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首页> 外文期刊>Journal of Nuclear Materials: Materials Aspects of Fission and Fusion >Understanding of fission products transport in SiC layer of TRISO fuels by nanoscale characterization and modeling
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Understanding of fission products transport in SiC layer of TRISO fuels by nanoscale characterization and modeling

机译:纳米尺度表征和建模对裂变产品的裂变产品运输

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摘要

This paper details recent advances in the understanding of both intergranular and intragranular fission product transport in the silicon carbide (SiC) layer of neutron-irradiated tristructural isotropic (TRISO) coated-fuel particles from Advanced Gas Reactor (AGR)-1 and AGR-2 experiments. The SiC layer is the primary barrier responsible for retaining metallic fission products in the fuel particle. Chemical reactions between the SiC layer and fission products have been observed. Previously, intragranular precipitates rich in fission product Pd were identified as nanosized nodular and columnar features, distributed through the irradiated SiC grains. More recent studies reported hexagonal-shaped Pd silicide at Frank loops and stacking faults, where alpha-SiC (amid the bulk beta-SiC) acts as a precursor for Pd silicide formation. While the Pd silicide precipitates were identified as having L1(2)-Pd3Si stoichiometry from electron diffraction study, ab intro phonon calculations performed in this study suggest that the L1(2)-Pd3Si structure remains dynamically unstable from zero pressure up to at least 100 GPa and will spontaneously transform into other lower-symmetry structures via different unstable phonon modes. Apart from the nanoscale hexagonal morphology of the Pd3Si precipitate, a new form of elongated Pd silicide, confined between a pair of stacking faults, has been observed in a high Ag-110m-retention TRISO-coated particle. The peculiar discontinuity of such precipitates along the stacking faults raises questions regarding the necessity of alpha-SiC precursors for their nucleation, as well as the nature of the intragranular-transport pathway of Pd along the radial direction of SiC. The large-scale fission product precipitates in the inner-pyrolytic carbon (IPyC) and grain boundaries of SiC layers were characterized, and different chemically segregated regions were observed within single fission product precipitates. (C) 2019 Published by Elsevier B.V.
机译:本文详细介绍了从先进的气体反应器(AGR)-1和AGR-2的中子辐射的型型型型燃料颗粒中的碳化硅(SiC)层中的碳化硅(SiC)层中的碳化硅(SiC)层中的晶状体和形状裂变产物转运综合和形状裂变产物运输的研究进展实验。 SiC层是负责燃料颗粒中的金属裂变产物的主要屏障。已经观察到SiC层和裂变产物之间的化学反应。以前,富含裂变产物PD的颗粒状沉淀物被鉴定为纳米型结节和柱状特征,分布通过照射的SiC晶粒。更新的研究报告了弗兰克环和堆叠故障的六边形PD硅化物,其中α-SiC(散装β-SiC)作为Pd硅化物形成的前体。虽然将Pd硅化物沉淀物鉴定为具有来自电子衍射研究的L1(2)-PD3SI化学计量,但在本研究中进行的AB IntroSphon计算表明L1(2)-PD3SI结构从零压力保持动态不稳定,直到至少为100 GPA并通过不同的不稳定声子模式自发地转换为其他低对称结构。除了PD3SI沉淀物的纳米级六方形态外,在高Ag-110m保持的三核涂覆颗粒中,已经观察到一对堆叠断层之间限制的新形式的细长Pd硅化物。沿着堆叠故障的这种沉淀物的特殊不连续性提高了关于它们成核的α-SiC前体的必要性的问题,以及Pd沿SiC径向的PD鞘内传输途径的性质。大规模裂解产物在内 - 热解碳(IPYC)中沉淀物,表征了SiC层的晶界,并且在单裂解产物沉淀物中观察到不同的化学隔离区。 (c)2019年由elestvier b.v发布。

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