On the Processability and Microstructural Evolution of CuCrZr in Multilayer Laser-Directed Energy Deposition Additive Manufacturing via Statistical and Experimental Methods

IF 3.3 Q2 ENGINEERING, MANUFACTURING Journal of Manufacturing and Materials Processing Pub Date : 2023-08-18 DOI:10.3390/jmmp7040151
A. Zardoshtian, R. Esmaeilizadeh, M. Ansari, M. Keshavarz, H. Jahed, E. Toyserkani
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Abstract

Laser-directed energy deposition (LDED) is a promising technology for coating, repairing, and building near-net-shape 3D structures. However, the processing of copper alloys, specifically, has presented a significant challenge due to their low laser absorptivity at the 1060 nm laser wavelength and high thermal conductivity. This study undertook a methodical examination by employing a 2 kW disk laser, operating at a wavelength of 1064 nm, and a coaxial nozzle head to comprehensively examine the processability of the highly conductive CuCrZr alloy for expanding the range of materials that can be successfully processed using LDED. The investigation focuses not only on optimizing the input process parameters that are the laser power, scanning speed, powder feed rate, and overlap ratio, but also on planning the toolpath trajectory, as these factors were found to exert a substantial influence on processability, geometrical accuracy, and the occurrence of defects such as lack of fusion. The optimal toolpath trajectory discovered involved implementing a zigzag strategy combined with a 90° rotation of the scanning direction. Additionally, a start point rotation was considered between each layer to even out the deposition of the layers. Moreover, a contour with a radial path at the corners was introduced to enhance the overall trajectory. Based on the hierarchal experimental study, the appropriate ranges for the key process parameters that leads to 99.99% relative density have been identified. They were found to be from 1100 up to 2000 W for the laser power (P), and from 0.003 up to 0.016 g/mm for the amount of powder that is fed to the melt pool distance (F/V). Regarding the influence of process parameters on the microstructure of the samples with equal deposition height, it was observed that varying combinations of process parameters within the optimal processing window resulted in variations in grain size ranging from 105 to 215 µm.
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基于统计和实验方法的多层激光定向能沉积增材制造CuCrZr的可加工性和微观组织演变
激光定向能量沉积(LDED)是一种很有前途的涂层、修复和构建近净三维结构的技术。然而,特别是铜合金的加工由于其在1060nm激光波长下的低激光吸收率和高导热性而提出了重大挑战。本研究通过使用波长为1064nm的2kW圆盘激光器和同轴喷嘴头进行了系统的检查,以全面检查高导电CuCrZr合金的可加工性,从而扩大可以使用LDED成功加工的材料范围。研究的重点不仅是优化激光功率、扫描速度、粉末进给速率和重叠率等输入工艺参数,还包括规划刀具轨迹,因为这些因素对加工性、几何精度和缺陷(如未熔合)的发生有很大影响。发现的最佳刀具路径轨迹涉及实施Z字形策略,并将扫描方向旋转90°。此外,考虑了每层之间的起点旋转,以使层的沉积均匀。此外,引入了一个在拐角处具有径向路径的轮廓,以增强整体轨迹。基于分层实验研究,确定了导致99.99%相对密度的关键工艺参数的适当范围。发现对于激光功率(P),它们为1100至2000W,对于供给到熔池距离(F/V)的粉末量,它们为0.003至0.016g/mm。关于工艺参数对具有相同沉积高度的样品微观结构的影响,观察到在最佳工艺窗口内工艺参数的不同组合导致晶粒尺寸在105至215µm之间的变化。
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来源期刊
Journal of Manufacturing and Materials Processing
Journal of Manufacturing and Materials Processing Engineering-Industrial and Manufacturing Engineering
CiteScore
5.10
自引率
6.20%
发文量
129
审稿时长
11 weeks
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