Effect of Interlayer Machining Interventions on the Geometric and Mechanical Properties of Wire Arc Directed Energy Deposition Parts

Asif Rashid, Akshar Kota, Denis Boing, S. Melkote
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Abstract

Wire Arc Directed Energy Deposition (Wire Arc DED) has become a popular metal additive manufacturing technique for its capability to print large metal parts at a high deposition rate while being economically efficient. However, the Wire Arc DED process exhibits geometric inaccuracies resulting from the variability in the bead geometry and demonstrates heterogeneity in microstructure and mechanical properties. This study investigates the use of tailored periodic machining interventions during the Wire Arc DED process to address these shortcomings. The as-built geometry and surface finish, microstructure, and microhardness of multi-layer wall structures produced with and without machining interventions carried out at different temperatures are compared. The machining interventions are found to reduce the uncertainty in bead geometry evolution and significantly improve the surface roughness of the as-built walls, thus reducing the need for further post-processing of the wall surfaces. Although the microstructure constituents of the as-built wall structures with and without machining interventions are similar, the machining interventions result in finer grains in the interior of the part. Machining interventions are found to yield a statistically significant increase in microhardness, indicating increased strength compared to Wire Arc DED alone. In addition, the spread of the microhardness distribution is reduced in Hybrid-Wire Arc DED, indicating improved homogeneity of the grain size distribution compared to Wire Arc DED alone. The study shows that the proposed hybrid manufacturing technique has the potential to control and improve the geometric and mechanical properties of additively manufactured metal components.
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层间加工干预对线弧定向能沉积部件几何和机械性能的影响
线弧定向能量沉积(Wire Arc Directed Energy Deposition,Wire Arc DED)能够以较高的沉积速率打印大型金属零件,同时具有较高的经济效益,因此已成为一种流行的金属增材制造技术。然而,线弧定向能沉积工艺因珠子几何形状的变化而导致几何误差,并表现出微观结构和机械性能的异质性。本研究探讨了在线弧去毛刺工艺中使用定制的周期性加工干预来解决这些缺陷。比较了在不同温度下进行和未进行加工干预的多层壁结构的竣工几何形状、表面光洁度、微观结构和显微硬度。结果发现,加工干预可减少珠状几何形状演变的不确定性,并显著改善坯壁的表面粗糙度,从而减少对坯壁表面进行进一步后处理的需要。虽然有加工干预和没有加工干预的坯壁结构的微观结构成分相似,但加工干预会使零件内部的晶粒更细。经统计发现,加工干预可显著提高显微硬度,这表明与单独的线弧去毛刺相比,加工干预可提高强度。此外,混合-线弧去毛刺工艺中的显微硬度分布范围缩小,表明与单独的线弧去毛刺工艺相比,晶粒尺寸分布的均匀性得到改善。这项研究表明,所提出的混合制造技术具有控制和改善快速成型金属部件的几何和机械性能的潜力。
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