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首页> 外文期刊>Materials at High Temperatures >Oxygen influenced intergranular crack-propagation: analysing micfostructure and chemistry in the crack tip region
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Oxygen influenced intergranular crack-propagation: analysing micfostructure and chemistry in the crack tip region

机译:氧影响晶间裂纹扩展:裂纹尖端区域的显微组织和化学分析

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摘要

Ni-base superalloys have for decades been studied with regard to environmentally influenced intergranular crack propagation. For high temperature fatigue frequencies < 0.1 Hz, it has been shown that an oxygen-rich environment promotes time-dependent crack growth while at > 0.1 Hz and/or in inert environments (e.g. vacuum) crack growth is cycle dependent. Oxygen interaction at, or ahead of, the crack tip has been pointed out as the reason for the degraded mechanical properties. While many aspects of this type of crack growth have been previously investigated there is still no consensus about the detailed mechanisms, mainly due to the lack of in-detail investigations of the crack-tip region. Here, crack tip regions in the Ni-base superalloy Alloy 718 were studied. Specimens were subjected to 90s hold-times at 550°C and 650°C. Crack growth was arrested before final fracture, allowing cross-sectional analyses of the crack-tip region using scanning electron microscopy (SEM). Detailed studies of the crack-tip region were performed using transmission electron microscopy (TEM) and atom probe tomography (APT). For both APT and TEM samples, site-specific focussed ion beam (FIB) sample preparation was performed in a combined FIB-SEM system. The methodology of accessing and analysing the crack tip region is shown. Initial results on oxidation, oxygen penetration and plastic deformation are shown and discussed.
机译:镍基高温合金已经进行了数十年的关于受环境影响的晶间裂纹扩展的研究。对于<0.1Hz的高温疲劳频率,已经表明,富氧的环境促进时间依赖性的裂纹扩展,而在> 0.1Hz的环境中和/或在惰性环境(例如真空)下,裂纹的扩展取决于循环。已经指出在裂纹尖端处或裂纹尖端之前的氧气相互作用是导致机械性能降低的原因。尽管先前已经研究了这种类型的裂纹扩展的许多方面,但对于详细的机制仍然没有共识,这主要是由于缺乏对裂纹尖端区域的详细研究。在此,研究了Ni基高温合金718中的裂纹尖端区域。样品在550℃和650℃下经受90s保持时间。裂纹扩展在最终断裂之前被阻止,从而允许使用扫描电子显微镜(SEM)对裂纹尖端区域进行截面分析。使用透射电子显微镜(TEM)和原子探针层析成像(APT)对裂纹尖端区域进行了详细研究。对于APT和TEM样品,均在组合的FIB-SEM系统中进行了特定位置聚焦离子束(FIB)样品的制备。显示了访问和分析裂纹尖端区域的方法。显示并讨论了有关氧化,氧气渗透和塑性变形的初步结果。

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