Effect of Composite Scanning Strategy on Forming Quality, Microstructure, and Tensile Properties of Laser Powder Bed Fusion Titanium Alloy

IF 3.4 3区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY Advanced Engineering Materials Pub Date : 2024-11-08 DOI:10.1002/adem.202401727
Changchun Zhang, Hua Lin, Dongmei Gong, Li Rong, Yanzhou Li, Liyi Jiang
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Abstract

Laser powder bed fusion (LPBF) technology offers significant advantages in manufacturing complex-shaped titanium alloy components. Traditional scanning strategies, such as zigzag and island scanning, however, often fall short in fabricating parts with variable cross sections. To enhance the forming quality of components featuring combined thin-walled and bulk structures, a composite scanning strategy is proposed that adapts to the local characteristics of parts. This novel approach is designed to employ both island and zigzag scanning within the same deposition layer, aiming to optimize the balance between porosity and stress distribution. Notably, with a feature transition distance of 4 mm and a scan line offset of 0.67 mm, the specimens achieve a tensile strength of 1311.0 MPa, a yield strength of 1103.0 MPa, and an elongation of 8.8%. This strategy leads to the optimization of defects and a transition in microstructure for combined structural features. These promising outcomes lay the foundation for the intelligent allocation of scanning strategies and the high-quality formation of complex-shaped, high-strength titanium alloy parts.

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复合扫描策略对激光粉末床熔合钛合金成形质量、显微组织和拉伸性能的影响
激光粉末床熔融技术在制造形状复杂的钛合金部件方面具有显著的优势。然而,传统的扫描策略,如之字形扫描和岛形扫描,在制造具有可变截面的零件时往往存在不足。为了提高薄壁与大块结合结构零件的成形质量,提出了一种适应零件局部特征的复合扫描策略。这种新颖的方法可以在同一沉积层内同时使用岛状扫描和之字形扫描,旨在优化孔隙度和应力分布之间的平衡。当特征过渡距离为4 mm,扫描线偏移量为0.67 mm时,试样的抗拉强度为1311.0 MPa,屈服强度为1103.0 MPa,伸长率为8.8%。这种策略导致缺陷的优化和组合结构特征的微观结构转变。这些有希望的成果为扫描策略的智能配置和复杂形状、高强度钛合金零件的高质量成形奠定了基础。
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来源期刊
Advanced Engineering Materials
Advanced Engineering Materials 工程技术-材料科学:综合
CiteScore
5.70
自引率
5.60%
发文量
544
审稿时长
1.7 months
期刊介绍: Advanced Engineering Materials is the membership journal of three leading European Materials Societies - German Materials Society/DGM, - French Materials Society/SF2M, - Swiss Materials Federation/SVMT.
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