Multi laser beams directed energy deposition of a high-strength and high-toughness TC11 titanium alloy with coaxial wire feeding

J.Q. Yao , Y.S. Wang , X.W. Liu , X.F. Chen , S.M. Chen , L. Hu , H.T. Liu , Y.H. Qian , Y. Cheng , B. Song , C.Z. Yan , Y.S. Shi
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Abstract

Wire-feed laser directed energy deposition (WLDED) additive manufacturing technology, which utilizes a wire alloy, offers a high material utilization rate and produces less pollution, making it ideal for efficiently processing large components. However, the conventional paraxial wire feeding method faces challenges, such as inadequate coupling between the laser and the wire, as well as limited flexibility of the processing head when creating complex parts. This study introduces a new multi-laser beam coaxial wire feeding device designed to fabricate and analyze the high-strength and high-toughness TC11 titanium alloy, frequently used in critical load-bearing aerospace components. By optimizing process parameters like wire feeding speed (WFS) and travel speed (TS), formability was improved with WFS set at 500 mm/min and TS at 4 mm/s. The findings show that the microstructural changes in various regions and the mechanical properties in the typical direction can be significantly influenced by the use of coaxial WLDED with specific thermal gradient (G) and solidification rate (R) characteristics, along with particular laser-wire coupling positions. The combined effects of a lower thermal gradient and heterogeneous nucleation, resulting from coaxial wire feeding, are essential in refining the microstructure of materials used in coaxial WLDED. As a result, the fundamental mechanisms underlying microstructural evolution and the improvement of tensile properties through multi-laser beam WLDED with a coaxial processing head have been elucidated.
同轴送丝的多束激光定向能沉积高强高韧性TC11钛合金
线馈激光定向能沉积(WLDED)增材制造技术利用线材合金,材料利用率高,污染少,是高效加工大型部件的理想选择。然而,传统的近轴送丝方法面临着挑战,例如激光与线材之间的耦合不足,以及在制造复杂零件时加工头的灵活性有限。本文介绍了一种新型的多激光束同轴送丝装置,用于制造和分析高强度、高韧性TC11钛合金,该钛合金经常用于航空航天关键承重部件。通过优化送丝速度(WFS)和行程速度(TS)等工艺参数,将送丝速度(WFS)设置为500 mm/min,行程速度设置为4 mm/s,提高了成形性能。结果表明:采用具有特定热梯度(G)和凝固速率(R)特征的同轴焊接材料,以及特定的激光-焊丝耦合位置,可以显著影响各区域的显微组织变化和典型方向的力学性能;较低的热梯度和同轴送丝产生的非均质成核的综合效应,对于改善同轴焊接材料的微观结构至关重要。研究结果阐明了同轴加工头多激光束焊接材料显微组织演变和拉伸性能改善的基本机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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