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Erschienen in: The International Journal of Advanced Manufacturing Technology 9-10/2020

15.09.2020 | ORIGINAL ARTICLE

An experimental/numerical study of bonding mechanism in cold spray technology for metals

verfasst von: Antonio Viscusi, Matteo Bruno, Luca Esposito, Gabriel Testa

Erschienen in: The International Journal of Advanced Manufacturing Technology | Ausgabe 9-10/2020

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Abstract

The cold spray technology is a relatively new additive process allowing for the deposition of metallic coatings on metallic substrates; the particles impacting on target surface at high velocity deform and bond together leading to the coating formation and grow-up. Although the impact phenomena have been studied by several scientists in the last decades, the actual bonding mechanism for cold spray particles is still a recent focus of research. Therefore, aiming to further investigate the intriguing phenomena governing the particle-substrate interaction in cold spray, both experimental and numerical studies were carried out in this research activity. Ballistic tests were performed by impacting a single lead particle (1.5 mm in diameter) on a lead substrate at different impact velocities through a light ballistic airgun. A high-frequency camera was used to observe the particle impact and measure impact and rebound velocities. A detailed 3D quarter symmetric numerical model was developed and impact simulations were performed. The comparison between the experimental results and the numerical outcomes in terms of particles and substrate deformations as well as particle rebound velocity allowed for the validation of the model. The validated numerical approach was used to study the thermo-mechanical regimes taking place on impact surface pointing out the rule of strain-temperature interaction in cold spray bonding. On these results, a temperature-based bonding hypothesis was proposed and an original bonding algorithm was implemented on the numerical model.

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Literatur
1.
Zurück zum Zitat Schmidt T, Assadi H, Gärtner F, Richter H, Stoltenhoff T, Kreye H, Klassen T (2009) From particle acceleration to impact and bonding in cold spraying. J Therm Spray Technol 18(5-6):794–808CrossRef Schmidt T, Assadi H, Gärtner F, Richter H, Stoltenhoff T, Kreye H, Klassen T (2009) From particle acceleration to impact and bonding in cold spraying. J Therm Spray Technol 18(5-6):794–808CrossRef
2.
Zurück zum Zitat Stoltenhoff T, Voyer J, Kreye H (2002) Cold spraying: state of the art and applicability. In: International Thermal Spray Conference. pp 366–374 Stoltenhoff T, Voyer J, Kreye H (2002) Cold spraying: state of the art and applicability. In: International Thermal Spray Conference. pp 366–374
3.
Zurück zum Zitat Champagne VK, Helfritch DJ, Dinavahi SPG, Leyman PF (2011) Theoretical and experimental particle velocity in cold spray. J Therm Spray Technol 20(3):425–431CrossRef Champagne VK, Helfritch DJ, Dinavahi SPG, Leyman PF (2011) Theoretical and experimental particle velocity in cold spray. J Therm Spray Technol 20(3):425–431CrossRef
4.
Zurück zum Zitat Villafuerte J (2010) Current and future applications of cold spray technology. Met Finish 108(1):37–39CrossRef Villafuerte J (2010) Current and future applications of cold spray technology. Met Finish 108(1):37–39CrossRef
5.
Zurück zum Zitat Singh H, Sidhu T, Kalsi S (2012) Cold spray technology: future of coating deposition processes. Frat ed Integrita Strutt 6(22):69–84 Singh H, Sidhu T, Kalsi S (2012) Cold spray technology: future of coating deposition processes. Frat ed Integrita Strutt 6(22):69–84
6.
Zurück zum Zitat Stoltenhoff T, Kreye H, Richter H (2002) An analysis of the cold spray process and its coatings. J Therm Spray Technol 11(4):542–550CrossRef Stoltenhoff T, Kreye H, Richter H (2002) An analysis of the cold spray process and its coatings. J Therm Spray Technol 11(4):542–550CrossRef
7.
Zurück zum Zitat Wu J, Fang H, Yoon S, Lee C, Kim H (2006) Critical velocities for high speed particle deposition in kinetic spraying. Mater Trans 47(7):1723–1727CrossRef Wu J, Fang H, Yoon S, Lee C, Kim H (2006) Critical velocities for high speed particle deposition in kinetic spraying. Mater Trans 47(7):1723–1727CrossRef
8.
Zurück zum Zitat Alkhimov A, Kosarev V, Klinkov S (2001) The features of cold spray nozzle design. J Therm Spray Technol 10(2):375–381CrossRef Alkhimov A, Kosarev V, Klinkov S (2001) The features of cold spray nozzle design. J Therm Spray Technol 10(2):375–381CrossRef
9.
Zurück zum Zitat Gilmore D, Dykhuizen R, Neiser R, Smith M, Roemer T (1999) Particle velocity and deposition efficiency in the cold spray process. J Therm Spray Technol 8(4):576–582CrossRef Gilmore D, Dykhuizen R, Neiser R, Smith M, Roemer T (1999) Particle velocity and deposition efficiency in the cold spray process. J Therm Spray Technol 8(4):576–582CrossRef
10.
Zurück zum Zitat Schmidt T, Gärtner F, Assadi H, Kreye H (2006) Development of a generalized parameter window for cold spray deposition. Acta Mater 54(3):729–742CrossRef Schmidt T, Gärtner F, Assadi H, Kreye H (2006) Development of a generalized parameter window for cold spray deposition. Acta Mater 54(3):729–742CrossRef
11.
Zurück zum Zitat Assadi H, Schmidt T, Richter H, Kliemann J-O, Binder K, Gärtner F, Klassen T, Kreye H (2011) On parameter selection in cold spraying. J Therm Spray Technol 20(6):1161–1176CrossRef Assadi H, Schmidt T, Richter H, Kliemann J-O, Binder K, Gärtner F, Klassen T, Kreye H (2011) On parameter selection in cold spraying. J Therm Spray Technol 20(6):1161–1176CrossRef
12.
Zurück zum Zitat Assadi H, Gärtner F, Stoltenhoff T, Kreye H (2003) Bonding mechanism in cold gas spraying. Acta Mater 51(15):4379–4394CrossRef Assadi H, Gärtner F, Stoltenhoff T, Kreye H (2003) Bonding mechanism in cold gas spraying. Acta Mater 51(15):4379–4394CrossRef
13.
Zurück zum Zitat Bonora N, Milella PP (2001) Constitutive modeling for ductile metals behavior incorporating strain rate, temperature and damage mechanics. Int J Impact Eng 26(1-10):53–64CrossRef Bonora N, Milella PP (2001) Constitutive modeling for ductile metals behavior incorporating strain rate, temperature and damage mechanics. Int J Impact Eng 26(1-10):53–64CrossRef
14.
Zurück zum Zitat Bonora N, Testa G, Ruggiero A, Iannitti G, Mortazavi N, Hörnqvist M (2015) Numerical simulation of dynamic tensile extrusion test of ofhc copper. J Dyn Behav Mater 1(2):136–152CrossRef Bonora N, Testa G, Ruggiero A, Iannitti G, Mortazavi N, Hörnqvist M (2015) Numerical simulation of dynamic tensile extrusion test of ofhc copper. J Dyn Behav Mater 1(2):136–152CrossRef
15.
Zurück zum Zitat Yokoyama K, Watanabe M, Kuroda S, Gotoh Y, Schmidt T, Gärtner F (2006) Simulation of solid particle impact behavior for spray processes. Mater Trans 47(7):1697–1702CrossRef Yokoyama K, Watanabe M, Kuroda S, Gotoh Y, Schmidt T, Gärtner F (2006) Simulation of solid particle impact behavior for spray processes. Mater Trans 47(7):1697–1702CrossRef
16.
Zurück zum Zitat Grujicic M, Zhao C, DeRosset W, Helfritch D (2004) Adiabatic shear instability based mechanism for particles/substrate bonding in the cold-gas dynamic-spray process. Mater Des 25(8):681–688CrossRef Grujicic M, Zhao C, DeRosset W, Helfritch D (2004) Adiabatic shear instability based mechanism for particles/substrate bonding in the cold-gas dynamic-spray process. Mater Des 25(8):681–688CrossRef
17.
Zurück zum Zitat Hassani-Gangaraj M, Veysset D, Champagne VK, Nelson KA, Schuh CA (2018) Adiabatic shear instability is not necessary for adhesion in cold spray. Acta Mater 158:430–439CrossRef Hassani-Gangaraj M, Veysset D, Champagne VK, Nelson KA, Schuh CA (2018) Adiabatic shear instability is not necessary for adhesion in cold spray. Acta Mater 158:430–439CrossRef
18.
Zurück zum Zitat Yildirim B, Fukanuma H, Ando T, Gouldstone A, Müftü S (2015) A numerical investigation into cold spray bonding processes. J Tribol 137(1):011102CrossRef Yildirim B, Fukanuma H, Ando T, Gouldstone A, Müftü S (2015) A numerical investigation into cold spray bonding processes. J Tribol 137(1):011102CrossRef
19.
Zurück zum Zitat ABAQUS (2014) Abaqus Theory Guide, Version 6.14. Dassault Systemes Simulia Corp. Providence, RI ABAQUS (2014) Abaqus Theory Guide, Version 6.14. Dassault Systemes Simulia Corp. Providence, RI
20.
Zurück zum Zitat Yildirim B, Muftu S, Gouldstone A (2011) Modeling of high velocity impact of spherical particles. Wear 270(9-10):703–713CrossRef Yildirim B, Muftu S, Gouldstone A (2011) Modeling of high velocity impact of spherical particles. Wear 270(9-10):703–713CrossRef
21.
Zurück zum Zitat Viscusi A (2018) Numerical investigations on the rebound phenomena and the bonding mechanisms in cold spray processes. In: AIP Conference Proceedings, vol 1. AIP Publishing, p 100017 Viscusi A (2018) Numerical investigations on the rebound phenomena and the bonding mechanisms in cold spray processes. In: AIP Conference Proceedings, vol 1. AIP Publishing, p 100017
22.
Zurück zum Zitat Marechal C, Bresson F, Haugou G (2011) Development of a numerical model of the 9 mm parabellum fmj bullet including jacket failure. Eng Trans 59(4):263–272 Marechal C, Bresson F, Haugou G (2011) Development of a numerical model of the 9 mm parabellum fmj bullet including jacket failure. Eng Trans 59(4):263–272
23.
Zurück zum Zitat Sohoni G, Walame M, Tandon V, Mahajan R, Raju S (2005) Dynamic behavior characterization of lead at high strain rates using high speed photography for finite element simulation. In: ASME 2005 International Mechanical Engineering Congress and Exposition. American Society of Mechanical Engineers Digital Collection, pp 525–530 Sohoni G, Walame M, Tandon V, Mahajan R, Raju S (2005) Dynamic behavior characterization of lead at high strain rates using high speed photography for finite element simulation. In: ASME 2005 International Mechanical Engineering Congress and Exposition. American Society of Mechanical Engineers Digital Collection, pp 525–530
Metadaten
Titel
An experimental/numerical study of bonding mechanism in cold spray technology for metals
verfasst von
Antonio Viscusi
Matteo Bruno
Luca Esposito
Gabriel Testa
Publikationsdatum
15.09.2020
Verlag
Springer London
Erschienen in
The International Journal of Advanced Manufacturing Technology / Ausgabe 9-10/2020
Print ISSN: 0268-3768
Elektronische ISSN: 1433-3015
DOI
https://doi.org/10.1007/s00170-020-06060-9

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