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INVESTIGATION OF STRESS ASSISTED GRAIN BOUNDARY OXIDATION (SAGBO) CRACKING IN MAR-M002 HIGH PRESSURE TURBINE BLADES

机译:MAR-M002高压涡轮叶片应力辅助晶界氧化(SAGBO)开裂的研究

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Modern superalloys have enabled High Pressure Turbine (HPT) blades in Gas Turbine Engines (GTE) to operate at higher temperatures. Unfortunately the complexity of these materials can make it difficult to understand the failure mechanisms of these blades. HPT blades made of the nickel based superalloy Mar-M002 have been found to suffer from Stress Assisted Grain Boundary Oxidation (SAGBO) cracking. HPT blades removed from an RB211-24C aero-derivative industrial GTE were sectioned and the cracks and microstructure were studied using Scanning Electron Microscopy (SEM) and Energy Dispersive X-ray Spectroscopy (EDS). No cracks were found on the external surface of the blade which had been coated with an oxidation resistant material. Surface irregularities were found along the walls of the inner cooling channels throughout the entire blade. Larger SAGBO cracks were observed to be near the lower 25% span of the blade and had initiated from the surfaces of the cooling channels. SEM/EDS analysis showed that these cracks had large amounts of alumina and Hafnium-rich particles within them. It is evident that these cracks occurred in locations where the combination of high stress and high temperature led to higher rates of oxygen diffusion and subsequent oxidation of grain boundary carbides. Hafnium Carbide precipitates along the grain boundaries expanded as they converted into Hafnium Oxide, thus further increasing the stress. It is envisaged that this increase in stress along the grain boundary has caused the cracks to initiate and coalesce. Based on this observation, it is believed thatthe inner cooling channels of these HPT blades could benefit from the application of an oxidation resistant coating in order to prevent or delay the formation of these cracks.
机译:现代超合金使燃气涡轮发动机(GTE)中的高压涡轮(HPT)叶片能够在更高的温度下运行。不幸的是,这些材料的复杂性使得难以理解这些叶片的失效机理。已经发现,由镍基超级合金Mar-M002制成的HPT刀片会遭受应力辅助晶粒边界氧化(SAGBO)裂纹。将从RB211-24C航空衍生工业GTE上卸下的HPT刀片切成薄片,并使用扫描电子显微镜(SEM)和能量色散X射线光谱(EDS)研究了裂纹和微观结构。在已涂有抗氧化材料的叶片外表面上未发现裂纹。在整个叶片上沿内部冷却通道的壁发现表面不规则。观察到较大的SAGBO裂纹在叶片的下25%跨度附近,并且是从冷却通道表面引发的。 SEM / EDS分析表明,这些裂纹中含有大量的氧化铝和富Ha颗粒。显然,这些裂纹发生在高应力和高温共同导致较高的氧扩散速率和随后的晶界碳化物氧化的位置。当碳化converted沉淀转变为氧化boundaries时,沿晶界的沉淀膨胀,从而进一步增加了应力。可以预料,沿晶界的应力的增加已引起裂纹的产生和聚结。基于这种观察,可以认为 这些HPT叶片的内部冷却通道可受益于抗氧化涂层的应用,以防止或延迟这些裂纹的形成。

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