Abstract
The advancement of lightweight, high-performance ceramic matrix composites (CMCs) is of crucial significance for advanced aerospace hot-section components. Within these CMCs, the boron nitride (BN) interface assumes a crucial function in governing both microstructure and comprehensive performance. This research centers on porous mullite fiber-reinforced SiC (P-Mu/SiC) composites featuring a BN interface. It systematically explores how the oxidized BN interface regulates their microstructure, electromagnetic wave (EMW) absorption, and mechanical properties. The thickness and morphology of the B2O3-induced free-carbon layer within P-Mu/SiC composites can be regulated by manipulating the oxidation duration of the hexagonal BN interface. Additionally, the B2O3 phase was employed to further verify the induced mechanism of the free-carbon layer. When the oxidation duration is relatively short (t ≤ 4 h), a double-layer BN-C interface forms in the P-Mu/SiC composite, which is beneficial to optimizing both the EMW absorption and mechanical properties. When the oxidation duration is 4 h, a moderate BN-C interface enables the P-Mu/SiC composite to achieve effective EMW absorption (reflection loss ≤ −10 dB) in X-band at a thinner thickness. Meanwhile, the double interface can promote crack deflection and energy dissipation, resulting in an improved flexural strength of 32 MPa. These findings demonstrate that a B2O3-induced free-carbon interface enables synergistic enhancement of both EMW absorption and mechanical performance, providing a feasible design strategy for high-performance CMCs.
| Original language | English |
|---|---|
| Pages (from-to) | 70-79 |
| Number of pages | 10 |
| Journal | Journal of Materials Science and Technology |
| Volume | 284 |
| DOIs | |
| State | Published - 20 Mar 2027 |
Keywords
- Ceramic matrix composites (CMCs)
- Electromagnetic properties
- Flexural strength
- Induced mechanism
- Interface region
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