International Journal of Applied Ceramic Technology· 2026Q2
Linking Oxide Scale Evolution to Thermal Shock Failure in Zirconium Carbide
- 0citations
- Q2SCImago
- 2026year
Short summary
Zirconium carbide (ZrC) fails under thermal shock when oxide scales exceed ~10% monoclinic ZrO2 and crack density, a threshold reached between 700°C and 800°C after cyclic oxidation.
AI-generated from the title and abstract; the full text is not read.
Key points
- ZrC thermal shock failure is linked to oxide scale composition and cracking.
- Oxidation severity (temperature and duration) dictates oxide scale thickness, monoclinic ZrO2 content, and crack density.
- A critical failure threshold for ZrC is identified between 700°C and 800°C.
- At this threshold, monoclinic ZrO2 and crack density exceed ~10%, leading to degradation.
AI-generated from the title and abstract; the full text is not read.
Abstract
ABSTRACT Zirconium carbide (ZrC) is an ultra‐high‐temperature ceramic valued for its excellent thermomechanical properties, yet its vulnerability to oxidation and its thermal shock behavior upon oxidation remain insufficiently understood. This study examines how prior oxidation history, defined by cyclic exposure temperature and duration, affects the thermal shock response of monolithic ZrC. Near‐stoichiometric specimens were oxidized in atmospheric air across a temperature range of 600°C–800°C, then water‐quenched from those temperatures. Increasing oxidation severity produced thicker oxide scales, higher monoclinic ZrO 2 content, and greater crack density. A transition to failure‐prone behavior occurred between 700°C and 800°C, when monoclinic ZrO 2 and crack density both exceeded approximately 10%, leading to critical degradation. Given the oxidation parameters explored, the temperature threshold for thermal shock occurrence was identified as 700°C–800°C. The combined oxidation–quench approach establishes oxidation‐dependent thresholds for thermal shock resistance and provides a framework for evaluating the stability of oxidized structures in harsh thermal environments.
The authors' abstract, as published at the source. International Journal of Applied Ceramic Technology, 2026 · DOI ↗
Continue with a free account
Ask the paper: 3 free questions a day about this paper; save it, get its citation, new summaries every day for your field. Takeaways are Premium.
Continue free on the webSign in with Google or Apple; no card needed. You come back to this paper.
On your phone:
Field: Ceramics and Composites
Ceramics and CompositesMaterials Science