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Study of the Microstructure and Cracking Mechanisms of Hastelloy X Produced by Laser Powder Bed Fusion

机译:激光粉末床熔合法制备哈氏合金X的组织和开裂机理研究

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摘要

Hastelloy X (HX) is a Ni-based superalloy which suffers from high crack susceptibility during the laser powder bed fusion (LPBF) process. In this work, the microstructure of as-built HX samples was rigorously investigated to understand the main mechanisms leading to crack formation. The microstructural features of as-built HX samples consisted of very fine dendrite architectures with dimensions typically less than 1 µm, coupled with the formation of sub-micrometric carbides, the largest ones were mainly distributed along the interdendritic regions and grain boundaries. From the microstructural analyses, it appeared that the formation of intergranular carbides provided weaker zones, which combined with high thermal residual stresses resulted in hot cracks formation along the grain boundaries. The carbides were extracted from the austenitic matrix and characterized by combining different techniques, showing the formation of various types of Mo-rich carbides, classified as M6C, M12C and MnCm type. The first two types of carbides are typically found in HX alloy, whereas the last one is a metastable carbide probably generated by the very high cooling rates of the process.
机译:哈氏合金X(HX)是一种镍基高温合金,在激光粉末床熔合(LPBF)过程中会产生很高的裂纹敏感性。在这项工作中,对制成的HX样品的微观结构进行了严格的研究,以了解导致裂纹形成的主要机理。制成的HX样品的微观结构特征是非常细小的枝晶结构,尺寸通常小于1 µm,再加上亚微米级碳化物的形成,最大的碳化物主要沿枝晶间区域和晶界分布。从微观结构分析看来,晶间碳化物的形成提供了较弱的区域,再加上高的残余热应力导致沿晶界形成热裂纹。从奥氏体基体中提取碳化物,并结合不同的技术对其进行表征,显示出形成了多种类型的富Mo碳化物,分为M6C,M12C和MnCm类型。前两种类型的碳化物通常在HX合金中发现,而最后一种是亚稳态碳化物,可能是由于该过程的极高冷却速率所产生。

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