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Titanium Alloy Repair with Wire-Feed Electron Beam Additive Manufacturing Technology

机译:用丝网电子束添加制造技术进行钛合金修复

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摘要

Wire feeding can be combined with different heat sources, for example, arc, laser, and electron beam, to enable additive manufacturing and repair of metallic materials. In the case of titanium alloys, the vacuum operational environment of electron beam systems prevents atmospheric contamination during high-temperature processing and ensures high performance and reliability of additively manufactured or repaired components. In the present work, the feasibility of developing a repair process that emulates refurbishing an “extensively eroded” fan blade leading edge using wire-feed electron beam additive manufacturing technology was examined. The integrity of the Ti6Al4V wall structure deposited on a 3 mm thick Ti6Al4V substrate was verified using X-ray microcomputed tomography with a three-dimensional reconstruction. To understand the geometrical distortion in the substrate, three-dimensional displacement mapping with digital image correlation was undertaken after refurbishment and postdeposition stress relief heat treatment. Other characteristics of the repair were examined by assessing the macro- and microstructure, residual stresses, microhardness, tensile and fatigue properties, and static and dynamic failure mechanisms.
机译:送丝可以与不同的热源组合,例如电弧,激光和电子束,以实现金属材料的添加制造和修复。在钛合金的情况下,电子束系统的真空操作环境可防止高温加工过程中的大气污染,并确保高性能和加剧制造或修复的部件的可靠性。在本作工作中,研究了使用导线电子束添加制造技术仿真翻新翻新“广泛侵蚀”风扇叶片前缘的修复过程的可行性。使用三维重建验证沉积在3mm厚Ti6A4V衬底上的Ti6A14V壁结构的完整性。为了了解基板中的几何变形,在翻新和后置换应激释放热处理之后进行三维位移映射与数字图像相关性。通过评估宏观和微观结构,残余应力,微硬度,拉伸和疲劳性能,以及静态和动态故障机制来检查修复的其他特征。

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