March 2026

Conference Paper

An Instrumented Capsule Design to Measure Thermal Conductivity in Miniature UO2 Specimens

By:
Gorton, Jacob P; Parker, Trevor D; Godsey, Kara M; Cranford, Dillon P; Mulligan, Padhraic L; Howard, Richard H; Capps, Nathan A; Petrie, Christian M; Nelson, Andrew T
Page Number:
592-601
Book Title:
Proceedings of TopFuel 2025: Nuclear Reactor Fuel Performance Conference
Publication Date:
March 12, 2026
Publisher Location:
American Nuclear Society, Illinois, United States of America
Conference Name:
TOPFUEL 2025: Nuclear Reactor Fuel Performance Conference
Conference Location:
Nashville, Tennessee, United States of America
Conference Sponsor:
American Nuclear Society
View DOI Listing:
https://doi.org/10.13182/TOPFUEL25-48257

Abstract

Numerous separate effects irradiations of miniature nuclear fuel specimens have been conducted in the High Flux Isotope Reactor (HFIR) under the experimental platform designated as MiniFuel. MiniFuel is a static irradiation capability in which microstructural evolution and fuel performance phenomena are observed during postirradiation examination thereby offering a snapshot of the terminal fuel characteristics. This approach inherently requires fielding an irradiation where the experimental conditions are determined using predictive models and the pertinent outcomes are measured at the end of the test. Static irradiations can provide useful insights to the relationships between fuel performance and the pivotal irradiation conditions, namely temperature and burnup, but the ability to monitor fuel performance in situ would further support fuel development and qualification. To this end, an instrumented experiment design is being developed at Oak Ridge National Laboratory to capture thermal conductivity degradation and fission gas release during HFIR irradiation. These phenomena will be monitored using unique capsule designs that each target a different phenomenon. This paper details the thermal conductivity capsule (TCC) design and its expected performance envelope as determined using computer models. Each TCC will contain a miniature UO2 disc specimen (~0.5 mm thick × 5 mm diameter) sandwiched between metallic slugs with embedded thermocouples. The coupling of in situ temperature measurements, known thermal conductivity of the metallic components, and heat generation rates computed using high-fidelity neutronics models make the thermal conductivity measurement possible. This paper describes the reactor physics and heat transfer models used to predict the capsule’s performance and the methodology for calculating the fuel specimen’s thermal conductivity from the thermocouple measurements.