The effect of beryllium oxide on retention in JET ITER-like wall tiles
Creators
- 1. Univ Oxford, Dept Mat, Parks Rd, Oxford OX1 3PH (United Kingdom)
- 2. Aix Marseille Univ, CNRS, PIIM UMR 7345, F-13397 Marseille (France)
- 3. Forschungszentrum Juelich, Wilhelm Johnen Str, D-52428 Julich (Germany)
- 4. Natl Res Nucl Univ MEPHI, Kashirskoe Sh 31, Moscow 115409 (Russian Federation)
- 5. Culliam Sci Ctr, CCFE, Abingdon OX14 3DB, Oxon (United Kingdom)
- 6. Natl Inst Laser Plasma and Radiat Phys, Bucharest 077125 (Romania)
- 7. Univ Helsinki, POB 64, FI-00560 Helsinki (Finland)
Description
Preliminary results investigating the microstructure, bonding and effect of beryllium oxide formation on retention in the JET ITER-like wall beryllium tiles, are presented. The tiles have been investigated by several techniques: Scanning Electron Microscopy (SEM) equipped with Energy Dispersive X-ray (EDX), Transmission Electron microscopy (TEM) equipped with EDX and Electron Energy Loss Spectroscopy (EELS), Raman Spectroscopy and Thermal Desorption Spectroscopy (TDS). This paper focuses on results from melted materials of the dump plate tiles in JET. From our results and the literature, it is concluded, beryllium can form micron deep oxide islands contrary to the nanometric oxides predicted under vacuum conditions. The deepest oxides analyzed were up to 2-micron thicknesses. The beryllium Deuteroxide (BeOxDy) bond was found with Raman Spectroscopy. Application of EELS confirmed the oxide presence and stoichiometry. Literature suggests these oxides form at temperatures greater than 700 degrees C where self-diffusion of beryllium ions through the surface oxide layer can occur. Further oxidation is made possible between oxygen plasma impurities and the beryllium ions now present at the wall surface. Under Ultra High Vacuum (UHV) nanometric Beryllium oxide layers are formed and passivate at room temperature. After continual cyclic heating (to the point of melt formation) in the presence of oxygen impurities from the plasma, oxide growth to the levels seen experimentally (approximately two microns) is proposed. This retention mechanism is not considered to contribute dramatically to overall retention in JET, due to low levels of melt formation. However, this mechanism, thought the result of operation environment and melt formation, could be of wider concern to ITER, dependent on wall temperatures. (authors)
Availability note (English)
Available from doi: http://dx.doi.org/10.1016/j.nme.2019.02.022Additional details
Identifiers
Publishing Information
- Journal Title
- Nuclear Materials and Energy
- Journal Volume
- 19
- Journal Page Range
- p. 346-351
- ISSN
- 2352-1791
INIS
- Country of Publication
- United Kingdom
- Country of Input or Organization
- France
- INIS RN
- 54094900
- Subject category
- S36: MATERIALS SCIENCE; S70: PLASMA PHYSICS AND FUSION TECHNOLOGY;
- Descriptors DEI
- BERYLLIUM; BERYLLIUM IONS; BERYLLIUM OXIDES; ELECTRONS; ENERGY-LOSS SPECTROSCOPY; ITER TOKAMAK; MICROSTRUCTURE; NANOSTRUCTURES; OXIDATION; PLASMA; PLASMA IMPURITIES; RAMAN SPECTROSCOPY; SCANNING ELECTRON MICROSCOPY; SELF-DIFFUSION; STOICHIOMETRY; SURFACES; THERMAL DESORPTION SPECTROSCOPY; THICKNESS; TRANSMISSION ELECTRON MICROSCOPY; X RADIATION
- Descriptors DEC
- ALKALINE EARTH METAL COMPOUNDS; ALKALINE EARTH METALS; BERYLLIUM COMPOUNDS; CHALCOGENIDES; CHARGED PARTICLES; CHEMICAL REACTIONS; CLOSED PLASMA DEVICES; DIFFUSION; DIMENSIONS; ELECTROMAGNETIC RADIATION; ELECTRON MICROSCOPY; ELECTRON SPECTROSCOPY; ELEMENTARY PARTICLES; ELEMENTS; FERMIONS; IMPURITIES; IONIZING RADIATIONS; IONS; LASER SPECTROSCOPY; LEPTONS; METALS; MICROSCOPY; OXIDES; OXYGEN COMPOUNDS; RADIATIONS; SPECTROSCOPY; THERMONUCLEAR DEVICES; THERMONUCLEAR REACTORS; TOKAMAK DEVICES; TOKAMAK TYPE REACTORS