激光粉末床熔接一种新型高强度准晶Al - fe - cr增强Al基复合材料

Nan Kang , Yuan Zhang , Mohamed El Mansori , Xin Lin
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引用次数: 4

摘要

通过快速凝固制备的准晶(QC)增强金属基复合材料为开发具有多种功能的高强度合金提供了新的机遇。在本研究中,使用激光粉末床聚变(LPBF)工艺制造了具有Al–Fe–Cr准晶增强Al基体结构的特殊设计的Al–Fe-Cr样品。基于激光扫描速度和孵化距离的优化工艺参数,在单个熔池中获得了一个几乎致密(99.8%)的无裂纹样品,该样品具有由不均匀快速凝固引起的多尺度非均匀结构。结果表明,不同尺寸的纳米Al–Fe–Cr准晶颗粒在α-Al柱状晶粒结构中不均匀分布。详细地说,在熔池边界可以观察到粗糙的花状和球形QC颗粒,细球形Al–Fe–Cr QC位于激光熔合区内。Al基体和二十面体Al–Fe–Cr QC之间的取向关系如下:Al[​−​112]‖i5具有半相干特征。新设计的LPBF处理的Al–Fe–Cr合金由于具有超细多强化组织诱导的Orowan强化效应而表现出较高的机械强度。例如,用LPBF处理的样品的极限抗拉强度、屈服强度和伸长率为530.80​±​3.19​兆帕,395.06​±​6.44​MPa和4.16%​±​0.38%。断口分析表明,断裂机制为韧性-脆性复合断裂。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Laser powder bed fusion of a novel high strength quasicrystalline Al–Fe–Cr reinforced Al matrix composite

Quasicrystal (QC)-reinforced metal matrix composites fabricated by rapid solidification present promising new opportunities to develop high-strength alloys with multiple functions. In this research, specially designed Al–Fe–Cr samples possessing an Al–Fe–Cr quasicrystal-reinforced Al matrix structure were manufactured using a laser powder bed fusion (LPBF) process. Based on the optimized process parameters of laser scanning speed and hatch distance, an almost dense (99.8%) free-crack sample was obtained with the multiscaled heterogenous structure induced by the nonuniform rapid solidification in a single molten pool. The results show that nanosized Al–Fe–Cr quasicrystalline particles of different sizes are heterogeneously distributed in the α-Al columnar grain structure. In detail, the coarse flower-like and spherical QC particles can be observed at the molten pool boundary, and the fine spherical Al–Fe–Cr QC is located inside the laser fusion zone. The orientation relationship between the Al matrix and the icosahedral Al–Fe–Cr QC is as follows: Al [ ​− ​112 ] ∥ i5 with a semicoherency feature. The novel designed LPBF-processed Al–Fe–Cr alloy exhibits high mechanical strength due to the ultrafine multireinforced microstructure-induced Orowan strengthening effect. For instance, the ultimate tensile strength, yield strength and elongation of the sample processed with LPBF are 530.80 ​± ​3.19 ​MPa, 395.06 ​± ​6.44 ​MPa, and 4.16% ​± ​0.38%, respectively. The fractographic analysis shows that the fracture mechanism presents a combination of ductile‒brittle fracture.

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