UO2/BeO interfacial thermal resistance and its effect on fuel thermal conductivity
Xueyan Zhu, Rui Gao, Hengfeng Gong, Tong Liu, De-Ye Lin, Haifeng Song

TL;DR
This study investigates the interfacial thermal resistance between UO2 and BeO, its impact on thermal conductivity, and how BeO size and distribution influence heat transfer in nuclear fuel materials.
Contribution
It provides a detailed analysis of the interfacial thermal resistance using the diffuse mismatch model and explores how BeO size and distribution affect UO2 thermal conductivity.
Findings
DMM predicts ITR of about 10^-9 m^2K/W for dispersed BeO.
UO2-BeO thermal conductivity depends on BeO size and ITR.
Conditions for optimizing UO2 thermal conductivity with BeO doping are established.
Abstract
UO2/BeO interfacial thermal resistance (ITR) is calculated by diffuse mismatch model (DMM) and the effects of ITR on UO2-BeO thermal conductivity are investigated. ITR predicted by DMM is on the order of 10-9 m2K/W. Using this ITR, UO2-BeO thermal conductivities are calculated by theoretical models and compared with experimental data. The results indicate that DMM prediction is applicable to the interface between UO2 and dispersed BeO, while not applicable to the interface between UO2 and continuous BeO. If the thermal conductivity of UO2 containing continuous BeO was to be in agreement with experimental data, its ITR should be on the order of 10-6 - 10-5 m2K/W. Therefore, the vibrational mismatch between UO2 and BeO considered by DMM is the major mechanism for attenuating the heat flux through UO2/dispersed-BeO interface, but not for UO2/continuous-BeO interface. Furthermore, it is…
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