首页> 外文会议>International Symposium on High Temperature Corrosion and Protection of Materials pt.1; 20040516-21; Les Embiez(FR) >Modelling of the Kinetic Transition in Zirconium Based Alloys : Application to the Oxidation of Zircaloy-4 by Water Vapour
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Modelling of the Kinetic Transition in Zirconium Based Alloys : Application to the Oxidation of Zircaloy-4 by Water Vapour

机译:锆基合金动力学转变的建模:在水蒸气氧化Zircaloy-4中的应用

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The kinetic curves of oxidation of Zircaloy-4 exhibit a transition, which is a sharp increase in the oxidation rate when the oxide thickness reaches a critical value. The pre-transition stage is controlled by the diffusion of oxygen vacancies in the oxide layer. In the post-transition stage, oxygen or water vapour have an accelerating effect on the oxidation (whereas they have no influence during the pre-transition) and the oxide layer is damaged, with large cracks parallel to the metal/oxide interface and connected to the gaseous atmosphere by pores. Consequently, it is clear that the post-transition stage cannot be accounted for by the same mechanism as in pre-transition. In this paper, we propose a geometrical modelling allowing to describe the progressive transformation of the oxide layer during the transition. This model is based on a random appearance of pores (connected to the external surface) which leads to the transformation, from a pre-transition stage to the post-transition stage, of small sections so of the oxide layer (analogy with the models of thermal transformations of powders, involving the processes of nucleation and growth of a new phase). The model allows to describe the kinetic curves obtained for the oxidation by water vapour of Zircaloy-4.
机译:Zircaloy-4的氧化动力学曲线表现出过渡,当氧化物厚度达到临界值时,氧化速率急剧增加。过渡前阶段是通过氧空位在氧化物层中的扩散来控制的。在过渡后阶段,氧气或水蒸气对氧化有加速作用(而在过渡前它们没有影响),并且氧化层受到破坏,并与金属/氧化物界面平行并与气孔中的气孔。因此,很明显,过渡后阶段无法通过与过渡前相同的机制解决。在本文中,我们提出了一个几何模型,该模型允许描述过渡过程中氧化物层的逐步转变。该模型基于孔的随机外观(连接到外表面),从而导致从过渡前阶段到过渡后阶段,氧化物层的小部分都发生了转变(与模型相似)。粉末的热转变,包括成核和新相的生长过程)。该模型可以描述Zircaloy-4的水蒸气氧化获得的动力学曲线。

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