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首页> 外文期刊>Journal of Nuclear Materials: Materials Aspects of Fission and Fusion >Evaluation of thermal conductivity of zirconia-based inert matrix fuel by molecular dynamics simulation
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Evaluation of thermal conductivity of zirconia-based inert matrix fuel by molecular dynamics simulation

机译:通过分子动力学模拟评估氧化锆基惰性基质燃料的导热系数

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Molecular dynamics (MD) simulations were performed using Born-Mayer-Huggins interatomic potentials with partially ionic model in order to evaluate the thermal conductivity of zirconia-based inert matrix fuel (IMF). The thermal conductivity was calculated at the equilibrium condition based on Green-Kubo theory and phenomenological equations. For ErxYyMzZr1-x-y-zO2-(x+ y)/2 (where M = Ce or Pu), the thermal conductivity decreased with increase of y because of the presence of oxygen vacancies as the thermal resistance. It also slightly decreased with increase of z and temperature. However, significant difference could not be found in the thermal conductivity between Ce- and Pu-doped zirconia. The MD thermal conductivity of IMF was in good agreement with the literature data. Concerning the phenomenological coefficients, the cross-coupling effect between energy and charge fluxes was clearly observed at low z value and high temperatures for such zirconia systems. (c) 2006 Elsevier B.V. All rights reserved.
机译:使用Born-Mayer-Huggins原子间电势和部分离子模型进行分子动力学(MD)模拟,以评估基于氧化锆的惰性基质燃料(IMF)的热导率。根据Green-Kubo理论和现象方程,在平衡条件下计算热导率。对于ErxYyMzZr1-x-y-zO2-(x + y)/ 2(其中M = Ce或Pu),由于存在氧空位作为热阻,因此热导率随y的增加而降低。随着z和温度的增加,它也略有下降。然而,在铈和Pu掺杂的氧化锆之间的热导率方面没有发现显着差异。 IMF的MD热导率与文献数据非常吻合。关于现象学系数,对于这种氧化锆系统,在低z值和高温下清楚地观察到能量和电荷通量之间的交叉耦合效应。 (c)2006 Elsevier B.V.保留所有权利。

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