Abstract
For the development of silicon carbide (SiC) materials for next-generation nuclear structural applications, degradation of material properties under intense neutron irradiation is a critical feasibility issue. This study evaluated the mechanical properties and microstructure of a chemical vapor infiltrated SiC matrix composite, reinforced with a multi-layer SiC/pyrolytic carbon–coated Hi-NicalonTM Type S SiC fiber, following neutron irradiation at 319 and 629 °C to ∼100 displacements per atom. Both the proportional limit stress and ultimate flexural strength were significantly degraded as a result of irradiation at both temperatures. After irradiation at 319 °C, the quasi-ductile fracture behavior of the nonirradiated composite became brittle, a result that was explained by a loss of functionality of the fiber/matrix interface associated with the disappearance of the interphase due to irradiation. The specimens irradiated at 629 °C showed increased apparent failure strain because the fiber/matrix interphase was weakened by irradiation-induced partial debonding.
| Original language | English |
|---|---|
| Pages (from-to) | 1087-1094 |
| Number of pages | 8 |
| Journal | Journal of the European Ceramic Society |
| Volume | 38 |
| Issue number | 4 |
| DOIs | |
| State | Published - Apr 2018 |
Keywords
- Ceramics matrix composite
- Mechanical properties
- Neutron irradiation
- Silicon carbide
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