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A Mechanistic Study of the Effect of Temperature on Crack Propagation in Alloy 600 Under PWR Primary Water Conditions

机译:PWR初级水条件下对合金600裂纹萌发裂缝繁殖作用的机械研究

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Stress corrosion cracking (SCC) in Alloy 600 has been studied in simulated pressurized water reactor (PWR) primary water at various temperatures. A clear correlation between temperature and crack growth rate (CGR) was found showing that the CGR increased monotonously within the range of temperatures used in this study (320-360 °C). In order to understand the temperature dependence of CGR, high-resolution characterization was used to study the crack tips. The crack tips obtained from different temperatures were analyzed by high-resolution analytical transmission electron microscopy (TEM) to reveal the crack tip morphology and chemistry, which enable the study of a thermally activated diffusion-based mechanism operating during SCC propagation. Transmission Kikuchi diffraction (TKD) was used to investigate mechanical response-based mechanisms in SCC propagation through quantifying the size and extent of plastic deformation around the crack tips. Results obtained in this study show that the thermally activated diffusion along the grain boundary increased with temperature while the changes of plastic deformation around the crack tip were small and nearly independent of temperature, suggesting that a thermally activated diffusion-based mechanism was dominant.
机译:在各种温度下,已经在模拟加压水反应器(PWR)初级水中研究了合金600中的应力腐蚀裂纹(SCC)。发现温度和裂纹生长速率(CGR)之间的透明相关性显示CGR在本研究中使用的温度范围内单调加剧(320-360℃)。为了了解CGR的温度依赖性,使用高分辨率表征来研究裂缝提示。从不同的温度下获得的裂纹尖端通过高分辨率分析透射电子显微镜(TEM)分析,以揭示在裂纹尖端的形态和化学,其使得SCC传播期间热活化基于扩散的机构操作的研究。通过量化裂纹尖端周围的塑性变形的尺寸和程度,使用传输Kikuchi衍射(TKD)来研究SCC传播中的机械响应机制。在该研究中获得的结果表明,沿晶界的热激活扩散随温度而增加,而裂纹尖端周围的塑性变形变形的变化小且几乎与温度差别,表明基于热激活的扩散的机制是显性的。

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