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April 3, 2026Advanced Engineering Materials1 citationsOpen Access

Microstructure Design of Steel‐Spinel Composites via Spark Plasma Sintering Process

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MMMahnaz MehdizadehlimaTU Bergakademie FreibergCSChristian SchimpfTU Bergakademie FreibergSMStefan MartinTU Bergakademie Freiberg

Key Points

  • The aim is to design a specific microstructure in steel-spinel composites using spark plasma sintering.
  • Produced composites from powder mixtures of AISI 316L steel, MgO, and either Cr2O3 or Fe2O3.
  • Investigated phase composition and spatial distributions using various analytical techniques.
  • Utilized thermodynamic calculations to substantiate microstructure formation.
  • Formation of Mg-based spinel due to reaction diffusion between MgO and the oxides.
  • Use of Fe2O3 initiated redox reactions that enhanced mixed spinel phases at the interface.
  • Transformation of MgO to (Mg, Fe)O included divalent elements from steel.

Abstract

Compact steel‐spinel composites with a specific microstructure were produced by spark plasma sintering, using powder mixtures of high‐alloy steel AISI 316L, MgO, and Cr 2 O 3 or Fe 2 O 3 as starting materials. The reaction diffusion between MgO and Cr 2 O 3 or Fe 2 O 3 always led to the formation of an Mg‐based spinel. The thermodynamic phase stability of the respective corundum‐like oxide with respect to the oxygen partial pressure decided about the presence or absence of side reactions, which were utilized as an efficient tool for microstructure design of the steel‐spinel composites.The use of Fe 2 O 3 as one of the starting compounds initiated various redox reactions that promoted the formation of mixed spinel phases at the steel/ceramic interface and the transformation of MgO to (Mg, Fe)O, which accommodates, in addition to iron, also other divalent alloying elements from the steel. The phase composition of the composites and the spatial distributions of individual phases and their chemical compositions were investigated using X‐ray diffraction, scanning electron microscopy, energy‐dispersive X‐ray spectroscopy, electron backscatter diffraction, and electron probe microanalysis. The microstructure formation was substantiated by thermodynamic calculations. The role of oxidizing and reducing agents that are involved in the microstructure design is discussed.

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Cite This Study

Mehdizadehlima et al. (2026) studied this question.

synapsesocial.com/papers/69cf5e5f5a333a821460cb7dhttps://doi.org/10.1002/adem.202503157
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