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首页> 外文期刊>JOM >Integrated Computational Modeling of Water Side Corrosion in Zirconium Metal Clad Under Nominal LWR Operating Conditions
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Integrated Computational Modeling of Water Side Corrosion in Zirconium Metal Clad Under Nominal LWR Operating Conditions

机译:LWR标称工作条件下锆金属熔覆层水侧腐蚀的综合计算模型

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摘要

A mesoscopic chemical reaction kinetics model to predict the formation of zirconium oxide and hydride accumulation light-water reactor (LWR) fuel clad is presented. The model is designed to include thermodynamic information from ab initio electronic structure methods as well as parametric information in terms of diffusion coefficients, thermal conductivities and reaction constants. In contrast to approaches where the experimentally observed time exponents are captured by the models by design, our approach is designed to be predictive and to provide an improved understanding of the corrosion process. We calculate the time evolution of the oxide/metal interface and evaluate the order of the chemical reactions that are conducive to a t(1/3) dependence. We also show calculations of hydrogen cluster accumulation as a function of temperature and depth using spatially dependent cluster dynamics. Strategies to further cohesively integrate the different elements of the model are provided.
机译:提出了介观化学反应动力学模型,以预测氧化锆和氢化物累积轻水反应堆(LWR)燃料包覆的形成。该模型旨在包括从头开始的电子结构方法的热力学信息,以及有关扩散系数,热导率和反应常数的参数信息。与模型通过设计捕获实验观察到的时间指数的方法相比,我们的方法被设计为可预测的,并且可以更好地理解腐蚀过程。我们计算氧化物/金属界面的时间演变,并评估有助于t(1/3)依赖性的化学反应的顺序。我们还显示了使用空间相关的团簇动力学来计算氢团簇积累与温度和深度的函数关系。提供了进一步凝聚模型的不同元素的策略。

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