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The Oxidation of ZrB2/MoSi2 Ceramics in Dissociated Air: The Influence of the Elaboration Technique.
Charpentier, Ludovic; Miranda, Pedro; Tallaron, Hugo; Nogales, Florencia M; Sández-Gómez, Álvaro; Bêche, Eric; Balat-Pichelin, Marianne.
Affiliation
  • Charpentier L; PROMES-CNRS, 7, Rue Du Four Solaire, 66120 Font-Romeu Odeillo, France.
  • Miranda P; Department of Mechanical, Energy and Materials Engineering, Industrial Engineering School, University of Extremadura, Avda. de Elvas s/n, 06006 Badajoz, Spain.
  • Tallaron H; PROMES-CNRS, 7, Rue Du Four Solaire, 66120 Font-Romeu Odeillo, France.
  • Nogales FM; Department of Mechanical, Energy and Materials Engineering, Industrial Engineering School, University of Extremadura, Avda. de Elvas s/n, 06006 Badajoz, Spain.
  • Sández-Gómez Á; Department of Mechanical, Energy and Materials Engineering, Industrial Engineering School, University of Extremadura, Avda. de Elvas s/n, 06006 Badajoz, Spain.
  • Bêche E; PROMES-CNRS, 7, Rue Du Four Solaire, 66120 Font-Romeu Odeillo, France.
  • Balat-Pichelin M; PROMES-CNRS, 7, Rue Du Four Solaire, 66120 Font-Romeu Odeillo, France.
Materials (Basel) ; 17(15)2024 Aug 02.
Article in En | MEDLINE | ID: mdl-39124482
ABSTRACT
In order to investigate the most extreme conditions in which materials potentially applicable in reusable thermal shields can be operated, ultra-high-temperature ZrB2 ceramics with 20 vol.% MoSi2 were prepared using two different techniques, cold isostatic pressing (CIP) and robocasting (RC, an additive manufacturing technique), followed by consolidation using pressureless spark plasma sintering (SPS). The oxidation behavior of the resulting materials was analyzed in low-pressure dissociated air at three different temperatures, namely 1800, 2000 and 2200 K. Using XRD and surface and cross-section SEM (coupled with EDS), zirconia was found to form at all three temperatures, while silica was only present at 1800 K, with gaseous SiO forming at a higher temperature. The elaboration technique influences the density of the ceramic, and less dense materials undergo deeper oxidation. This investigation suggests that 2000 K is already beyond the maximum temperature threshold at which damage to ceramics is limited by the formation of protective silica. This study confirms that the selected material is a promising candidate for thermal protection applications.
Key words

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Materials (Basel) Year: 2024 Document type: Article Affiliation country: Francia Country of publication: Suiza

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Materials (Basel) Year: 2024 Document type: Article Affiliation country: Francia Country of publication: Suiza