Pore evolution mechanisms during directed energy deposition additive manufacturing

被引:48
作者
Zhang, Kai [1 ,2 ]
Chen, Yunhui [1 ,2 ,3 ,4 ]
Marussi, Sebastian [1 ,2 ]
Fan, Xianqiang [1 ,2 ]
Fitzpatrick, Maureen [1 ,3 ]
Bhagavath, Shishira [1 ,2 ]
Majkut, Marta [3 ]
Lukic, Bratislav [3 ]
Jakata, Kudakwashe [3 ,5 ]
Rack, Alexander [3 ]
Jones, Martyn A. [6 ]
Shinjo, Junji [7 ]
Panwisawas, Chinnapat [8 ]
Leung, Chu Lun Alex [1 ,2 ]
Lee, Peter D. [1 ,2 ]
机构
[1] UCL, Dept Mech Engn, London WC1E 7JE, England
[2] Res Complex Harwell,Harwell Campus, Didcot OX11 0FA, England
[3] ESRF European Synchrotron, F-38000 Grenoble, France
[4] RMIT Univ, Sch Engn, Melbourne, Vic 3000, Australia
[5] Diamond Light Source, Harwell Campus, Didcot OX11 0DE, Oxon, England
[6] Rolls Royce PLC, POB 31, Derby DE24 8BJ, England
[7] Shimane Univ, Next Generat Tatara Cocreat Ctr, Matsue 6908504, Japan
[8] Queen Mary Univ London, Sch Engn & Mat Sci, London E1 4NS, England
基金
英国工程与自然科学研究理事会;
关键词
ALUMINUM-COPPER ALLOYS; HYDROGEN POROSITY; LASER; MICROSTRUCTURE; SOLIDIFICATION; SIMULATION; GENERATION; MORPHOLOGY; DYNAMICS; BEHAVIOR;
D O I
10.1038/s41467-024-45913-9
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Porosity in directed energy deposition (DED) deteriorates mechanical performances of components, limiting safety-critical applications. However, how pores arise and evolve in DED remains unclear. Here, we reveal pore evolution mechanisms during DED using in situ X-ray imaging and multi-physics modelling. We quantify five mechanisms contributing to pore formation, migration, pushing, growth, removal and entrapment: (i) bubbles from gas atomised powder enter the melt pool, and then migrate circularly or laterally; (ii) small bubbles can escape from the pool surface, or coalesce into larger bubbles, or be entrapped by solidification fronts; (iii) larger coalesced bubbles can remain in the pool for long periods, pushed by the solid/liquid interface; (iv) Marangoni surface shear flow overcomes buoyancy, keeping larger bubbles from popping out; and (v) once large bubbles reach critical sizes they escape from the pool surface or are trapped in DED tracks. These mechanisms can guide the development of pore minimisation strategies. Porosity is a key issue in additive manufacturing (AM). Here, the authors reveal the bubble evolution mechanisms including formation, coalescence, pushing, growth, entrainment, escape, and entrapment during directed energy deposition AM using in situ X-ray imaging and multiphysics modelling.
引用
收藏
页数:14
相关论文
共 50 条
[31]   Experimental and numerical studies of nozzle effect on powder flow behaviors in directed energy deposition additive manufacturing [J].
Yao, X. X. ;
Li, J. Y. ;
Wang, Y. F. ;
Gao, X. ;
Li, T. ;
Zhang, Z. .
INTERNATIONAL JOURNAL OF MECHANICAL SCIENCES, 2021, 210
[32]   Automated Tool-Path Generation for Rapid Manufacturing of Additive Manufacturing Directed Energy Deposition Geometries [J].
Biegler, Max ;
Wang Jiahan ;
Kaiser, Lukas ;
Rethmeier, Michael .
STEEL RESEARCH INTERNATIONAL, 2020, 91 (11)
[33]   Pore suppression and performance improvement mechanisms in wire-arc directed energy deposition of 7075 alloy [J].
Wang, Yuwen ;
Wu, Dongsheng ;
Chen, Ji ;
Komen, Hisaya ;
Chen, Maoai ;
Su, Hao ;
Wu, Chuansong ;
Tanaka, Manabu .
VIRTUAL AND PHYSICAL PROTOTYPING, 2025, 20 (01)
[34]   Numerical Simulation Development and Computational Optimization for Directed Energy Deposition Additive Manufacturing Process [J].
Kiran, Abhilash ;
Hodek, Josef ;
Vavrik, Jaroslav ;
Urbanek, Miroslav ;
Dzugan, Jan .
MATERIALS, 2020, 13 (11)
[35]   Directed energy deposition additive manufacturing of functionally graded Al-W composites [J].
Kelly, J. P. ;
Elmer, J. W. ;
Ryerson, F. J. ;
Lee, J. R., I ;
Haslam, J. J. .
ADDITIVE MANUFACTURING, 2021, 39
[36]   Examination of steel compatibility with additive manufacturing and repair via laser directed energy deposition [J].
Barr, Cameron ;
Rashid, Rizwan Abdul Rahman ;
Palanisamy, Suresh ;
Watts, Jarrod ;
Brandt, Milan .
JOURNAL OF LASER APPLICATIONS, 2023, 35 (02)
[37]   The influence of nozzle geometry on powder flow behaviors in directed energy deposition additive manufacturing [J].
Gao, X. ;
Yao, X. X. ;
Niu, F. Y. ;
Zhang, Z. .
ADVANCED POWDER TECHNOLOGY, 2022, 33 (03)
[38]   Simulations of directed energy deposition additive manufacturing process by smoothed particle hydrodynamics methods [J].
Dao, My Ha ;
Lou, Jing .
INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2022, 120 (7-8) :4755-4774
[39]   Dislocation evolution during additive manufacturing of tungsten [J].
Cui, Yinan ;
Li, Kailun ;
Wang, Chan ;
Liu, Wei .
MODELLING AND SIMULATION IN MATERIALS SCIENCE AND ENGINEERING, 2022, 30 (02)
[40]   The role of substrate preheating on the microstructure, roughness, and mechanical performance of AISI 316L produced by directed energy deposition additive manufacturing [J].
Moheimani, Seyed Kiomars ;
Iuliano, Luca ;
Saboori, Abdollah .
INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2022, 119 (11-12) :7159-7174