Determination of Fission Gas Inclusion Pressures in High Burnup Nuclear Fuel using Laser Ablation ICP-MS combined with SEM/EPMA and Optical Microscopy
Creators
- 1. Laboratory for Materials Behavior, Nuclear Energy and Safety, Paul Scherrer Institut, Villigen, CH-5232 (Switzerland)
- 2. Institute for Isotope Geology/Mineralogic Elements, ETH Zuerich, CH-8092 (Switzerland)
- 3. Environmental and Resource Studies, Trent University, Peterborough, K9J 7B8 (Canada)
- 4. Nuclear Technology Department, Nordostschweizerische Kraftwerke AG (NOK), Baden, CH-5401 (Switzerland)
- 5. Laboratory for Inorganic Chemistry, Trace Elements and Microanalysis Group, ETH Zuerich, CH-8093 (Switzerland)
Description
In approximately 20% of all fissions at least one of the fission products is gaseous. These are mainly xenon and krypton isotopes contributing up to 90% by the xenon isotopes. Upon reaching a burn-up of 60 - 75 GWd/tHM a so called High Burnup Structure (HBS) is formed in the cooler rim of the fuel. In this region a depletion of the noble fission gases (FG) in the matrix and an enrichment of FG in μm-sized pores can be observed. Recent calculations show that in these pores the pressure at room temperature can be as large as 30 MPa. The knowledge of the FG pressure in pores is important to understand the high burn-up fuel behavior under accident conditions (i.e. RIA or LOCA). With analytical methods routinely used for the characterization of solid samples, i.e. Electron Probe Micro Analysis (EPMA), Secondary Ion Mass Spectrometry (SIMS), the quantification of gaseous inclusions is very difficult to almost impossible. The combination of a laser ablation system (LA) with an inductively coupled plasma mass spectrometer (ICP-MS) offers a powerful tool for quantification of the gaseous pore inventory. This method offers the advantages of high spatial resolution with laser spot sizes down to 10 μm and low detection limits. By coupling with scanning electron microscopy (SEM) for the pore size distribution, EPMA for the FG inventory in the fuel matrix and optical microscopy for the LA-crater sizes, the pressures in the pores and porosity was calculated. As a first application of this calibration technique for gases, measurements were performed on pressurized water reactor (PWR) fuel with a rod average of 105 GWd/tHM to determine the local FG pressure distribution. (authors)
Availability note (English)
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Additional details
Publishing Information
- Imprint Pagination
- 16 p.
- Report number
- INIS-CH--09-IYNC-2008-347
Conference
- Title
- International Youth Nuclear Congress 2008
- Acronym
- IYNC 2008
- Dates
- 21-26 Sep 2008
- Place
- Interlaken (Switzerland)
INIS
- Country of Publication
- Switzerland
- Country of Input or Organization
- France
- INIS RN
- 40048153
- Subject category
- S11: NUCLEAR FUEL CYCLE AND FUEL MATERIALS; S36: MATERIALS SCIENCE;
- Resource subtype / Literary indicator
- Conference
- Descriptors DEI
- CALIBRATION; ELECTRON MICROPROBE ANALYSIS; FISSION PRODUCTS; ICP MASS SPECTROSCOPY; KRYPTON ISOTOPES; NUCLEAR FUELS; PWR TYPE REACTORS; SCANNING ELECTRON MICROSCOPY; SENSITIVITY; XENON; XENON ISOTOPES
- Descriptors DEC
- CHEMICAL ANALYSIS; ELECTRON MICROSCOPY; ELEMENTS; ENERGY SOURCES; ENRICHED URANIUM REACTORS; FLUIDS; FUELS; GASES; ISOTOPES; MASS SPECTROSCOPY; MATERIALS; MICROANALYSIS; MICROSCOPY; NONDESTRUCTIVE ANALYSIS; NONMETALS; POWER REACTORS; RADIOACTIVE MATERIALS; RARE GASES; REACTOR MATERIALS; REACTORS; SPECTROSCOPY; THERMAL REACTORS; WATER COOLED REACTORS; WATER MODERATED REACTORS
Optional Information
- Notes
- 46 refs.