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Additive Manufacturing of High-Entropy Alloys by Laser Processing

机译:激光加工增材制造高熵合金

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This contribution concentrates on the possibilities of additive manufacturing of high-entropy clad layers by laser processing. In particular, the effects of the laser surface processing parameters on the microstructure and hardness of high-entropy alloys (HEAs) were examined. AlCoCrFeNi alloys with different amounts of aluminum prepared by arc melting were investigated and compared with the laser beam remelted HEAs with the same composition. Attempts to form HEAs coatings with a direct laser deposition from the mixture of elemental powders were made for AlCoCrFeNi and AlCrFeNiTa composition. A strong influence of solidification rate on the amounts of face-centered cubic and body-centered cubic phase, their chemical composition, and spatial distribution was detected for two-phase AlCoCrFeNi HEAs. It is concluded that a high-power laser is a versatile tool to synthesize interesting HEAs with additive manufacturing processing. Critical issues are related to the rate of (re)solidification, the dilution with the substrate, powder efficiency during cladding, and differences in melting points of clad powders making additive manufacturing processing from a simple mixture of elemental powders a challenging approach.
机译:这种贡献集中在通过激光加工来高厚度包覆层的增材制造的可能性上。特别是,研究了激光表面处理参数对高熵合金(HEA)的组织和硬度的影响。研究了通过电弧熔化制备的铝含量不同的AlCoCrFeNi合金,并将其与相同组成的激光束重熔HEA进行了比较。尝试从AlCoCrFeNi和AlCrFeNiTa组成的元素粉末混合物中直接激光沉积形成HEA涂层。对于两相AlCoCrFeNi HEA,检测到凝固速率对面心立方相和体心立方相的量,它们的化学组成和空间分布有很大影响。结论是,高功率激光器是通过增材制造工艺合成有趣的HEA的多功能工具。关键问题与(重新)固化的速度,在基材上的稀释度,熔覆过程中的粉末效率以及熔覆粉末的熔点差异有关,这使得由简单的单质粉末混合物进行增材制造过程成为一种具有挑战性的方法。

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