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Induction Heating Based 3D Metal Printing of Eutectic Alloy Using Vibrating Nozzle

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Advances in Additive Manufacturing, Modeling Systems and 3D Prototyping (AHFE 2019)

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Abstract

Induction heating has been used widely for heating and melting of metal workpieces. We have designed and developed a low-power, high-frequency electromagnetic Induction heater (IH) for metal 3D printing using a zero-voltage switching (ZVS) circuit. During this process, an alternating current pass through inductor and capacitor tank circuit at its resonating frequency and creates an alternating magnetic field inside the helical induction coil. Alternating magnetic field leads to the generation of eddy currents in the workpiece. Due to Joule heating, these eddy currents heat and melt the workpiece in a short time. A real-time monitoring and control of the workpiece temperature were implemented for lead-free solder (Sn99Cu1) using a metal-oxide-semiconductor-field-effect transistor (MOSFET) based control circuit driven by Data Acquisition (DAQ) module and LabVIEW. To demonstrate the 3D metal printing, molten solder was deposited drop-by-drop using a lead-screw based computer-controlled positioning system. Solder was melted inside the aluminium tube attached with the brass nozzle. The nozzle diameter and distance between the nozzle head to the bed surface was 0.4 mm and 7 mm respectively. The droplets were generated by vibrating the whole nozzle filled with molten solder using a vibration motor attached to the nozzle tube. The vibration motor frequency and relative speed of the bed surface were ≈130 Hz and 25 cm/min respectively. A study of varying molten solder temperatures to print multi-layer structures with controlled CNC movement was conducted for printing 3D metal structures. The solder was printed in the form of individual droplets at temperatures close to the melting point (227 °C) while at higher temperatures (235 °C) the molten droplets fused before solidifying.

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References

  1. Espalin, D., et al.: 3D Printing multifunctionality: structures with electronics. Int. J. Adv. Manuf. Technol. 72(5–8), 963–978 (2014)

    Article  Google Scholar 

  2. Giannatsis, J., Dedoussis, V.: Additive fabrication technologies applied to medicine and health care: a review. Int. J. Adv. Manuf. Technol. 40(1–2), 116–127 (2009)

    Article  Google Scholar 

  3. Simchi, A., Petzoldt, F., Pohl, H.: On the development of direct metal laser sintering for rapid tooling. J. Mater. Process. Technol. 141(3), 319–328 (2003)

    Article  Google Scholar 

  4. Yadroitsev, I., et al.: Manufacturing of fine-structured 3D porous filter elements by selective laser melting. Appl. Surf. Sci. 255(10), 5523–5527 (2009)

    Article  Google Scholar 

  5. Murr, L.E., et al.: Metal fabrication by additive manufacturing using laser and electron beam melting technologies. J. Mater. Sci. & Technol. 28(1), 1–14 (2009)

    Article  Google Scholar 

  6. Meteyer, S., et al.: Energy and material flow analysis of binder-jetting additive manufacturing processes. Procedia CIRP 15, 19–25 (2014)

    Article  Google Scholar 

  7. Palmer, J.A., et al.: Realizing 3-D interconnected direct write electronics within smart stereolithography structures. ASME 2005 International Mechanical Engineering Congress and Exposition. American Society of Mechanical Engineers (2005)

    Google Scholar 

  8. Joe Lopes, A., MacDonald, E., Wicker, R.B.: Integrating stereolithography and direct print technologies for 3D structural electronics fabrication. Rapid Prototyp. J. 18(2), 129–143 (2012)

    Article  Google Scholar 

  9. Taminger, K., Hafley, R.A.: Electron beam freeform fabrication: a rapid metal deposition process (2003)

    Google Scholar 

  10. Ding, D., et al.: Wire-feed additive manufacturing of metal components: technologies, developments and future interests. Int. J. Adv. Manuf. Technol. 81(1–4), 465–481 (2015)

    Article  Google Scholar 

  11. Cheng, S.X., Li, T., Chandra, S.: Producing molten metal droplets with a pneumatic droplet-on-demand generator. J. Mater. Process. Technol. 159(3), 295–302 (2005)

    Article  Google Scholar 

  12. Abdallah, M., Diabi, R., Belhamra, A.: Industrial applications for induction heating. J. Eng. Appl. Sci. 2(7), 1178–1182 (2007)

    Google Scholar 

  13. Lucia, O., et al.: Induction heating technology and its applications: past developments, current technology, and future challenges. IEEE Trans. Ind. Electron. 61(5), 2509–2520 (2014)

    Article  Google Scholar 

  14. Ladd, C., et al.: 3D printing of free standing liquid metal microstructures. Adv. Mater. 25(36), 5081–5085 (2013)

    Article  Google Scholar 

  15. Lehua, Q., et al.: Dominant factors of metal jet breakup in micro droplet deposition manufacturing technique. Chin. J. Aeronaut. 23(4), 495–500 (2010)

    Article  Google Scholar 

  16. Luo, J., et al.: Printing solder droplets for micro devices packages using pneumatic drop-on-demand (DOD) technique. J. Mater. Process. Technol. 212(10), 2066–2073 (2012)

    Article  Google Scholar 

  17. Luo, J., et al.: Impact-driven ejection of micro metal droplets on-demand. Int. J. Mach. Tools Manuf. 106, 67–74 (2016)

    Article  Google Scholar 

  18. Goghari, A.A., Chandra, S.: Producing droplets smaller than the nozzle diameter by using a pneumatic drop-on-demand droplet generator. Exp. Fluids 44(1), 105–114 (2008)

    Article  Google Scholar 

  19. Lee, T.-M., et al.: Drop-on-demand solder droplet jetting system for fabricating microstructure. IEEE Trans. Electron. Packag. Manuf. 31(3), 202–210 (2008)

    Article  Google Scholar 

  20. Suter, M., Weingärtner, E., Wegener, K.: MHD printhead for additive manufacturing of metals. Procedia CIRP 2, 102–106 (2012)

    Article  Google Scholar 

  21. Farnell, Technical data sheet, STANNOL solder ECOLOY TC, April 2009. http://www.farnell.com/datasheets/1788137.pdf. Accessed 20 May 2019

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Correspondence to Manish Arora .

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Jayant, H.K., Arora, M. (2020). Induction Heating Based 3D Metal Printing of Eutectic Alloy Using Vibrating Nozzle. In: Di Nicolantonio, M., Rossi, E., Alexander, T. (eds) Advances in Additive Manufacturing, Modeling Systems and 3D Prototyping. AHFE 2019. Advances in Intelligent Systems and Computing, vol 975. Springer, Cham. https://doi.org/10.1007/978-3-030-20216-3_7

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  • DOI: https://doi.org/10.1007/978-3-030-20216-3_7

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  • Publisher Name: Springer, Cham

  • Print ISBN: 978-3-030-20215-6

  • Online ISBN: 978-3-030-20216-3

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