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首页> 外文期刊>Optics & Laser Technology >Effect of hot cracking on the mechanical properties of Hastelloy X superalloy fabricated by laser powder bed fusion additive manufacturing
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Effect of hot cracking on the mechanical properties of Hastelloy X superalloy fabricated by laser powder bed fusion additive manufacturing

机译:热裂纹对激光粉融合添加剂制造制造的Hastelloy x超合金机械性能的影响

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摘要

Nickel-based superalloys such as Hastelloy X (HX) are widely used in gas turbine engine applications and the aerospace industry. HX is susceptible to hot cracking, however, when processed using additive manufacturing technologies such as laser powder bed fusion (LPBF). This paper studies the effects of minor alloying elements on microcrack formation and the influences of hot cracking on the mechanical performance of LPBF-fabricated HX components, with an emphasis on the failure mechanism of the lattice structures. The experimental results demonstrate that a reduction in the amount of minor alloying elements used in the alloy results in the elimination of hot cracking in the LPBF-fabricated HX; however, this modification degrades the tensile strength by around 140 MPa. The microcracks were found to have formed uniformly at the high-angle grain boundaries, indicating that the cracks were intergranular, which is associated with Mo-rich carbide segregation. The study also shows that the plastic-collapse strength tends to increase with increasing strut sizes (i.e. relative density) in both the 'with cracking' and 'cracking-free' HX lattice structures, but the cracking-free HX exhibit a higher strength value. Under compression, the cracking-free HX lattice structures' failure mechanism is controlled by plastic yielding, while the failure of the with-cracking HX is dominated by plastic buckling due to the microcracks formed within the LPBF process. The novelty of this work is its systematic examination of hot cracking on the compressive performance of LPBF-fabricated lattice structures. The findings will have significant implications for the design of new cracking-free superalloys, particularly for high-temperature applications.
机译:镍基超合金如Hastelloy X(HX)广泛用于燃气轮机发动机和航空航天工业。 HX易受热裂缝的影响,然而,当使用增材制造技术如激光粉床融合(LPBF)处理时。本文研究了小合金化元素对微裂纹形成的影响和热裂纹对LPBF制造的HX组分的机械性能的影响,重点是晶格结构的失效机理。实验结果表明,合金中使用的小合金化元素的量减少导致在LPBF制造的HX中消除热裂化;然而,该修改将拉伸强度降低约140MPa。发现微裂纹在高角度晶界处均匀形成,表明裂缝是晶间的,其与富含Mo的碳化物偏析相关。该研究还表明,塑料塌陷强度趋于增加,随着裂缝和无裂缝的'HX格子结构中的支柱尺寸(即相对密度)增加,但无裂缝的HX表现出更高的强度值。在压缩下,通过塑料屈服来控制裂缝的HX晶格结构的失效机理,而由于在LPBF过程中形成的微裂纹,用裂化HX的失效由塑性屈曲支配。这项工作的新颖性是对LPBF制造的晶格结构的压缩性能的热破裂系统的系统检查。该研究结果将对新的无裂缝超合金设计有重大影响,特别是对于高温应用。

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