Abstract
Monofrax® K-3, a chromium–alumina refractory, is widely used in nuclear waste glass melters due to its high durability. However, aggressive vitrification conditions still lead to corrosion that limits melter lifespan. This study investigates two key corrosion modes, subsurface and melt-line corrosion, under static and dynamic conditions, using a custom setup enabling precise control of melt velocity and temperature. Experimental results, interpreted using diffusion-limited dissolution models, show that (i) subsurface corrosion increases by approximately 10 % per mm/s increase in melt velocity, while melt-line corrosion remains virtually unaffected, (ii) corrosion rate dependence on temperature is inversely proportional to melt viscosity, and (iii) glass composition affects both corrosion modes similarly, based on Cr2O3, Al2O3, and alkali contents. The experimental data also allowed the determination of diffusion coefficients of major dissolving species, which were found to be consistent between the melt-line and subsurface corrosion models, indicating their suitability for future CFD studies.
| Original language | English |
|---|---|
| Pages (from-to) | 60583-60591 |
| Number of pages | 9 |
| Journal | Ceramics International |
| Volume | 51 |
| Issue number | 29 |
| Early online date | Oct 17 2025 |
| DOIs | |
| State | E-pub ahead of print - Oct 17 2025 |
Keywords
- Corrosion
- Glass melter
- Modeling
- Refractory
- Vitrification
INL Publication Number
- INL/JOU-25-88563
- 207934
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