Thermal conductivity of binary ceramic composites made of insulating and conducting materials comprising full composition range – Applied to yttria partially stabilized zirconia and molybdenum disilicide

Journal Article (2023)
Author(s)

Federico Cernuschi (RSE S.p.a.)

Justyna Kulczyk-Malecka (The University of Manchester, Manchester Metropolitan University)

Xun Zhang (The University of Manchester)

Franck Nozahic (Ecole Nationale Supérieure des Ingénieurs en Arts Chimiques et Technologiques)

Claude Estournès (Ecole Nationale Supérieure des Ingénieurs en Arts Chimiques et Technologiques)

W. G. Sloof (TU Delft - Team Joris Dik)

Research Group
Team Joris Dik
Copyright
© 2023 Federico Cernuschi, Justyna Kulczyk-Malecka, Xun Zhang, Franck Nozahic, Claude Estournès, W.G. Sloof
DOI related publication
https://doi.org/10.1016/j.jeurceramsoc.2023.06.059
More Info
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Publication Year
2023
Language
English
Copyright
© 2023 Federico Cernuschi, Justyna Kulczyk-Malecka, Xun Zhang, Franck Nozahic, Claude Estournès, W.G. Sloof
Research Group
Team Joris Dik
Issue number
14
Volume number
43
Pages (from-to)
6296-6307
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Abstract

The thermal diffusivity and conductivity of dense and porous binary composites having an insulating and conducting phase were studied across its entire composition range. Experimental evaluation has been performed with MoSi2 particles embedded into yttria partially stabilized zirconia (YPSZ) as prepared by spark plasma sintering (SPS). The thermal diffusivity of the composites was measured with Flash Thermography (FT) and Laser Flash Analysis (LFA) techniques. Subsequently, the thermal conductivity was determined with the measured heat capacity and density of the composites. The actual volume fraction of the conducting phase of the composites was determined with image analysis of X-ray maps recorded with scanning electron microscopy (SEM). The phases present and their density were determined with X-ray diffractometry (XRD) using Rietveld refinement. The thermal diffusivity increases with increasing volume fraction of MoSi2. Porosity reduces the thermal diffusivity, but the effect diminishes with high volume fractions MoSi2. The thermal diffusivity as a function of the MoSi2 volume fraction of the YPSZ composites is captured by modelling, which includes the porosity effect and the high conductivity paths due to the percolation of the conductive phase.