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Microstructure development during pyrolysis of wet-laid nonwoven-based CFRP for the manufacturing of Ceramic Matrix Composites (CMC)

  • Fiber reinforcement plays a critical role in defining the properties of ceramic matrix composites (CMCs). Among various textile technologies, wet-laid nonwovens have gained attention because previous studies have shown that their method of production significantly influences ceramic formation during liquid silicon infiltration (LSI) [1]. This study investigates in-situ microstructural evolution during pyrolysis using microscopy in a small-scale furnace. Two carbon fiber-reinforced polymer (CFRP) types were examined: single filament and fiber bundle wet-laid nonwovens. Thermal analysis revealed distinct behaviors. In single filament samples, key cracking occurred around 610 °C due to matrix weakening and stress release. In contrast, fiber bundle samples showed crack formation at 150–300 °C and above 700 °C, driven by outgassing, partial matrix detachment, and matrix shrinkage. These mechanisms result in SiC-rich structures for single filament reinforced materials and carbon-rich, shortFiber reinforcement plays a critical role in defining the properties of ceramic matrix composites (CMCs). Among various textile technologies, wet-laid nonwovens have gained attention because previous studies have shown that their method of production significantly influences ceramic formation during liquid silicon infiltration (LSI) [1]. This study investigates in-situ microstructural evolution during pyrolysis using microscopy in a small-scale furnace. Two carbon fiber-reinforced polymer (CFRP) types were examined: single filament and fiber bundle wet-laid nonwovens. Thermal analysis revealed distinct behaviors. In single filament samples, key cracking occurred around 610 °C due to matrix weakening and stress release. In contrast, fiber bundle samples showed crack formation at 150–300 °C and above 700 °C, driven by outgassing, partial matrix detachment, and matrix shrinkage. These mechanisms result in SiC-rich structures for single filament reinforced materials and carbon-rich, short fiber composites for bundle reinforced materials. The findings support tailored reinforcement design for application-specific CMC properties.show moreshow less

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Metadaten
Author:Fiona Kessel, Luis Baier, Nils Hensch, Martin Frieß, Anna Markic, Thomas Bratzdrum, Dietmar KochORCiDGND
Frontdoor URLhttps://opus.bibliothek.uni-augsburg.de/opus4/124493
ISSN:2666-5395OPAC
Parent Title (English):Open Ceramics
Publisher:Elsevier
Place of publication:Amsterdam
Type:Article
Language:English
Date of Publication (online):2025/08/18
Year of first Publication:2025
Publishing Institution:Universität Augsburg
Release Date:2025/08/19
First Page:100835
DOI:https://doi.org/10.1016/j.oceram.2025.100835
Institutes:Mathematisch-Naturwissenschaftlich-Technische Fakultät
Mathematisch-Naturwissenschaftlich-Technische Fakultät / Institut für Materials Resource Management
Mathematisch-Naturwissenschaftlich-Technische Fakultät / Institut für Materials Resource Management / Lehrstuhl für Materials Engineering
Dewey Decimal Classification:5 Naturwissenschaften und Mathematik / 50 Naturwissenschaften / 500 Naturwissenschaften und Mathematik
Latest Publications (not yet published in print):Aktuelle Publikationen (noch nicht gedruckt erschienen)
Licence (German):CC-BY-NC-ND 4.0: Creative Commons: Namensnennung - Nicht kommerziell - Keine Bearbeitung (mit Print on Demand)