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Wire-based Laser Metal Deposition for Additive Manufacturing of TiA16V4: Basic Investigations of Microstructure and Mechanical Properties from Build-up Parts

机译:TiA16V4增材制造的基于线的激光金属沉积:堆积零件的微观结构和力学性能的基础研究

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The wire-based laser metal deposition (LMD-W) is a new technology which enables to produce complex parts made of titanium for the aerospace and automotive industry. For establishing the LMD-W as a new production process it has to be proven that the properties are comparable or superior to conventional produced parts. The mechanical properties were investigated by analysis of microstructure and tensile test. Therefore, specimens were generated using a 4.5 kW diode laser cladding system integrated in a 5-Axis-machining center. The structural mechanical properties are mainly influence by crystal structure and thereby the thermal history of the work piece. Especially the high affinity to oxide, distortion and dual phase microstructure make titanium grade 5 (TiA16V4) one of the most challenging material for additive manufacturing. By using a proper local multi-nozzle shielding gas concept the negative influence of oxide in the process could be eliminated. The distortion being marginal at a single bead, accumulated to a macroscopic effect on the work piece. The third critical point for additive processing of titanium, the bimodal microstructure, could not be cleared by the laser process alone. All metallurgical probes showed α-martensitic-structure. Therefore, a thermal treatment became a necessary production step in the additive production chain. After the thermal treatment the microstructure as well as the distortion was analyzed and compared with the status before. Although not all technical issues could be solved, the investigation show that LMD-W of titanium grade 5 is a promising alternative to other additive techniques as electronic beam melting or plasma deposition welding.
机译:基于线的激光金属沉积(LMD-W)是一项新技术,能够生产用于航空航天和汽车工业的钛制复杂零件。为了将LMD-W确立为新的生产工艺,必须证明其性能与传统生产的零件相当或更好。通过组织分析和拉伸试验研究了机械性能。因此,使用集成在5轴加工中心中的4.5 kW二极管激光熔覆系统生成了标本。结构机械性能主要受晶体结构的影响,进而受工件的热历史的影响。特别是对氧化物,变形和双相微结构的高亲和力使5级钛(TiA16V4)成为增材制造最具挑战性的材料之一。通过使用适当的局部多喷嘴保护气体概念,可以消除过程中氧化物的负面影响。变形在单个焊缝处很小,累积到工件上的宏观效果。钛的附加加工的第三个临界点,即双峰微观结构,不能仅通过激光加工来清除。所有的冶金探针均显示出α-马氏体结构。因此,热处理成为添加剂生产链中必不可少的生产步骤。热处理后,分析其微观结构和变形并将其与之前的状态进行比较。尽管不能解决所有技术问题,但研究表明,钛5级LMD-W是一种有希望的替代方法,可替代电子束熔化或等离子沉积焊接等其他添加剂技术。

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