Published 2020 | Version v1
Miscellaneous

The TRANSCEND University Consortium: Theme 4: Nuclear Materials - 20431

  • 1. Dept. of Engineering, Lancaster University, Lancaster LA1 4YR (United Kingdom)
  • 2. Dept. of Materials Science and Engineering, University of Sheffield, Sheffield S1 3JD (United Kingdom)
  • 3. School of Chemistry, University of Manchester, Manchester M13 9PL (United Kingdom)
  • 4. Sellafield Ltd, Sellafield Site, Seascale, Cumbria CA20 1PG (United Kingdom)
  • 5. Department of Mechanical, Aeronautical and Civil Engineering, University of Manchester, Manchester M13 9PL (United Kingdom)
  • 6. National Nuclear Laboratory, Central Laboratory, Sellafield Site, Seascale, Cumbria CA20 1PG (United Kingdom)
  • 7. School of Chemistry, University of Birmingham, Birmingham B15 2TT (United Kingdom)

Description

The safe and secure management of Pu is a matter of international concern, with ∼250 t of separated Pu currently stockpiled worldwide. The UK's civil inventory of nuclear materials contains significant stocks of separated Pu from the reprocessing of Magnox and AGR spent fuels. The preferred option for the 138.5 tonnes of Pu is re-use as mixed oxide (MOx) fuel, although 5% is not suitable for re-use and is recommended for direct disposal. However, it will take more than 15 years to implement re-use, requiring that the Pu be kept in interim storage in its current state for that period, i.e. as PuO2 powder within inert steel storage cans at Sellafield. The focus of the work presented here is thus plutonium storage and the direct disposal of plutonium. The Research and Development needs of both are now pressing: in the case of storage due to it being the current default; in the case of immobilization and disposal because of a comparative lack of Research and Development on Pu conditioning and packaging due to policy uncertainty as to whether it would be disposed of in a Geologic Disposal Facility (GDF). Addressing these needs is complicated by Pu's high radioactivity, decay heat and radiotoxicity, criticality, nuclear safeguard requirements and, for some UK Pu contaminated materials targeted for disposal, poor inventory. Thus, there is also a critical requirement for underpinning research on Pu bearing materials in these two contexts. In response to these needs, the TRANSCEND Consortium (Transformative Science and Engineering for Nuclear Decommissioning, a multi-disciplinary collaboration of 11 universities and 8 key industry partners from across the UK's civil nuclear sector) is seeking to provide technical underpinning to ongoing option development for the UK's civil Pu stockpile. Whilst understanding the behaviour of plutonium during its re-use as MOx is beyond the scope of the TRANSCEND Consortium work plan, the main objectives of the work are: (1) For interim storage: to understand how the surface structure and properties of pristine and radiation damaged PuO2 change with time in the absence and presence of water; and (2) For immobilization and disposal: to understand the mechanisms of incorporation of Pu into ceramic and glass-ceramic waste-forms, as well as the effect on these of self-induced radiation damage. Each objective is being addressed through separate work packages, the details of which are discussed in this paper. (authors)

Availability note (English)

Available from: WM Symposia, Inc., PO Box 27646, 85285-7646 Tempe, AZ (US)

Additional details

Publishing Information

Imprint Pagination
32 p.
Report number
INIS-US--21-WM-20431

Conference

Title
46. Annual Waste Management Conference
Acronym
WM2020
Dates
8-12 Mar 2020
Place
Phoenix, AZ (United States)

Optional Information

Notes
1 ref.; available online at: https://www.xcdsystem.com/wmsym/2020/index.html