热导率
声子
玻尔兹曼方程
材料科学
声子散射
辐照
铀
凝聚态物理
散射
电导率
热力学
化学
核物理学
复合材料
物理
光学
物理化学
冶金
作者
J.M. Qin,Min Zhao,Rongjian Pan,Ai Tao Tang,Lu Wu
出处
期刊:Materials
[Multidisciplinary Digital Publishing Institute]
日期:2025-07-30
卷期号:18 (15): 3584-3584
摘要
Accurate evaluation of the thermal conductivity of UO2 with defects is very significant for optimizing fuel performance and enhancing the safety design of reactors. We employed a method that combines the Boltzmann transport equation with DFT+U to calculate the thermal conductivity of UO2 containing fission products and irradiation-induced point defects. Our investigation reveals that the thermal conductivity of UO2 is influenced by defect concentration, defect type, and temperature. Fission products and irradiation defects result in a decrease in thermal conductivity, but they have markedly different impacts on phonon scattering mechanisms. Metal cations tend to scatter low-frequency phonons (less than 5.8 THz), while the fission gas xenon scatters both low-frequency and high-frequency phonons (greater than 5.8 THz), depending on its occupancy at lattice sites. Uranium vacancies scatter low-frequency phonons, while oxygen vacancies scatter high-frequency phonons. When uranium and oxygen vacancies coexist, they scatter phonons across the entire frequency spectrum, which further results in a significant reduction in the thermal conductivity of UO2. Our calculated results align well with experimental data across a wide temperature range and provide fundamental insights into the heat transfer mechanisms in irradiated UO2. These findings are essential for establishing a thermal conductivity database for UO2 under various irradiation conditions and benefit the development of advanced high-performance UO2 fuel.
科研通智能强力驱动
Strongly Powered by AbleSci AI