Influence of the laser strategy on bi-metallic interfaces printed via multi-material laser-based powder bed fusion

IF 4.7 Q2 ENGINEERING, MANUFACTURING Additive manufacturing letters Pub Date : 2025-04-01 Epub Date: 2025-02-10 DOI:10.1016/j.addlet.2025.100274
Isabel B. Prestes, Eric A. Jägle
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Abstract

Metallic Multi-material Additive Manufacturing (MMAM) is an emerging research topic, with potential applications in heat exchangers, metamaterials and satellite components. In recent years, new multi-material laser powder bed fusion (PBF-LB) techniques have been developed. However, processing challenges may arise, since materials with dissimilar properties are mixed at the interfaces, which might lead to defects such as cracks. This work aims to investigate the influence of different laser scan strategies to achieve sound interfaces with different material mixing gradients. The samples, made of Inconel 718 and Invar were deposited by the patterning drums technique and were analyzed by means of optical microscopy and energy-dispersive X-ray spectroscopy (EDS) mappings and line scans. The orientation in which melt pools cross the material interface plays an important role in mixing the materials. Different orientations in subsequent layers create a certain “jagged” pattern of mixing at the interface. Sigmoid functions of Boltzmann fitted to the line scans show a significant slope steepness increase – up to 75 % – in the element count from double scan to single scan, suggesting a stronger material mixing. The double scan strategy leads to porosity at the interface and thus should be avoided. The remelt at the interface partially healed defects such as cracks but does not seem to influence the mixing width at the interface. These findings give general guidance for selecting scan strategies in MMAM depending on the desired mixing pattern at the material interface.
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激光策略对多材料激光粉末床熔合打印双金属界面的影响
金属多材料增材制造(MMAM)是一个新兴的研究课题,在热交换器、超材料和卫星部件等领域具有潜在的应用前景。近年来,新型多材料激光粉末床熔融技术得到了发展。然而,由于具有不同性能的材料在界面处混合,可能导致裂纹等缺陷,因此可能会出现加工挑战。本工作旨在研究不同激光扫描策略对不同材料混合梯度下获得声音界面的影响。采用模鼓法沉积了由Inconel 718和Invar制成的样品,并用光学显微镜、能谱图和线扫描对样品进行了分析。熔池穿过材料界面的方向对材料的混合起着重要的作用。在随后的层中,不同的方向在界面上形成了某种“锯齿状”的混合模式。拟合线扫描的玻尔兹曼Sigmoid函数显示,从两次扫描到一次扫描,元素计数的斜率陡度显著增加,高达75%,表明材料混合更强。双重扫描策略会导致界面处出现孔隙,因此应避免。界面处的熔体部分修复了裂纹等缺陷,但似乎对界面处的混合宽度没有影响。这些发现为根据材料界面所需的混合模式选择MMAM扫描策略提供了一般指导。
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来源期刊
Additive manufacturing letters
Additive manufacturing letters Materials Science (General), Industrial and Manufacturing Engineering, Mechanics of Materials
CiteScore
3.70
自引率
0.00%
发文量
0
审稿时长
37 days
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