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ATOMIC DIFFUSION INDUCED DAMAGE OF NI-BASE SUPER ALLOY AT ELEVATED TEMPERATURE

机译:Ni基超级合金在高温下的原子扩散诱导损伤

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Ni-base superalloys consisting of binary phases such as cuboidal γ' (Ni_3Al) precipitates orderly dispersed in the γ matrix (Ni-rich matrix) have been generally used for rotor blades in energy power plants. However, fine dispersed γ' precipitates are coarsened perpendicularly to the applied load direction during high temperature creep loading. As this phenomenon called "Rafting" proceeds, the strengthened micro texture disappears and then, cracks starts to grow rapidly along the boundaries of the layered texture. Thus, it is very important to evaluate the change of the crystallinity of the alloy in detail for explicating the atomic scale damage process. In this study, the change of the micro-texture of the Ni-base superalloy (CM247LC) was observed by using EBSD method. The change in the crystallinity was evaluated using both Kernel Average Misorientation (KAM) and image quality (IQ) values. The KAM value indicates the dislocation density and the IQ value shows the order of atom arrangement in the observed area. As a result, KAM value showed no significant change with increasing the creep damage. On the other hand, the IQ value monotonically shifted to lower values and the average IQ value gradually decreased as the creep loading time increased. Decreasing IQ value without change in KAM value implies that the density of point defects such as vacancies mainly increased under creep loading and ordered L12 structure became disordered. Therefore, the creep damage of this alloy is mainly dominated by not the accumulation of dislocations, but the increase in the disorder of atom arrangement in the micro texture caused by the diffusion of component elements.
机译:由二元相(例如长方体γ'(Ni_3Al)析出物)有序分布在γ基体(富Ni基体)中的Ni基高温合金通常已用于能源发电厂的转子叶片。但是,在高温蠕变加载过程中,细分散的γ'析出物垂直于所施加的载荷方向被粗化。随着这种称为“漂流”的现象的进行,增强的微纹理消失,然后,裂纹开始沿着分层纹理的边界迅速增长。因此,详细评估合金的结晶度变化对于阐明原子尺度损伤过程非常重要。在这项研究中,通过使用EBSD方法观察到了镍基高温合金(CM247LC)的微观组织的变化。结晶度的变化使用内核平均错位(KAM)和图像质量(IQ)值进行评估。 KAM值表示位错密度,IQ值表示观察区域中原子的排列顺序。结果,随着蠕变损伤的增加,KAM值没有显示出明显的变化。另一方面,随着蠕变加载时间的增加,IQ值单调移至较低值,并且平均IQ值逐渐降低。降低IQ值而不改变KAM值意味着空位等点缺陷的密度主要在蠕变载荷下增加,并且有序L12结构变得无序。因此,这种合金的蠕变损伤主要不是由位错的积累所决定,而是由组成元素的扩散所引起的微观组织中原子排列无序的增加所决定。

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