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Effect of additive manufacturing on fatigue crack propagation of a gas turbine superalloy

机译:添加剂制造对燃气轮机超合金疲劳裂纹繁殖的影响

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Additive manufacturing (AM) offers new possibilities in gas turbine technology by, for example, allowing for more complex internal cooling channels. One such application, where AM can improve the function by new designs, is burners. However, the fatigue performance, especially the fatigue crack propagation of AM gas turbine material, is not fully known. In the present study, an AM adopted nickel-based superalloy Hastelloy X was subjected to low-cycle fatigue (LCF) loading at room temperature. The LCF tests were conducted in strain control on additive manufactured smooth bars with two different build orientations (with an angle of 0° and 90° relative to the building platform). During the the manufacturing process, an AM component often solidifies with a dendritic structure. Initial fractography of the ruptured LCF specimens revealed that the dendritic structure was visible on the fracture surface. It was noted that the dendritic structure could easily be mistaken for regular striations although they represent a different fracture mechanism. The fracture surfaces were therefore cross sectioned and possible correlations between fracture surface characteristics and underlying microstructure were studied using electron backscatter diffraction and electron channelling contrast imaging. The outcome was used to discuss the effect of AM microstructure on the LCF crack propagation.
机译:添加剂制造(AM)通过例如允许更复杂的内冷却通道提供燃气轮机技术的新可能性。一个这样的应用程序,我可以通过新设计来改善功能,是燃烧器。然而,疲劳性能,尤其是AM燃气轮机材料的疲劳裂纹传播,尚不完全已知。在本研究中,在室温下对AM采用的基于镍的超合金Hastelloy X进行低循环疲劳(LCF)负载。 LCF试验在添加剂的应变控制中进行,具有两个不同的构建方向(相对于建筑平台的角度为0°和90°)。在制造过程中,AM组分通常用树突结构凝固。破裂的LCF样本的初始断裂显示,树突结构在裂缝表面上可见。有人指出,树枝状结构很容易被误认为是常规条纹,尽管它们代表着不同的骨折机制。因此,使用电子反向散射衍射和电子通道对比度成像研究裂缝表面横截面,并且裂缝表面特性与底层微观结构之间的可能相关性。结果用于讨论AM微观结构对LCF裂纹繁殖的影响。

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