The mixing of powders is a highly relevant field under additive manufacturing, however, it has attracted limited interest to date. The in-situ mixing of various powders remains a significant challenge. This paper proposes a new method utilizing a static mixer for the in-situ mixing of multiple powders through the laser-based directed energy deposition (DED) of functionally graded materials. Firstly, a powder-mixing experimental platform was established; WC and 316L powders were selected for the mixing experiments. Secondly, scanning electron microscopy, energy dispersive spectroscopy, and image processing were used to visually evaluate the homogeneity and proportion of the in-situ mixed powder. Furthermore, powder-mixing simulations were conducted to determine the powder-mixing mechanism. In the simulations, a powder carrier gas flow field and particle mixing were employed. Finally, a WC/316L metal matrix composite sample was produced using laser-based DED to verify the application potential of the static mixer. It was found that the static mixer could adjust the powder ratio online, and a response time of 1–2 s should be considered when adjusting the ratio of the mixed powder. A feasible approach for in-situ powder mixing for laser-based DED was demonstrated and investigated, creating the basis for functionally graded materials.
The full text can be downloaded at https://link.springer.com/article/10.1007/s40436-023-00460-2
Ji-Peng Chen
,
Shou-Chun Xie
,
He Huang
. In-situ powder mixing for laser-based directed energy deposition of functionally graded materials[J]. Advances in Manufacturing, 2024
, 12(1)
: 150
-166
.
DOI: 10.1007/s40436-023-00460-2
1 Benoit MJ, Sun SD, Brandt M et al (2021) Processing window for laser metal deposition of Al 7075 powder with minimized defects. J Manuf Process 64:1484–1492
2 Ansari M, Jabari E, Toyserkani E (2021) Opportunities and challenges in additive manufacturing of functionally graded metallic materials via powder-fed laser directed energy deposition: a review. J Mater Process Tech 294:117117. https://doi.org/10.1016/j.jmatprotec.2021.117117
3 Tan C, Chew Y, Weng F et al (2022) Laser aided additive manufacturing of spatially heterostructured steels. Int J Mach Tool Manu 172:103817. https://doi.org/10.1016/j.ijmachtools.2021.103817
4 Poggi M, Atzeni E, Iuliano L et al (2022) State-of-the-art of numerical simulation of laser powder directed energy deposition process. Procedia CIRP 112:376–381
5 Baraldo S, Roncoroni A, Palo F et al (2022) Multi-physics based methodology for evaluating powder feeding quality for laser metal deposition. Procedia CIRP 107:623–628
6 Moritz J, Seidel A, Kopper M et al (2020) Hybrid manufacturing of titanium Ti-6Al-4V combining laser metal deposition and cryogenic milling. Int J Adv Manuf Tech 107:2995–3009
7 Zhou H, Yang Y, Wang D et al (2022) Powder flow simulation of a ring-type coaxial nozzle and cladding experiment in laser metal deposition. Int J Adv Manuf Techn 120(11/12):8389–8400
8 Zhang C, Chen F, Huang Z et al (2019) Additive manufacturing of functionally graded materials: a review. Mat Sci Eng A 764:138209. https://doi.org/10.1016/j.msea.2019.138209
9 Yan L, Chen Y, Liou F (2020) Additive manufacturing of functionally graded metallic materials using laser metal deposition. Addit Manuf 31:100901. https://doi.org/10.1016/j.addma.2019.100901
10 Pasha A, Rajaprakash BM (2022) Fabrication and mechanical properties of functionally graded materials: a review. Mater Today Proc 52:379–387
11 Boggarapu V, Gujjala R, Ojha S et al (2021) State of the art in functionally graded materials. Compos Struct 262:113596. https://doi.org/10.1016/j.compstruct.2021.113596
12 Wang C, Zhang P, Zhang K et al (2021) A novel process parameter screening strategy by comprehensively consideration of powder separation, defects and power consumption when fabricating FGM using laser metal deposition. J Clean Prod 278:123274. https://doi.org/10.1016/j.jclepro.2020.123274
13 Su Y, Chen B, Tan C et al (2020) Influence of composition gradient variation on the microstructure and mechanical properties of 316 L/Inconel 718 functionally graded material fabricated by laser additive manufacturing. J Mater Process Tech 283:116702. https://doi.org/10.1016/j.jmatprotec.2020.116702
14 Ghanavati R, Naffakh-Moosavy H, Moradi M (2021) Additive manufacturing of thin-walled SS316L-IN718 functionally graded materials by direct laser metal deposition. J Mater Res Technol 15:2673–2685
15 Ramakrishnan A, Dinda GP (2019) Functionally graded metal matrix composite of Haynes 282 and SiC fabricated by laser metal deposition. Mater Des 179:107877. https://doi.org/10.1016/j.matdes.2019.107877
16 Yao J, Xin B, Gong Y et al (2021) Effect of initial temperature on the microstructure and properties of stellite-6/Inconel 718 functional gradient materials formed by laser metal deposition. Materials 14(13):3609. https://doi.org/10.3390/ma14133609
17 Tan C, Weng F, Sui S et al (2021) Progress and perspectives in laser additive manufacturing of key aeroengine materials. Int J Mach Tool Manuf 170:103804. https://doi.org/10.1016/j.ijmachtools.2021.103804
18 Shah K, Haq I, Khan A et al (2014) Parametric study of development of Inconel-steel functionally graded materials by laser direct metal deposition. Mater Des 54:531–538
19 Su YY, Wang ZF, Xie JC et al (2021) Microstructures and mechanical properties of laser melting deposited Ti6Al4V/316L functional gradient materials. Mat Sci Eng A 817:141355. https://doi.org/10.1016/j.msea.2021.141355
20 Bunkluarb N, Sawangtong W, Khajohnsaksumeth N et al (2019) Numerical simulation of granular mixing in static mixers with different geometries. Adv Differ Equ 2019:1–17
21 Soman SS, Madhuranthakam CMR (2017) Effects of internal geometry modifications on the dispersive and distributive mixing in static mixers. Chem Eng Process 122:31–43
22 Thakur RK, Vial C, Nigam KDP et al (2003) Static mixers in the process industries—a review. Chem Eng Res Des 81(7):787–826
23 Haddadi MM, HosseiniS H, Rashtchian D et al (2020) Comparative analysis of different static mixers performance by CFD technique: an innovative mixer. Chin J Chem Eng 28(3):672–684
24 Lowry E, Yuan Y, Krishnamoorthy G (2022) A new correlation for single-phase pressure loss through SMV static mixers at high Reynolds numbers. Chem Eng Process 171:108716. https://doi.org/10.1016/j.cep.2021.108716
25 Chen JP, Xie SC, Huang H (2023) A novel method of utilizing static mixer to obtain mixing homogeneity of multi-species powders in laser metal deposition. Chin J Aeronaut 36(1):423–433
26 Meng H, Han M, Yu Y et al (2020) Numerical evaluations on the characteristics of turbulent flow and heat transfer in the lightning static mixer. Int J Heat Mass Transf 156:119788. https://doi.org/10.1016/j.ijheatmasstransfer.2020.119788
27 Alekseev KA, Mukhametzyanova AG (2020) Classification, function, and construction of modern static mixers. Chem Petrol Eng 55:934–942
28 Gross R, Fontana E, Silva A et al (2018) Dispersion of odorants in natural gas distribution networks. Heat Mass Transf 54:2827–2834
29 Valdés JP, Kahouadji L, Matar OK (2022) Current advances in liquid-liquid mixing in static mixers: a review. Chem Eng Res Des 177:694–731