A Review of Additive Manufacturing Techniques and Post-Processing for High-Temperature Titanium Alloys

IF 2.6 3区 材料科学 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY
Metals Pub Date : 2023-07-25 DOI:10.3390/met13081327
Binquan Jin, Qing Wang, Lizhong Zhao, Anjian Pan, Xuefeng Ding, W. Gao, Yufeng Song, Xuefeng Zhang
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引用次数: 3

Abstract

Owing to excellent high-temperature mechanical properties, i.e., high heat resistance, high strength, and high corrosion resistance, Ti alloys can be widely used as structural components, such as blades and wafers, in aero-engines. Due to the complex shapes, however, it is difficult to fabricate these components via traditional casting or plastic forming. It has been proved that additive manufacturing (AM) is an effective method of manufacturing such complex components. In this study, four main additive manufacturing processes for Ti alloy components were reviewed, including laser powder bed melting (SLM), electron beam powder bed melting (EBM), wire arc additive manufacturing (WAAM), and cold spraying additive manufacturing (CSAM). Meanwhile, the technological process and mechanical properties at high temperature were summarized. It is proposed that the additive manufacturing of titanium alloys follows a progressive path comprising four key developmental stages and research directions: investigating printing mechanisms, optimizing process parameters, in situ addition of trace elements, and layered material design. It is crucial to consider the development stage of each specific additive manufacturing process in order to select appropriate research directions. Moreover, the corresponding post-treatment was also analyzed to tailor the microstructure and high-temperature mechanical properties of AMed Ti alloys. Thereafter, to improve the mechanical properties of the product, it is necessary to match the post-treatment method with an appropriate additive manufacturing process. The additive manufacturing and the following post-treatment are expected to gradually meet the high-temperature mechanical requirements of all kinds of high-temperature structural components of Ti alloys.
高温钛合金增材制造技术及后处理研究进展
钛合金具有优异的高温力学性能,即高耐热性、高强度和高耐腐蚀性,可广泛用作航空发动机的结构部件,如叶片和晶圆。然而,由于形状复杂,很难通过传统的铸造或塑性成形来制造这些部件。事实证明,增材制造(AM)是制造此类复杂部件的有效方法。本研究综述了钛合金部件的四种主要增材制造工艺,包括激光粉末床熔炼(SLM)、电子束粉末床熔化(EBM)、线弧增材制造(WAAM)和冷喷涂增材制造。同时,对其工艺过程和高温力学性能进行了总结。提出钛合金的增材制造遵循一条渐进的道路,包括四个关键的发展阶段和研究方向:研究印刷机理、优化工艺参数、原位添加微量元素和分层材料设计。为了选择合适的研究方向,考虑每个特定增材制造工艺的发展阶段至关重要。此外,还对相应的后处理进行了分析,以调整AMed Ti合金的微观结构和高温力学性能。此后,为了提高产品的机械性能,有必要将后处理方法与适当的增材制造工艺相匹配。增材制造和随后的后处理有望逐步满足钛合金各种高温结构部件的高温力学要求。
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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来源期刊
Metals
Metals MATERIALS SCIENCE, MULTIDISCIPLINARY-METALLURGY & METALLURGICAL ENGINEERING
CiteScore
4.90
自引率
13.80%
发文量
1832
审稿时长
1.5 months
期刊介绍: Metals (ISSN 2075-4701) is an open access journal of related scientific research and technology development. It publishes reviews, regular research papers (articles) and short communications. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. Therefore, there is no restriction on the length of the papers. The full experimental details must be provided so that the results can be reproduced. Metals provides a forum for publishing papers which advance the in-depth understanding of the relationship between the structure, the properties or the functions of all kinds of metals.
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