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Simulation of Slip-Oxidation Process by Mesh Adaptivity in a Cohesive Zone Framework

机译:粘性区框架中的网眼适应性模拟滑动氧化过程

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摘要

Adaptive oxide thickness was developed in a cohesive element based multi-physics model including a slip-oxidation and diffusion model. The model simulates the intergranular stress corrosion cracking (IGSCC) in boiling water reactors (BWR). The oxide thickness was derived from the slip-oxidation and updated in every structural iteration to fully couple the fracture properties of the cohesive element. The cyclic physics of the slip oxidation model was replicated. In the model, the thickness of the oxide was taken into consideration as the physical length of the cohesive element. The cyclic process was modelled with oxide film growth, oxide rupture, and re-passivation. The model results agreed with experiments in the literature for changes in stress intensity factor, yield stress representing cold work, and environmental factors such as conductivity and corrosion potential.
机译:在包括滑氧化和扩散模型的基于粘性元素的多物理模型中开发自适应氧化物厚度。该模型在沸水反应器(BWR)中模拟晶间应力腐蚀裂纹(IGSCC)。氧化物厚度衍生自滑湿氧化并在每种结构迭代中更新,以完全耦合粘性元件的断裂性质。复制了滑动氧化模型的循环物理学。在该模型中,考虑到含有粘合元件的物理长度的氧化物的厚度。环状过程用氧化膜生长,氧化物破裂和重新钝化进行建模。模型结果与文献中的实验同意,用于改变应力强度因子,屈服应力,代表冷工作,以及导电性和腐蚀潜力等环境因素。

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