Continuous carbon fibre ceramic matrix composites capable of tolerating multiple thermal-shock cycles and resisting ablation are needed for aerospace and hypersonic systems. Carbon fibre around 50 vol% and ultra-refractory matrices are fundamental parameters. The influence of rare earth (RE) oxides on the microstructure and mechanical properties of carbon fibre-ZrB/SiC composites was investigated. Materials were produced by slurry infiltration and hot pressing. The addition of YO, LaO and CeO led to the formation of lamellar boro-carbides that improved the densification, while ScO promoted the formation of (Zr,Sc)B solid solutions in the matrix. All these composites exhibited improved mechanical properties compared to a RE-free baseline, with room temperature strengths and toughness above 330 MPa and 9 MPa m, respectively, and strengths above 600 MPa at 1500 °C. The lamellar phase was identified as a fibre by-product with general formula REBC. Only CeO was detrimental on the long run due to its high reactivity with humidity which induced swelling and jeopardized the structural stability of the composite. This study revealed new fundamental insights into the microstructure evolution of carbon-fibre refractory composites and its impact on the mechanical properties, which will contribute to the development of new generation of reusable ceramic matrix composites for harsh environments.

Advancements in carbon fibre reinforced ultra-refractory ceramic composites: Effect of rare earth oxides addition

Antonio Vinci
Primo
Writing – Original Draft Preparation
;
Laura Silvestroni
Secondo
Writing – Review & Editing
;
Nicola Gilli
Methodology
;
Luca Zoli
Formal Analysis
;
Diletta Sciti
Ultimo
Funding Acquisition
2022

Abstract

Continuous carbon fibre ceramic matrix composites capable of tolerating multiple thermal-shock cycles and resisting ablation are needed for aerospace and hypersonic systems. Carbon fibre around 50 vol% and ultra-refractory matrices are fundamental parameters. The influence of rare earth (RE) oxides on the microstructure and mechanical properties of carbon fibre-ZrB/SiC composites was investigated. Materials were produced by slurry infiltration and hot pressing. The addition of YO, LaO and CeO led to the formation of lamellar boro-carbides that improved the densification, while ScO promoted the formation of (Zr,Sc)B solid solutions in the matrix. All these composites exhibited improved mechanical properties compared to a RE-free baseline, with room temperature strengths and toughness above 330 MPa and 9 MPa m, respectively, and strengths above 600 MPa at 1500 °C. The lamellar phase was identified as a fibre by-product with general formula REBC. Only CeO was detrimental on the long run due to its high reactivity with humidity which induced swelling and jeopardized the structural stability of the composite. This study revealed new fundamental insights into the microstructure evolution of carbon-fibre refractory composites and its impact on the mechanical properties, which will contribute to the development of new generation of reusable ceramic matrix composites for harsh environments.
2022
Istituto di Scienza, Tecnologia e Sostenibilità per lo Sviluppo dei Materiali Ceramici - ISSMC (ex ISTEC)
Carbon fibre
Ceramic-Matrix Composites (CMCs)
Rare Earth oxides
Microstructure
Mechanical properties
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/441492
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