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Xe gas bubble re-solution in U-10Mo nuclear fuel

Research output: Contribution to journalArticlepeer-review

Abstract

The U.S. High-Performance Research Reactor program aims to convert high-power research reactors from highly enriched uranium to low-enriched uranium using a monolithic U-10Mo fuel design. A critical aspect of U-10Mo fuel performance is fission gas bubble behavior. These bubbles grow by trapping gas atoms (particularly Xe) but can disintegrate via irradiation-induced “re-solution”. The interplay between the trapping and re-solution rates governs bubble evolution, impacting fuel performance and safety. In this study, binary collision approximation (BCA) and molecular dynamics (MD) simulations were performed to quantify the Xe gas bubble re-solution rate in U-10Mo fuel. First, the energy loss of fission fragments (FFs) through electronic and nuclear stopping was evaluated. The effect of electronic stopping on re-solution was then analyzed using MD simulations coupled with the two-temperature model. Results indicate that thermal spikes generated by electronic stopping do not contribute to gas bubble re-solution in U-10Mo. To quantify re-solution due to nuclear stopping, BCA simulations of FFs in U-10Mo were performed to obtain the average FF incidence probability, energy, and angle as a function of distance from the FF origin. Subsequent simulations assessed FF–bubble interactions in U-10Mo for different FF energies and bubble radii. From these analyses, an overall re-solution rate b was calculated at equilibrium bubble pressure per unit fission rate density, yielding values ranging from 4.4×10−26 m3/fission for the largest bubbles to 8.8×10−25 m3/fission for the smallest. The effect of bubble pressure on the re-solution rate was also evaluated, revealing an inverse relationship between the two.

Original languageEnglish
Article number156856
JournalJournal of Nuclear Materials
Volume632
Early online dateJun 27 2026
DOIs
StateE-pub ahead of print - Jun 27 2026

Keywords

  • Binary collision approximation
  • Gas bubbles
  • Molecular dynamics
  • Nuclear materials
  • Radiation damage

INL Publication Number

  • INL/JOU-26-90253
  • 212335

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