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High temperature measurements and condensed matter analysis of the thermo-physical properties of ThO2

机译:ThO2的热物理性质的高温测量和冷凝物分析

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摘要

Values are presented for thermal conductivity, specific heat, spectral and total hemispherical emissivity of ThO2 (a potential nuclear fuel material) in a temperature range representative of a nuclear accident - 2000 K to 3050 K. For the first time direct measurements of thermal conductivity have been carried out on ThO2 at such high temperatures, clearly showing the property does not decrease above 2000 K. This could be understood in terms of an electronic contribution (arising from defect induced donor/acceptor states) compensating the degradation of lattice thermal conductivity. The increase in total hemispherical emissivity and visibleear-infrared spectral emissivity is consistent with the formation of donor/acceptor states in the band gap of ThO2. The electronic population of these defect states increases with temperature and hence more incoming photons (in the visible and near-infrared wavelength range) can be absorbed. A solid state physics model is used to interpret the experimental results. Specific heat and thermal expansion coefficient increase at high temperatures due to the formation of defects, in particular oxygen Frenkel pairs. Prior to melting a gradual increase to a maximum value is predicted in both properties. These maxima mark the onset of saturation of oxygen interstitial sites.
机译:在代表核事故的温度范围-2000 K至3050 K中,给出了ThO2(一种潜在的核燃料材料)的热导率,比热,光谱和总半球发射率的值。首次对热导率进行直接测量在如此高的温度下在ThO2上进行的实验,清楚地表明了该性能在2000 K以上并没有降低。这可以通过电子贡献(由于缺陷诱导的供体/受体态引起)来补偿,以补偿晶格导热性的下降。总半球发射率和可见/近红外光谱发射率的增加与ThO2的带隙中供体/受体态的形成是一致的。这些缺陷状态的电子数量随温度而增加,因此可以吸收更多的入射光子(在可见光和近红外波长范围内)。固态物理模型用于解释实验结果。由于缺陷的形成,特别是氧弗伦克尔对,比热和热膨胀系数在高温下增加。在熔化之前,两种性能都预计会逐渐增加到最大值。这些最大值标志着氧间隙位点饱和的开始。

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