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An introduction to Spent Nuclear Fuel decay heat for Light Water Reactors: a review from the NEA WPNCS

  • Dimitri Rochman*
  • , Alejandro Algora
  • , Fransisco Àlvarez-Velarde
  • , Aurélie Bardelay
  • , Oystein Bremnes
  • , Oscar Cabellos
  • , Daniel Cano-Ott
  • , Luigi Capponi
  • , Coralie Carmouze
  • , Stefano Caruso
  • , Andrew Cummings
  • , Ron Dagan
  • , Muriel Fallot
  • , Luca Fiorito
  • , Lydie Giot
  • , Kevin Govers
  • , Silja Häkkinen
  • , Volker Hannstein
  • , Axel Hoefer
  • , Tan Dat Huynh
  • Raphaelle Ichou, Germina Ilas, Pauli Juutilainen, Lukasz Koszuk, Marjan Kromar, Sebastien Lahaye, James Lam, Frederic Laugier, Agnes Launay, Vincent Leger, David Lecarpentier, Jaakko Leppänen, Fadhel Malouch, Julie-Fiona Martin, David McGinnes, Robert William Mills, Futoshi Minato, Yasushi Nauchi, Pedro Ortego, Plamen Petkov, Pablo Romojaro, Shunsuke Sato, Marcus Seidl, Ahmed Shama, Teodosi Simenov, Anders Sjöland, Fabian Sommer, Sven Tittelbach, Aime Tsilanizara, Efstathios Vlassopoulos, Vanessa Vallet, Alexander Vasiliev, Tomoaki Watanabe, Gašper Žerovnik
*Corresponding author for this work
  • Belgian Nuclear Research Centre (SCK CEN)
  • Federal Agency for Nuclear Control (FANC)
  • Gesellschaft für Anlagen- und Reaktorsicherheit (GRS) gGmbH
  • Framatome GmbH
  • University of Paris-Saclay
  • Oak Ridge National Laboratory (ORNL)
  • University of Warsaw
  • Jožef Stefan Institute
  • Rolls-Royce
  • Orano Group
  • Électricité de France S.A. (EDF)
  • OECD Nuclear Energy Agengy (NEA)
  • Axpo Power AG
  • Japan Atomic Energy Agency
  • Central Research Institute of Electric Power Industry (CRIEPI)
  • Science Engineering Associates S.L.
  • Sofia University St. Kliment Ohridski
  • PreussenElektra GmbH
  • National Cooperative for the Disposal of Radioactive Waste (NAGRA)
  • Studsvik Scandpower Inc
  • Swedish Nuclear Fuel and Waste Management (SKB)
  • Lund University
  • Uppsala University
  • WTI Wissenschaftlich Technische Ingenieurberatung GmbH
  • Paul Scherrer Institute (PSI)
  • Institute for Corpuscular Physics
  • Centro de Investigaciones Energéticas, Medioambientales y Tecnológicas (CIEMAT)
  • Institute for Radiological Protection and Nuclear Safety (IRSN)
  • EDF DT
  • Technical University of Madrid
  • National Nuclear Laboratory
  • Commissariat a l'Energie Atomique et aux Energies Alternatives (CEA)
  • Kernkraftwerk Goesgen-Däniken AG
  • Nuclear Transport Solutions (NTS)
  • Karlsruhe Institute of Technology (KIT)

Research output: Contribution to journalArticleScientificpeer-review

Abstract

This paper summarized the efforts performed to understand decay heat estimation from existing spent nuclear fuel (SNF), under the auspices of the Working Party on Nuclear Criticality Safety (WPNCS) of the OECD Nuclear Energy Agency. Needs for precise estimations are related to safety, cost, and optimization of SNF handling, storage, and repository. The physical origins of decay heat (a more correct denomination would be decay power) are then introduced, to identify its main contributors (fission products and actinides) and time-dependent evolution. Due to limited absolute prediction capabilities, experimental information is crucial; measurement facilities and methods are then presented, highlighting both their relevance and our need for maintaining the unique current full-scale facility and developing new ones. The third part of this report is dedicated to the computational aspect of the decay heat estimation: calculation methods, codes, and validation. Different approaches and implementations currently exist for these three aspects, directly impacting our capabilities to predict decay heat and to inform decision-makers. Finally, recommendations from the expert community are proposed, potentially guiding future experimental and computational developments. One of the most important outcomes of this work is the consensus among participants on the need to reduce biases and uncertainties for the estimated SNF decay heat. If it is agreed that uncertainties (being one standard deviation) are on average small (less than a few percent), they still substantially impact various applications when one needs to consider up to three standard deviations, thus covering more than 95% of cases. The second main finding is the need of new decay heat measurements and validation for cases corresponding to more modern fuel characteristics: higher initial enrichment, higher average burnup, as well as shorter and longer cooling time. Similar needs exist for fuel types without public experimental data, such as MOX, VVER, or CANDU fuels. A third outcome is related to SNF assemblies for which no direct validation can be performed, representing the vast majority of cases (due to the large number of SNF assemblies currently stored, or too short or too long cooling periods of interest). A few solutions are possible, depending on the application. For the final repository, systematic measurements of quantities related to decay heat can be performed, such as neutron or gamma emission. This would provide indications of the SNF decay heat at the time of encapsulation. For other applications (short- or long-term cooling), the community would benefit from applying consistent and accepted recommendations on calculation methods, for both decay heat and uncertainties. This would improve the understanding of the results and make comparisons easier.
Original languageEnglish
Article number2024010
Number of pages83
JournalEPJ Nuclear Sciences & Technologies
Volume10
Issue number9
DOIs
Publication statusPublished - 7 Oct 2024
MoE publication typeA1 Journal article-refereed

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 12 - Responsible Consumption and Production
    SDG 12 Responsible Consumption and Production

Keywords

  • decay heat
  • spent fuel
  • nuclear energy

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