通过双线电子束定向能量沉积制造的钛铝合金的液滴过渡行为和成分均匀化

IF 6.1 1区 工程技术 Q1 ENGINEERING, MANUFACTURING
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引用次数: 0

摘要

双线电子束定向能量沉积(EB-DED)工艺在通过钛和铝之间的原位反应制造铝化钛(TiAl)合金方面具有相当大的优势。然而,纯钛、纯铝和钛铝合金的热物理性质存在差异,这给实现一致的液滴过渡行为和统一的化学成分带来了挑战。本研究探讨了送丝模式对 TiAl 合金成型质量和液滴转变行为的影响,并讨论了 TiAl 合金元件中的成分均匀化和元素蒸发问题。实验采用了单面和双面送丝模式,在双面模式下电子束直接熔化钛丝,从而获得了优异的表面形貌。随机干扰和不理想的送丝角度导致钛丝偏离电子束中心,然后插入或穿过熔池,从而降低了成型质量。通过将铝丝尖端置于钛丝尖端下方,当钛液滴熔化铝丝时,就会出现一个共同的液滴。液滴过渡行为受丝尖和部件表面之间距离的调节,在 0.75 至 5.82 毫米的距离范围内实现了液桥过渡。虽然由于元素蒸发的原因,液滴成分总体上是均匀的,但液滴之间的波动超过了在沉积元件中观察到的波动。广泛的熔池和锁孔效应增强了钛铝合金成分的均匀性。在沉积过程中,由于铝的饱和蒸汽压较高,铝的蒸发率超过了钛的蒸发率,因此铝的实际含量较低。受熔池中铝含量和温度变化的影响,铝的损耗率最初降低,然后随着计算出的铝含量的增加而增加。这项研究加深了人们对通过原位反应制造钛铝合金的基本认识,有助于 EB-DED 工艺的发展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Droplet transition behavior and compositional homogenization of TiAl alloys fabricated via dual-wire electron beam-directed energy deposition

The dual-wire electron beam-directed energy deposition (EB-DED) process presents considerable advantages for fabricating titanium aluminide (TiAl) alloys via in situ reactions between Ti and Al. However, variations in the thermophysical properties of pure Ti, pure Al, and TiAl alloys pose challenges in achieving consistent droplet transition behavior and uniform chemical composition. This study explored the effects of wire feeding modes on the forming quality of TiAl alloys and droplet transition behaviors and discussed compositional homogenization and elemental evaporation in TiAl alloy components. Both single-side and double-side feeding modes were utilized, and the electron beam directly melted the Ti wire in the double-side mode, thereby achieving superior surface morphology. Random disturbances and suboptimal wire feeding angles led to the wires deviating from the electron beam center and then being inserted into or passing through the molten pool, thereby degrading the forming quality. By positioning the Al wire tip beneath the Ti wire tip, a common droplet emerged as the Ti droplets melted the Al wire. The droplet transition behavior was regulated by the distance between the wire tips and component surfaces, achieving a liquid bridge transition at distances ranging from 0.75 to 5.82 mm. Although the droplet composition was generally uniform owing to elemental evaporation, the fluctuations among the droplets exceeded those observed in the as-deposited components. The extensive molten pool and keyhole effect enhanced compositional homogenization within the TiAl alloy components. During the deposition process, the evaporation rate of Al surpassed that of Ti due to its higher saturation vapor pressure, consequently yielding a lower actual Al content. The loss rate of Al initially decreased and then increased as the calculated Al content increased, which was influenced by the Al content in the molten pool and temperature variations. This research advances the fundamental understanding of TiAl alloy fabrication via in situ reactions and contributes to the development of the EB-DED process.

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来源期刊
Journal of Manufacturing Processes
Journal of Manufacturing Processes ENGINEERING, MANUFACTURING-
CiteScore
10.20
自引率
11.30%
发文量
833
审稿时长
50 days
期刊介绍: The aim of the Journal of Manufacturing Processes (JMP) is to exchange current and future directions of manufacturing processes research, development and implementation, and to publish archival scholarly literature with a view to advancing state-of-the-art manufacturing processes and encouraging innovation for developing new and efficient processes. The journal will also publish from other research communities for rapid communication of innovative new concepts. Special-topic issues on emerging technologies and invited papers will also be published.
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