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DEFECT FORMATION AND ITS MITIGATION IN SELECTIVE LASER MELTING OF HIGH γ' Ni-BASE SUPERALLOYS

机译:高γ'镍基超合金选择性激光熔化的缺陷形成及其缓解

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This report focuses on the microstructural causes of cracking in CM247LC processed using Selective Laser Melting (SLM), as well as other phenomena that may increase the likelihood for cracking. Observations using high-speed imaging showed that material was lost as both vapor and discrete particles under some conditions, which may be a source of the Al-enriched particles found in recycled powder. The local chemical heterogeneities arising from such Al-rich particles may then contribute to crack and pore formation. Transmission Electron Microscopy (TEM) investigations for the as-built microstructure showed "cell-like" structures within the columnar grains, Hf-rich precipitates were found at "cell-like" structures and grain boundaries, and there were associated high dislocation densities at these boundaries acting as crack initiation points in the presence of residual stresses. Post-process Hot Isostatic Pressing (HIP) was used to heal the cracks and pores that form during processing. It was found to lead to pronounced recrystallization, as expected from the high dislocation density. Various routes for defect mitigation are discussed.
机译:本报告侧重于使用选择性激光熔化(SLM)的CM247LC裂解的微观结构原因,以及可能增加裂化可能性的其他现象。使用高速成像的观察结果显示,在某些条件下,材料丢失了蒸气和离散颗粒,这可以是在再循环粉末中发现的富含铝颗粒的来源。然后,由这种富含铝颗粒产生的本地化学异质性可以有助于裂纹和孔形成。透射电子显微镜(TEM)对柱状晶粒内的“细胞样”结构显示“细胞状”结构,在“细胞样”结构和晶界中发现了HF富含沉淀物,并且存在相关的高位脱位密度这些边界在存在残余应力的情况下作用为裂纹引发点。后工艺热性等静压(臀部)用于愈合在加工过程中形成的裂缝和孔。正如高位脱位密度所预期的那样,发现它导致重结晶重结晶。讨论了各种用于缺陷缓解的路线。

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