Recent innovations in laser additive manufacturing of titanium alloys

被引:0
作者
Jinlong Su [1 ,2 ]
Fulin Jiang [1 ]
Jie Teng [1 ]
Lequn Chen [2 ]
Ming Yan [3 ]
Guillermo Requena [4 ,5 ]
LaiChang Zhang [6 ]
Y Morris Wang [7 ]
Ilya V Okulov [8 ,9 ]
Hongmei Zhu [10 ]
Chaolin Tan [2 ]
机构
[1] College of Materials Science and Engineering, Hunan University
[2] Singapore Institute of Manufacturing Technology (SIMTech), Agency for Science, Technology and Research (A*STAR)
[3] Department of Materials Science and Engineering, Southern University of Science and Technology
[4] Institute of Materials Research, German Aerospace Center (DLR)
[5] RWTH Aachen University, Metallic Structures and Materials Systems for Aerospace Engineering
[6] Centre for Advanced Materials and Manufacturing, Edith Cowan University
[7] Department of Materials Science and Engineering, University of California
[8] Leibniz Institute for Materials Engineering—IWT
[9] Faculty of Production Engineering, University of Bremen
[10] Key Laboratory of Hunan Province of Equipment Safety Service Technology under Extreme Environment, University of South
关键词
D O I
暂无
中图分类号
TG146.23 []; TG665 [光能加工设备及其加工];
学科分类号
摘要
Titanium(Ti) alloys are widely used in high-tech fields like aerospace and biomedical engineering. Laser additive manufacturing(LAM), as an innovative technology, is the key driver for the development of Ti alloys. Despite the significant advancements in LAM of Ti alloys,there remain challenges that need further research and development efforts. To recap the potential of LAM high-performance Ti alloy, this article systematically reviews LAM Ti alloys with up-to-date information on process, materials, and properties. Several feasible solutions to advance LAM Ti alloys are reviewed, including intelligent process parameters optimization,LAM process innovation with auxiliary fields and novel Ti alloys customization for LAM. The auxiliary energy fields(e.g. thermal, acoustic, mechanical deformation and magnetic fields) can affect the melt pool dynamics and solidification behaviour during LAM of Ti alloys, altering microstructures and mechanical performances. Different kinds of novel Ti alloys customized for LAM, like peritectic α-Ti, eutectoid(α + β)-Ti, hybrid(α + β)-Ti, isomorphous β-Ti and eutectic β-Ti alloys are reviewed in detail. Furthermore, machine learning in accelerating the LAM process optimization and new materials development is also outlooked. This review summarizes the material properties and performance envelops and benchmarks the research achievements in LAM of Ti alloys. In addition, the perspectives and further trends in LAM of Ti alloys are also highlighted.
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页码:6 / 42
页数:37
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