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March 6, 20260 citationsOpen Access

Designing SiC/IrSi3 Composites for Aggressive Environments: Wetting Characteristics of the Liquid Si-Ir Eutectics in Contact with SiC and C-Materials

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JNJavier NarcisoACAntonio CamaranoRNR. Novaković

Key Points

  • Investigate the wetting characteristics and microstructural evolution at the Si-Ir eutectics/SiC interface.
  • Examined wetting characteristics and interaction phenomena at the Si-Ir eutectics/SiC interface.
  • Used sessile drop method to measure wetting in an inert atmosphere at temperatures of 1350–1400 °C.
  • Analyzed surface tension and viscosity of liquid Ir-Si alloys and their thermodynamic properties.
  • Wetting characteristics were significantly influenced by temperature within the studied range.
  • Observed microstructural evolution at the interfaces was related to interfacial phenomena and process parameters.
  • Provided valuable data for predicting thermophysical properties of liquid Ir-Si alloys.

Abstract

The design and fabrication of metal matrix materials (MMCs), as well as the densification and joining of ceramic matrix composites (CMC), are still very challenging. For SiC- and C-based composites, liquid-assisted processing routes, such as the spontaneous infiltration process, emerge among the most cost-effective processes. To succeed in Ir-Si/SiC refractory composite fabrication by spontaneous infiltration, the wetting characteristics of the Ir-Si/SiC system, the surface and transport properties (surface tension and viscosity) of liquid Ir-Si alloys, and microstructural evolution at the interfaces formed between solid SiC (or C) with Ir-Si melt, have been carefully examined. Specifically, the wettability and interaction phenomena occurring at the Si-Ir eutectics/SiC interface as a function of temperature were investigated in the temperature range of T = 1350–1400 °C by the sessile drop method under an inert atmosphere with reduced oxygen content, and the results are presented and discussed in this paper. Taking into account the thermodynamics of the Si-C-Ir system, the interfacial phenomena and subsequent microstructural evolution are well-related to the process parameters, and the properties and characteristics of the as-produced interfaces may be predicted accordingly. The experimental conditions and results of wetting experiments, together with thermodynamic-based models predicting thermophysical property values of liquid Ir-Si alloys, are valuable key input data that are now available for the numerical study of infiltration processes.

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Cite This Study

Narciso et al. (2026) studied this question.

synapsesocial.com/papers/69aa70e7531e4c4a9ff5b19bhttps://doi.org/10.3390/ma19050978
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