首页> 外文期刊>Journal of Nuclear Materials: Materials Aspects of Fission and Fusion >A method for determining an effective porosity correction factor for thermal conductivity in fast reactor uranium-plutonium oxide fuel pellets
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A method for determining an effective porosity correction factor for thermal conductivity in fast reactor uranium-plutonium oxide fuel pellets

机译:确定快堆铀-氧化oxide燃料颗粒热导率有效孔隙率校正因子的方法

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摘要

A reliable method has been developed for determining an effective porosity correction factor for calculating a realistic thermal conductivity for fast reactor uranium-plutonium (mixed) oxide fuel pellets. By using image analysis of the ceramographs of transverse sections of mixed-oxide fuel pellets, the fuel morphology could be classified into two basic types. One is a 'two-phase' type that consists of small pores dispersed in the fuel matrix. The other is a 'three-phase' type that has large pores in addition to the small pores dispersed in the fuel matrix. The pore sizes are divided into two categories, large and small, at the 30 mu m area equivalent diameter. These classifications lead to an equation for calculating an effective porosity correction factor by accounting for the small and large pore volume fractions and coefficients. This new analytical method for determining the effective porosity correction factor for calculating the realistic thermal conductivity of mixed-oxide fuel was also experimentally confirmed for high-, medium- and low-density fuel pellets. (C) 2000 Elsevier Science B.V. All rights reserved. [References: 21]
机译:已经开发出一种可靠的方法来确定有效的孔隙率校正因子,以计算快速反应堆铀-((混合)氧化物燃料颗粒的实际导热率。通过对混合氧化物燃料颗粒横截面的陶瓷图进行图像分析,可将燃料形态分为两种基本类型。一种是“两相”型,由分散在燃料基体中的小孔组成。另一种是“三相”型,除了散布在燃料基体中的小孔外,还具有大孔。孔径分为面积等效直径为30微米的大和小两类。这些分类导致一个方程,该方程通过考虑小和大的孔体积分数和系数来计算有效的孔隙率校正因子。高密度,中密度和低密度燃料芯块的实验方法也证实了这种确定有效孔隙率校正因子以计算混合氧化物燃料的实际导热率的新分析方法。 (C)2000 Elsevier Science B.V.保留所有权利。 [参考:21]

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