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RF plasma spheroidization of IMI834–TiBw composite powders: Microstructural inheritance and deformation mechanisms of SPS-consolidated composites

  • Chong Tan
  • , Shufeng Li
  • , Xin Liu
  • , Qi Shi
  • , Bo Li
  • , Hailong Zhu
  • , Shaodi Wang
  • , Chao Ding
  • , Huiying Liu
  • Xi'an University of Technology
  • Guangdong Institute of New Materials
  • Guangdong Research Institute of Rare Metals
  • Ningbo University of Technology
  • Shanxi University

Research output: Contribution to journalArticlepeer-review

Abstract

TiBw-reinforced titanium matrix composites offer high specific strength and thermal stability, making them attractive for aerospace applications, while pre-alloyed spherical powders are promising feedstocks for near-net-shape processing. In this study, HDH-crushed irregular IMI834–TiBw composite powder was spheroidized by radio-frequency (RF) plasma and subsequently consolidated by spark plasma sintering (SPS), with IMI834 alloy processed under the same conditions as a reference. Plasma spheroidization and subsequent micro–nano separation produced highly spherical powders with improved flowability and apparent density, while nanoindentation hardness increased from 2.8 ± 0.2 to 8.7 ± 0.5 GPa. The nanoscale TiBw formed during rapid solidification favored α′-Ti nucleation at TiBw/matrix interfaces, thereby facilitating the β→α′ transformation and grain refinement. Silicides evolved from (Ti,Zr)5Si3 toward (Ti,Zr)6Si3, likely because of Si redistribution and partial loss. After SPS, the composite exhibited a fine equiaxed matrix with dispersed nano-TiBw, whereas the alloy developed coarse α′/β colonies with a higher β fraction. In the composite, TiBw participated in load transfer and impeded dislocation motion, contributing to a higher early-stage work-hardening rate. Cracks propagated predominantly along the fine grain-boundary network, forming a more tortuous path than in the alloy. Limited plastic accommodation associated with the lower β fraction, together with local TiBw fracture promoted by strain concentration, may have contributed to the lower fracture strain. These results show that microstructural features formed during RF plasma spheroidization are partly inherited after SPS and influence deformation and fracture mechanisms.

Original languageEnglish
Pages (from-to)1385-1401
Number of pages17
JournalJournal of Materials Research and Technology
Volume44
DOIs
StatePublished - 1 Sep 2026
Externally publishedYes

Keywords

  • Deformation behavior
  • IMI834-TiB composite powders
  • Microstructural evolution
  • Radio frequency plasma spheroidization
  • Spark plasma sintering

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