eutectic phases, forming a considerably textured microstructure. The Ti3SiC2 and TiSi2 phases primarily precipitate between the Ti5Si3 dendrites, and TiSi2 phases are the last phases to precipitate.

源语言英语
文章编号115073
期刊Materials Characterization
224
DOI
出版状态已出版 - 6月 2025

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