The materials currently used in aerospace and aviation, such as C/C and C/SiC composites, possess excellent mechanical properties but are limited to a maximum operational temperature of 1600°C (C/SiC) and poorly oxidizing environments (C/C). For more demanding applications, new materials able to withstand extreme temperatures without recession are required. In the framework of the C3harme project, a new class of materials labelled UHTCMCs, consisting of a UHTC matrix reinforced with carbon fibers, has been developed and characterized in order to overcome these challenges. Different fiber reinforcements and sintering parameters have been investigated from the microstructural point of view. The composites were fabricated via slurry infiltration of fiber, using a powder mixture of ZrB and SiC; the green pellets were then sintered via hot pressing. Extensive microstructural analysis was carried out on the sintered samples, showing how the sintering parameters and the choice of the fibers are crucial to obtain full densification without jeopardizing the fibers integrity and permit adequate load transfer.

Fabrication and characterization of UHTCMCs

Vinci A
Primo
Writing – Original Draft Preparation
;
Zoli L
Secondo
Methodology
;
Galizia P
Conceptualization
;
Silvestroni L
Writing – Review & Editing
;
Sciti D
Ultimo
Supervision
2021

Abstract

The materials currently used in aerospace and aviation, such as C/C and C/SiC composites, possess excellent mechanical properties but are limited to a maximum operational temperature of 1600°C (C/SiC) and poorly oxidizing environments (C/C). For more demanding applications, new materials able to withstand extreme temperatures without recession are required. In the framework of the C3harme project, a new class of materials labelled UHTCMCs, consisting of a UHTC matrix reinforced with carbon fibers, has been developed and characterized in order to overcome these challenges. Different fiber reinforcements and sintering parameters have been investigated from the microstructural point of view. The composites were fabricated via slurry infiltration of fiber, using a powder mixture of ZrB and SiC; the green pellets were then sintered via hot pressing. Extensive microstructural analysis was carried out on the sintered samples, showing how the sintering parameters and the choice of the fibers are crucial to obtain full densification without jeopardizing the fibers integrity and permit adequate load transfer.
2021
Istituto di Scienza, Tecnologia e Sostenibilità per lo Sviluppo dei Materiali Ceramici - ISSMC (ex ISTEC)
Inglese
36th Technical Conference of the American Society for Composites 2021
36th Technical Conference of the American Society for Composites 2021: Composites Ingenuity Taking on Challenges in Environment-Energy-Economy, ASC 2021
1
450
457
8
9781713837596
http://www.scopus.com/record/display.url?eid=2-s2.0-85120451285&origin=inward
Ozden Ochoa
Sì, ma tipo non specificato
20-22/09/2021
Texas
Internazionale
C/SiC composites; Extreme temperatures; Fabrication and characterizations; Fiber reinforcement (e); matrix; Micro-structural; Operational temperature; Oxidizing environments; Powder mixtures; Sintering parameters
Stampa
7
open
Vinci, A; Zoli, L; Galizia, P; Silvestroni, L; Gutierrez, C; Rivera, S; Sciti, D
273
info:eu-repo/semantics/conferenceObject
04 Contributo in convegno::04.01 Contributo in Atti di convegno
   NEXT GENERATION CERAMIC COMPOSITES FOR COMBUSTION HARSH ENVIRONMENTS AND SPACE
   C3HARME
   European Commission
   Horizon 2020 Framework Programme
   685594
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/443835
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